WO2022052721A1 - 折叠装置及电子设备 - Google Patents
折叠装置及电子设备 Download PDFInfo
- Publication number
- WO2022052721A1 WO2022052721A1 PCT/CN2021/111914 CN2021111914W WO2022052721A1 WO 2022052721 A1 WO2022052721 A1 WO 2022052721A1 CN 2021111914 W CN2021111914 W CN 2021111914W WO 2022052721 A1 WO2022052721 A1 WO 2022052721A1
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- WO
- WIPO (PCT)
- Prior art keywords
- rotating
- arm
- shaft
- transmission arm
- fixing frame
- Prior art date
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Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C11/00—Pivots; Pivotal connections
- F16C11/04—Pivotal connections
- F16C11/045—Pivotal connections with at least a pair of arms pivoting relatively to at least one other arm, all arms being mounted on one pin
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16C—SHAFTS; FLEXIBLE SHAFTS; ELEMENTS OR CRANKSHAFT MECHANISMS; ROTARY BODIES OTHER THAN GEARING ELEMENTS; BEARINGS
- F16C11/00—Pivots; Pivotal connections
- F16C11/04—Pivotal connections
- F16C11/12—Pivotal connections incorporating flexible connections, e.g. leaf springs
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F1/00—Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
- G06F1/16—Constructional details or arrangements
- G06F1/1613—Constructional details or arrangements for portable computers
- G06F1/1615—Constructional details or arrangements for portable computers with several enclosures having relative motions, each enclosure supporting at least one I/O or computing function
- G06F1/1616—Constructional details or arrangements for portable computers with several enclosures having relative motions, each enclosure supporting at least one I/O or computing function with folding flat displays, e.g. laptop computers or notebooks having a clamshell configuration, with body parts pivoting to an open position around an axis parallel to the plane they define in closed position
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F1/00—Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
- G06F1/16—Constructional details or arrangements
- G06F1/1613—Constructional details or arrangements for portable computers
- G06F1/1633—Constructional details or arrangements of portable computers not specific to the type of enclosures covered by groups G06F1/1615 - G06F1/1626
- G06F1/1637—Details related to the display arrangement, including those related to the mounting of the display in the housing
- G06F1/1652—Details related to the display arrangement, including those related to the mounting of the display in the housing the display being flexible, e.g. mimicking a sheet of paper, or rollable
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- G—PHYSICS
- G06—COMPUTING; CALCULATING OR COUNTING
- G06F—ELECTRIC DIGITAL DATA PROCESSING
- G06F1/00—Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
- G06F1/16—Constructional details or arrangements
- G06F1/1613—Constructional details or arrangements for portable computers
- G06F1/1633—Constructional details or arrangements of portable computers not specific to the type of enclosures covered by groups G06F1/1615 - G06F1/1626
- G06F1/1675—Miscellaneous details related to the relative movement between the different enclosures or enclosure parts
- G06F1/1681—Details related solely to hinges
Definitions
- the present application relates to the technical field of foldable electronic products, and in particular, to a folding device and electronic equipment.
- the foldable electronic device also includes a folding device for carrying a flexible display screen.
- the folding device generally includes two shells and a rotating mechanism connected between the two shells. The two shells are folded or folded relative to each other through the deformation of the rotating mechanism. Relatively unfold, and drive the flexible display to fold or unfold.
- the bending area of the flexible display screen will generate tension during the bending process, creases will appear in the middle of the flexible display screen in the unfolded state, thereby reducing the flatness of the flexible display screen and affecting the user experience.
- the purpose of this application is to provide a folding device and an electronic device.
- the folding device is used to carry the flexible display screen.
- the force away from the main axis direction on the flexible display screen is greater than the force away from the main axis direction in the closed state. Therefore, the layered dislocation phenomenon of the flexible display screen when the electronic device is unfolded from a folded state to a flattened state can be alleviated, and the recovery of the crease of the flexible display screen can be accelerated, thereby improving the flattening effect of the flexible display screen.
- the present application provides a folding device.
- the folding device can be applied to an electronic device, and the folding device is used to carry a flexible display screen of the electronic device.
- the flexible display screen includes a first non-bending part, a bending part and a second non-bending part arranged in sequence.
- the folding device includes a first casing, a second casing, a first elastic component and a shaft. The first casing and the second casing are respectively located on both sides of the shaft.
- the first casing is fixedly connected to the first non-bending part, and the second casing is fixedly connected to the second non-bending part.
- the first elastic component is located between the shaft and the first housing, the first elastic component is rotatably connected with the shaft, and the first elastic component is fixedly connected with the first housing.
- the first structural member is in contact with the second structural member, wherein the first structural member is a part of the first elastic component, and the second structural member is a part of the shaft.
- the elastic force is generated by the compression of the first elastic component in the first direction, and at least part of the elastic force is transmitted to the bending part through the first shell and the first non-bending part, wherein the first direction is perpendicular to the longitudinal extension direction of the shaft, And the first direction is parallel to the first casing.
- the first part of the first structural member abuts against the first part of the second structural member, and the compression amount of the first elastic component in the first direction is the first compression amount.
- the first casing and the first elastic component rotate relative to the shaft, the second casing rotates relative to the shaft, and the electronic device changes from a flat state to a folded state.
- the second part of the first structural member is in contact with the second part of the second structural part, the compression amount of the first elastic component in the first direction is the second compression amount, and the second compression amount is smaller than the first compression amount. an amount of compression.
- the first position of the first structural member is different from the second position of the first structural member, and/or the first position of the second structural member is different from the second position of the second structural member.
- the elastic force generated by the first elastic component can be transmitted to the The first non-bending part of the flexible display screen further accelerates the recovery of the crease of the flexible display screen, thereby improving the flattening effect of the screen.
- the force transmitted to the bending part through the first casing and the first non-bending part is the first force; when the electronic device is in the folded state, the first force is transmitted through the first
- the force transmitted by the casing and the first non-bending part to the bending part is a second force, and the second force is smaller than the first force. Therefore, when the electronic device is unfolded from the folded state to the flattened state, the force transmitted to the first non-folding portion of the flexible display screen through the first casing is greater, thereby accelerating the recovery of the crease.
- the shaft and the first elastic component are rotatably connected through the first rotating shaft.
- the distance between the axis of the first rotating shaft and the first part of the shaft is the first distance
- the projection length of the first distance on the first plane is the first projection length.
- the distance between the axis of the first rotating shaft and the second part of the shaft is the second distance
- the projected length of the second distance on the first plane is the second projected length
- the second projected length is smaller than the first projected length .
- the first plane is the plane where the surface of the first casing and the first non-bending portion is fixedly connected.
- the projected length of the distance from the contact point of the first structural member and the second structural member to the axis is different, so that the elastic deformation of the first elastic component is different.
- the force transmitted by the housing to the flexible display is different.
- the first elastic component is provided with a connecting hole, and the shaft and the first elastic component are rotatably connected through the first rotating shaft, which specifically includes: the first rotating shaft passes through the connecting hole.
- the connection hole includes a first side wall and a second side wall.
- the distance between the axis of the first rotating shaft and the first side wall is the first distance
- the distance between the axis of the first rotating shaft and the second side wall is the second distance
- the first distance is smaller than the second distance.
- the connecting hole moves relative to the first rotating shaft, the distance between the axis of the first rotating shaft and the first side wall is the third distance, and the distance between the axis of the first rotating shaft and the second side wall is the third distance.
- the distance is the fourth distance, and the third distance is greater than the fourth distance.
- the direction of the third force is the direction in which the second side wall faces the first side wall
- the distance between the first side wall and the first casing is the fifth distance
- the distance between the second side wall and the first casing is the sixth distance distance
- the fifth distance is smaller than the sixth distance
- the folding device can be slightly longer as the flexible display screen ages, so that the flexible display screen and the folding device fit better, and the flexible display is weakened when the flexible display screen ages. screen creases.
- the shaft is provided with a connecting hole, and the shaft and the first elastic component are rotatably connected through the first rotating shaft, which specifically includes: the first rotating shaft is penetrated through the connecting hole.
- the connection hole includes a first side wall and a second side wall.
- the distance between the axis of the first rotating shaft and the first side wall is the first distance
- the distance between the axis of the first rotating shaft and the second side wall is the second distance
- the first distance is greater than the second distance.
- the first rotating shaft moves relative to the connecting hole
- the distance between the axis of the first rotating shaft and the first side wall is the third distance
- the distance between the axis of the first rotating shaft and the second side wall is the third distance.
- the distance is the fourth distance
- the third distance is smaller than the fourth distance.
- the direction of the third force is the direction in which the second side wall faces the first side wall
- the distance between the first side wall and the first casing is the fifth distance
- the distance between the second side wall and the first casing is the sixth distance distance
- the fifth distance is smaller than the sixth distance
- the first cross-section of the connecting hole at least includes one or more of waist circle, oval, circle, and rectangle, wherein the first cross-section is perpendicular to the lengthwise extending direction of the first rotating shaft.
- the first elastic component includes a first fixing frame, and at least a part of the first fixing frame is fixedly connected with the first housing.
- the first elastic component further includes a first elastic member and a first bracket.
- the first elastic member and the first bracket are arranged on the first fixing frame. At least a part of the first elastic member is disposed between the first bracket and the first fixing frame.
- the first bracket is in contact with the second structural member, and the first elastic member is in contact with the first housing through the first fixing frame.
- the first fixing frame is provided with a first installation groove
- the first bracket is provided with a flange.
- the first bracket is slidably connected with the first installation groove through the flange.
- the folding device further includes a second elastic component.
- the shaft includes a first rotating member and a second rotating member.
- the first elastic component includes a first fixing frame
- the second elastic component includes a second fixing frame.
- the first rotating member includes a first connecting assembly and a first rotating arm.
- the second rotating member includes a second connecting assembly and a second rotating arm.
- the first connecting assembly includes a sliding end and a rotating end, the sliding end of the first connecting assembly is slidably connected to the second fixing frame, and the rotating end of the first connecting assembly is rotatably connected to the first end of the first rotating arm.
- the second end of the first rotating arm is rotatably connected to the first fixing frame through the first rotating shaft.
- the second connecting component includes a sliding end and a rotating end.
- the sliding end of the second connecting component is slidably connected to the first fixing frame, the rotating end of the second connecting component is rotatably connected to the first end of the second rotating arm, and the second rotating arm is connected to the second rotating arm.
- the end is rotatably connected to the second fixing frame.
- the first fixing frame includes a first connecting block.
- the first connecting block may be in the shape of a claw, and the first connecting block has a rotating hole.
- the first rotating arm includes a claw-shaped first end, that is, a second structural member, and the first end of the first rotating arm has a rotating hole.
- the first end of the first rotating arm is staggeredly connected with the first connecting block, and the first rotating shaft passes through the rotating hole of the first connecting block and the rotating hole of the first end of the first rotating arm, so that the first rotating The end is rotatably connected to the first connecting block, so as to realize the rotatable connection between the first rotating arm and the first fixing frame.
- the first end of the first rotating arm is alternately connected with the first connecting block, which can realize mutual limitation in the axial direction of the main shaft and improve the connection reliability of the rotating mechanism.
- the second elastic component is located between the shaft and the second housing, the second elastic component is rotatably connected to the shaft, and the second elastic component is fixedly connected to the second housing.
- the third structural member is in contact with the fourth structural member, wherein the third structural member is a part of the second elastic component, and the fourth structural member is a part of the shaft.
- the elastic force is generated by the amount of compression of the second elastic component in the second direction, and at least part of the elastic force is transmitted to the bending part through the second shell and the second non-bending part, wherein the second direction is perpendicular to the longitudinal extension direction of the shaft, And the second direction is parallel to the second casing.
- the electronic device is in a flattened state, the first part of the third structural member is in contact with the first part of the fourth structural member, and the compression amount of the second elastic component in the second direction is the third compression amount.
- the electronic device is in a folded state, the second part of the third structural member is in contact with the second part of the fourth structural member, the compression amount of the second elastic component in the second direction is the fourth compression amount, and the fourth compression amount is smaller than the third compression amount amount of compression.
- the first position of the third structural member is different from the second position of the third structural member, and/or the first position of the fourth structural member is different from the second position of the fourth structural member.
- the force away from the main axis direction received by the second non-bending portion of the flexible display screen in the flattened state is greater than the force away from the main axis direction in the closed state, thereby accelerating the electronic
- the shaft further includes a main shaft.
- the first connecting assembly includes a first transmission arm and a first connecting piece.
- the second link assembly includes a second transmission arm and a second link.
- the first connecting assembly includes a sliding end and a rotating end, the sliding end of the first connecting assembly is slidably connected to the second fixing frame, and the rotating end of the first connecting assembly is rotatably connected to the first end of the first rotating arm, specifically including: a first transmission arm It includes a sliding end and a rotating end, the sliding end of the first transmission arm is slidably connected to the second fixing frame, the rotating end of the first transmission arm is rotatably connected to the main shaft, the rotating end of the first transmission arm is rotatably connected to the first connecting piece, the first connecting piece The first end of the first rotating arm is rotatably connected.
- the second connecting assembly includes a sliding end and a rotating end, the sliding end of the second connecting assembly is slidably connected to the first fixing frame, and the rotating end of the second connecting assembly is rotatably connected to the first end of the second rotating arm, which specifically includes: a second transmission arm It includes a sliding end and a rotating end, the sliding end of the second transmission arm is slidably connected to the first fixing frame, the rotating end of the second transmission arm is rotatably connected to the main shaft, the rotating end of the second transmission arm is rotatably connected to the second connecting piece, and the second connecting piece The first end of the second rotating arm is rotatably connected.
- the first transmission arm rotates relative to the main shaft, and the first rotating arm is linked with the first transmission arm through the first connecting piece,
- the first fixing frame and the first casing are gradually away from the main shaft;
- the second transmission arm rotates relative to the main shaft, the second rotating arm is linked with the second transmission arm through the second connecting piece, and the second fixing frame and the second casing are gradually away from the main shaft.
- the first transmission arm rotates relative to the main shaft, the first rotating arm is linked with the first transmission arm through the first connecting piece, the first fixed frame and the first The casing gradually approaches the main shaft; the second transmission arm rotates relative to the main shaft, the second rotating arm is linked with the second transmission arm through the second connecting piece, and the second fixed frame and the second casing gradually approach the main shaft. Therefore, during the relative unfolding of the first casing and the second casing, the first casing moves in a direction away from the main shaft, and the second casing moves in a direction away from the main shaft.
- the first casing moves in a direction close to the main shaft
- the second casing moves in a direction close to the main shaft. That is to say, it is possible to realize the inner-pulling motion of the casing during the change of the folding device from the flattened state to the closed state, and the outer-pulling movement of the casing during the changing of the folding device from the closed state to the flattened state, so that the folding device can be unfolded or expanded.
- the deformation movement with the flexible display screen as the neutral plane can be realized, thereby reducing the risk of pulling or squeezing the flexible display screen, so that the flexible display screen can maintain a constant length, so as to protect the flexible display screen and improve the flexibility of the flexible display screen. Reliability enables flexible displays and electronic devices to have a long service life.
- the main shaft includes an inner shaft and an outer shaft, and the outer shaft is fixedly connected to the inner shaft.
- the inner shaft includes a first arc-shaped bump and a second arc-shaped bump
- the outer shaft includes a first arc-shaped groove and a second arc-shaped groove
- the rotating end of the first transmission arm is arc-shaped and has a
- the convex block and the first arc-shaped groove are rotatably connected
- the rotating end of the second transmission arm is arc-shaped and is rotatably connected with the second arc-shaped convex block and the second arc-shaped groove.
- the rotation connection structure is simple, and the occupied space is small, which is beneficial to reduce the thickness of the rotation mechanism, so that the folding Devices and electronic equipment are easier to achieve thinning.
- the main shaft includes an inner shaft and an outer shaft fixed to the inner shaft.
- the inner shaft is located between the outer shaft and the first fixing frame and the second fixing frame.
- the first transmission arm rotates around a first rotation center, the first rotation center is close to the inner shaft and away from the outer shaft, and the first rotation center is close to the second fixing frame and away from the first fixing frame.
- the second transmission arm rotates around a second rotation center, the second rotation center is close to the inner shaft and away from the outer shaft, and the second rotation center is close to the first fixing frame and away from the second fixing frame.
- both the inner shaft and the outer shaft are provided with a plurality of three-dimensional space structures. Through the design of these structures, after the inner shaft and the outer shaft are assembled, a plurality of movable spaces can be formed together. A space for activity, so as to realize the connection with the main shaft.
- the split design of the inner shaft and the outer shaft is beneficial to reduce the manufacturing difficulty of the spindle and improve the manufacturing accuracy and product yield of the spindle.
- the rotating end of the first transmission arm may further include a limiting protrusion, and the limiting protrusion forms an inner position and/or an outer position of the rotating end.
- the limiting protrusion is used to cooperate with the limiting groove of the main shaft, so that the first transmission arm and the main shaft can achieve mutual position restriction in the axial direction of the main shaft, so as to improve the reliability of the connection structure.
- the first rotating arm and the first connecting member are connected by a second rotating shaft, the inner shaft and the outer shaft are surrounded to form an arc-shaped groove, and the second rotating shaft and the arc-shaped groove are slidably matched to realize the second rotating shaft.
- the limitation of the movement trajectory of the rotating shaft makes the first rotating arm only move in the main shaft with a predetermined trajectory.
- the second fixing frame includes a first sliding groove
- the first fixing frame includes a second sliding groove.
- the sliding end of the first transmission arm is slidably connected to the second fixing frame, which specifically includes: the sliding end of the first transmission arm is slidably connected to the first chute, and during the transition of the electronic device from the flat state to the folded state, the first transmission arm is slidably connected.
- the sliding end slides relative to the first chute.
- the sliding end of the second transmission arm is slidably connected to the first fixing frame, which specifically includes: the sliding end of the second transmission arm is slidably connected to the second chute, and during the transition of the electronic device from the flattened state to the folded state, the The sliding end slides relative to the second chute.
- the side wall of the first chute may have a concave guide space.
- the sliding end of the first transmission arm is mounted on the first chute so as to be slidably connected to the second fixing frame.
- the sliding end of the first transmission arm includes a first flange on the peripheral side.
- the first flange is installed in the guide space of the first chute.
- the side wall of the second chute may have a concave guide space.
- the sliding end of the second transmission arm is mounted on the second chute so as to be slidably connected to the first fixing frame.
- the sliding end of the second transmission arm includes a second flange on the peripheral side.
- the second flange is installed in the guide space of the second chute.
- the first transmission arm further includes a first limiting member
- the second transmission arm further includes a second limiting member.
- the first limiting piece is arranged at the sliding end of the first transmission arm
- the second limiting piece is arranged at the sliding end of the second transmission arm.
- the side wall of the first chute is provided with a first convex portion and a first concave portion at intervals
- the side wall of the second chute is provided with a second convex portion and a second concave portion at intervals.
- the first limiting member includes a second elastic member
- the second limiting member includes a third elastic member.
- the sliding end of the first transmission arm slides to the first position relative to the first chute, the first limiting member cooperates with the first convex portion, and the compression amount of the second elastic member is the fifth compression amount.
- the sliding end of the first transmission arm slides to the second position relative to the first chute, the first limiting member cooperates with the first concave portion, and the compression amount of the second elastic member is the sixth compression amount, wherein the fifth compression amount is greater than the sixth compression amount.
- the sliding end of the second transmission arm slides to a third position relative to the second chute, the second limiting member cooperates with the second convex portion, and the compression amount of the third elastic member is the seventh compression amount.
- the sliding end of the second transmission arm slides to the fourth position relative to the second chute, the second limiting member cooperates with the second concave portion, and the compression amount of the third elastic member is the eighth compression amount, wherein the seventh compression amount is greater than the first compression amount. Eight compressions.
- the cooperation between the first limiting member and the first convex portion and the first concave portion of the first chute, and the coupling between the second limiting member and the second convex portion and the second concave portion of the second chute In cooperation, a torque that hinders the relative rotation of the housing can be provided, thereby improving the hand feeling during the folding process of the electronic device.
- the first limiting member is used to limit the positional relationship between the first transmission arm and the second fixing frame
- the second limiting member is used to limit the positional relationship between the second transmission arm and the first fixing frame, so that the first transmission arm is connected to the first fixing frame.
- the second fixed frame can maintain a preset relative positional relationship when not subject to a large external force
- the second transmission arm and the first fixed frame can maintain a preset relative positional relationship when not subject to a large external force
- the folding device can maintain a preset relative positional relationship. If the angle stays, the folding device can be kept in a flat state or a closed state, so as to improve the user experience of the folding device and the electronic device.
- the sliding end of the first transmission arm has a second installation groove
- the first limiting member is installed in the second installation groove.
- the first limiting member includes a second bracket and a second elastic member
- the second bracket includes a control portion and a resisting portion
- one end of the second elastic member is mounted on the control portion of the second bracket, and the other end abuts against the second mounting groove.
- the groove wall, and the abutting part of the second bracket is clamped to the second fixing frame. Since the second elastic member of the first limiting member can be deformed under the action of external force, the first limiting member can smoothly move relative to the second fixing frame between the first convex portion and the first concave portion, so as to improve the first position. The limit reliability between the transmission arm and the second fixing frame.
- the first limiting member may further include a first buffer member, and the first buffer member is mounted on the abutting portion of the second bracket.
- the first buffer member can be made of a material with low rigidity (eg, rubber, etc.), so that when an external force is received, it can absorb the impact force through deformation, so as to realize buffering.
- the first transmission arm further includes a first limiting member
- the second transmission arm further includes a second limiting member.
- the first limiting piece is arranged on the sliding end of the first transmission arm
- the second limiting piece is arranged at the sliding end of the second transmission arm.
- the side wall of the first chute is provided with a first convex portion and a first concave portion at intervals
- the side wall of the second chute is provided with a second convex portion and a second concave portion at intervals.
- the first protruding part includes a second elastic part
- the second protruding part includes a third elastic part.
- the sliding end of the first transmission arm slides to the first position relative to the first chute, the first limiting member cooperates with the first convex portion, and the compression amount of the second elastic member is the fifth compression amount.
- the sliding end of the first transmission arm slides to the second position relative to the first chute, the first limiting member cooperates with the first concave portion, and the compression amount of the second elastic member is the sixth compression amount, wherein the fifth compression amount is greater than the sixth compression amount.
- the sliding end of the second transmission arm slides to a third position relative to the second chute, the second limiting member cooperates with the second convex portion, and the compression amount of the third elastic member is the seventh compression amount.
- the sliding end of the second transmission arm slides to the fourth position relative to the second chute, the second limiting member cooperates with the second concave portion, and the compression amount of the third elastic member is the eighth compression amount, wherein the seventh compression amount is greater than the first compression amount. Eight compressions.
- the folding device further includes a synchronization component.
- the synchronization assembly includes a first synchronization swing arm, a second synchronization swing arm, a first gear and a second gear.
- the first gear is arranged on the main shaft, and the first gear is rotatably connected to the main shaft.
- the second gear is arranged on the main shaft, and the second gear is rotatably connected to the main shaft. The first gear meshes with the second gear.
- the first synchronous swing arm includes a sliding end and a rotating end, the rotating end of the first synchronous swing arm is rotatably connected to the main shaft, the rotating end of the first synchronous swing arm is engaged with the first gear, and the sliding end of the first synchronous swing arm is slidably connected to the first fixed shelf.
- the second synchronous swing arm includes a sliding end and a rotating end, the rotating end of the second synchronous swing arm is rotatably connected to the main shaft, the rotating end of the second synchronous swing arm is engaged with the second gear, and the sliding end of the second synchronous swing arm is slidably connected to the second fixed shelf.
- the sliding end is slidably connected to the second fixing frame, so during the relative unfolding or relative folding of the first housing and the second housing, the first synchronous swing arm and the second synchronous swing arm can control the first fixing frame and the second fixing frame
- the rotation angle of the frame relative to the main shaft is the same, so that the rotation actions of the first shell and the second shell have synchronization and consistency, and the folding action and unfolding action of the folding device have better symmetry, which is beneficial to improve the user experience.
- the first synchronous swing arm is rotatably connected to the main shaft and slidably connected to the first fixed frame, that is, a link-slider structure is formed.
- the second synchronous swing arm is rotatably connected to the main shaft and slidably connected to the second fixed frame, that is, a link-slider structure is formed.
- the two intermeshing link-slider structures can well control the synchronization and consistency of the rotational actions of the first housing and the second housing.
- the first synchronous swing arm, the first gear, and the second gear mesh with the rotating end of the second synchronous swing arm in sequence
- the synchronizing assembly formed by the gear and the second gear has a simple structure, easy control of the movement process and high accuracy.
- the folding device further includes a first conjoined cam, a second conjoined cam, a fourth elastic member, a snap ring, a snap spring and a plurality of connecting shafts.
- the snap ring, the fourth elastic piece, the first conjoined cam, the synchronizing component, the second conjoined cam and the snap spring are sequentially sleeved on the plurality of connecting shafts.
- the first conjoined cam is provided with a first concave surface and a first convex surface
- the side of the synchronization assembly facing the first conjoined cam is provided with a second concave surface and a second convex surface.
- a second concave surface and a second convex surface are provided on the side of the synchronizing assembly facing the first conjoined cam, at least including: a first synchronizing swing arm, or a second synchronizing swing arm, or a first gear, or a second gear facing the first
- One side of the integrated cam is provided with a second concave surface and a second convex surface.
- the deformation amount of the fourth elastic member is the first deformation amount.
- the first convex surface is matched with the second concave surface, and the deformation amount of the fourth elastic member is the second deformation amount.
- the first deformation amount is greater than the second deformation amount.
- a torque that hinders the relative rotation of the first casing and the second casing can be provided by the cooperation between the several convex surfaces and the concave surfaces, thereby improving the hand feeling during the folding process of the electronic device.
- the folding device further includes a third fixing frame, a fourth fixing frame, a third transmission arm and a fourth transmission arm.
- the third fixing frame is fixed to the first casing
- the fourth fixing frame is fixed to the second casing.
- the third transmission arm includes a sliding end and a rotating end, the sliding end of the third transmission arm is slidably connected to the third fixing frame, and the rotating end of the third transmission arm rotates to connect the shaft.
- the fourth transmission arm includes a sliding end and a rotating end, the sliding end of the fourth transmission arm is slidably connected to the fourth fixing frame, and the rotating end of the fourth transmission arm rotates to connect the shaft.
- the folding device is easier to fold and unfold.
- the rotation axis of the relative rotation of the third transmission arm and the shaft and the rotation axis of the relative rotation of the second transmission arm and the shaft are collinear.
- the rotation axis of the fourth transmission arm and the relative rotation of the shaft is collinear with the rotation axis of the relative rotation of the first transmission arm and the shaft.
- the third transmission arm is slidably connected to the third fixed frame, and the fourth transmission arm and the first transmission arm rotate relative to the main shaft.
- the axes are collinear, the fourth transmission arm is slidably connected to the fourth fixed frame, so the movement of the third transmission arm can be synchronized with the movement of the second transmission arm, and the movement of the fourth transmission arm can be synchronized with the movement of the first transmission arm, so it can be
- the structural design and connection relationship of the rotating mechanism are simplified, and the reliability of the rotating structure is improved.
- the rotating mechanism further includes a first support plate and a second support plate, the first support plate is fixedly connected to the sliding end of the second transmission arm, and the second support plate is fixedly connected to the sliding end of the first transmission arm.
- first support plate is flush with the second support plate, the first support plate is erected between the first fixing frame and the main shaft, and the second support plate is erected on the shaft. between the second fixed frame and the main shaft.
- first casing and the second casing are relatively folded to a closed state, the first support plate is stacked on the side of the first fixing frame away from the second fixing frame, and the second supporting plate is stacked on the second fixing frame away from the first fixing frame side.
- the first support plate, the main shaft and the second support plate can jointly form a complete plane support for the bending portion of the flexible display screen .
- the first supporting plate and the second supporting plate can be slid and retracted relative to the first casing and the second casing, respectively, so that the main shaft is exposed to form a pair of flexible display screens. complete support of the bend.
- the rotating mechanism can fully support the bending portion of the flexible display screen, so that the flexible display screen is not easily damaged due to external force touch, which is beneficial to protect the flexible display screen and is also conducive to Improve user experience.
- the main shaft has a supporting surface, and when the first casing and the second casing are folded to the closed state, the supporting surface of the main shaft is exposed relative to the first supporting plate and the second supporting plate, and the supporting surface of the main shaft is in the shape of a arc.
- the main shaft can provide a complete semicircle or nearly semicircle support effect for the bending part of the flexible display screen, which is compatible with the bending part of the flexible display screen.
- the ideal closed shape of the external part is consistent, so as to provide more optimal support for the flexible display screen in the closed shape.
- the rotating mechanism further includes a first shielding plate and a second shielding plate, the first shielding plate is fixedly connected to the sliding end of the first transmission arm, and the second shielding plate is fixedly connected to the sliding end of the second transmission arm.
- the first shielding plate is located on the side of the first transmission arm facing away from the first supporting plate
- the second shielding plate is located on the side of the second transmission arm facing away from the second supporting plate.
- the first shielding plate When the first casing and the second casing are relatively unfolded to a flat state, the first shielding plate is flush with the second shielding plate, the first shielding plate is erected between the first fixing frame and the main shaft, and the second shielding plate is erected on the shaft. between the second fixed frame and the main shaft.
- the first shielding plate When the first casing and the second casing are relatively folded to a closed state, the first shielding plate is located between the first fixing frame and the first casing, and the second shielding plate is located between the second fixing frame and the second casing.
- the folding device can achieve self-shielding, It is beneficial to improve the integrity of the appearance, and can also reduce the risk of external dust, sundries, etc. entering the rotating mechanism, so as to ensure the reliability of the folding device.
- the first shielding plate When the first casing and the second casing are relatively folded to a closed state, the first shielding plate can be folded between the first fixing frame and the first casing, and the second shielding plate can be folded into the second fixing frame and the second casing Between the bodies, avoidance is realized, so that the folding device can be smoothly folded to a closed state, and the mechanism has high reliability.
- first supporting plate and the first shielding plate are fixed to the sliding end of the first transmission arm, the first supporting plate and the first shielding plate move following the sliding end of the first transmission arm, and the second supporting plate and the second shielding plate move along with the sliding end of the first transmission arm.
- the second support plate and the second shielding plate follow the movement of the sliding end of the second transmission arm, so in the process of converting the folding device from the closed state to the flattened state, and from the flattened state
- the first support plate and the second support plate are gradually approached to or away from the main axis, so that the folding device can completely support the flexible display screen in various forms, improving the flexibility of the flexible display screen and electronic components.
- Equipment reliability and service life are provided.
- the first shielding plate and the second shielding plate are gradually approached to or away from the main axis, so that the folding device
- self-shielding can be performed according to the form of the rotating mechanism, and the mechanism has high reliability.
- the first supporting plate, the first shielding plate and the second transmission arm are assembled into one component, and the second supporting plate, the second shielding plate and the first transmission arm are assembled into one component, so the second transmission arm can directly control the first supporting plate and the movement trajectory of the first shielding plate, the first transmission arm can directly control the movement trajectory of the second supporting plate and the second shielding plate, so that the first supporting plate, the second supporting plate, the first shielding plate and the second shielding plate
- the movement process has high control precision and small hysteresis, so that the folding device can be stretched and retracted accurately during the rotation process of the folding device, so as to meet the support requirements of the flexible display screen and the self-shielding requirements of the rotating mechanism.
- the main axis has a shielding surface.
- the shielding surface of the main shaft is exposed relative to the first shielding plate and the second shielding plate, so the rotating mechanism can pass through the first shielding plate, the main shaft in the flattening state.
- the gap between the first casing and the second casing is shielded together with the second shielding plate, thereby realizing self-shielding.
- the main shaft further includes a shielding plate, and the shielding plate is fixed on the side of the main inner shaft facing away from the main outer shaft.
- the shielding surface of the main shaft is formed on the shielding plate and is arranged away from the main outer shaft.
- the shielding plate can be fixed to each other with the main inner shaft in an assembled manner.
- the shielding plate and the main inner shaft may also be integrally formed structural members.
- the present application provides an electronic device, including a flexible display screen and any one of the above-mentioned folding devices, the flexible display screen includes a first non-bending part, a bending part and a second non-bending part arranged in sequence , the first non-bending part is fixed to the first casing, and the second non-bending part is fixed to the second casing.
- the bending part occurs. deformation.
- the present application provides an electronic device, including a flexible display screen, a first casing, a second casing, a first elastic component, and a shaft.
- the flexible display screen includes a first non-bending part, a bending part and a second non-bending part arranged in sequence.
- the first casing and the second casing are respectively located on both sides of the shaft.
- the first casing is fixedly connected to the first non-bending part of the flexible display screen, and the second casing is fixedly connected to the second non-bending part of the flexible display screen.
- the first elastic component is located between the shaft and the first housing, the first elastic component and the shaft are rotatably connected through the first rotating shaft, the first elastic component is in contact with the first structural member of the shaft, and the first elastic component and the first housing are Fixed connection.
- the first elastic component abuts against the first part of the first structural member, the distance between the axis of the first rotating shaft and the first part is the first distance, and the projection of the first distance on the first plane
- the length is the first projected length, wherein the first plane is the plane where the surface of the first casing and the first non-bending part is fixedly connected.
- the first casing rotates relative to the shaft
- the second casing rotates relative to the shaft
- the electronic device changes from a flat state to a folded state.
- the first elastic component abuts against the second part of the first structure member
- the distance between the axis of the first rotating shaft and the second part is the second distance
- the projected length of the second distance on the first plane is the second projected length
- the second projected length is smaller than the first projected length.
- the first and second are different.
- the amount of compression of the first elastic component in the first direction is the first amount of compression, wherein the first direction is perpendicular to the longitudinal extension direction of the shaft, and the first direction parallel to the first shell.
- the compression amount of the first elastic component in the first direction is the second compression amount, and the second compression amount is smaller than the first compression amount.
- the present application provides a folding device.
- the folding device can be applied to an electronic device, and the folding device is used to carry a flexible display screen of the electronic device.
- the flexible display screen includes a first non-bending part, a bending part and a second non-bending part arranged in sequence.
- the folding device includes a first casing, a second casing, a first elastic component and a shaft. The first casing and the second casing are respectively located on both sides of the shaft.
- the first casing is fixedly connected to the first non-bending part of the flexible display screen, and the second casing is fixedly connected to the second non-bending part of the flexible display screen.
- the first elastic component is located between the shaft and the first housing, the first elastic component and the shaft are rotatably connected through the first rotating shaft, the first elastic component is in contact with the first structural member of the shaft, and the first elastic component and the first housing are Fixed connection.
- the first elastic component abuts against the first part of the first structural member, the distance between the axis of the first rotating shaft and the first part is the first distance, and the projection of the first distance on the first plane
- the length is the first projected length, wherein the first plane is the plane where the surface of the first casing and the first non-bending part is fixedly connected.
- the first casing rotates relative to the shaft
- the second casing rotates relative to the shaft
- the electronic device changes from a flat state to a folded state.
- the first elastic component abuts against the second part of the first structure member
- the distance between the axis of the first rotating shaft and the second part is the second distance
- the projected length of the second distance on the first plane is the second projected length
- the second projected length is smaller than the first projected length.
- the first and second are different.
- the amount of compression of the first elastic component in the first direction is the first amount of compression, wherein the first direction is perpendicular to the longitudinal extension direction of the shaft, and the first direction parallel to the first shell.
- the compression amount of the first elastic component in the first direction is the second compression amount, and the second compression amount is smaller than the first compression amount.
- the flexible display screen can be unfolded or folded with the folding device.
- the flexible display screen When the electronic device is in a flattened state, the flexible display screen is in a flattened state and can be displayed in a full screen, so that the electronic device has a larger display area, so as to improve the viewing experience of the user.
- the electronic device When the electronic device is in a closed state, the plane size of the electronic device is small, which is convenient for users to carry and store.
- the electronic device adopts the structural design of the first elastic component and the second elastic component, so that when the electronic device is unfolded from the folded state to the flat state, the flexible display screen is subjected to a force away from the main axis direction, thereby accelerating the recovery of the fold of the flexible display screen and improving the performance of the flexible display screen.
- the flatness of the flexible display is improved, thereby improving the user experience.
- FIG. 1 is a schematic structural diagram of an electronic device provided in an embodiment of the present application when it is in a flattened state
- FIG. 2 is a schematic structural diagram of the folding device of the electronic device shown in FIG. 1;
- FIG. 3 is a schematic structural diagram of the electronic device shown in FIG. 1 when it is in an intermediate state
- FIG. 4 is a schematic structural diagram of the folding device of the electronic device shown in FIG. 3;
- FIG. 5 is a schematic structural diagram of the electronic device shown in FIG. 1 when it is in a closed state
- FIG. 6 is a schematic structural diagram of the folding device of the electronic device shown in FIG. 5;
- Fig. 7 is the partial exploded structure schematic diagram of the folding device shown in Fig. 2;
- FIG. 8 is a schematic structural diagram of the first housing shown in FIG. 7;
- FIG. 9 is a schematic structural diagram of the second housing shown in FIG. 7;
- Figure 10 is a schematic diagram of a partially exploded structure of the rotating mechanism shown in Figure 7;
- FIG. 11 is a partially exploded structural schematic view of a part of the structure of the folding device shown in FIG. 2;
- FIG. 12 is a schematic structural diagram of the first end connecting assembly shown in FIG. 11;
- Fig. 13 is a partial exploded schematic view of the first end connecting assembly shown in Fig. 12;
- Fig. 14 is a partial exploded schematic view of another angle of the first end connecting assembly shown in Fig. 12;
- Figure 15 is a schematic exploded view of the partial structure shown in Figures 12 to 14;
- FIG. 16 is a schematic cross-sectional structure diagram of the flattened state of the folding device shown in FIG. 2 along the line A1-A1 shown in FIG. 12;
- Fig. 17 is a schematic cross-sectional view of the closed state of the folding device shown in Fig. 2 along the line A1-A1 shown in Fig. 12;
- Figure 18 is a schematic diagram of the comparison of the spring lengths of the electronic device in a flattened state and a folded state
- 19 is a schematic diagram of a closed state of an existing flexible display screen
- FIG. 20 is a schematic diagram of a flattened state of an existing flexible display screen
- Fig. 21 is a schematic state diagram of the flattening of the flexible display screen shown in this solution.
- FIG. 22 is a schematic cross-sectional structure diagram of the structure shown in FIG. 12 along the line A2-A2;
- Figure 23a is a schematic diagram of the mating relationship between the rotating shaft and the connecting hole in the early use of the flexible screen and after a period of use;
- Figure 23b is a schematic diagram showing the comparison of the spring lengths of the electronic device in a flat state and a folded state after the flexible display screen is aged;
- 24 is a schematic structural diagram of a flexible display screen support plate
- Figure 25 is a schematic structural diagram of the middle connecting assembly shown in Figure 11;
- Fig. 26 is the exploded structure schematic diagram of the middle connecting assembly shown in Fig. 25;
- Fig. 27 is a partial structural schematic diagram of the rotating mechanism shown in Fig. 7;
- Figure 28 is a schematic exploded view of the structure shown in Figure 27;
- Figure 29 is a schematic structural diagram of the main inner shaft shown in Figure 11;
- Figure 30 is a schematic structural diagram of the main outer shaft shown in Figure 11 at another angle;
- Figure 31 is a schematic diagram of the fitting relationship between the partial structure shown in Figure 14 and the main shaft;
- Figure 32 is a schematic diagram of the fitting relationship between the partial structure shown in Figure 31 and the main shaft;
- Fig. 33 is a partial structural schematic diagram of the folding device shown in Fig. 2 when it is in a flattened state;
- Fig. 34 is a schematic cross-sectional structure diagram of the flattened state of the folding device shown in Fig. 2 along the line A1-A1 shown in Fig. 12;
- 35 is a schematic cross-sectional structure diagram of the flattened state of the structure shown in FIG. 32 along the line A3-A3 shown in FIG. 12;
- Fig. 36 is a partial structural schematic diagram of the folding device shown in Fig. 2 when it is in an intermediate state;
- Fig. 37 is a schematic cross-sectional structure diagram of the intermediate state of the folding device shown in Fig. 2 along the line A1-A1 shown in Fig. 12;
- FIG. 38 is a schematic cross-sectional structure diagram of the intermediate state of the structure shown in FIG. 31 along the line A3-A3 shown in FIG. 12;
- Fig. 39 is a partial structural schematic diagram of the folding device shown in Fig. 2 when it is in a closed state;
- Fig. 40 is a schematic cross-sectional structure diagram of the closed state of the folding device shown in Fig. 2 along the line A1-A1 shown in Fig. 12;
- Fig. 41 is a schematic cross-sectional structure diagram of the folding device shown in Fig. 2 in a flattened state along the line B-B shown in Fig. 12;
- Fig. 42 is a schematic cross-sectional structure diagram of the intermediate state of the folding device shown in Fig. 2 along the line B-B shown in Fig. 12;
- Fig. 43 is a schematic cross-sectional structure diagram of the closed state of the folding device shown in Fig. 2 along the line B-B shown in Fig. 12;
- Fig. 44 is a schematic exploded structural view of the first limiting member shown in Figs. 12 to 14;
- Figure 45 is a schematic diagram of the force during the folding process of the electronic device.
- Figure 46 is a schematic diagram of the cooperation relationship between the synchronous damping member and the main shaft shown in Figure 14;
- Fig. 47 is a schematic cross-sectional structure diagram of the flattened state of the folding device shown in Fig. 2 along the C-C section line shown in Fig. 12;
- Fig. 48 is a schematic cross-sectional structure diagram of the intermediate state of the folding device shown in Fig. 2 along the line C-C shown in Fig. 12;
- Fig. 49 is a schematic cross-sectional structure diagram of the closed state of the folding device shown in Fig. 2 along the C-C section line shown in Fig. 12;
- Fig. 50 is a schematic diagram of an exploded structure of the synchronous damper shown in Figs. 12 to 14;
- Figure 51 is a schematic structural diagram of the first conjoined cam shown in Figure 50;
- Figure 52 is a schematic structural diagram of the first gear shown in Figure 50;
- Figure 53 is a schematic diagram of the mating relationship between the first conjoined cam and the first gear when the first housing and the second housing are relatively unfolded to a flat state;
- Figure 54 is a schematic diagram of the mating relationship between the first conjoined cam and the first gear when the first housing and the second housing start to rotate relative to each other;
- FIG. 55 is a partial structural schematic diagram of the synchronous damping member shown in FIG. 50 .
- first”, second, etc. are only used for descriptive purposes, and should not be construed as indicating or implying relative importance or implying the number of indicated technical features. Thus, a feature defined as “first”, “second”, etc., may expressly or implicitly include one or more of that feature.
- orientation terms such as “center”, “front”, “rear”, “inner”, “outer” are defined relative to the orientation or position where the components in the drawings are schematically placed, and it should be understood that, These directional terms are relative concepts, and they are used for relative description and clarification, rather than indicating or implying a particular orientation that the referred device or component must have, or be constructed and operated in a particular orientation, which may be Changes in the orientation of the components in the drawings will correspondingly change, and therefore should not be construed as a limitation on the present application.
- Embodiments of the present application provide a folding device and an electronic device.
- the electronic device includes a folding device and a flexible display screen fixed to the folding device.
- the folding device can be unfolded to a flattened state (also called an unfolded state), can also be folded to a closed state (also called a folded state), or can be in an intermediate state between the flattened state and the closed state.
- the flexible display unfolds and folds with the folding device.
- the flexible display is a multi-layer structure, and each layer will deform to varying degrees when bending. When the electronic device is unfolded from the closed state to the flat state, the deformation of the flexible display requires recovery time, which will cause the flexible display.
- the folding device and the electronic device provided by the embodiments of the present application can improve the crease of the flexible display screen, improve the flatness of the flexible display screen, and improve the user experience.
- FIG. 1 is a schematic structural diagram of an electronic device 1000 provided in an embodiment of the present application when it is in a flattened state
- FIG. 2 is a schematic diagram of the folding device 100 of the electronic device 1000 shown in FIG. 1 in a flattened state
- Figure 3 is a schematic structural diagram of the electronic device 1000 shown in Figure 1 when it is in an intermediate state
- Figure 4 is a schematic structural diagram of the electronic device 1000 shown in Figure 3 when the folding device 100 is in an intermediate state
- Figure 5 is a schematic diagram of the structure.
- 1 is a schematic structural diagram of the electronic device 1000 in a closed state
- FIG. 6 is a structural schematic diagram of the electronic device 1000 shown in FIG. 5 when the folding device 100 is in a closed state.
- the electronic device 1000 may be a mobile phone, a tablet computer, a notebook computer, or other products. This embodiment is described by taking the electronic device 1000 as a mobile phone as an example.
- the electronic device 1000 includes a folding device 100 and a flexible display screen 200 .
- the folding device 100 includes a first casing 10 , a rotating mechanism 20 and a second casing 30 which are connected in sequence.
- the first casing 10 may include a middle frame and a rear cover
- the second casing 30 may include a middle frame and a rear cover.
- the rotating mechanism 20 can be deformed, so that the first casing 10 and the second casing 30 can rotate around the rotating mechanism 20, so that the electronic device 1000 is in a flat state, an intermediate state or a closed state.
- the first casing 10 and the second casing 30 can be relatively unfolded to a flat state, so that the electronic device 1000 is in a flat state.
- the angle ⁇ between the two may be approximately 180° (a slight deviation is also allowed, such as 165°, 177° or 185°).
- the first casing 10 and the second casing 30 can be relatively rotated (expanded or folded) to an intermediate state, so that the electronic device 1000 is in the intermediate state.
- the first casing 10 and the second casing 30 can be folded to a closed state relative to each other, so that the electronic device 1000 is in a closed state.
- the two when the first casing 10 and the second casing 30 are in a closed state, the two can be substantially completely closed to be parallel to each other (a slight deviation is also allowed).
- the intermediate state shown in FIG. 3 and FIG. 4 may be any state between the flattened state and the closed state. Therefore, the electronic device 1000 can be switched between the flattened state and the closed state through the deformation of the rotating mechanism 20 .
- the flexible display screen 200 is fixed to the folding device 100 so as to be unfolded or folded with the folding device 100 .
- the flexible display screen 200 may be adhered to the folding device 100 through an adhesive layer.
- the flexible display screen 200 includes a first non-bending part 2001, a bending part 2002 and a second non-bending part 2003 which are arranged in sequence.
- the first non-bending portion 2001 of the flexible display screen 200 is fixed to the first casing 10
- the second non-bending portion 2003 is fixed to the second casing 30 .
- the bending portion 2002 is deformed. As shown in FIG.
- the flexible display screen 200 when the first casing 10 and the second casing 30 are in a flattened state, the flexible display screen 200 is in a flattened state and can display a full screen, so that the electronic device 1000 has a larger display area, so as to improve the User's viewing experience; as shown in FIG. 3 , when the first housing 10 and the second housing 30 are in an intermediate state, the flexible display screen 200 is in an intermediate state between the flattened state and the closed state; as shown in FIG. 5 , When the first casing 10 and the second casing 30 are in a closed state, the flexible display screen 200 is in a closed state.
- the flexible display screen 200 when the electronic device 1000 is in a closed state, the flexible display screen 200 is located outside the folding device 100, and the flexible display screen 200 may be roughly U-shaped.
- the plane size of the electronic device 1000 is small, which is convenient for the user to carry and store.
- FIG. 1 , FIG. 3 and FIG. 5 are schematic diagrams showing the deformation of the rotating mechanism 20 in the process of the electronic device 100 being relatively folded from the flattened state to the closed state.
- the length of the bending portion 2002 of the flexible display screen 200 is the first length L1
- the length of the rotating mechanism 20 is the second length L2
- the first length L1 is equal to the first length L1.
- the length of the bending portion 2002 of the flexible display screen 200 is still the first length L1
- the rotation mechanism 20 is deformed, and the length becomes the third length L3, which is the third length.
- the flexible display screen 200 can maintain a constant length, thereby reducing the risk of pulling or squeezing the flexible display screen, improving the reliability of the flexible display screen, so that Flexible displays and electronic devices have a long service life.
- the flexible display screen 200 is used to display images.
- the flexible display screen 200 may be an organic light emitting diode (Organic Light-Emitting Diode, OLED) display screen, an active matrix organic light emitting diode or an active matrix organic light emitting diode (Active-Matrix Organic Light-Emitting Diode).
- OLED Organic Light-Emitting Diode
- AMOLED AMOLED
- Mini Organic Light-Emitting Diode display Mini Organic Light-Emitting Diode display
- Micro Organic Light-Emitting Diode display Micro Organic Light-Emitting Diode display
- Quantum Point light-emitting diode Quantum Dot Light Emitting Diodes, QLED
- the flexible display screen 200 is a multi-layer structure, for example, including: a first electrode layer, a thin dielectric layer, and a second electrode layer, and the layers are bonded together by, for example, Optical Clear Adhesive (OCA), wherein the OCA optical adhesive has elasticity.
- OCA Optical Clear Adhesive
- the crease mentioned in the embodiments of the present application refers to the trace that remains on the flexible display screen after the flexible display screen is bent and unfolded, and the bending trace does not disappear and remains on the flexible display screen, and the area where the crease is located is the flexible display screen. bending area.
- the electronic device 1000 may further include multiple modules (not shown in the figure), and the multiple modules may be accommodated inside the folding device 100 .
- the multiple modules of the electronic device 1000 may include, but are not limited to, a motherboard, a processor, a memory, a battery, a camera module, an earpiece module, a speaker module, a microphone module, an antenna module, a sensor module, etc. The example does not specifically limit the number, type, location, etc. of the modules of the electronic device 1000 .
- the location of the earpiece module of the electronic device 1000 can be defined as the upper side of the electronic device 1000, and the location of the microphone module of the electronic device 1000 can be defined as the lower side of the electronic device 1000.
- the two sides of the 1000 held by the left and right hands of the user may be defined as the left and right sides of the electronic device 1000 .
- the electronic device 1000 can be folded left and right. In some other embodiments, the electronic device 1000 can be folded up and down.
- FIG. 7 is a schematic diagram of a partially exploded structure of the folding device 100 shown in FIG. 2
- FIG. 8 is a schematic diagram of the structure of the first casing 10 shown in FIG. 7
- FIG. 9 is a schematic diagram of the structure of the second casing 30 shown in FIG. 7
- FIG. 10 It is a schematic diagram of a partially exploded structure of the rotating mechanism 20 shown in FIG. 7 .
- the rotating mechanism 20 of the folding device 100 includes a main shaft 1, a first end connecting component 20a, a second end connecting component 20a', a middle connecting component 20b, a first supporting plate 21, The second supporting plate 22 , the first shielding plate 23 and the second shielding plate 24 .
- the main shaft 1 is located between the first casing 10 and the second casing 30 .
- the first end connecting assembly 20a and the second end connecting assembly 20a' are connected to the first casing 10 , the main shaft 1 and the second casing 30 .
- the first end connecting assembly 20a and the second end connecting assembly 20a' are arranged at intervals in the axial direction of the main shaft 1.
- the ends for example, may be attached to the top and bottom of the main shaft 1 , or to the upper and lower ends of the main shaft 1 , respectively.
- the middle connecting component 20b is connected to the first casing 10 , the main shaft 1 and the second casing 30 .
- the middle connection assembly 20b may be located between the first end connection assembly 20a and the second end connection assembly 20a'.
- the first support plate 21 and the second support plate 22 are located on one side of a plurality of connecting assemblies (ie, the first end connecting assembly 20a, the second end connecting assembly 20a' and the middle connecting assembly 20b),
- the first shielding plate 23 and the second shielding plate 24 are located on the other side of the plurality of connecting assemblies (20a, 20a', 20b).
- the first support plate 21 is located on the side of the main shaft 1 close to the first housing 10 , and the first support plate 21 connects the first end connecting assembly 20 a and the second end Connection assembly 20a'. In some embodiments, the first support plate 21 may also be connected to the middle connecting component 20b.
- the second support plate 22 is located on the side of the main shaft 1 close to the second housing 30, and the second support plate 22 connects the first end connecting assembly 20a and the second end connecting assembly 20a'. In some embodiments, the second support plate 22 can also be connected to the middle connecting component 20b.
- the first shielding plate 23 is located on the side of the main shaft 1 close to the first housing 10 , and the first shielding plate 23 is connected to the first end connecting assembly 20 a and the second end Connection assembly 20a'. In some embodiments, the first shielding plate 23 may also be connected to the middle connecting component 20b.
- the second shielding plate 24 is located on the side of the main shaft 1 close to the second housing 30, and the second shielding plate 24 is connected to the first end connecting assembly 20a and the second end connecting assembly 20a'. In some embodiments, the second shielding plate 24 may also be connected to the middle connecting component 20b.
- the first housing 10 has a first support surface 101 , and the first support surface 101 is used to support the first non-bending portion 2001 of the flexible display screen 200 .
- the second casing 30 has a second supporting surface 301 , and the second supporting surface 301 is used to support the second non-bending portion 2003 of the flexible display screen 200 .
- the first supporting surface 101 is flush with the second supporting surface 301 to better support the flexible display screen 200 and make the flexible display screen 200 more compact. It is flat, which is beneficial to improve the user experience.
- the side of the first housing 10 of the folding device 100 close to the rotating mechanism 20 has a first positioning plate 102 , and the first positioning plate 102 has a plurality of fastening holes 1021 .
- the fasteners fix the first housing 10 and the rotating mechanism 20 .
- the fasteners in the folding device 100 are not shown in the drawings of the present application, in order to simplify the drawings and illustrate the main structure of the folding device 100 more clearly.
- the first housing 10 has a first support surface 101 , and the first positioning plate 102 sinks relative to the first support surface 101 to form a first accommodating groove 103 .
- the first accommodating groove 103 can provide accommodation and movement space for the first supporting plate 21 , and the position of the first accommodating groove 103 is set so that the supporting surface of the first supporting plate 21 installed in the first accommodating groove 103 can align with the first housing 10 .
- the first support surface 101 is flush with the first support plate 21 , so that the first support plate 21 can better support the flexible display screen 200 .
- the depth of the first accommodating groove 103 is very shallow, and the non-display side of the flexible display screen 200 is provided with a supporting plate with high hardness. Therefore, when the first supporting plate 21 partially extends out of the first accommodating groove 103 The part of the flexible display screen 200 facing the first accommodating groove 103 will not be significantly deformed under the user's pressure, which is also beneficial to ensure the reliability of the flexible display screen 200 .
- the first positioning plate 102 may include a plurality of structures arranged at intervals, or may be a continuous structure, which is not strictly limited in this application.
- the side of the second housing 30 close to the rotating mechanism 20 has a second positioning plate 302 , and the second positioning plate 302 has a plurality of fastening holes 3021 , and the first Two casings 30 and a rotating mechanism 20 .
- the second housing 30 has a second supporting surface 301 , and the second positioning plate 302 sinks relative to the second supporting surface 301 to form a second accommodating groove 303 .
- the second accommodating groove 303 can provide accommodation and movement space for the second supporting plate 22 , and the position of the second accommodating groove 303 is set so that the supporting surface of the second supporting plate 22 installed in the second accommodating groove 303 can be connected with the second casing 30 .
- the second supporting surface 301 is flush, so that the second supporting plate 22 can better support the flexible display screen 200 .
- the depth of the second accommodating groove 303 is very shallow, and the non-display side of the flexible display screen 200 is provided with a supporting plate with high hardness. Therefore, when the second supporting plate 22 partially extends out of the second accommodating groove 303 The part of the flexible display screen 200 facing the second accommodating groove 303 will not be significantly deformed under the user's pressure, which is also beneficial to ensure the reliability of the flexible display screen 200 .
- the second positioning plate 302 may include a plurality of structures arranged at intervals, or may be a continuous structure, which is not strictly limited in this application.
- the spindle 1 has a support surface 11 .
- the support surface 11 of the spindle 1 is at least partially exposed relative to the first support plate 21 and the second support plate 22 .
- the first support plate 21 , the main shaft 1 and the second support plate 22 can jointly support the bending portion 2002 of the flexible display screen 200 , so that the flexible display screen 200 is flatter and less likely to be damaged by external force touch, so as to improve the flexible display screen 200 reliability.
- the supporting surface 11 of the main shaft 1 is partially exposed relative to the first supporting plate 21 and the second supporting plate 22 , and the supporting surface 11 of the main shaft 1 is partially exposed.
- the exposed area of the surface 11 is larger than that of the flattened state.
- the supporting surface 11 of the spindle 1 and the first supporting plate 21 and the second supporting plate 22 jointly support the bending portion 2002 of the flexible display screen 200 .
- FIGS. 5 and 6 when the first casing 10 and the second casing 30 are folded to the closed state, the supporting surface 11 of the main shaft 1 is basically completely exposed relative to the first supporting plate 21 and the second supporting plate 22 , and the main shaft is completely exposed.
- the support surface 11 of 1 supports the bending portion 2002 of the flexible display screen 200 .
- the support surface 11 of the main shaft 1 is arc-shaped.
- the supporting surface 11 of the main shaft 1 can provide a complete semicircle or nearly semicircle supporting effect for the bending part 2002 of the flexible display screen 200 , and
- the ideal closed shape of the bending portion 2002 of the flexible display screen 200 is kept consistent, so as to provide more optimal support for the flexible display screen 200 in the closed shape.
- the support surface 11 of the main shaft 1 may be in an arc shape or an approximate arc shape.
- the support surface 11 of the main shaft 1 is arc-shaped, and its central angle may be in the range of 150° to 180°, so as to better support the flexible display screen 200 .
- the middle area of the support surface 11 of the main shaft 1 is flat, and the two side areas are arc-shaped.
- the supporting surface 11 is approximately arc-shaped as a whole, and can support the flexible display screen 200 in a semicircle or an approximate semicircle in the closed state.
- the middle area of the support surface 11 can be in a flat state, and can jointly support the flexible display screen 200 with the first support plate 21 and the second support plate 22 .
- the support surface 11 of the main shaft 1 may also have other shapes.
- the supporting surface 11 of the main shaft 1 is set in a semi-elliptical shape, so as to reduce the width of the folding device 100 when it is in a closed state, thereby making it easier to carry and store.
- the shape of the support surface 11 of the main shaft 1 is not strictly limited in the implementation of the present application.
- FIG. 11 is a partially exploded structural schematic diagram of the partial structure of the folding device 100 shown in FIG. 2 .
- the main shaft 1 includes a main outer shaft 14 , a main inner shaft 15 and a shielding plate 16 .
- the main outer shaft 14 is fixed to one side of the main inner shaft 15
- the shielding plate 16 is fixed to the other side of the main inner shaft 15 .
- the support surface 11 of the main shaft 1 is formed on the main outer shaft 14 and is disposed away from the main inner shaft 15 .
- the shielding surface 12 of the main shaft 1 is formed on the shielding plate 16 and is disposed away from the main outer shaft 14 .
- the shielding plate 16 can be fixed to each other with the main inner shaft 15 in an assembled manner.
- the shielding plate 16 and the main inner shaft 15 may also be integrally formed structural members.
- the main outer shaft 14 and the main inner shaft 15 together form a plurality of movable spaces communicating with the outside of the main shaft 1, and a plurality of connecting components (20a, 20a', 20b) of the rotating mechanism 20 are movably installed in these movable spaces to connect the main shaft 1.
- the entire rotation axis of the rotating mechanism 20 is parallel to the axial direction of the main shaft 1, and the main shaft 1 extends in the axial direction thereof.
- the first end connecting assembly 20a and the second end connecting assembly 20a' are mirror-symmetrical structures. Since the two end connecting assemblies 20a and 20a' are arranged in mirror symmetry, during the rotation of the folding device 100, the two end connecting assemblies 20a and 20a' are connected to the main shaft 1, the first casing 10 and the second casing. The stress between the bodies 30 is relatively uniform, which is beneficial to improve the reliability of the folding device 100 . At this time, since the structures of the two end connecting assemblies 20a and 20a' are symmetrical, the overall structure of the rotating mechanism 20 is relatively simple and the processing cost is low. In some other embodiments, the two end connecting assemblies 20a, 20a' can also be the same or have a center-symmetric structure, and the structures of the two end connecting assemblies 20a, 20a' can also be different.
- the structure of the middle connecting assembly 20b is simpler than that of the end connecting assemblies 20a and 20a'.
- the rotating mechanism 20 may not be provided with the middle connecting component 20b.
- the rotating mechanism 20 can also adopt the structure of the end connecting assembly 20a/20a' shown in FIG. 11 for the connecting component located in the middle, and the middle connecting component 20b shown in FIG. 11 for the connecting component located at the end Structure.
- only one end connection assembly 20a/20a' may be provided in the embodiment of the present application, and the end connection assembly 20a/20a' connects the middle of the main shaft 1 with the first housing 10 and the second housing 30 the middle of. It can be understood that the structure of the rotating mechanism 20 may have various combinations and deformation modes, which are not strictly limited in the embodiments of the present application.
- FIG. 12 is a schematic structural diagram of the first end connecting assembly 20 a shown in FIG. 11
- FIG. 13 is a partially exploded structural schematic diagram of the first end connecting assembly 20 a shown in FIG. 12
- FIG. 14 is the first end connecting assembly shown in FIG. 12 .
- the first end connecting assembly 20 a of the rotating mechanism 20 may include a first fixing frame 31 , a second fixing frame 32 , a first rotating member, and a second rotating member.
- the first rotating member may include a first transmission arm 41 , a first rotating arm 51 and a first connecting member 61
- the second rotating member may include a second transmission arm 42 , a second rotating arm 52 and a second connecting member 62 .
- the first fixing frame 31 , the first rotating arm 51 , the first connecting piece 61 , the first transmission arm 41 are connected with the second fixing frame 32 in sequence, and the first fixing frame 31 , the second transmission arm 42 , the second connecting piece 62 , The second rotating arm 52 is sequentially connected with the second fixing frame 32 .
- the shaft may include a main shaft 1, a first rotating member and a second rotating member.
- the first transmission arm 41 includes a sliding end 411 and a rotating end 412 .
- the sliding end 411 of the first transmission arm 41 is slidably connected to the second fixing frame 32
- the rotating end 412 of the first transmission arm 41 is rotatably connected to the first end 611 of the first connecting member 61 .
- the first rotating arm 51 includes a claw-shaped first end 511 (second structural member) and a claw-shaped second end 512 .
- the first end 511 of the first rotating arm 51 is rotatably connected to the first fixing frame 31
- the second end 512 of the first rotating arm 51 is rotatably connected to the second end 612 of the first connecting member 61 .
- the second transmission arm 42 includes a sliding end 421 and a rotating end 422 .
- the sliding end 421 of the second transmission arm 42 is slidably connected to the first fixing frame 31
- the rotating end 422 of the second transmission arm 42 is rotatably connected to the first end 621 of the second connecting member 62 .
- the second rotating arm 52 includes a claw-shaped first end 521 and a claw-shaped second end 522.
- the first end 521 of the second rotating arm 52 is rotatably connected to the second fixing frame 32
- the second end 522 of the second rotating arm 52 is rotatably connected to the second end 622 of the second connecting member 62 .
- the first fixing frame 31 includes a first connecting block 311 .
- the first connecting block 311 may be in the shape of a claw, and the first connecting block 311 has a rotating hole 3111 .
- the first end 511 of the first rotating arm 51 that is, the second structural member has a rotating hole 5111 .
- the first end 511 of the first rotating arm 51 is alternately connected to the first connecting block 311 , and the rotating shaft 5112 connects the first rotating arm 51 to the first rotating arm 51 through the connecting hole 5111 of the first rotating arm 51 and the connecting hole 3111 of the first connecting block 311 .
- the end 511 is connected with the first connecting block 311 of the first fixing frame 31 , so as to realize the rotational connection between the first rotating arm 51 and the first fixing frame 31 .
- the rotating shaft in the embodiment of the present application may be a pin.
- the first connecting block 311 of the first fixing frame 31 and the first end 511 of the first rotating arm 51 may also have other structures, which can satisfy the rotational connection between the two.
- the embodiment of the present application This is not strictly limited.
- the second end 612 of the first connecting member 61 is claw-shaped, and the second end 512 of the first rotating arm 51 is connected to the second end 512 of the first connecting member 61 through the rotating shaft 6121 .
- the ends 612 are alternately connected, so as to realize the rotational connection between the first rotating arm 51 and the first connecting member 61 .
- the first end 611 of the first connecting member 61 is in the shape of a claw, and the end of the rotating end 412 of the first transmission arm 41 is in the shape of a claw.
- the ends of the rotating ends 412 are connected in a staggered manner, so as to realize the rotating connection between the first connecting member 61 and the first transmission arm 41 .
- the second end 512 of the first rotating arm 51 is staggeredly connected with the second end 612 of the first connecting piece 61 , and the first end 611 of the first connecting piece 61 is staggeredly connected with the end of the rotating end 412 of the first transmission arm 41 ,
- the upper positions of each other in the axial direction of the main shaft 1 can be realized, and the connection reliability of the rotating mechanism 20 can be improved.
- the second end 512 of the first rotating arm 51 and the second end 612 of the first connecting member 61 , the first end 611 of the first connecting member 61 and the rotating end 412 of the first transmission arm 41 may also have Other structures may satisfy the rotational connection relationship between the two, which is not strictly limited in this embodiment of the present application.
- the second fixing frame 32 includes a second connecting block 321 .
- the second connection block 321 may be in the shape of a claw, and the second connection block 321 has a rotation hole 3211 .
- the first end 521 of the second rotating arm 52 has a rotating hole 5211 .
- the first end 521 of the second rotating arm 52 is connected to the second connecting block 321 in a staggered manner, and the rotating shaft 5212 connects the first end 5211 of the second rotating arm 52 to the first
- the end 521 is connected with the second connecting block 3211 of the second fixing frame 32 , so as to realize the rotational connection between the second rotating arm 52 and the second fixing frame 32 .
- the rotating shaft in the embodiment of the present application may be a pin.
- the second connecting block 321 of the second fixing frame 32 and the first end 521 of the second rotating arm 52 may also have other structures, which can satisfy the rotational connection between the two.
- the embodiment of the present application This is not strictly limited.
- the second end 622 of the second connecting member 62 is claw-shaped, and the second end 522 of the second rotating arm 52 is connected to the second connecting member 62 through the rotating shaft 6221 .
- the ends 622 are alternately connected, so as to realize the rotational connection of the second rotating arm 52 and the second connecting member 62 .
- the first end 621 of the second connecting member 62 is claw-shaped, the end of the rotating end 422 of the second transmission arm 42 is claw-shaped, and the first end 621 of the second connecting member 62 is connected to the second transmission arm 42 through the rotating shaft 6211
- the ends of the rotating ends 422 are connected in a staggered manner, so as to realize the rotating connection between the second connecting member 62 and the second transmission arm 42 .
- the second end 522 of the second rotating arm 52 is staggeredly connected to the second end 622 of the second connecting member 62 , and the first end 621 of the second connecting member 62 is staggeredly connected to the end of the rotating end 422 of the second transmission arm 42 ,
- the upper positions of each other in the axial direction of the main shaft 1 can be realized, and the connection reliability of the rotating mechanism 20 can be improved.
- the second end 522 of the second rotating arm 52 and the second end 622 of the second connecting member 62 , the first end 621 of the second connecting member 62 and the rotating end 422 of the second transmission arm 42 may also have Other structures may satisfy the rotational connection relationship between the two, which is not strictly limited in this embodiment of the present application.
- the second fixing frame 32 has a first chute 322 , and a side wall of the first chute 322 may have a concave guide space 3221 .
- the sliding end 411 of the first transmission arm 41 includes a first flange 4111 on the peripheral side.
- the first flange 4111 is installed in the guide space 3221 of the first sliding slot 322 so that the sliding end 411 of the first transmission arm 41 is connected to the first flange 4111 .
- the sliding groove 322 is slidably connected, so as to realize the sliding connection between the first transmission arm 41 and the second fixing frame 32 .
- the sliding end 411 of the first transmission arm 41 can be guided to slide in the first sliding slot 322 through the cooperation between the guide space 3221 of the first sliding slot 322 and the first flange 4111 of the first transmission arm 41 . direction, so that the relative sliding action between the first transmission arm 41 and the second fixed frame 32 is easier to realize and the control precision is higher.
- the first fixing frame 31 has a second chute 312 , and a side wall of the second chute 312 may have a concave guide space 3121 .
- the sliding end 421 of the second transmission arm 42 includes a second flange 4211 on the peripheral side.
- the second flange 4211 is installed in the guide space 3121 of the second sliding slot 312 so that the sliding end 421 of the second transmission arm 42 is connected to the second flange 4211 .
- the sliding groove 312 is slidably connected, so as to realize the sliding connection between the second transmission arm 42 and the first fixing frame 31 .
- the sliding end 421 of the second transmission arm 42 can be guided to slide on the second sliding slot 312 through the cooperation between the guide space 3121 of the second sliding slot 312 and the second flange 4211 of the second transmission arm 42 . direction, so that the relative sliding action between the second transmission arm 42 and the first fixing frame 31 is easier to realize and the control precision is higher.
- the positions of the plurality of chutes on the first fixing frame 31 may be different from the positions of the plurality of chutes on the second fixing frame 32 , for example, as shown in FIG.
- the axial direction is staggered to improve the space utilization of the rotating mechanism 20 .
- the rotating mechanism 20 may further include a synchronous damping member 7 .
- the synchronous damper 7 includes a first synchronous swing arm 71 , a second synchronous swing arm 72 and a gear set 73 .
- the first synchronous swing arm 71 includes a sliding end 711 and a rotating end 712 .
- the rotating end 712 of the first synchronizing swing arm 71 is rotatably connected to the main shaft 1
- the sliding end 711 of the first synchronizing swing arm 71 is slidably connected to the first fixing frame 31 .
- the sliding end 711 of the first synchronous swing arm 71 slides relative to the first fixing frame 31 .
- the second synchronous swing arm 72 includes a sliding end 721 and a rotating end 722 .
- the rotating end 722 of the second synchronous swing arm 72 is rotatably connected to the main shaft 1, and the sliding end 721 of the second synchronous swing arm 72 is slidably connected to the second fixed frame 32.
- the sliding end 721 of the second synchronous swing arm 72 slides relative to the second fixing frame 32 .
- the first fixing frame 31 has a third chute 313 , and a side wall of the third chute 313 may have a concave guide space 3131 .
- the guiding direction of the guiding space 3131 of the third sliding groove 313 is the same as the guiding direction of the guiding space 3121 of the second sliding groove 312 .
- the sliding end 711 of the first synchronizing swing arm 71 includes a third flange 7111 on the peripheral side.
- the third flange 7111 is installed in the guide space 3131 of the third chute
- the third sliding groove 313 is slidably connected, so as to realize the sliding connection between the first synchronous swing arm 71 and the first fixing frame 31 .
- the sliding end 711 of the first synchronizing swing arm 71 can be guided to the third sliding groove 313 through the cooperation between the guide space 3131 of the third sliding groove 313 and the third flange 7111 of the first synchronizing swing arm 71 .
- the relative sliding action between the first synchronous swing arm 71 and the first fixed frame 31 is easier to realize and the control precision is higher.
- the second fixing frame 32 has a fourth chute 323 , and a side wall of the fourth chute 323 may have a concave guide space 3231 .
- the guiding direction of the guiding space 3231 of the fourth sliding groove 323 is the same as the guiding direction of the guiding space 3221 of the first sliding groove 322.
- the sliding end 721 of the second synchronizing swing arm 72 includes a fourth flange 7211 on the peripheral side.
- the fourth flange 7211 is installed in the guide space 3231 of the fourth sliding groove 323 so that the sliding end 721 of the second synchronizing swing arm 72 is connected to the The fourth sliding groove 323 is slidably connected, so as to realize the sliding connection between the second synchronous swing arm 72 and the second fixing frame 32 .
- the sliding end 721 of the second synchronizing swing arm 72 can be guided to the fourth sliding groove 323 through the cooperation between the guide space 3231 of the fourth sliding groove 323 and the fourth flange 7211 of the second synchronizing swing arm 72 .
- the relative sliding action between the second synchronous swing arm 72 and the second fixed frame 32 is easier to realize and the control precision is higher.
- the rotating end 712 of the first synchronizing swing arm 71 and the rotating end 722 of the second synchronizing swing arm 72 are meshed with each other through the gear set 73, the first synchronizing swing arm 71, the second synchronizing swing arm 72 and the The synchronizing assembly 70 composed of the gear set 73 has a simple structure, easy control of the movement process, and high accuracy.
- the structure of the second synchronous swing arm 72 may be substantially the same as that of the first synchronous swing arm 71 to simplify the material types of the rotating mechanism 20 and reduce the design difficulty and cost of the rotating mechanism 20 .
- the first fixing frame 31 may be an integrally formed structural member, including a first connecting block 311 , a second chute 312 and a third chute 313.
- the first fixing frame 31 may include a plurality of structural members, and the first connecting block 311 , the second sliding groove 312 and the third sliding groove 313 may be formed on different structural members, which is not discussed in this application. be strictly limited.
- the second fixing frame 32 may be an integrally formed structural member, including a second connecting block 321 , a first sliding groove 322 and a fourth sliding groove 323 .
- the second fixing frame 32 may include a plurality of structural members, and the second connecting block 321 , the first sliding groove 322 and the fourth sliding groove 323 may be formed on different structural members, which is not discussed in this application. be strictly limited.
- the first fixing frame 31 may have a plurality of fastening holes 314 .
- the plurality of fastening holes 314 of the first fixing frame 31 may The plurality of fastening holes 1021 are aligned, and the first fixing frame 31 and the first positioning plate 102 are fixed by the fasteners, thereby fixing the first fixing frame 31 to the first housing 10 .
- the fasteners include, but are not limited to, screws, bolts, rivets, pins, and the like.
- connection structures may also be formed between the first fixing frame 31 and the first housing 10 , which is not strictly limited in this application.
- the second fixing frame 32 may have a plurality of fastening holes 324 .
- the plurality of fastening holes 324 of the second fixing frame 32 may The plurality of fastening holes 3021 are aligned, and the second fixing frame 32 and the second positioning plate 302 are fixed by the fasteners, so as to fix the second fixing frame 32 to the second casing 30 .
- the fasteners include, but are not limited to, screws, bolts, rivets, pins, and the like.
- connection structures may also be formed between the second fixing frame 32 and the second housing 30 , which is not strictly limited in this application.
- the flexible display is a multi-layer structure.
- the layers are bonded, for example, by means of an OCA optical glue, wherein the OCA optical glue is elastic.
- the flexible display When the electronic device is bent, the flexible display will generate tension opposite to the bending direction. Due to the accumulation of tension in each layer, the flexible display will be deformed during the bending process, and the layers of the flexible display will be misaligned. Floor.
- the screen self-healing time is affected by physical characteristics, creases appear on the bending portion 2002 of the flexible display screen 200, thereby reducing the flatness of the flexible display screen and affecting the user experience.
- the flexible display screen 200 is folded repeatedly, the deformation of the screen is difficult to recover, and the problem of screen crease will become more serious.
- the recovery of the crease of the flexible display screen 200 is accelerated by the resisting force between the folded structural members, thereby improving the flattening effect of the screen.
- the rotating mechanism 20 may further include a first damping member 91 .
- the first damping member 91 is disposed on the first fixing frame 31 , and the first rotating arm 51 abuts against the first damping member 91 .
- the first elastic component may include a first damping member 91 and a first fixing frame 31 . In this embodiment of the present application, the recovery of the crease of the flexible display screen 200 is accelerated by the resisting force between the first rotating arm 51 and the first damping member 91 .
- FIG. 15 is an exploded schematic view of the partial structure shown in FIGS. 12 to 14 .
- the structure shown in FIG. 15 includes the first damping member 91 , part of the first fixing frame 31 and the first rotating arm 51 .
- the first rotating arm 51 is connected to the first connecting block 311 of the first fixing frame 31 through the rotating shaft 5112 .
- the first connecting block 311 is claw-shaped, the first end 511 of the first rotating arm 51 is also claw-shaped, and the claw-shaped first connecting block 311 and the claw-shaped first end 511 are alternately connected.
- the first end 511 of the first rotating arm 51 is provided with a connection hole 5111
- the first connection block 311 is provided with a connection hole 3111 .
- the rotating shaft 5112 passes through the connecting hole 5111 and the connecting hole 3111 , so that the first end 511 of the first rotating arm 51 and the first connecting block 311 are alternately connected, thereby realizing the connection between the first rotating arm 51 and the first connecting block 311 .
- the first damping member 91 may include a first bracket 911 and a first elastic member 912 .
- the first bracket 911 is a rigid structure, and is not easily deformed under the action of external force.
- the first elastic member 912 is an elastic structure, which is easily deformed under the action of external force.
- the first fixing frame 31 further has a first installation groove 319 , and the first damping member 91 is disposed in the first installation groove 319 .
- the middle part of the groove wall of the first installation groove 319 is recessed to form a guide space 3191 of the first installation groove 319 .
- the first bracket 911 of the first damping member 91 has a seventh flange 9112 .
- the seventh flange 9112 of the first bracket 911 cooperates with the guide space 3191 of the first installation slot 319 to realize the sliding connection between the first bracket 911 and the first installation slot 319 .
- the length of the guide space 3191 is greater than the length of the flange 9112 , so that the first bracket 911 can slide in the first installation groove 319 .
- the first end 911a of the first bracket 911 of the first damping member 91 includes a third connecting block 9113 (a first structural member), the third connecting block 9113 may be claw-shaped, and the third connecting block 9113 and The first connecting blocks 311 are alternately arranged, and the claw-shaped third connecting blocks 9113 abut against the claw-shaped first end 511 of the first rotating arm 51 .
- the second end 911b of the first bracket 911 elastically abuts against the first fixing frame 31 through the first elastic member 912 .
- the first damping member 91 is in contact with the first rotating arm 51 , and the first damping member 91 is in elastic contact with the first fixing frame 31 , so as to realize the abutment between the first rotating arm 51 and the first damping member 91
- the holding force is transmitted to the first fixing frame 31 through the first damping member 91 .
- the first fixing frame 31 is fixedly connected to the first casing 10
- the first casing 10 is fixedly connected to the first non-bending portion 2001 of the flexible display screen 200 .
- the resisting force between the first rotating arm 51 and the first damping member 91 can be transmitted to the flexible display screen
- the first non-bending portion 2001 of the flexible display screen 200 further accelerates the recovery of the crease of the flexible display screen 200, thereby improving the flattening effect of the screen.
- the second end 911b of the first bracket 911 may include a plurality of guide posts 9111 , and the plurality of guide posts 9111 are spaced apart from each other.
- the first elastic member 912 may include a plurality of springs 9121, and the plurality of springs 9121 are sleeved on the plurality of guide posts 9111 in a one-to-one correspondence.
- the first end 9121a of the spring 9121 is in abutment with the first bracket 911 , for example, the first end 9121a of the spring 9121 is in abutment with the third connecting block 9113 of the first bracket 911 .
- the second end 9121b of the spring 9121 is in abutment with the first fixing frame 31 , for example, the second end 9121b of the spring 9121 is in abutment with the stop block 310 .
- the stop block 310 is fixedly arranged on the first fixing frame 31 .
- the third connection block 9113, the spring 9121, and the stop block 310 are sequentially arranged along the first direction P1.
- the first direction P1 is parallel to the length direction of the first elastic member 912 and away from the main shaft 1.
- a gap is provided between the first bracket 911 and the stop block 310 to reserve space for the first bracket 911 to slide in the first installation groove 319 .
- the abutting force of the first end 511 of the first rotating arm 51 against the first bracket 911 can push the first bracket 911 to the guide space of the first installation groove 319 3191 slides along the first direction P1.
- the spring 9121 is compressed to generate elastic deformation, and the spring 9121 generates elastic force.
- the elastic force is transmitted to the first fixing frame 31 , and the first fixing frame 31 and the first housing 10 transmit the elastic force to the first fixing frame 31
- the force in one direction is transmitted to the first non-bending portion 2001 of the flexible display screen 200 , thereby accelerating the recovery of the crease of the flexible display screen 200 , especially the rapid recovery of the crease at the bending portion 2002 of the flexible display screen 200 .
- the spring is an embodiment of the elastic structure, and the elastic structure is not limited.
- the elastic structure may be a structure that is prone to elastic deformation under the action of external force, and can be restored to its original shape after the external force is removed.
- the elastic structure may also be elastic rubber.
- the matching relationship between the elastic structure and the first bracket is also not limited to nesting, for example, it can also be abutting.
- the embodiments of the present application take a spring as an example for introduction.
- the deformation of the flexible display at different bending angles is different.
- the tension between the layers of the flexible display screen is the largest, the relative position dislocation between the layers is serious, and the deformation of the flexible display screen is large.
- the flexible display screen is restored from the bent state to the flattened state, creases will appear on the bending portion of the flexible display screen due to the time required for recovery from screen deformation. Therefore, when the flexible display screen is in different states, applying different forces to the flexible display screen helps to ensure the structural reliability of the flexible display screen.
- FIG. 16 is a schematic cross-sectional view of the position of the first rotating arm 51 in the flattened state of the folding device 100 shown in FIG. 2 (that is, the section line A1-A1 shown in FIGS. 12 and 15 ), and FIG. 17 is the folded state shown in FIG. 2 .
- the closed state of the device 100 corresponds to the cross-sectional structural schematic diagram of the position of the first rotating arm 51 (ie, the section line A1-A1 shown in FIG. 12 and FIG. 15 ).
- the first end 511 of the first rotating arm 51 is designed as a special-shaped structure.
- the first part of the third connecting block 9113 of the first bracket 911 abuts the first rotating arm 51 .
- the first part of the first end 511 of the that is, the first part of the first structural part abuts the first part of the second structural part.
- the resisting force of the first rotating arm 51 to the first bracket 911 is F 1 .
- F 1x is the component force of F 1 in the first direction P1
- F 1y is the component force of F 1 in the second direction P2.
- the second direction P2 is perpendicular to the first direction P1 and the second direction P2 is perpendicular to the length direction of the main shaft 1 .
- the component force F 1x in the first direction causes the spring 9121 to be compressed and deformed.
- the compressed length of the spring 9121 is X1
- the elastic deformation amount of the spring 9121 is ⁇ X1.
- the resisting force of the first rotating arm 51 to the first bracket 911 is F 2 .
- F 2x is the component force of F 2 in the first direction P1
- F 2y is the component force of F 2 in the second direction P2.
- the component force F 2x in the first direction can cause the spring 9121 to be compressed and deformed.
- the second part of the third connecting block 9113 of the first bracket 911 abuts the second part of the first end 511 of the first rotating arm 51 , That is, the second place of the first structural member abuts the second place of the second structural member, wherein the first place of the first structural member is different from the second place of the first structural member, and the first place of the second structural member is different from the second place of the first structural member.
- the second difference in the second structure is
- the component force F 1x in the first direction of the resisting force F 1 of the first rotating arm 51 to the first bracket 911 is greater than that when the first casing 10 and the second casing 30 are folded to a certain intermediate state or a closed state, the first The component force F 2x in the first direction of the resisting force F 2 of a rotating arm 51 to the first bracket 911 . Therefore, the compression amount ⁇ X1 of the spring is larger than ⁇ X2. Further, F k1 is greater than F k2 , that is, when the first housing 10 and the second housing 30 are relatively unfolded to a flat state, the force F k1 transmitted by the spring 9121 to the first fixing frame 31 is greater than that between the first housing 10 and the second housing 30 .
- the spring 9121 can also be in a free state or an extended state.
- FIG. 18 is a schematic diagram comparing spring lengths of the electronic device in a flattened state (above FIG. 18 ) and a folded state (below FIG. 18 ).
- the first end 511 of the first rotating arm 51 is in abutment with the third connecting block 9113 of the first bracket 911 .
- the distance between the stop block 310 and the axis of the rotation shaft 5112 parallel to the length direction of the first elastic member 912 is L. Since the stop block 310 and the connecting hole 3111 are fixedly arranged on the first fixing frame, when the relative positions of the rotating shaft 5112 and the connecting hole 3111 of the first fixing frame 31 in the first direction P1 remain unchanged, the distance L is constant. of.
- the contact surface of the first elastic member 912 and the third connecting block 9113 is P.
- the spring 9121 when the first housing 10 and the second housing 30 are relatively unfolded to a flat state, the spring 9121 is in a compressed state.
- the length of the spring 9121 is X1
- the distance between the axis of the rotating shaft 5112 and the contact surface P in the first direction is Y1
- L X1+Y1.
- the spring 9121 when the first housing 10 and the second housing 30 are relatively folded to an intermediate state or a closed state, the spring 9121 may be in a compressed state.
- the length of the spring 9121 is X2
- the distance between the axis of the rotating shaft 5112 and the contact surface P in the first direction is Y2
- L X2+Y2.
- the length of the spring 9121 is different, that is, the elastic shape of the spring 9121 is different.
- the elastic force transmitted by the spring 9121 to the first fixing frame 31 is different, so the force transmitted by the spring 9121 to the flexible display screen 200 through the first fixing frame 31 and the first casing 10 is different.
- the contact surface Q (not shown in the figure) between the third connection block 9113 and the first end 511 of the first rotating arm 51 is perpendicular to the first direction P1.
- the electronic device 1000 The distance between the axis of the rotating shaft 5112 and the contact surface Q in the flat state is greater than the distance between the axis of the rotating shaft 5112 and the contact surface Q when the electronic device 1000 is in the closed state.
- the third connection block 9113 may be a special-shaped structure, so that the length of the spring 9121 when the first housing 10 and the second housing 30 are relatively unfolded to a flat state is smaller than that of the first housing 10 and the second housing 30 .
- the first rotating arm The first end 511 of the 51 is in contact with the third connecting block 9113 of the first bracket 911 at different positions, and the abutting force of the first rotating arm 51 to the first bracket 911 is different, so that the length of the spring 9121 is different, which is transmitted to the The force of the flexible display screen 200 is different.
- the first place of the first end 511 of the first rotating arm 51 is different from the second place of the first end 511 of the first rotating arm 51, and/or the first place and the third connection of the third connecting block 9113
- the second position of the block 9113 is different, that is, the first position of the first structural member is different from the second position of the first structural member, and/or the first position of the second structural member is different from the second position of the second structural member .
- FIG. 19 is a schematic diagram of a closed state of a conventional flexible display screen.
- the flexible display screen 200 is a three-layer composite structure.
- the direction of the arrow is the tension direction during the bending process of the flexible display screen.
- the angle ⁇ between the first casing 10 and the second casing 30 is reduced to 0°, the flexible display screen 200 is in the In the closed state, the position of the bending portion 2002 of the flexible display screen 200 generates outward tension, the flexible display screen 200 is deformed, and the three-layer structure at A shown in FIG. 19 is delaminated.
- FIG. 20 is a schematic diagram of a flattened state of a conventional flexible display screen.
- the tension of the flexible display screen 200 is reduced, and the layered dislocation of the three-layer structure at A shown in FIG. 20 is reduced. Since the deformation of the flexible display screen 200 requires recovery time, when the flexible display screen 200 is unfolded, a crease will appear in the area of the bending portion 2002 .
- FIG. 21 is a schematic state diagram of the flattening of the flexible display screen shown in this solution.
- the component force F 1x parallel to the longitudinal direction of the spring 9121 ie the first direction P1 deforms the spring 9121 .
- the elastic force F k1 generated by the spring 9121 is further transmitted to the first non-bending portion 2001 of the flexible display screen 200 .
- the force F k1 transmitted by the spring 9121 to the first fixing frame 31 when the electronic device 1000 is in a flat state is greater than the force F k2 transmitted by the first elastic member 912 to the first fixing frame 31 when the electronic device 1000 is in a closed state
- the length X1 of the spring 9121 when the electronic device 1000 is in the flat state is smaller than the length X2 of the spring 9121 when the electronic device 1000 is in the closed state. Therefore, through the arrangement of the first damping member 91 , the force along the first direction P1 received by the first non-bending portion 2001 of the flexible display screen 200 in the flattened state is greater than the force along the first direction P1 received in the closed state.
- the rotating mechanism 20 may further include a second damping member 92 .
- the second damping member 92 may be disposed on the side of the rotating mechanism 20 close to the second housing 30 .
- the second damping member 92 may include a second elastic member 922 .
- the second elastic component may include a second damping member 92 and a second fixing frame 32 .
- the second fixing frame 32 is fixedly connected to the second casing 30
- the second casing 30 is fixedly connected to the second non-bending portion 2003 of the flexible display screen 200 .
- the force along the third direction P3 received by the second non-bending portion 2003 of the flexible display screen 200 in the flattened state is greater than the force along the third direction P3 in the closed state.
- the third direction P3 is parallel to the length direction of the second elastic member 922 and away from the main shaft 1 .
- the force along the first direction received by the first non-bending portion 2001 of the flexible display screen 200 is greater than the force along the first direction received by the closed state
- the force along the third direction received by the second non-bending portion 2003 is greater than the force along the third direction received in the closed state. Therefore, by disposing the first damping member 91 and the second damping member 92 , the layered dislocation phenomenon of the flexible display screen 200 when the electronic device is unfolded from the closed state to the flattened state can be alleviated, and the recovery of the creases of the flexible display screen 200 can be accelerated. , which improves the flattening effect of the screen.
- the structure of the second damping member 92 may be the same as that of the first damping member 91 , so as to simplify the material types of the rotating mechanism 20 and reduce the design difficulty and cost of the rotating mechanism 20 .
- the specific structure of the second damping member 92 is not repeated in this embodiment of the present application.
- the structure of the second damping member 92 may also be different from that of the first damping member 91 .
- FIG. 22 is a schematic cross-sectional structure diagram of the structure shown in FIG. 12 corresponding to the position of the first connecting block 311 (ie, the line A2-A2 shown in FIGS. 12 and 15 ).
- the cross-sectional area of the connecting hole 3111 of the first fixing frame 31 is larger than the cross-sectional area of the rotating shaft 5112 , so the rotating shaft 5112 can move in the connecting hole 3111 .
- the lengths of the connecting hole 3111 and the rotating shaft 5112 in the direction perpendicular to the first damping member 91, that is, the second direction P2 may be equal.
- the cross-sectional shape of the connecting hole 3111 is a waist circle. In some other embodiments, the cross-sectional shape of the connecting hole 3111 may be a rectangle, an ellipse, or the like.
- Fig. 23a is a schematic diagram of the mating relationship between the rotating shaft 5112 and the connecting hole 3111 in the early stage of use of the flexible screen (the upper part of Fig. 23a) and after a period of use (the lower part of Fig. 23a).
- the rotating shaft 5112 and the connecting hole 3111 are close to the first casing 10.
- One side wall is tangent, ie the left side of the waist circle shown in FIG. 23a
- the distance between the axis of the rotating shaft 5112 and the stop block 310 is L parallel to the length direction of the first elastic member 912, that is, the first direction P1.
- the length of the spring 9121 is X1
- the compression amount of the spring 9121 is ⁇ X1
- the flexible display screen 200 will become slightly longer due to the deformation caused by the dislocation of the screen after more than 200 times of folding and aging. Since the first casing 10 is fixedly connected to the first non-bending portion 2001 of the flexible display screen 200 , the first fixing frame 31 is fixedly connected to the first casing 10 . As the flexible display screen 200 becomes longer, the first non-bending portion 2001 of the flexible display screen 200 will drive the first casing 10 and the first fixing frame 31 to slightly move away from the main shaft 1 , that is, the connecting hole 3111 is relatively far from the main shaft 5112 relative to the rotating shaft 5112 .
- the distance between the axis of the rotating shaft 5112 and the stop block 310 parallel to the length direction of the first elastic member 912 is L'.
- the spring 9121 is in a compressed state.
- the length of the spring 9121 is X3
- the compression amount of the spring 9121 is ⁇ X3
- L' is greater than L.
- the folding device 100 can be slightly elongated as the flexible display screen 200 ages and becomes longer, so that the flexible display screen 200 and the folding device 100 are more closely fitted, and the flexible display screen is weakened. 200 crease.
- the compression amount of the spring 9121 becomes smaller, and the spring 9121 passes through the first fixing frame 31 and the first casing.
- the force transmitted by the body 10 to the flexible display screen 200 becomes smaller.
- FIG. 23b is a schematic diagram comparing the spring lengths of the electronic device in a flattened state (above in FIG. 23b ) and a folded state (below in FIG. 23b ) after the flexible display screen is aged.
- the distance between the stop block 310 and the axis of the rotating shaft 5112 parallel to the length direction of the first elastic member 912 is L'. Since the stop block 310 and the connecting hole 3111 are fixedly arranged on the first fixing frame, when the relative positions of the rotating shaft 5112 and the connecting hole 3111 of the first fixing frame 31 in the first direction P1 remain unchanged, the distance L' is not changing.
- the spring 9121 when the first casing 10 and the second casing 30 are relatively unfolded to a flat state, the spring 9121 is in a compressed state.
- the spring 9121 may be in a compressed state.
- the length of the spring 9121 is X4
- the first end 511 of the first rotating arm 51 is a special-shaped structure, Y3 is larger than Y4, therefore, X3 is smaller than X4.
- the special-shaped structure design of the first end 511 of the first rotating arm 51 when the flexible display screen 200 is aged, the first non-bending portion 2001 of the flexible display screen 200 in the flattened state is subjected to pressure along the first direction P1 The force is greater than the force along the first direction P1 in the closed state.
- the oval hole and the special-shaped structure design of the first end 511 of the first rotating arm 51 can jointly weaken the creases of the flexible display screen 200 in a flattened state. .
- the shape of the connection hole 3211 of the second fixing frame 32 may be the same as or similar to the shape of the connection hole 3111 of the first fixing frame. Since the second casing 30 is fixedly connected to the second non-bending portion 2003 of the flexible display screen 200 , the second fixing frame 32 is fixedly connected to the second casing 30 . Based on the same or similar reasons as above, as the use time of the screen becomes longer, the rotating shaft 5212 can move in the connecting hole 3211, and the second non-bending portion 2003 of the flexible display screen 200 will drive the second casing 30 and the second fixing The frame 32 is slightly away from the spindle 1 .
- the folding device 100 can follow the flexible display screen 200 .
- the aging of the electronic device 1000 becomes longer and slightly elongated, so that the flexible display screen 200 and the folding device 100 are more closely fitted, the creases of the flexible display screen 200 are weakened, the flexible display screen 200 of the electronic device 1000 in the flattened state is more flat, and the user's usage is improved. experience.
- the flexible display screen 200 may include a support plate 201, and the support plate 201 is disposed on the side where the flexible display screen 200 is fixedly connected to the folding device 100, that is, the non-display side of the flexible display screen 200, so as to improve the flexibility of the flexible display screen. 200 overall strength.
- the support plate 201 may be a plate-like structure with a certain rigidity, such as a metal plate, a glass plate, or a plastic plate. As shown in FIG. 24 , the support plate 201 includes a first fixing part 2011 , a connecting part 2012 and a second fixing part 2013 which are connected in sequence.
- through holes 2014 penetrating the upper and lower plate surfaces of the support plate 201 may be provided at the connecting portion 2012, thereby reducing the rigidity of this region.
- the connecting portion 2012 provided with the through hole 128 may be deformed, so that the supporting plate 201 is deformed.
- FIG. 25 is a schematic structural diagram of the middle connecting assembly 20 b shown in FIG. 11
- FIG. 26 is an exploded structural schematic diagram of the middle connecting assembly 20 b shown in FIG. 25 .
- the rotating mechanism 20 further includes a third fixing frame 33 , a fourth fixing frame 34 , a third transmission arm 40 and a fourth transmission arm 50 .
- the third fixing frame 33 can be fixed on the first housing 10 , and one end of the third transmission arm 40 is connected to the main shaft 1 in a rotatable manner, and the other end is slidably connected to the third fixing frame 33 .
- the fourth fixing frame 34 can be fixed on the second housing 30 , one end of the fourth transmission arm 50 is connected to the main shaft 1 in a rotating manner, and the other end is slidably connected to the fourth fixing frame 34 .
- the third fixing frame 33 may have a plurality of fastening holes 332
- the fourth fixing frame 34 may have a plurality of fastening holes 342 .
- the plurality of fastening holes 332 of the third fixing frame 33 can be aligned with the plurality of fastening holes 1021 of the first positioning plate 102 , and the third fixing frame 33 and the first positioning plate 102 are locked by fasteners so as to fix the third fixing frame 33 and the first housing 10 .
- the plurality of fastening holes 342 of the fourth fixing frame 34 can be aligned with the plurality of fastening holes 3021 of the second positioning plate 302 , and the third fixing frame 33 and the second positioning plate 302 are locked by fasteners so as to fix the fourth fixing frame 34 and the second housing 30 .
- Fasteners may include, but are not limited to, screws, bolts, rivets, and the like.
- other connection structures may also be formed between the third fixing frame 33 and the first housing 10 , and the fourth fixing frame 34 and the second housing 30 , which are not strictly limited in this application.
- the rotating mechanism 20 is provided with the third fixing frame 33 , the fourth fixing frame 34 , the third transmission arm 40 and the fourth transmission arm 50 to increase the rotation mechanism 20 and the first casing 10 and the second casing
- the interaction force between the bodies 30 makes the folding device 100 easier to fold and unfold.
- the third fixing frame 33 has a fifth chute 331 , and a side wall of the fifth chute 331 may have a concave guide space 3311 .
- the third transmission arm 40 includes a sliding end 401 , a rotating end 402 and a support block 403 .
- the sliding end 401 of the third transmission arm 40 has a fifth flange 4011 .
- the sliding connection between the sliding end 401 of the third transmission arm 40 and the fifth sliding groove 331 can be realized, so that the third transmission arm 40 and the fifth sliding groove 331 can be slidably connected. Sliding connection of the third fixing frame 33 .
- the rotation end 402 of the third transmission arm 40 is arc-shaped, and the rotation connection between the rotation end 402 of the third transmission arm 40 and the main shaft 1 can be realized through a virtual axis.
- the third transmission arm 40 and the main shaft 1 may also be rotationally connected through a solid shaft, which is not strictly limited in this application.
- the connection between the structural member and the main shaft 1 through a virtual shaft means that the structural member cooperates with the movable space formed inside the main shaft 1
- the connection between the structural member and the main shaft 1 through a solid shaft means that the structural member is connected to the main shaft 1 through a rotating shaft such as a pin.
- the fourth fixing frame 34 has a sixth chute 341 , and a side wall of the sixth chute 341 may have a concave guide space 3411 .
- the fourth transmission arm 50 includes a sliding end 501 , a rotating end 502 and a support block 503 .
- the sliding end 501 of the fourth transmission arm 50 has a sixth flange 5011 .
- the sliding connection between the sliding end 501 of the fourth transmission arm 50 and the sixth sliding groove 341 can be realized, so that the fourth transmission arm 50 and the sixth sliding groove 341 can be slidably connected.
- the sliding connection of the fourth fixing frame 34 .
- the rotating end 502 of the fourth transmission arm 50 is arc-shaped.
- the rotational connection between the rotating end 502 of the fourth transmission arm 50 and the main shaft 1 can be realized through a virtual axis.
- the fourth transmission arm 50 and the main shaft 1 may also be rotationally connected through a solid shaft, which is not strictly limited in this application.
- FIG. 27 is a schematic diagram of a partial structure of the rotating mechanism 20 shown in FIG. 7
- FIG. 28 is a schematic diagram of an exploded structure of the structure shown in FIG. 27 .
- the first support plate 21 includes a first plate member 211 and a second plate member 212 , and the first plate member 211 and the second plate member 212 are located on two sides of the second transmission arm 42 respectively.
- the first plate 211 , the sliding end 421 of the second transmission arm 42 and the second plate 212 are sequentially fixed by fasteners.
- the second support plate 22 includes a third plate member 221 and a fourth plate member 222 , and the third plate member 221 and the fourth plate member 222 are located on two sides of the first transmission arm 41 respectively.
- the third plate 221 , the sliding end 411 of the first transmission arm 41 and the fourth plate 222 are sequentially fixed by fasteners.
- the first support plate 21 and the second support plate 22 are divided into two plate parts, which can be easily manufactured. In some other embodiments, the first support plate 21 and/or the second support plate 22 may also be integrally formed structural members.
- the first support plate 21 is fixedly connected to the sliding end 421 of the second transmission arm 42
- the second support plate 22 is fixedly connected to the sliding end 411 of the first transmission arm 41
- the first shielding plate 23 is located on the side of the second plate 212 of the first supporting plate 21 facing away from the second transmission arm 42 , and is fixedly connected to the second plate 212 of the first shielding plate 21
- the second shielding plate 24 is located on the side of the second plate 222 of the second supporting plate 22 facing away from the first transmission arm 41 , and is fixedly connected to the second plate 222 of the second shielding plate 22 .
- the first shielding plate 23 and the second plate member 212 and the second shielding plate 24 and the fourth plate member 222 may be fixed to each other by means of bonding or the like.
- the first supporting plate 21, the first shielding plate 23 and the second transmission arm 42 are assembled into a component, and the second supporting plate 22, the second shielding plate 24 and the first transmission arm 41 are assembled into a component, Therefore, the movement trajectory of the first supporting plate 21 and the first shielding plate 23 can be controlled by the second transmission arm 42 , and the first transmission arm 41 can directly control the movement trajectory of the second supporting plate 22 and the second shielding plate 24 , so that the first transmission arm 41 can directly control the movement trajectory of the second supporting plate 22 and the second shielding plate 24 .
- the movement process of the supporting plate 21 , the second supporting plate 22 , the first shielding plate 23 and the second shielding plate 24 has high control precision and small hysteresis, so as to accurately realize the expansion and contraction during the rotation of the folding device 100 to meet the flexibility
- the support requirements of the display screen 200 and the self-shading requirements of the rotating mechanism 20 are high control precision and small hysteresis, so as to accurately realize the expansion and contraction during the rotation of the folding device 100 to meet the flexibility.
- the first support plate 21 is fixed to the second transmission arm 42 of the first end connection assembly 20a, and the first support plate 21 is also fixed to the second transmission arm 42' of the second end connection assembly 20a';
- a shielding plate 23 is fixed to the second transmission arm 42 of the first end connecting assembly 20a, the first shielding plate 23 is also fixed to the second transmission arm 42' of the second end connecting assembly 20a', and the first supporting plate 21 is also It can be fixed with the third transmission arm 40 of the middle connection assembly 20b, and the first shielding plate 23 can also be fixed with the third transmission arm 40 of the middle connection assembly 20b; the second support plate 22 and the first end connection assembly 20a
- the first transmission arm 41 is fixedly connected, the second support plate 22 is also fixedly connected with the first transmission arm 41' of the second end connection assembly 20a', and the second support plate 22 can also be fixedly connected with the fourth transmission arm of the middle connection assembly 20b 50 is fixedly connected;
- the second shielding plate 24 is fixedly connected with the first transmission arm 41 of the first end connecting
- the above-mentioned transmission arm and the supporting plate or the shielding plate can be fixedly connected by fasteners, for example: the sliding end of the transmission arm and the supporting plate are fixedly connected by fasteners, or the transmission arm is fixedly connected by fasteners.
- the sliding end is fixedly connected with the shielding plate.
- Fasteners include, but are not limited to, screws, bolts, rivets, pins, and the like.
- a concave-convex matching structure may also be arranged between the sliding ends of the plurality of transmission arms, the support plate and the shielding plate, so as to improve the assembly precision and reliability.
- the structure of the second support plate 22 may be the same or similar to that of the first support plate 21
- the structure of the second shield plate 24 may be the same or similar to that of the first shield plate 23 to simplify the rotating mechanism 20 material types, reducing the design difficulty and cost of the rotating mechanism 20.
- FIG. 29 is a schematic structural diagram of the main inner shaft 15 shown in FIG. 11
- FIG. 30 is a structural schematic diagram of the main outer shaft 14 shown in FIG. 11 at another angle.
- the main inner shaft 15 includes a main inner shaft body 151 , a plurality of grooves 152 , a plurality of protrusions 153 , two end blocks 154 and a plurality of fastening holes 155 .
- the main inner shaft body 151 can be divided into multiple sections to reduce weight.
- a plurality of bumps 153 are formed on the main inner shaft body 151, and a plurality of grooves 152 are formed on the main inner shaft body 151 and/or the plurality of bumps 153.
- the bumps 153 and the grooves 152 are combined with each other to form a plurality of three-dimensional Spatial structure.
- Two end blocks 154 are fixed to both ends of the main inner shaft body 151 .
- a plurality of fastening holes 155 are formed in the main inner shaft body 151 .
- FIG. 29 schematically shows the numbers of part of the groove 152 , part of the protrusion 153 and part of the fastening hole 155 .
- the main outer shaft 14 includes a main outer shaft body 141 , a plurality of grooves 142 , a plurality of protrusions 143 and a plurality of fastening holes 145 .
- the main outer shaft body 141 is generally in the shape of an arc-shaped plate.
- a plurality of protrusions 143 are formed on the main outer shaft body 141, and a plurality of grooves 142 are formed on the main outer shaft body 141 and/or the plurality of protrusions 143.
- the protrusions 143 and the grooves 142 are combined with each other to form a plurality of three-dimensional Spatial structure.
- a plurality of fastening holes 145 are formed in the plurality of protrusions 143 .
- FIG. 30 schematically shows the numbers of part of the groove 142 , part of the protrusion 143 and part of the fastening hole 145 .
- the main outer shaft body 141, the main inner shaft body 151 and the two end blocks 154 together enclose the inner space of the main shaft 1, and the two end blocks 154 are exposed.
- the plurality of fastening holes 145 of the main outer shaft 14 are aligned with the plurality of fastening holes 155 of the main inner shaft 15, and the main inner shaft 15 and the main outer shaft 14 are fixed by fasteners (not shown in the figure).
- the fasteners include, but are not limited to, screws, bolts, rivets, pins, and the like.
- the plurality of grooves and protrusions on the main outer shaft 14 and the plurality of grooves and protrusions on the main inner shaft 15 can form a plurality of movable spaces of the main shaft 1 together.
- the structural members of the plurality of connection assemblies ( 20 a , 20 a ′, 20 b ) are movably installed in a plurality of movable spaces of the main shaft 1 , so as to realize the connection with the main shaft 1 .
- the separate design of the main inner shaft 15 and the main outer shaft 14 is beneficial to reduce the manufacturing difficulty of the main shaft 1 and improve the production accuracy and product yield of the main shaft 1.
- some of the multiple movable spaces of the main shaft 1 have the same structure, and some of the movable spaces have different structures.
- the movable spaces with different structures are used to cooperate with structural members with different structures, so that the connection structure of the main shaft 1 and the plurality of connecting components (20a, 20a', 20b) is more flexible and diversified.
- the movable space with the same structure is used to cooperate with the structural member with the same structure, which is beneficial to reduce the design difficulty and cost of the main shaft 1 and the connecting assembly.
- main shaft 1 in the embodiment of the present application may also have other structures, which are not strictly limited in the present application.
- FIG. 31 is a schematic diagram of the fitting relationship between the partial structure shown in FIG. 14 and the main shaft 1
- FIG. 32 is a schematic diagram of the fitting relationship between the partial structure shown in FIG. 31 and the main shaft 1 .
- the main outer shaft 14 and the main inner shaft 15 together enclose a plurality of movable spaces forming the main shaft 1 for cooperating with different structural members of the connecting assembly.
- the rotating end 412 of the first transmission arm 41 is arc-shaped.
- the rotating end 412 of the first transmission arm 41 is rotatably connected with the main shaft 1 .
- the rotation axis of the relative rotation of the first transmission arm 41 and the main shaft 1 may be the first rotation axis 41C.
- the rotating end 412 of the first transmission arm 41 cooperates with the arc-shaped groove 142 a of the main outer shaft 14 and the arc-shaped protrusion 153 a of the main inner shaft 15 , so as to realize the connection with the main shaft 1 . rotation connection.
- the rotating end 412 of the first transmission arm 41 may further include a limiting protrusion 4121 , and the limiting protrusion 4121 is formed at an inner position and/or an outer position of the rotating end 412 .
- the arcuate groove 142a of the main outer shaft 14 may further include a limit groove 1421a
- the arcuate projection 153a of the main inner shaft 15 may further include a limit groove 1531a
- the limit protrusion 4121 of the first transmission arm 41 is connected to the limit groove 1531a.
- the limit grooves 1421a and/or the limit grooves 1531a of the main shaft 1 are matched together, so that the first transmission arm 41 and the main shaft 1 can achieve mutual limit in the axial direction of the main shaft 1 to improve the reliability of the connection structure. It can be understood that if a limit groove (1531a or 1421a) is provided in the same movable space, the limit of the structural member in the axial direction of the main shaft 1 can be realized.
- the main inner shaft 15 may further include a limiting groove 1531b and a limiting groove 1531b', and both ends of the rotating shaft 6121 are respectively matched with the limiting groove 1531b and the limiting groove 1531b'.
- the rotating end 422 of the second transmission arm 42 is arc-shaped.
- the rotating end 422 of the second transmission arm 42 is rotatably connected with the main shaft 1 .
- the rotation axis of the second transmission arm 41 relative to the main shaft 1 may be the second rotation axis 42C.
- the main shaft 1 accommodates the movable spaces of the first transmission arm 41 and the second transmission arm 42, which are arranged in pairs and have a center-symmetric structure. The cooperation relationship between them will not be repeated in this application.
- first transmission arm 41 and the second transmission arm 42 are connected with the main shaft 1 through a virtual shaft, the rotation connection structure is simple, and the space is small, which is beneficial to reduce the thickness of the rotation mechanism 20, so that the folding device 100 And the electronic device 1000 is easier to achieve thinning.
- first transmission arm 41 and/or the second transmission arm 42 and the main shaft 1 may also be connected through a solid shaft, which is not strictly limited in this embodiment of the present application.
- the structure of the first end portion connecting assembly 20a will be described below with reference to a plurality of schematic structural diagrams and internal structural diagrams of the folding device 100 when the folding device 100 is in the flattened state, the intermediate state, and the closed state, respectively.
- FIG. 33 is a partial structural diagram of the folding device 100 shown in FIG. 2 when it is in a flattened state
- FIG. 34 is the flattened state of the folding device 100 shown in FIG.
- FIG. 35 is a flat state of the structure shown in FIG. 32 corresponding to another position of the first transmission arm 41 (ie A3 shown in FIG. 12 and FIG. 32 ) -A3 section line) schematic diagram of the cross-sectional structure.
- the rotating end 412 of the first transmission arm 41 is rotatably connected to the main shaft 1 , and the rotation of the first transmission arm 41
- the area of the overlapping surface between the end 412 and the main shaft 1 is the first overlapping area.
- the first flange 4111 of the sliding end 411 of the first transmission arm 41 is slidably connected to the guiding space 3221 of the first sliding groove 322 of the second fixing frame 32 .
- the first chute 322 has an A end close to the main shaft 1 and a B end far away from the main shaft 1 , that is, the distance between the A end of the first chute 322 and the main shaft 1 in the first direction P1 is smaller than that of the first chute 322 The distance between the B end and the main shaft 1 in the first direction P1.
- the distance between the first transmission arm 41 and the B end of the first chute 322 in the third direction P3 is the first distance D1.
- the first rotating arm 51 is linked with the first transmission arm 41 through the first connecting member 61 . Referring to FIGS.
- the limiting grooves 1531 b of the main outer shaft 14 and the main inner shaft 15 are jointly formed to form an arc-shaped groove 156 , one end of the rotating shaft 6121 is matched with the arc-shaped groove 156 , and the rotating shaft 6121 is located at one end of the arc-shaped groove 156 close to the first casing 10 .
- the other end of the rotating shaft 6121 and the arc-shaped groove 156 ′ (and the arc-shaped groove 156 are arranged in pairs and have the same structure, and are not shown in the figure) shown) to cooperate together to realize the rotational connection between the first rotating arm 51 and the main shaft 1 .
- FIG. 36 is a partial structural diagram of the folding device 100 shown in FIG. 2 when it is in an intermediate state
- FIG. 37 is the intermediate state of the folding device 100 shown in FIG. (that is, the cross-sectional structure diagram of the line A1-A1 shown in FIG. 12 )
- FIG. 38 is the middle state of the structure shown in FIG. 31 corresponding to another position of the first transmission arm 41 (that is, the section A3-A3 shown in FIG. 12 and FIG. Schematic diagram of the cross-sectional structure of the line).
- the rotating end 412 of the first transmission arm 41 rotates relative to the main shaft 1
- the first transmission arm 41 rotates relative to the main shaft 1.
- the first flange 4111 of the arm 41 slides in the guide space 3221 of the second fixing frame 32, that is, the first transmission arm 41 slides in the first sliding groove 322, and the first transmission arm 41 gradually approaches the second fixing frame 32 and the first transmission arm 41.
- the second housing 30 , the second fixing frame 32 and the second housing 30 are gradually approaching the main shaft 1 .
- the first rotating arm 51 is linked with the first transmission arm 41 through the first connecting member 61, and the second end 512 of the first rotating arm 51 is connected with the first connecting member 61 through the rotating shaft 6121.
- the rotating shaft 6121 is in an arc shape.
- the first fixing frame 31 and the first housing 10 gradually approach the main shaft 1 by sliding in the groove 156 and the arc-shaped groove 156 ′.
- the area of the overlapping surface between the rotating end 412 of the first transmission arm 41 and the main shaft 1 is the second overlapping area, which is smaller than the first overlapping area.
- Contact area; the distance between the first transmission arm 41 and the B end of the first chute 322 in the third direction P3 is the second distance D2, which is smaller than the first distance D1.
- FIG. 39 is a partial structural diagram of the folding device 100 shown in FIG. 2 when it is in a closed state
- FIG. 40 is the position of the first rotating arm 41 corresponding to the closed state of the folding device 100 shown in FIG. (that is, a schematic diagram of the cross-sectional structure of the section line A1-A1 shown in FIG. 12 ).
- the rotating end 412 of the first transmission arm 41 continues to rotate relative to the main shaft 1, and the first transmission arm 41 continues to rotate relative to the main shaft 1.
- the first flange 4111 of the arm 41 slides in the guide space 3221 of the second fixing frame 32, that is, the first transmission arm 41 slides in the first sliding groove 322, and the first transmission arm 41 continues to approach the second fixing frame 32 and the first transmission arm 41.
- the second housing 30 , the second fixing frame 32 and the second housing 30 continue to be close to the main shaft 1 .
- the first rotating arm 51 is linked with the first transmission arm 41 through the first connecting member 61 , and the first fixing frame 31 and the first housing 10 continue to approach the main shaft 1 .
- the area of the overlapping surface between the rotating end 412 of the first transmission arm 41 and the main shaft 1 is the third overlapping area, which is smaller than the second overlapping area.
- the contact area; the distance between the first transmission arm 41 and the B end of the first chute 322 in the third direction P3 is the third distance D3, which is smaller than the second distance D2.
- the third distance D3 may be close to zero.
- FIG. 41 is a schematic cross-sectional view of the position of the second transmission arm 42 in the flattened state of the folding device 100 shown in FIG. 2 (ie, the BB section shown in FIG. 12 ), and FIG. 42 is The middle state of the folding device 100 shown in FIG. 2 corresponds to the cross-sectional structure diagram of the position of the second rotating arm 42 (ie, the BB section line shown in FIG. 12 ), and FIG. 43 is the closed state of the folding device 100 shown in FIG. 2 corresponding to the second rotation.
- a schematic cross-sectional structure diagram of the position where the arm 42 is located ie, the BB section line shown in FIG. 12 ).
- FIGS. 41 to 43 illustrate the position change of the second transmission arm 42 during the transition of the folding device 100 from the unfolded state to the closed state.
- the area of the overlapping surface between the rotating end 422 of the second transmission arm 42 and the main shaft 1 is the fourth overlapping area.
- the second flange 4211 of the sliding end 421 of the second transmission arm 42 is slidably connected to the guiding space 3121 of the second sliding groove 312 of the first fixing frame 31 .
- the second chute 312 has an A' end close to the main shaft 1 and a B' end far away from the main shaft 1, that is, the distance between the A' end of the second chute 312 and the main shaft 1 in the first direction P1 is smaller than that of the second The distance between the end B' of the chute 312 and the spindle 1 in the first direction P1. As shown in FIG. 41 , the distance between the second transmission arm 42 and the B' end of the second chute 312 in the first direction P1 is a fourth distance D4.
- the second rotating arm 52 is linked with the second transmission arm 42 through the second connecting member 62 .
- the rotating end 422 of the second transmission arm 42 rotates relative to the main shaft 1, and the second transmission arm 42
- the second flange 4211 slides in the guide space 3121 of the first fixing frame 31, that is, the second transmission arm 42 slides in the second sliding slot 312, and the second transmission arm 42 gradually approaches the first fixing frame 31 and the first housing 10.
- the first fixing frame 31 and the first housing 10 are gradually approached to the main shaft 1.
- the second rotating arm 52 is linked with the second transmission arm 42 through the second connecting member 62 , and the second fixing frame 32 and the second housing 30 are gradually approached to the main shaft 1 .
- the area of the overlapping surface between the rotating end 422 of the second transmission arm 42 and the main shaft 1 is the fifth overlapping area, which is smaller than the fourth overlapping area.
- the contact area; the distance between the second transmission arm 42 and the B' end of the second chute 312 in the first direction P1 is the fifth distance D5, which is smaller than the fourth distance D4.
- the rotating end 422 of the second transmission arm 42 rotates relative to the main shaft 1, and the second transmission arm 42 rotates relative to the main shaft 1.
- the two flanges 4211 slide in the guide space 3121 of the first fixing frame 31 , that is, the second transmission arm 42 slides in the second sliding slot 312 , and the second transmission arm 42 continues to approach the first fixing frame 31 and the first housing 10 , the first fixing frame 31 and the first housing 10 continue to approach the main shaft 1 .
- the second rotating arm 52 is linked with the second transmission arm 42 through the second connecting member 62 , and the second fixing frame 32 and the second housing 30 continue to approach the main shaft 1 .
- the area of the overlapping surface between the rotating end 422 of the first transmission arm 42 and the main shaft 1 is the sixth overlapping area, and the sixth overlapping area is smaller than the fifth overlapping area.
- the contact area; the distance between the second transmission arm 42 and the B' end of the second chute 312 in the first direction P1 is the sixth distance D6, which is smaller than the fifth distance D5.
- the sixth distance D6 may be close to zero.
- the first transmission arm 41 rotates around the first rotation axis 41C.
- the first rotation axis 41C of the first transmission arm 41 relative to the main shaft 1 is close to the main inner shaft 15 and away from the main outer shaft 14 , close to the second fixing frame 32 and away from the first fixing frame 31 .
- the second transmission arm 42 rotates around the second rotation axis 42C.
- the second rotation axis 42C of the second transmission arm 42 rotating relative to the main shaft 1 is close to the main inner shaft 15 and away from the main outer shaft 14 , close to the first fixing frame 31 and away from the second fixing frame 32 .
- the rotation mechanism 20 by setting the positions of the first rotation axis 41C and the second rotation axis 42C, it is easier for the rotation mechanism 20 to realize the pulling movement and folding of the folding device 100 in the casing during the process of changing from the flattened state to the closed state.
- the push-out motion of the casing in the process of changing from the closed state to the flattened state of the device 100 realizes the deformation motion with the flexible display screen 200 as the neutral plane.
- the first transmission arm 41 rotates around the first rotation axis 41C, that is, the first transmission arm 41 rotates around the first axis relative to the main shaft 1 .
- the rotation axis 41C rotates.
- the second transmission arm 42 rotates around the second rotation axis 42C, that is, the second transmission arm 42 rotates relative to the main shaft 1 around the second rotation axis 42C.
- the third transmission arm 40 rotates around the third rotation axis 40C, that is, the third transmission arm 40 rotates relative to the main shaft 1 around the third rotation axis 40C.
- the fourth transmission arm 50 rotates around the fourth rotation axis 50C, that is, the fourth transmission arm 50 rotates relative to the main shaft 1 around the fourth rotation axis 50C.
- the rotation axis 40C of the third transmission arm 40 rotating relative to the main shaft 1 is collinear with the rotation axis 42C of the second transmission arm 42 rotating relative to the main shaft 1 .
- the rotation axis 50C of the fourth transmission arm 50 rotating relative to the main shaft 1 is collinear with the rotation axis 41C of the first transmission arm 41 rotating relative to the main shaft 1 .
- the rotation axes of the third transmission arm 40 and the second transmission arm 42 relative to the main shaft 1 are collinear, and the third transmission arm 40 is slidably connected to the third fixing frame 33 ; the fourth transmission arm 50 is connected to the first The axis of rotation of the transmission arm 41 relative to the main shaft 1 is collinear, and the fourth transmission arm 50 is slidably connected to the fourth fixing frame 34 . Therefore, the movement of the third transmission arm 40 can be synchronized with the movement of the second transmission arm 42 , and the movement of the fourth transmission arm 50 can be synchronized with the movement of the first transmission arm 41 , thus simplifying the structural design and connection relationship of the rotating mechanism 20 , to improve the reliability of the rotating structure.
- the first fixing frame 31 rotates relative to the main shaft 1
- the second transmission arm 42 rotates relative to the main shaft 1
- the second transmission arm 42 is fixed relative to the first
- the frame 31 slides
- the second fixing frame 32 rotates relative to the main shaft 1
- the first transmission arm 41 rotates relative to the main shaft 1
- the first transmission arm 41 slides relative to the second fixing frame 32, so the folding device 100 can be in a flat state and a closed state switch freely.
- the first casing 10 and the second casing 30 can be relatively unfolded to a flattened state, so that the flexible display screen 200 is in a flattened form, so as to realize a large-screen display, and the first casing 10 and the second casing 30 can also be relatively folded.
- first casing 10 and the second casing 30 are relatively folded to the closed state by the rotating mechanism 20, they can be basically completely closed, and there is no gap or a small gap between the two, so that the appearance of the folding device 100 is relatively complete, and the realization of The appearance is self-shielding, and the appearance of the electronic device 1000 to which the folding device 100 is applied is relatively complete, which is beneficial to improve the reliability of the product and the user experience.
- the rotating end 412 of the first transmission arm 41 is connected to the first rotating arm 51 through the first connecting member 61 .
- Two ends 512 , the rotating end 412 of the first transmission arm 41 is connected to the first end 611 of the first connecting piece 61 through the rotating shaft 6111 , and the rotating end 412 of the first transmission arm 41 can rotate around the first end 611 of the first connecting piece 61
- the second end 512 of the first rotating arm 51 is connected to the second end 612 of the first connecting piece 61 through the rotating shaft 6121, and the second end 512 of the first rotating arm 51 can rotate around the second end 612 of the first connecting piece 61 .
- the first rotating arm 41 , the first connecting member 61 and the first rotating arm 51 form a linkage structure.
- the second rotating arm 42 , the second connecting member 62 and the second rotating arm 52 also form a linkage structure.
- FIG. 12 and FIG. 41 Please refer to FIG. 12 and FIG. 41 together.
- the two fixing frames 32 move synchronously, that is, the first fixing frame 31 and the second fixing frame 32 rotate relative to each other.
- the sliding end 412 of the second transmission arm 42 is slidably connected to the first fixing frame 31, when the first fixing frame 31 rotates, the sliding end 421 of the second transmission arm 42 slides in the second sliding groove 312, and the second transmission arm
- the rotating end 422 of 42 rotates relative to the spindle 1 .
- the first fixed frame 31 is rotatably connected to the first rotating arm 51 .
- the first rotating arm 51 rotates. Due to the restriction of the first rotating arm 51 by the main outer shaft 14 , and the limit groove 156 restricts the movement trajectory of the rotating shaft 6121 , the first rotating arm 51 can only move in the main shaft 1 with a predetermined trajectory.
- the first rotating arm 51 is linked with the first transmission arm 41 through the first connecting member 61
- the second rotating arm 52 is linked with the second transmission arm 42 through the second connecting member 62 , and the two linkage structures are symmetrical with each other. Therefore, the rotation angles of the rotating end 412 of the first transmission arm 41 and the rotating end 422 of the second transmission arm 42 are equal in magnitude and opposite in direction.
- the first casing 10 rotates synchronously with the rotating end 422 of the second transmission arm 42
- the second casing 30 rotates synchronously with the rotating end 412 of the first transmission arm 41 , so as to ensure the connection between the first casing 10 and the second casing 30 Synchronization and consistency of turning movements.
- the first transmission arm 41 rotates relative to the main shaft 1
- the first rotating arm 51 is linked with the first transmission arm 41 through the first connecting member 61
- the first fixed frame 31 and the first housing 10 gradually approach the main shaft 1
- the second transmission arm 42 rotates relative to the main shaft 1
- the second rotating arm 52 is linked with the second transmission arm 42 through the second connecting member 62
- the second fixed frame 32 and the second housing 30 gradually approach the main shaft 1 . Therefore, when the first casing 10 and the second casing 30 are relatively unfolded, the rotating mechanism 20 can move the first casing 10 in a direction away from the main shaft 1 and the second casing 30 in a direction away from the main shaft 1 .
- the rotating mechanism 20 can realize the inward-pulling motion of the casing of the folding device 100 in the process of changing from the flattened state to the closed state, and the outward-pulling movement of the casing in the process of changing the folding device 100 from the closed state to the flattened state, so that In the process of unfolding or folding, the folding device 100 can realize the deformation movement with the flexible display screen 200 as the neutral plane, thereby reducing the risk of pulling or squeezing the flexible display screen 200, so that the flexible display screen 200 maintains a constant length to protect the flexible display screen 200.
- the flexible display screen 200 improves the reliability of the flexible display screen 200, so that the flexible display screen 200 and the electronic device 1000 have a longer service life.
- the first supporting plate 21 and the second supporting plate 22 are flush, and the first supporting plate 21 is placed on the Between the first fixing frame 31 and the main shaft 1, the second supporting plate 22 is erected between the second fixing frame 32 and the main shaft 1.
- the first supporting plate 21, the main shaft 1 and the second supporting plate 22 can jointly form a pair of flexible display screens. Complete planar support of bend 2002 of 200. As shown in FIGS. 34 and 41 , when the first housing 10 and the second housing 30 are relatively unfolded to a flat state, the first supporting plate 21 and the second supporting plate 22 are flush, and the first supporting plate 21 is placed on the Between the first fixing frame 31 and the main shaft 1, the second supporting plate 22 is erected between the second fixing frame 32 and the main shaft 1.
- the first supporting plate 21, the main shaft 1 and the second supporting plate 22 can jointly form a pair of flexible display screens. Complete planar support of bend 2002 of 200. As shown in FIGS.
- the rotating mechanism 20 can fully support the bending portion 2002 of the flexible display screen 200 when the folding device 100 is in a flat state or a closed state, thereby helping to protect the flexible display screen 200 and improving user experience.
- the folding device 100 can achieve self-shielding, which is beneficial to improve the integrity of the appearance, and can also reduce the risk of external dust, sundries, etc.
- the first shielding plate 23 can be retracted between the first fixing frame 31 and the first casing 10
- the second shielding plate 24 can be retracted between the second fixing frame 32 and the second casing 30 to achieve avoidance, so that the folding device 100 can be smoothly folded to the closed state, and the mechanism has high reliability.
- the first support plate 21 and the second support plate 22 are gradually approached to the main shaft 1 or away from the main shaft 1, so that the folding device 100 can completely support the flexible display screen 200 in various forms, thereby improving the reliability and service life of the flexible display screen 200 and the electronic device 1000.
- the folding device 100 In the process of converting the folding device 100 from the closed state to the flattened state, and from the flattened state to the closed state, the first shielding plate 23 and the second shielding plate 24 are gradually moved closer to the main shaft 1 or away from the main shaft 1 Therefore, in various forms, the folding device 100 can perform self-shielding according to the form of the rotating mechanism 20, and the mechanism has high reliability.
- the first supporting plate 21 and the first shielding plate 23 are both fixed to the sliding end 411 of the first transmission arm 41
- the second supporting plate 22 and the second shielding plate 24 are both fixed to the sliding end 421 of the second transmission arm 42 Therefore, the first transmission arm 41 and the second transmission arm 42 realize the control of the rotation of the first casing 10 and the second casing 30, and also realize the control of the first supporting plate 21, the first shielding plate 23, the The telescopic motions of the two supporting plates 22 and the second shielding plate 24 are controlled, so the integration of the rotating mechanism 20 is high, the overall connection relationship is simple, and the mechanism reliability is high.
- the rotating mechanism 20 may further include a first limiting member 81 .
- the first limiting member 81 is mounted on the sliding end 411 of the first transmission arm 41 , and the first limiting member 81 is engaged with the second fixing frame 32 .
- the first limiting member 81 is used to limit the relative positional relationship between the first transmission arm 41 and the second fixing frame 32 , so that the first transmission arm 41 and the second fixing frame 32 can be freed from a large external force
- the rotating mechanism 20 can stay at a preset angle, and the rotating device can maintain a flat state or a closed state, so as to improve the user experience of the folding device 100 and the electronic device 1000 .
- FIG. 44 is an exploded structural diagram of the first limiting member 81 shown in FIGS. 12 to 14 .
- the first limiting member 81 includes a second bracket 811 and a third elastic member 812 .
- the second bracket 811 is a rigid structure and is not easily deformed under the action of external force.
- the second bracket 811 includes a control part 8111 and a resisting part 8112 .
- the resisting portion 8112 is used for resisting the external structural member to limit the structural member.
- the control part 8111 is used to control the position of the abutting part 8112 .
- the control part 8111 includes a base plate 8113 and a plurality of guide columns 8114, and the plurality of guide columns 8114 are fixed to one side of the base plate 8113 at intervals.
- the resisting portion 8112 is fixed on the other side of the base plate 8113 .
- the third elastic member 812 is an elastic structure and is easily deformed under the action of external force.
- One end of the third elastic member 812 is mounted on the control portion 8111 of the second bracket 811 .
- the third elastic member 812 may include a plurality of springs 8121, and the plurality of springs 8121 are sleeved on the plurality of guide posts 8114 in a one-to-one correspondence.
- the sliding end 411 of the first transmission arm 41 has a second installation groove 4112 , and the first limiting member 81 is installed in the second installation groove 4112 .
- the other end of the third elastic member 812 ie, the end away from the control portion 8111 ) abuts against the groove wall of the second installation groove 4112 , and the third elastic member 812 is in a compressed state.
- a portion of the abutting portion 8112 of the second bracket 811 protrudes from the second installation slot 4112 and is clamped to the second fixing frame 32 .
- the first limiting member 81 may further include a first buffer member 813 , and the first buffer member 813 is mounted on the abutting portion 8112 of the second bracket 811 .
- the first buffer member 813 can be made of a material with low rigidity (eg, rubber, etc.), and when subjected to an external force, the first buffer member 813 can absorb the impact force through deformation to achieve buffering.
- the second fixing frame 32 further includes a first recessed area 325 , a second recessed area 326 (first recessed portion) and a first horizontal area 327 (first convex portion) part), the first concave area 325 , the second concave area 326 and the first horizontal area 327 are all connected to the first chute 322 .
- the distance between the first recessed area 325 and the A end of the first chute 322 in the first direction P1 is smaller than the distance between the second recessed area 326 and the A end of the first chute 322 in the first direction P1.
- the first horizontal region 327 is located between the first recessed region 325 and the second recessed region 326 .
- the abutting portion 8112 of the first limiting member 81 is partially locked into the first recessed area 325 .
- FIG. 36 when the first casing 10 and the second casing 30 are relatively rotated (expanded or folded) to the intermediate state, the abutting portion 8112 of the first limiting member 81 gradually moves to the first horizontal area 327 .
- FIG. 39 when the first casing 10 and the second casing 30 are folded relative to each other to a closed state, the abutting portion 8112 of the first limiting member 81 is partially snapped into the second recessed area 326 .
- the abutting portion 8112 of the first limiting member 81 moves from the first recessed area 325 to the first horizontal area 327 , the third The amount of elastic deformation of the elastic member 812 gradually increases. Since the first connecting surface 3251 of the first recessed area 325 and the first horizontal area 327 forms a certain angle with the longitudinal direction of the main shaft 1, two component forces are respectively generated on the first connecting surface 3251, the first connecting The force F3 experienced by the face 3251. Among them, F 3x is the component force perpendicular to the length direction of the main shaft 1 , and F 3y is the component force parallel to the length direction of the main shaft 1 .
- F 4x is the component force perpendicular to the length direction of the main shaft 1
- F 4y is the component force parallel to the length direction of the main shaft 1 .
- the directional component force F 4x can provide a torque assisting the rotation of the second housing 30 , pushing the second housing 30 to rotate.
- the component force F 3x perpendicular to the length direction of the main shaft 1 and the direction away from the main shaft 1 can provide a torque assisting the rotation of the second casing 30 to push the second casing 30 to rotate.
- the abutting portion 8112 of the first limiting member 81 is used in the process of moving from the first recessed area 325 to the first horizontal area 327 .
- the force on the first connection surface 3251 is described as an example.
- FIG. 45 is a schematic diagram of the force during the folding process of the electronic device 1000 .
- the center C is the rotation center of the electronic device 1000 , that is, the center of the circle during the rotation of the neutral plane of the flexible display screen 200 .
- the external force F of the folding electronic device 1000 generates component forces F b , F b and C Being tangent to the center of the circle, F b generates a torque that pushes the first housing 10 and the second housing 30 to rotate relative to each other.
- the component force F 3x that the first connecting surface 3251 receives is perpendicular to the length direction of the main shaft 1 and away from the main shaft 1 direction to generate a component force F a . 10 and the second housing 30 relative rotational torque. Therefore, during the relative rotation of the first casing 10 and the second casing 30 and the movement of the first limiting member 81 from the first recessed area 325 to the first horizontal area 327 , it is perpendicular to the length direction of the main shaft 1 and away from the main shaft 1
- the directional force component F 3x produces a torque that resists relative rotation of the housing.
- the component force perpendicular to the length direction of the main shaft 1 can generate torque that assists or hinders the relative rotation of the housing, which will not be described in detail here.
- the first limiting member 81 can be positioned in the first recessed area 325 , the first horizontal area 327 and the second fixing frame 32 relative to the second fixing frame 32 .
- the smooth movement between the two recessed areas 326 improves the positioning reliability between the first transmission arm 41 and the second fixing frame 32 .
- the second fixing frame 32 may also include only the first recessed area 325 or only the second recessed area 326 .
- the position design of the first recessed area 325 and/or the second recessed area 326 may also have other forms, which are not strictly limited in this application.
- the part of the second fixing frame 32 that cooperates with the first limiting member 81 may be an elastic structure, or may be provided with elastic bumps. Based on the same or similar reasons as above, the electronic device 1000 can be folded or unfolded. During the folding process, the force perpendicular to the length direction of the main shaft 1 on the second fixing frame 32 can provide the hand feeling during the folding process of the electronic device 1000 .
- the rotating mechanism 20 may further include a second limiting member 82 .
- the second limiting member 82 is mounted on the sliding end 421 of the second transmission arm 42 , and the second limiting member 82 is engaged with the first fixing frame 31 .
- the second limiting member 82 is used to limit the relative positional relationship between the second transmission arm 42 and the first fixing frame 31 , so that the second transmission arm 42 and the first fixing frame 31 can be protected from a large external force.
- the rotating mechanism 20 can stay at a preset angle, and the rotating device can maintain a flat state or a closed state, so as to improve the user experience of the folding device 100 and the electronic device 1000 .
- the structure of the second limiting member 82 is the same as that of the first limiting member 81 , so as to simplify the material types of the rotating mechanism 20 and reduce the design difficulty and cost of the rotating mechanism 20 .
- the specific structure of the second limiting member 82 is not repeated in this embodiment of the present application. In some other embodiments, the structure of the second limiting member 82 may also be different from that of the first limiting member 81 .
- the first fixing frame 31 further includes a third concave area 315 , a fourth concave area 316 (second concave portion) and a second horizontal area 317 (second convex portion).
- the third recessed area 315 , the fourth recessed area 316 and the second horizontal area 317 are all connected to the second chute 312 .
- the distance between the third recessed area 315 and the A' end of the second chute 312 in the first direction P1 is smaller than the distance between the fourth recessed area 316 and the A' end of the second chute 312 in the first direction P1.
- the second horizontal region 317 is located between the third recessed region 315 and the fourth recessed region 316 .
- the second limiting member 82 When the first housing 10 and the second housing 30 are relatively unfolded to a flat state, the second limiting member 82 is partially locked into the third recessed area 315; the first housing 10 and the second housing are relatively rotated (expanded or folded). ) to the intermediate state, the second limiting member 82 gradually moves to the second horizontal area 317; when the first housing 10 and the second housing 30 are folded to the closed state, the second limiting member 82 is partially snapped into the fourth recess District 316.
- the arrangement of the third recessed area 315 and the fourth recessed area 316 can provide a torque that hinders or assists the rotation of the first housing 10 .
- the first fixing frame 31 may also include only the third recessed area 315 or only the fourth recessed area 316 .
- the position design of the third recessed area 315 and/or the fourth recessed area 316 may also have other forms, which are not strictly limited in this application.
- the part of the first fixing frame 31 that cooperates with the second limiting member 82 may be an elastic structure, or may be provided with elastic bumps.
- the first fixing frame 31 The force perpendicular to the length direction of the main shaft 1 can provide the hand feeling of the electronic device 1000 during the folding process.
- FIG. 46 is a schematic diagram of the cooperation relationship between the synchronous damping member 7 and the main shaft 1 shown in FIG. 14 .
- the rotating end 712 of the first synchronous swing arm 71 , the rotating end 722 of the second synchronous swing arm 72 , the gear set 73 and the arc-shaped groove of the main outer shaft 14 142b and the arc-shaped projections 153b of the main inner shaft 15 cooperate with each other, so as to realize the rotational connection with the main shaft 1 .
- the fourth elastic member 76 cooperates with the arc-shaped groove 142 c of the main outer shaft 14 and the arc-shaped protrusion 153 c of the main inner shaft 15 .
- FIG. 47 is a schematic cross-sectional view of the position of the synchronization component 70 in the flattened state of the folding device 100 shown in FIG. 2 (ie, the CC section shown in FIG. 12 ), and FIG. 48 is FIG. 2
- the middle state of the shown folding device 100 corresponds to the position of the synchronizing assembly 70 (ie, the CC section line shown in FIG. 12 )
- FIG. 49 is a schematic diagram of the closed state of the folding device 100 shown in FIG. 2 corresponding to the position of the synchronizing assembly 70 (ie Figure 12 shows a schematic diagram of the cross-sectional structure of the CC section. 47 to 49 illustrate changes in the position of the synchronizing assembly during the transition from the unfolded state to the closed state of the folding device 100 .
- the third flange 7111 of the sliding end 711 of the first synchronizing swing arm 71 It is slidably connected with the guide space 3131 of the third chute 313 of the first fixing frame 31 .
- the third chute has a C end close to the main shaft 1 and a D end away from the main shaft 1 , that is, the distance between the C end of the third chute 313 and the main shaft 1 in the first direction P1 is smaller than the distance between the D end of the third chute 313 and the main shaft 1 The distance in the first direction P1.
- the distance between the first synchronous swing arm 71 and the D end of the third chute 313 in the first direction P1 is the seventh-first distance D7.
- the fourth chute 323 has a C' end close to the main shaft 1 and a D' end away from the main shaft 1.
- the distance between the second synchronous swing arm 72 and the second housing 30 at the D' end of the fourth chute 323 in the third direction P3 is the eighth distance D8.
- the seventh distance D7 and the eighth distance D8 may be approximately equal, so as to ensure the synchronization and consistency of the relative rotation of the first housing 10 and the second housing 30 .
- the sliding end 711 of the first synchronizing swing arm 71 slides in the guide space 3131 of the first fixing frame 31 , that is, the first synchronizing swing arm 71 slides in the third sliding groove 313 , and the first synchronizing swing arm 71 gradually approaches the first fixing frame 31 and the first housing 10 .
- the fourth flange 7211 of the sliding end 721 of the second synchronizing swing arm 72 slides in the guide space 3231 of the second fixing frame 32, that is, the second synchronizing swing arm 72 slides in the fourth sliding groove 323, and the second synchronizing swing arm 72 gradually approaches the second fixing frame 32 and the second housing 30 .
- the distance between the first synchronizing swing arm 71 and the D end of the third chute 313 in the first direction P1 is the ninth distance D9
- the ninth distance D9 is less than the seventh distance D7
- the distance between the second synchronous swing arm 72 and the D' end of the fourth chute 323 in the third direction P3 is the tenth distance D10, which is less than the eighth distance D8.
- the ninth distance D9 and the tenth distance D10 may be approximately equal.
- the first synchronous swing arm 71 continues to approach the first fixing frame 31 and the first housing 10
- the second synchronous swing arm 72 continues to approach the second fixing frame 32 and the second housing 30 .
- the distance between the first synchronizing arm 71 and the D end of the third chute 313 in the first direction P1 is the eleventh distance D11
- the tenth A distance D11 is smaller than the ninth distance D9
- the distance between the second synchronous swing arm 72 and the D' end of the fourth chute 323 in the third direction P3 is the twelfth distance D12, which is smaller than the tenth distance D10.
- the eleventh distance D11 and/or the twelfth distance D12 may be close to zero.
- the rotating end 712 of the first synchronous swing arm 71 engages the rotating end 722 of the second synchronous swing arm 72 through the gear set 73 , and the first synchronous swing arm 71
- the rotating end 712 and the rotating end 722 of the second synchronous swing arm 72 are both rotatably connected to the main shaft 1
- the sliding end 711 of the first synchronous swing arm 71 is slidably connected to the first fixed frame 31
- the sliding end 721 of the second synchronous swing arm 72 is slidably connected The second fixing frame 32 .
- the first synchronous swing arm 71 and the second synchronous swing arm 72 can control the first fixed frame 31 and the second fixed frame 32 relative to the main axis
- the rotation angles of 1 are the same, so that the rotations of the first casing 10 and the second casing 30 are synchronized and consistent.
- the first synchronous swing arm 71 is rotatably connected to the main shaft 1 and slidably connected to the first fixing frame 31 , that is, a link-slider structure is formed.
- the second synchronous swing arm 72 is rotatably connected to the main shaft 1 and slidably connected to the second fixed frame 32 , that is, a link-slider structure is formed.
- the synchronism and consistency of the rotational movements of the first housing 10 and the second housing 30 can be well controlled by the link-slider structure in which the gear set 73 meshes with each other.
- FIG. 50 is an exploded schematic diagram of the synchronous damping member 7 shown in FIGS. 12 to 14 .
- the synchronization damping member 7 of the rotating mechanism 20 includes a synchronization assembly 70 , a first conjoined cam 74 , a second conjoined cam 75 , a fourth elastic member 76 , a snap ring 77 , a snap spring 78 and a plurality of connecting shafts. 79.
- the synchronization assembly 70 includes a first synchronization swing arm 71 , a second synchronization swing arm 72 and a gear set 73 .
- the rotating end 712 of the first synchronous swing arm 71 meshes with the rotating end 722 of the second synchronous swing arm 72 through the gear set 73 .
- the gear set 73 includes a first gear 731 and a second gear 732, and the first gear 731 and the second gear 732 mesh with each other.
- the connecting shaft 79 includes a guide post 791 and a stop block 792 .
- the snap ring 77 , the fourth elastic member 76 , the first conjoined cam 74 , the synchronization assembly 70 , the second conjoined cam 75 and the snap spring 78 are sequentially sleeved on the guide posts 791 of the plurality of connecting shafts 79 .
- the end of the snap ring 77 abuts against the stop block 792 of the connecting shaft 79 .
- the guide post 791 of the connecting shaft 79 includes a limiting groove 7911
- the retaining spring 78 includes a plurality of grooves 781 .
- the plurality of grooves 781 of the retaining spring 78 are engaged with the plurality of limiting grooves 7911 of the connecting shaft 79 in a one-to-one correspondence.
- the fourth elastic member 76 may include a plurality of springs 761, and the fourth elastic member 76 may be in a compressed state to provide a pre-pressure.
- the rotating end 712 of the first synchronizing swing arm 71 , the first gear 731 , the second gear 732 and the rotating end 722 of the second synchronizing swing arm 72 are arranged in an arc shape. That is, the rotation axis of the rotating end 712 of the first synchronization swing arm 71, the rotation axis of the first gear 731, the rotation axis of the second gear 732, and the rotation axis of the rotation end 722 of the second synchronization swing arm 72 are arc-shaped Arrange.
- the partial structure of the synchronous damping member 7 installed on the main shaft 1 is arranged in an arc shape, which can make full use of the internal space of the main shaft 1, thereby helping to improve the compactness of the component arrangement of the electronic device 1000 and reduce the electronic equipment 1000.
- the volume of the device 1000 is arranged in an arc shape, which can make full use of the internal space of the main shaft 1, thereby helping to improve the compactness of the component arrangement of the electronic device 1000 and reduce the electronic equipment 1000.
- FIG. 51 is a schematic structural diagram of the first conjoined cam 74 shown in FIG. 50
- FIG. 52 is a structural schematic diagram of the first gear 731 shown in FIG. 50 .
- the first conjoined cam 74 has a first end surface 741 facing the synchronization assembly 70 , and the first end surface 741 includes a plurality of first concave surfaces 741 a and first convex surfaces 741 b arranged at intervals.
- the two surfaces of the first gear 731 cooperating with the first conjoined cam 74 and the second conjoined cam 75 include second concave surfaces 731 a and second convex surfaces 731 b arranged at intervals.
- FIG. 53 is a schematic diagram of the mating relationship between the first conjoined cam 74 and the first gear 731 when the first housing 10 and the second housing 30 are relatively unfolded to a flat state.
- the first concave surface 741a of the first conjoined cam 74 is in contact with the second convex surface 731b of the first gear 731
- the first convex surface 741b of the first conjoined cam 74 is in contact with the first gear
- the second concave surface 731a of 731 abuts.
- the fourth elastic member 76 is in a compressed state, and the elastic deformation amount of the fourth elastic member 76 is the first deformation amount.
- FIG. 54 is a schematic diagram of the mating relationship between the first conjoined cam 74 and the first gear 731 when the first housing 10 and the second housing 30 start to rotate relative to each other.
- the first convex surface 741b of the first conjoined cam 74 slides relative to the second convex surface 731b of the first gear 731 , and the first convex surface 741b and the second convex surface 731b partially abut.
- the elastic deformation amount of the fourth elastic member 76 is the second deformation amount, and the second deformation amount is greater than the first deformation amount.
- the first convex surface 741b pushes the second convex surface 731b, and through the cooperation between the first convex surface 741b and the second convex surface 731b, the torque that hinders the relative rotation of the housing can be provided, thereby improving the Hand feel of the electronic device 1000 during folding.
- the first convex surface 741b is relatively opposite to the second The convex surface 731b slides, and the elastic force generated by the deformation of the fourth elastic member 76 is transmitted to the second convex surface 731b of the first gear 731 through the first convex surface 741b of the first conjoined cam 74, and the force received by the second convex surface 731b is F5 .
- F 5x is the component force perpendicular to the length direction of the main shaft 1
- F 5y is the component force parallel to the length direction of the main shaft 1 .
- the structure of the second conjoined cam 75 may be the same as that of the first conjoined cam 74 , and the structure of the second gear 732 may be the same as that of the first gear 731 , and the specific structure thereof will not be repeated in this embodiment.
- the fitting relationship between 712 and the first conjoined cam 74 and the second conjoined cam 75, and the fitting relationship between the rotating end 722 of the second synchronous swing arm 72 and the first conjoined cam 74 and the second conjoined cam 75 which are the same as or similar to the matching relationship between the first gear 731 and the first conjoined cam 74 , the specific structure can refer to the above description, and will not be repeated here.
- a torque hindering the relative rotation of the first casing 10 and the second casing 30 can be provided by the cooperation between the several convex surfaces and the concave surfaces, thereby improving the hand feeling during the folding process of the electronic device 1000 .
- FIG. 55 is a partial structural schematic diagram of the synchronous damping member 7 shown in FIG. 50 . 14 and 54 together, when the first convex surface 741b of the first conjoined cam 74 slides relative to the second convex surface 731b of the first gear 731, the convex surface between the first conjoined cam 74 and the first gear 731 Pressing each other produces a first displacement amount M.
- the second conjoined cam 75 also slides relative to the first gear 731 , and the convex extrusion between the second conjoined cam 75 and the first gear 731 generates a second displacement amount N correspondingly.
- the second displacement amount N may be equal to the first displacement amount M.
- the distance between the circlip 78 and the circlip 77 is fixed, which is a fixed length S. Therefore, the first displacement amount M generated by the convex surface extrusion of the first gear 731 and the first conjoined cam 74 and the second displacement amount N generated by the convex surface extrusion of the first gear 731 and the second conjoined cam 75 are converted into The amount of elastic deformation of the fourth elastic member 76 .
- the amount of elastic deformation of the fourth elastic member 76 can be increased, so that when the first convex surface 741b and the second convex surface 731b are pressed against each other, the force F5 received by the first gear 731 is larger, and F5 is perpendicular to the main shaft 1
- the component force F 5x in the length direction is also correspondingly larger. Therefore, when the first casing 10 and the second casing 30 rotate relative to each other, a larger torque can be generated to hinder the relative rotation of the casings, thereby further improving the feel of the electronic device 1000 .
- the concave and convex surfaces of the first conjoined cam 74 and the second conjoined cam 75 are connected to the first gear 731 , the second gear 732 , the rotating end 712 of the first synchronizing swing arm 71 and the rotating end of the second synchronizing swing arm 72 .
- the concave and convex surfaces of the 722 cooperate with each other, they can provide greater torque, and improve the hand feeling of the electronic device 1000 in the process of folding and unfolding.
- the force along the first direction received by the first non-bending portion 2001 of the flexible display screen 200 is greater than the force along the first direction received by the closed state.
- the force along the third direction received by the second non-bending portion 2003 is greater than the force along the third direction received by the closed state. Therefore, the layered dislocation phenomenon of the flexible display screen 200 when the electronic device is unfolded from the closed state to the flattened state can be alleviated, and the crease recovery of the flexible display screen 200 can be accelerated, thereby improving the flattening effect of the flexible display screen.
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Abstract
Description
Claims (74)
- 一种电子设备,其特征在于,包括柔性显示屏(200)、第一壳体(10)、第二壳体(30)、第一弹性组件以及轴;所述柔性显示屏包括依次排列的第一非折弯部(2001)、折弯部(2002)以及第二非折弯部(2003);所述第一壳体(10)与所述第二壳体(30)分别位于所述轴的两侧;所述第一壳体(10)与所述第一非折弯部(2001)固定连接,所述第二壳体(30)与所述第二非折弯部(2003)固定连接;所述第一弹性组件位于所述轴与所述第一壳体(10)之间,所述第一弹性组件与所述轴转动连接,所述第一弹性组件与所述第一壳体(10)固定连接;第一结构件(9113)与第二结构件(511)抵接,其中,所述第一结构件(9113)是所述第一弹性组件的一部分,所述第二结构件(511)是所述轴的一部分;所述第一弹性组件在第一方向的压缩量产生弹力,通过所述第一壳体(10)和所述第一非折弯部(2001)将至少部分所述弹力传递至所述折弯部(2002),其中,所述第一方向垂直于所述轴的长度延伸方向,且所述第一方向平行于所述第一壳体(10);所述电子设备处于展平状态,所述第一结构件(9113)的第一处和所述第二结构件(511)的第一处抵接,所述第一弹性组件在第一方向的压缩量为第一压缩量;所述第一壳体(10)和所述第一弹性组件相对所述轴转动,所述第二壳体(30)相对所述轴转动,所述电子设备由所述展平状态转变为折叠状态;所述电子设备处于所述折叠状态,所述第一结构件(9113)的第二处和所述第二结构件(511)的第二处抵接,所述第一弹性组件在所述第一方向的压缩量为第二压缩量,所述第二压缩量小于所述第一压缩量;其中,所述第一结构件(9113)的第一处和所述第一结构件(9113)的第二处不同,和/或,所述第二结构件(511)的第一处和所述第二结构件(511)的第二处不同。
- 根据权利要求1所述的电子设备,其特征在于,所述电子设备处于所述展平状态,通过所述第一壳体(10)和所述第一非折弯部(2001)向所述折弯部(2002)传递的力为第一力;所述电子设备处于所述折叠状态,通过所述第一壳体(10)和所述第一非折弯部(2001)向所述折弯部(2002)传递的力为第二力,所述第二力小于所述第一力。
- 根据权利要求1所述的电子设备,其特征在于,所述轴与所述第一弹性组件通过第一转轴(5112)转动连接;所述电子设备处于所述展平状态,所述第一转轴(5112)的轴线与所述轴的第一处的距离为第一距离,所述第一距离在第一平面的投影长度为第一投影长度;所述电子设备处于所述折叠状态,所述第一转轴(5112)的轴线与所述轴的第二处的距离为第二距离,所述第二距离在所述第一平面的投影长度为第二投影长度,所述第二投影长度小于所述第一投影长度;其中,所述第一平面为所述第一壳体(10)与所述第一非折弯部(2001)固定连接的 面所在的平面。
- 根据权利要求1所述的电子设备,其特征在于,所述第一弹性组件设置有连接孔(3111);所述轴与所述第一弹性组件通过第一转轴(5112)转动连接,包括:所述第一转轴(5112)穿设于所述连接孔(3111)。
- 根据权利要求4所述的电子设备,其特征在于,所述连接孔(3111)包括第一侧壁和第二侧壁;所述第一转轴(5112)的轴线与所述第一侧壁的距离为第一距离,所述第一转轴(5112)的轴线与所述第二侧壁的距离为第二距离,所述第一距离小于所述第二距离;响应于作用于所述第一弹性组件的第三力,所述连接孔相对于所述第一转轴(5112)运动,所述第一转轴(5112)的轴线与所述第一侧壁的距离为第三距离,所述第一转轴(5112)的轴线与所述第二侧壁的距离为第四距离,所述第三距离大于所述第四距离;其中,所述第三力的方向为所述第二侧壁朝向所述第一侧壁的方向,所述第一侧壁与所述第一壳体(10)的距离为第五距离,所述第二侧壁与所述第一壳体(10)的距离为第六距离,所述第五距离小于所述第六距离。
- 根据权利要求4或5所述的电子设备,其特征在于,所述连接孔(3111)的第一截面至少包括腰圆形、椭圆形、圆形、矩形中的一种或多种,其中,所述第一截面与所述第一转轴(5112)的长度延伸方向垂直。
- 根据权利要求1至3任一项所述的电子设备,其特征在于,所述第一弹性组件包括第一固定架(31);所述第一固定架(31)的至少一部分与所述第一壳体(10)固定连接。
- 根据权利要求7所述的电子设备,其特征在于,所述第一弹性组件还包括第一弹性件(912)和第一支架(911);所述第一弹性件(912)和所述第一支架(911)设置于所述第一固定架(31);所述第一弹性件(912)的至少一部分设置于所述第一支架(911)和所述第一固定架(31)之间;所述第一支架(911)与所述第二结构件(511)抵接,所述第一弹性件(912)通过所述第一固定架(31)与所述第一壳体(10)抵接。
- 根据权利要求8所述的电子设备,其特征在于,所述第一固定架(31)设置有第一安装槽(319),所述第一支架(911)设置有凸缘(9112);所述第一支架(911)通过所述凸缘(9112)与所述第一安装槽(319)滑动连接。
- 根据权利要求1所述的电子设备,其特征在于,还包括第二弹性组件;所述轴包括第一转动件和第二转动件;所述第一弹性组件包括第一固定架(31),所述第二弹性组件包括第二固定架(32);所述第一转动件包括第一连接组件以及第一转动臂(51);所述第二转动件包括第二连接组件以及第二转动臂(52);所述第一连接组件包括滑动端和转动端,所述第一连接组件的滑动端滑动连接所述第二固定架(32),所述第一连接组件的转动端转动连接所述第一转动臂(51)的第一端(511);所述第一转动臂(51)的第二端(512)通过第一转轴(5112)转动连接所述第一固定架(31);所述第二连接组件包括滑动端和转动端,所述第二连接组件的滑动端滑动连接所述第一固定架(31),所述第二连接组件的转动端转动连接所述第二转动臂(52)的第一端(521),所述第二转动臂(52)的第二端(522)转动连接所述第二固定架(32)。
- 根据权利要求10所述的电子设备,其特征在于,所述第二弹性组件位于所述轴与所述第二壳体(30)之间,所述第二弹性组件与所述轴转动连接,所述第二弹性组件与所述第二壳体(30)固定连接;第三结构件与第四结构件抵接,其中,所述第三结构件是所述第二弹性组件的一部分,所述第四结构件是所述轴的一部分;所述第二弹性组件在第二方向的压缩量产生弹力,通过所述第二壳体(30)和所述第二非折弯部(2003)将至少部分所述弹力传递至所述折弯部(2002),其中,所述第二方向垂直于所述轴的长度延伸方向,且所述第二方向平行于所述第二壳体(30);所述电子设备处于所述展平状态,所述第三结构件的第一处和所述第四结构件的第一处抵接,所述第二弹性组件在第二方向的压缩量为第三压缩量;所述电子设备处于所述折叠状态,所述第三结构件的第二处和所述第四结构件的第二处抵接,所述第二弹性组件在所述第二方向的压缩量为第四压缩量,所述第四压缩量小于所述第三压缩量;其中,所述第三结构件的第一处和所述第三结构件的第二处不同,和/或,所述第四结构件的第一处和所述第四结构件的第二处不同。
- 根据权利要求10或11所述的电子设备,其特征在于,所述轴还包括主轴(1);所述第一连接组件包括第一传动臂(41)和第一连接件(61);所述第二连接组件包括第二传动臂(42)和第二连接件(62);所述第一连接组件包括滑动端和转动端,所述第一连接组件的滑动端滑动连接所述第二固定架(32),所述第一连接组件的转动端转动连接所述第一转动臂(51)的第一端(511),包括:所述第一传动臂(41)包括滑动端(411)和转动端(412),所述第一传动臂(41)的滑动端(411)滑动连接所述第二固定架(32),所述第一传动臂(41)的转动端(412)转动连接所述主轴(1),所述第一传动臂(41)的转动端(412)转动连接所述第一连接件(61),所述第一连接件(61)转动连接所述第一转动臂(51)的第一端(511);所述第二连接组件包括滑动端和转动端,所述第二连接组件的滑动端滑动连接所述第一固定架(31),所述第二连接组件的转动端转动连接所述第二转动臂(52)的第一端(521),包括:所述第二传动臂(42)包括滑动端(421)和转动端(422),所述第二传动臂(42)的滑动端(421)滑动连接所述第一固定架(31),所述第二传动臂(42)的转动端(422)转动连接所述主轴(1),所述第二传动臂(42)的转动端(422)转动连接所述第二连接件(62),所述第二连接件(62)转动连接所述第二转动臂(52)的第一端(521)。
- 根据权利要求12所述的电子设备,其特征在于,所述主轴(1)包括内轴(15)和外轴(14),所述外轴(14)与所述内轴(15)固定连接;所述内轴(15)包括第一弧形凸块(153a)和第二弧形凸块,所述外轴(14)包括第一弧形凹槽(142a)和第二弧形凹槽,所述第一传动臂(41)的转动端(412)呈弧形且与所述第一弧形凸块(153a)及所述第一弧形凹槽(142a)转动连接,所述第二传动臂(42)的转动端(422)呈弧形且与所述第二弧形凸块及所述第二弧形凹槽转动连接。
- 根据权利要求13所述的电子设备,其特征在于,所述第一转动臂(51)与所述第一连接件(61)通过第二转轴(6121)连接,所述内轴(15)与所述外轴(14)围设形成弧形槽(156),所述第二转轴(6121)与所述弧形槽(156)滑动配合。
- 根据权利要求10所述的电子设备,其特征在于,所述第二固定架(32)包括第一滑槽(322),所述第一固定架(31)包括第二滑槽(312);所述第一传动臂(41)的滑动端(411)滑动连接所述第二固定架(32),包括:所述第一传动臂(41)的滑动端(411)与所述第一滑槽(322)滑动连接;所述电子设备由所述展平状态向所述折叠状态转换过程中,所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动;所述第二传动臂(42)的滑动端(421)滑动连接所述第一固定架(31),包括:所述第二传动臂(42)的滑动端(421)与所述第二滑槽(312)滑动连接;所述电子设备由所述展平状态向所述折叠状态转换过程中,所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动。
- 根据权利要求15所述的电子设备,其特征在于,所述第一传动臂(41)还包括第一限位件(81),所述第二传动臂(42)还包括第二限位件(82);所述第一限位件(81)设置于所述第一传动臂(41)的滑动端(411);所述第二限位件(82)设置于所述第二传动臂(42)的滑动端(421);所述第一滑槽(322)的侧壁间隔设置有第一凸部和第一凹部;所述第二滑槽(312)的侧壁间隔设置有第二凸部和第二凹部;所述第一限位件(81)包括第二弹性件,第二限位件(82)包括第三弹性件;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第一位置,所述第一限位件与所述第一凸部配合,所述第二弹性件的压缩量为第五压缩量;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第二位置,所述第一限位件与所述第一凹部配合,所述第二弹性件的压缩量为第六压缩量,其中,所述第五压缩量大于所述第六压缩量;所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动至第三位置,所述第二限位件与所述第二凸部配合,所述第三弹性件的压缩量为第七压缩量;所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动至第四位置,所述第二限位件与所述第二凹部配合,所述第三弹性件的压缩量为第八压缩量,其中,所述第七压缩量大于所述第八压缩量。
- 根据权利要求15所述的电子设备,其特征在于,所述第一传动臂(41)还包括第一限位件(81),所述第二传动臂(42)还包括第二限位件(82);所述第一限位件(81)设置于所述第一传动臂(41)的滑动端(411);所述第二限位件(82)设置于所述第二传动臂(42)的滑动端(421);所述第一滑槽(322)的侧壁间隔设置有第一凸部和第一凹部;所述第二滑槽(312)的侧壁间隔设置有第二凸部和第二凹部;所述第一凸部包括第二弹性件;所述第二凸部包括第三弹性件;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第一位置,所述第一限位件与所述第一凸部配合,所述第二弹性件的压缩量为第五压缩量;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第二位置,所述第一限位件与所述第一凹部配合,所述第二弹性件的压缩量为第六压缩量,其中,所述第五压缩量大于所述第六压缩量;所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动至第三位置,所述第二限位件与所述第二凸部配合,所述第三弹性件的压缩量为第七压缩量;所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动至第四位置,所述第二限位件与所述第二凹部配合,所述第三弹性件的压缩量为第八压缩量,其中,所述第七压缩量大于所述第八压缩量。
- 根据权利要求10所述的电子设备,其特征在于,还包括同步组件(70);所述同步组件(70)包括第一同步摆臂(71)、第二同步摆臂(72)、第一齿轮(731)以及第二齿轮(732);所述第一齿轮(731)设置于所述主轴(1),所述第一齿轮(731)转动连接所述主轴(1);所述第二齿轮(732)设置于所述主轴(1),所述第二齿轮(732)转动连接所述主轴(1);所述第一齿轮(731)与所述第二齿轮(732)啮合;所述第一同步摆臂(71)包括滑动端(711)和转动端(712),所述第一同步摆臂(71)的转动端(712)转动连接所述主轴(1),所述第一同步摆臂(71)的转动端(712)啮合所述第一齿轮(731),所述第一同步摆臂(71)的滑动端(711)滑动连接所述第一固定架(31);所述第二同步摆臂(72)包括滑动端(721)和转动端(722),所述第二同步摆臂(72)的转动端(722)转动连接所述主轴(1),所述第二同步摆臂(72)的转动端(722)啮合所述第二齿轮(732),所述第二同步摆臂(722)的滑动端(721)滑动连接所述第二固定架(32)。
- 根据权利要求1至5、8至11、13至18中任一项所述的电子设备,其特征在于, 所述柔性显示屏(200)包括:承托板,其中,所述承托板包括第一固定部、弯折区域和第二固定部;所述第一壳体(10)与所述第一非折弯部(2001)固定连接,所述第二壳体(30)与所述第二非折弯部(2003)固定连接,包括:所述第一壳体(10)与所述第一固定部固定连接,所述第二壳体(30)与所述第二固定部固定连接;所述承托板设置有通孔,所述通孔贯穿所述承托板的两个板面。
- 一种电子设备,其特征在于,包括柔性显示屏(200)、第一壳体(10)、第二壳体(30)、第一弹性组件以及轴;所述柔性显示屏包括依次排列的第一非折弯部、折弯部以及第二非折弯部;所述第一壳体(10)与所述第二壳体(30)分别位于所述轴的两侧;所述第一壳体(10)与所述第一非折弯部(2001)固定连接,所述第二壳体(30)与所述第二非折弯部(2003)固定连接;所述第一弹性组件位于所述轴与所述第一壳体(10)之间,所述第一弹性组件与所述轴通过第一转轴(5112)转动连接,所述第一弹性组件与所述轴的第一结构件(511)抵接,所述第一弹性组件与所述第一壳体(10)固定连接;所述电子设备处于展平状态,所述第一弹性组件和所述第一结构件(511)的第一处抵接,所述第一转轴(5112)的轴线与所述第一处的距离为第一距离,所述第一距离在第一平面的投影长度为第一投影长度,其中,所述第一平面为所述第一壳体(10)与所述第一非折弯部(2001)固定连接的面所在的平面;所述第一壳体(10)相对所述轴转动,所述第二壳体(30)相对所述轴转动,所述电子设备由所述展平状态转变为折叠状态;所述电子设备处于所述折叠状态,所述第一弹性组件和所述第一结构件(511)的第二处抵接,所述第一转轴(5112)的轴线与所述第二处的距离为第二距离,所述第二距离在所述第一平面的投影长度为第二投影长度,所述第二投影长度小于所述第一投影长度;其中,所述第一处和所述第二处不同。
- 根据权利要求20所述的电子设备,其特征在于,所述电子设备处于所述展平状态,所述第一弹性组件在第一方向的压缩量为第一压缩量,其中,所述第一方向垂直于所述轴的长度延伸方向,且所述第一方向平行于所述第一壳体;所述电子设备处于所述折叠状态,所述第一弹性组件在所述第一方向的压缩量为第二压缩量,所述第二压缩量小于所述第一压缩量。
- 根据权利要求20所述的电子设备,其特征在于,所述电子设备处于所述展平状态,通过所述第一壳体(10)和所述第一非折弯部(2001)向所述折弯部(2002)传递的力为第一力;所述电子设备处于所述折叠状态,通过所述第一壳体(10)和所述第一非折弯部(2001)向所述折弯部(2002)传递的力为第二力,所述第二力小于所述第一力。
- 根据权利要求20至22中任一项所述的电子设备,其特征在于,所述第一弹性组件设置有连接孔(3111);所述轴与所述第一弹性组件通过第一转轴(5112)转动连接,包括:所述第一转轴(5112)穿设于所述连接孔(3111);所述连接孔(3111)的第一截面至少包括腰圆形、椭圆形、圆形、矩形中的一种或多种,其中,所述第一截面与所述第一转轴(5112)的长度延伸方向垂直。
- 根据权利要求20所述的电子设备,其特征在于,还包括第二弹性组件;所述轴包括第一转动件,第二转动件和主轴(1);所述第一转动件包括第一传动臂(41),第一连接件(61)和第一转动臂(51);所述第二转动件包括第二传动臂(42),第二连接件(62)和第二转动臂(52);所述第一弹性组件包括第一固定架(31),所述第二弹性组件包括第二固定架(32);所述第一传动臂(41)包括滑动端(411)和转动端(412),所述第一传动臂(41)的滑动端(411)滑动连接所述第二固定架(32),所述第一传动臂(41)的转动端(412)转动连接所述主轴(1),所述第一传动臂(41)的转动端(412)转动连接所述第一连接件(61),所述第一连接件(61)转动连接所述第一转动臂(51)的第一端(511);所述第二传动臂(42)包括滑动端(421)和转动端(422),所述第二传动臂(42)的滑动端(421)滑动连接所述第一固定架(31),所述第二传动臂(42)的转动端(422)转动连接所述主轴(1),所述第二传动臂(42)的转动端(422)转动连接所述第二连接件(62),所述第二连接件(62)转动连接所述第二转动臂(52)的第一端(521)。
- 一种折叠装置,应用于具有柔性显示屏的电子设备,所述柔性显示屏(200)包括依次排列的第一非折弯部(2001)、折弯部(2002)以及第二非折弯部(2003),其特征在于,所述折叠装置包括第一壳体(10)、第二壳体(30)、第一弹性组件以及轴;所述第一壳体(10)与所述第二壳体(30)分别位于所述轴的两侧;所述第一壳体(10)与所述第一非折弯部(2001)固定连接,所述第二壳体(30)与所述第二非折弯部(2003)固定连接;所述第一弹性组件位于所述轴与所述第一壳体(10)之间,所述第一弹性组件与所述轴转动连接,所述第一弹性组件与所述第一壳体(10)固定连接;第一结构件(9113)与第二结构件(511)抵接,其中,所述第一结构件(9113)是所述第一弹性组件的一部分,所述第二结构件(511)是所述轴的一部分;所述第一弹性组件在第一方向的压缩量产生弹力,通过所述第一壳体(10)和所述第一非折弯部(2001)将至少部分所述弹力传递至所述折弯部(2002),其中,所述第一方向垂直于所述轴的长度延伸方向,且所述第一方向平行于所述第一壳体(10);所述电子设备处于展平状态,所述第一结构件(9113)的第一处和所述第二结构件(511)的第一处抵接,所述第一弹性组件在第一方向的压缩量为第一压缩量;所述第一壳体(10)和所述第一弹性组件相对所述轴转动,所述第二壳体(30)相对所述轴转动,所述电子设备由所述展平状态转变为折叠状态;所述电子设备处于所述折叠状态,所述第一结构件(9113)的第二处和所述第二结构 件(511)的第二处抵接,所述第一弹性组件在所述第一方向的压缩量为第二压缩量,所述第二压缩量小于所述第一压缩量;其中,所述第一结构件(9113)的第一处和所述第一结构件(9113)的第二处不同,和/或,所述第二结构件(511)的第一处和所述第二结构件(511)的第二处不同。
- 根据权利要求25所述的折叠装置,其特征在于,所述电子设备处于所述展平状态,通过所述第一壳体(10)和所述第一非折弯部(2001)向所述折弯部(2002)传递的力为第一力;所述电子设备处于所述折叠状态,通过所述第一壳体(10)和所述第一非折弯部(2001)向所述折弯部(2002)传递的力为第二力,所述第二力小于所述第一力。
- 根据权利要求25所述的折叠装置,其特征在于,所述轴与所述第一弹性组件通过第一转轴(5112)转动连接;所述电子设备处于所述展平状态,所述第一转轴(5112)的轴线与所述轴的第一处的距离为第一距离,所述第一距离在第一平面的投影长度为第一投影长度;所述电子设备处于所述折叠状态,所述第一转轴(5112)的轴线与所述轴的第二处的距离为第二距离,所述第二距离在所述第一平面的投影长度为第二投影长度,所述第二投影长度小于所述第一投影长度;其中,所述第一平面为所述第一壳体(10)与所述第一非折弯部(2001)固定连接的面所在的平面。
- 根据权利要求25所述的折叠装置,其特征在于,所述第一弹性组件设置有连接孔(3111);所述轴与所述第一弹性组件通过第一转轴(5112)转动连接,包括:所述第一转轴(5112)穿设于所述连接孔(3111)。
- 根据权利要求28所述的折叠装置,其特征在于,所述连接孔(3111)包括第一侧壁和第二侧壁;所述第一转轴(5112)的轴线与所述第一侧壁的距离为第一距离,所述第一转轴(5112)的轴线与所述第二侧壁的距离为第二距离,所述第一距离小于所述第二距离;响应于作用于所述第一弹性组件的第三力,所述连接孔相对于所述第一转轴(5112)运动,所述第一转轴(5112)的轴线与所述第一侧壁的距离为第三距离,所述第一转轴(5112)的轴线与所述第二侧壁的距离为第四距离,所述第三距离大于所述第四距离;其中,所述第三力的方向为所述第二侧壁朝向所述第一侧壁的方向,所述第一侧壁与所述第一壳体(10)的距离为第五距离,所述第二侧壁与所述第一壳体(10)的距离为第六距离,所述第五距离小于所述第六距离。
- 根据权利要求28或29所述的折叠装置,其特征在于,所述连接孔(3111)的第一截面至少包括腰圆形、椭圆形、圆形、矩形中的一种或多种,其中,所述第一截面与所述第一转轴(5112)的长度延伸方向垂直。
- 根据权利要求25至27任一项所述的折叠装置,其特征在于,所述第一弹性组件包括第一固定架(31);所述第一固定架(31)的至少一部分与所述第一壳体(10)固定连接。
- 根据权利要求31所述的折叠装置,其特征在于,所述第一弹性组件还包括第一弹性件(912)和第一支架(911);所述第一弹性件(912)和所述第一支架(911)设置于所述第一固定架(31);所述第一弹性件(912)的至少一部分设置于所述第一支架(911)和所述第一固定架(31)之间;所述第一支架(911)与所述第二结构件(511)抵接,所述第一弹性件(912)通过所述第一固定架(31)与所述第一壳体(10)抵接。
- 根据权利要求32所述的折叠装置,其特征在于,所述第一固定架(31)设置有第一安装槽(319),所述第一支架(911)设置有凸缘(9112);所述第一支架(911)通过所述凸缘(9112)与所述第一安装槽(319)滑动连接。
- 根据权利要求25所述的折叠装置,其特征在于,还包括第二弹性组件;所述轴包括第一转动件和第二转动件;所述第一弹性组件包括第一固定架(31),所述第二弹性组件包括第二固定架(32);所述第一转动件包括第一连接组件以及第一转动臂(51);所述第二转动件包括第二连接组件以及第二转动臂(52);所述第一连接组件包括滑动端和转动端,所述第一连接组件的滑动端滑动连接所述第二固定架(32),所述第一连接组件的转动端转动连接所述第一转动臂(51)的第一端(511);所述第一转动臂(51)的第二端(512)通过第一转轴(5112)转动连接所述第一固定架(31);所述第二连接组件包括滑动端和转动端,所述第二连接组件的滑动端滑动连接所述第一固定架(31),所述第二连接组件的转动端转动连接所述第二转动臂(52)的第一端(521),所述第二转动臂(52)的第二端(522)转动连接所述第二固定架(32)。
- 根据权利要求26所述的折叠装置,其特征在于,所述第二弹性组件位于所述轴与所述第二壳体(30)之间,所述第二弹性组件与所述轴转动连接,所述第二弹性组件与所述第二壳体(30)固定连接;第三结构件与第四结构件抵接,其中,所述第三结构件是所述第二弹性组件的一部分,所述第四结构件是所述轴的一部分;所述第二弹性组件在第二方向的压缩量产生弹力,通过所述第二壳体(30)和所述第二非折弯部(2003)将至少部分所述弹力传递至所述折弯部(2002),其中,所述第二方向垂直于所述轴的长度延伸方向,且所述第二方向平行于所述第二壳体(30);所述电子设备处于所述展平状态,所述第三结构件的第一处和所述第四结构件的第一处抵接,所述第二弹性组件在第二方向的压缩量为第三压缩量;所述电子设备处于所述折叠状态,所述第三结构件的第二处和所述第四结构件的第二处抵接,所述第二弹性组件在所述第二方向的压缩量为第四压缩量,所述第四压缩量小于所述第三压缩量;其中,所述第三结构件的第一处和所述第三结构件的第二处不同,和/或,所述第四结构件的第一处和所述第四结构件的第二处不同。
- 根据权利要求34或35所述的折叠装置,其特征在于,所述轴还包括主轴(1);所述第一连接组件包括第一传动臂(41)和第一连接件(61);所述第二连接组件包括第二传动臂(42)和第二连接件(62);所述第一连接组件包括滑动端和转动端,所述第一连接组件的滑动端滑动连接所述第二固定架(32),所述第一连接组件的转动端转动连接所述第一转动臂(51)的第一端(511),包括:所述第一传动臂(41)包括滑动端(411)和转动端(412),所述第一传动臂(41)的滑动端(411)滑动连接所述第二固定架(32),所述第一传动臂(41)的转动端(412)转动连接所述主轴(1),所述第一传动臂(41)的转动端(412)转动连接所述第一连接件(61),所述第一连接件(61)转动连接所述第一转动臂(51)的第一端(511);所述第二连接组件包括滑动端和转动端,所述第二连接组件的滑动端滑动连接所述第一固定架(31),所述第二连接组件的转动端转动连接所述第二转动臂(52)的第一端(521),包括:所述第二传动臂(42)包括滑动端(421)和转动端(422),所述第二传动臂(42)的滑动端(421)滑动连接所述第一固定架(31),所述第二传动臂(42)的转动端(422)转动连接所述主轴(1),所述第二传动臂(42)的转动端(422)转动连接所述第二连接件(62),所述第二连接件(62)转动连接所述第二转动臂(52)的第一端(521)。
- 根据权利要求36所述的折叠装置,其特征在于,所述主轴(1)包括内轴(15)和外轴(14),所述外轴(14)与所述内轴(15)固定连接;所述内轴(15)包括第一弧形凸块(153a)和第二弧形凸块,所述外轴(14)包括第一弧形凹槽(142a)和第二弧形凹槽,所述第一传动臂(41)的转动端(412)呈弧形且与所述第一弧形凸块(153a)及所述第一弧形凹槽(142a)转动连接,所述第二传动臂(42)的转动端(422)呈弧形且与所述第二弧形凸块及所述第二弧形凹槽转动连接。
- 根据权利要求37所述的折叠装置,其特征在于,所述第一转动臂(51)与所述第一连接件(61)通过第二转轴(6121)连接,所述内轴(15)与所述外轴(14)围设形成弧形槽(156),所述第二转轴(6121)与所述弧形槽(156)滑动配合。
- 根据权利要求34所述的折叠装置,其特征在于,所述第二固定架(32)包括第一滑槽(322),所述第一固定架(31)包括第二滑槽(312);所述第一传动臂(41)的滑动端(411)滑动连接所述第二固定架(32),包括:所述第一传动臂(41)的滑动端(411)与所述第一滑槽(322)滑动连接;所述电子设备由所述展平状态向所述折叠状态转换过程中,所述第一传动臂(41)的 滑动端(411)相对所述第一滑槽(322)滑动;所述第二传动臂(42)的滑动端(421)滑动连接所述第一固定架(31),包括:所述第二传动臂(42)的滑动端(421)与所述第二滑槽(312)滑动连接;所述电子设备由所述展平状态向所述折叠状态转换过程中,所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动。
- 根据权利要求39所述的折叠装置,其特征在于,所述第一传动臂(41)还包括第一限位件(81),所述第二传动臂(42)还包括第二限位件(82);所述第一限位件(81)设置于所述第一传动臂(41)的滑动端(411);所述第二限位件(82)设置于所述第二传动臂(42)的滑动端(421);所述第一滑槽(322)的侧壁间隔设置有第一凸部和第一凹部;所述第二滑槽(312)的侧壁间隔设置有第二凸部和第二凹部;所述第一限位件(81)包括第二弹性件,第二限位件(82)包括第三弹性件;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第一位置,所述第一限位件与所述第一凸部配合,所述第二弹性件的压缩量为第五压缩量;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第二位置,所述第一限位件与所述第一凹部配合,所述第二弹性件的压缩量为第六压缩量,其中,所述第五压缩量大于所述第六压缩量;所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动至第三位置,所述第二限位件与所述第二凸部配合,所述第三弹性件的压缩量为第七压缩量;所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动至第四位置,所述第二限位件与所述第二凹部配合,所述第三弹性件的压缩量为第八压缩量,其中,所述第七压缩量大于所述第八压缩量。
- 根据权利要求39所述的折叠装置,其特征在于,所述第一传动臂(41)还包括第一限位件(81),所述第二传动臂(42)还包括第二限位件(82);所述第一限位件(81)设置于所述第一传动臂(41)的滑动端(411);所述第二限位件(82)设置于所述第二传动臂(42)的滑动端(421);所述第一滑槽(322)的侧壁间隔设置有第一凸部和第一凹部;所述第二滑槽(312)的侧壁间隔设置有第二凸部和第二凹部;所述第一凸部包括第二弹性件;所述第二凸部包括第三弹性件;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第一位置,所述第一限位件与所述第一凸部配合,所述第二弹性件的压缩量为第五压缩量;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第二位置,所述第一限位件与所述第一凹部配合,所述第二弹性件的压缩量为第六压缩量,其中,所述第五压缩量大于所述第六压缩量;所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动至第三位置,所述第二限位件与所述第二凸部配合,所述第三弹性件的压缩量为第七压缩量;所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动至第四位置,所述第二限位件与所述第二凹部配合,所述第三弹性件的压缩量为第八压缩量,其中,所 述第七压缩量大于所述第八压缩量。
- 根据权利要求34所述的折叠装置,其特征在于,所述折叠装置还包括同步组件(70);所述同步组件(70)包括第一同步摆臂(71)、第二同步摆臂(72)、第一齿轮(731)以及第二齿轮(732);所述第一齿轮(731)设置于所述主轴(1),所述第一齿轮(731)转动连接所述主轴(1);所述第二齿轮(732)设置于所述主轴(1),所述第二齿轮(732)转动连接所述主轴(1);所述第一齿轮(731)与所述第二齿轮(732)啮合;所述第一同步摆臂(71)包括滑动端(711)和转动端(712),所述第一同步摆臂(71)的转动端(712)转动连接所述主轴(1),所述第一同步摆臂(71)的转动端(712)啮合所述第一齿轮(731),所述第一同步摆臂(71)的滑动端(711)滑动连接所述第一固定架(31);所述第二同步摆臂(72)包括滑动端(721)和转动端(722),所述第二同步摆臂(72)的转动端(722)转动连接所述主轴(1),所述第二同步摆臂(72)的转动端(722)啮合所述第二齿轮(732),所述第二同步摆臂(722)的滑动端(721)滑动连接所述第二固定架(32)。
- 一种折叠装置,其特征在于,包括依次连接的第一壳体(10)、转动机构(20)以及第二壳体(30),所述转动机构(20)能够发生形变,以使所述折叠装置处于展平状态或折叠状态;所述转动机构(20)包括主轴(1)、第一固定架(31)、第二固定架(32)、第一传动臂(41)、第一连接件(61)、第一转动臂(51)、第二传动臂(42)、第二连接件(62)以及第二转动臂(52);所述第一固定架(31)的至少一部分固定于所述第一壳体(10),所述第二固定架(32)的至少一部分固定于所述第二壳体(30);所述第一传动臂(41)包括滑动端(411)和转动端(412),所述第一传动臂(41)的滑动端(411)滑动连接所述第二固定架(32),所述第一传动臂(41)的转动端(412)转动连接所述主轴(1),所述第一传动臂(41)的转动端(412)转动连接所述第一连接件(61),所述第一连接件(61)转动连接所述第一转动臂(51)的第二端(512),所述第一转动臂(51)的第一端(511)转动连接所述第一固定架(31);所述第二传动臂(42)包括滑动端(421)和转动端(422),所述第二传动臂(42)的滑动端(421)滑动连接所述第一固定架(31),所述第二传动臂(42)的转动端(422)转动连接所述主轴(1),所述第二传动臂(42)的转动端(422)转动连接所述第二连接件(62),所述第二连接件(62)转动连接所述第二转动臂(52)的第二端(522),第二转动臂(52)的第一端(521)转动连接所述第二固定架(32)。
- 根据权利要求43所述的折叠装置,其特征在于,所述主轴(1)包括外轴(14)和内轴(15),所述外轴(14)与所述内轴(15)固定连接;所述内轴(15)包括第一弧形凸块(153a)和第二弧形凸块,所述外轴(14)包括第 一弧形凹槽(142a)和第二弧形凹槽,所述第一传动臂(41)的转动端(412)呈弧形且与所述第一弧形凸块(153a)及所述第一弧形凹槽(142a)转动连接,所述第二传动臂(42)的转动端(422)呈弧形且与所述第二弧形凸块及所述第二弧形凹槽转动连接。
- 根据权利要求44所述的折叠装置,其特征在于,所述第一转动臂(51)与所述第一连接件(61)通过第二转轴(6121)连接,所述外轴(14)与所述内轴(15)围设形成弧形槽(156),所述第二转轴(6121)与所述弧形槽(156)滑动配合。
- 根据权利要求43所述的折叠装置,其特征在于,所述第二固定架(32)包括第一滑槽(322),所述第一固定架(31)包括第二滑槽(312);所述第一传动臂(41)的滑动端(411)滑动连接所述第二固定架(32),包括:所述第一传动臂(41)的滑动端(411)与所述第一滑槽(322)滑动连接;所述折叠装置由所述展平状态向所述折叠状态转换过程中,所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动;所述第二传动臂(42)的滑动端(421)滑动连接所述第一固定架(31),包括:所述第二传动臂(42)的滑动端(421)与所述第二滑槽(312)滑动连接;所述折叠装置由所述展平状态向所述折叠状态转换过程中,所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动。
- 根据权利要求46所述的折叠装置,其特征在于,所述第一传动臂(41)还包括第一限位件(81),所述第一限位件(81)设置于所述第一传动臂(41)的滑动端(411);所述第一滑槽(322)的侧壁间隔设置有第一凸部和第一凹部;所述第一限位件(81)包括第二弹性件;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第一位置,所述第一限位件与所述第一凸部配合,所述第二弹性件的压缩量为第一压缩量;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第二位置,所述第一限位件与所述第一凹部配合,所述第二弹性件的压缩量为第二压缩量,其中,所述第一压缩量大于所述第二压缩量。
- 根据权利要求46所述的折叠装置,其特征在于,所述第一传动臂(41)还包括第一限位件(81),所述第一限位件(81)设置于所述第一传动臂(41)的滑动端(411);所述第二限位件(82)设置于所述第二传动臂(42)的滑动端(421);所述第一滑槽(322)的侧壁间隔设置有第一凸部和第一凹部;所述第一凸部包括第二弹性件;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第一位置,所述第一限位件与所述第一凸部配合,所述第二弹性件的压缩量为第一压缩量;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第二位置,所述第一限位件与所述第一凹部配合,所述第二弹性件的压缩量为第二压缩量,其中,所述第一压缩量大于所述第二压缩量。
- 根据权利要求43所述的折叠装置,应用于具有柔性显示屏的电子设备,所述柔性显示屏包括依次排列的第一非折弯部(2001)、折弯部(2002)以及第二非折弯部(2003);所述第一壳体(10)与所述第一非折弯部(2001)固定连接,所述第二壳体(30)与所述第二非折弯部(2003)固定连接;所述转动机构(20)还包括第一弹性组件,所述第一弹性组件位于所述第一转动臂(51)与所述第一壳体(10)之间,所述第一弹性组件与所述第一转动臂(51)转动连接,所述第一弹性组件与所述第一壳体(10)固定连接,所述第一弹性组件包括所述第一固定架(31);第一结构件(9113)与第一转动臂(51)的第一端(511)抵接,其中,所述第一结构件(9113)是所述第一弹性组件的一部分;所述第一弹性组件在第一方向的压缩量产生弹力,通过所述第一壳体(10)和所述第一非折弯部(2001)将至少部分所述弹力传递至所述折弯部(2002),其中,所述第一方向垂直于所述主轴(1)的长度延伸方向,且所述第一方向平行于所述第一壳体(10);所述折叠装置处于所述展平状态,所述第一结构件(9113)的第一处和所述第一转动臂(51)的第一端(511)的第一处抵接,所述第一弹性组件在第一方向的压缩量为第三压缩量;所述第一壳体(10)和所述第一弹性组件相对所述主轴(1)转动,所述第二壳体(30)相对所述主轴(1)转动,所述折叠装置由所述展平状态转变为所述折叠状态;所述折叠装置处于所述折叠状态,所述第一结构件(9113)的第二处和所述第一转动臂(51)的第一端(511)的第二处抵接,所述第一弹性组件在所述第一方向的压缩量为第四压缩量,所述第四压缩量小于所述第三压缩量;其中,所述第一结构件(9113)的第一处和所述第一结构件(9113)的第二处不同,和/或,所述第一转动臂(51)的第一端(511)的第一处和所述第一转动臂(51)的第一端(511)的第二处不同。
- 根据权利要求49所述的折叠装置,其特征在于,所述第一转动臂(51)的第一端(511)与所述第一弹性组件通过第一转轴(5112)转动连接;所述折叠装置处于所述展平状态,所述第一转轴(5112)的轴线与所述第一转动臂(51)的第一端(511)的第一处的距离为第一距离,所述第一距离在第一平面的投影长度为第一投影长度;所述折叠装置处于所述折叠状态,所述第一转轴(5112)的轴线与所述第一转动臂(51)的第一端(511)的第二处的距离为第二距离,所述第二距离在所述第一平面的投影长度为第二投影长度,所述第二投影长度小于所述第一投影长度;其中,所述第一平面为所述第一壳体(10)与所述第一非折弯部(2001)固定连接的面所在的平面。
- 根据权利要求49所述的折叠装置,其特征在于,所述第一弹性组件设置有连接孔(3111);所述第一转动臂(51)的第一端(511)与所述第一弹性组件通过第一转轴(5112)转动连接,包括:所述第一转轴(5112)穿设于所述连接孔(3111)。
- 根据权利要求51所述的折叠装置,其特征在于,所述连接孔(3111)包括第一侧壁和第二侧壁;所述第一转轴(5112)的轴线与所述第一侧壁的距离为第一距离,所述第一转轴(5112)的轴线与所述第二侧壁的距离为第二距离,所述第一距离小于所述第二距离;响应于作用于所述第一弹性组件的第一力,所述连接孔相对于所述第一转轴(5112)运动,所述第一转轴(5112)的轴线与所述第一侧壁的距离为第三距离,所述第一转轴(5112)的轴线与所述第二侧壁的距离为第四距离,所述第三距离大于所述第四距离;其中,所述第一力的方向为所述第二侧壁朝向所述第一侧壁的方向,所述第一侧壁与所述第一壳体(10)的距离为第五距离,所述第二侧壁与所述第一壳体(10)的距离为第六距离,所述第五距离小于所述第六距离。
- 根据权利要求49至51中任一项所述的折叠装置,其特征在于,所述转动结构(20)还包括第二弹性组件;所述第二弹性组件位于所述第二转动臂(52)与所述第二壳体(30)之间,所述第二弹性组件与所述第二转动臂(52)转动连接,所述第二弹性组件与所述第二壳体(30)固定连接,所述第二弹性组件包括所述第二固定架(32);第三结构件与第二转动臂(52)的第一端(521)抵接,其中,所述第三结构件是所述第二弹性组件的一部分;所述第二弹性组件在第二方向的压缩量产生弹力,通过所述第二壳体(30)和所述第二非折弯部(2003)将至少部分所述弹力传递至所述折弯部(2002),其中,所述第二方向垂直于所述轴的长度延伸方向,且所述第二方向平行于所述第二壳体(30);所述折叠装置处于所述展平状态,所述第三结构件的第一处和所述第二转动臂(52)的第一端(521)的第一处抵接,所述第二弹性组件在第二方向的压缩量为第五压缩量;所述折叠装置处于所述折叠状态,所述第三结构件的第二处和所述第二转动臂(52)的第一端(521)的第二处抵接,所述第二弹性组件在所述第二方向的压缩量为第六压缩量,所述第五压缩量小于所述第六压缩量;其中,所述第三结构件的第一处和所述第三结构件的第二处不同,和/或,所述第二转动臂(52)的第一端(521)的第一处和所述第二转动臂(52)的第一端(521)的第二处不同。
- 根据权利要求43至53中任一项所述的折叠装置,其特征在于,所述转动机构(20)还包括第一支撑板(21)和第二支撑板(22),所述第一支撑板(21)固定连接所述第二传动臂(42)的滑动端(421),所述第二支撑板(22)固定连接所述第一传动臂(41)的滑动端(411);所述折叠装置处于所述展平状态,所述第一支撑板(21)与所述第二支撑板(22)齐平,所述第一支撑板(21)搭设在所述第一固定架(31)与所述主轴(1)之间,所述第二支撑板(22)搭设在所述第二固定架(32)与所述主轴(1)之间;所述折叠装置处于所述折叠状态,所述第一支撑板(21)堆叠于所述第一固定架(31) 背离所述第二固定架(32)的一侧,所述第二支撑板(22)堆叠于所述第二固定架(32)背离所述第一固定架(31)的一侧。
- 根据权利要求54所述的折叠装置,其特征在于,所述主轴(1)具有支撑面(11),所述折叠装置处于所述折叠状态,所述主轴(1)的支撑面(11)相对所述第一支撑板(21)及所述第二支撑板(22)露出,所述主轴(1)的支撑面呈弧形。
- 根据权利要求43至55中任一项所述的折叠装置,其特征在于,所述转动机构(20)还包括第一遮蔽板(23)和第二遮蔽板(24);所述第一遮蔽板(23)固定连接所述第二传动臂(42)的滑动端(421),所述第二遮蔽板(24)固定连接所述第一传动臂(41)的滑动端(411);或所述第一遮蔽板(23)固定连接所述第一支撑板(21)的至少一部分,所述第二遮蔽板(24)固定连接所述第二支撑板(22)的至少一部分。
- 根据权利要求43至56中任一项所述的折叠装置,其特征在于,所述主轴(1)还包括遮蔽板(16),所述内轴(15)位于所述外轴(14)与所述遮蔽板(16)之间。
- 根据权利要求43至57中任一项所述的折叠装置,其特征在于,所述转动机构(20)还包括同步组件(70);所述同步组件(70)包括第一同步摆臂(71)、第二同步摆臂(72)、第一齿轮(731)以及第二齿轮(732);所述第一齿轮(731)设置于所述主轴(1),所述第一齿轮(731)转动连接所述主轴(1);所述第二齿轮(732)设置于所述主轴(1),所述第二齿轮(732)转动连接所述主轴(1);所述第一齿轮(731)与所述第二齿轮(732)啮合;所述第一同步摆臂(71)包括滑动端(711)和转动端(712),所述第一同步摆臂(71)的转动端(712)转动连接所述主轴(1),所述第一同步摆臂(71)的转动端(712)啮合所述第一齿轮(731),所述第一同步摆臂(71)的滑动端(711)滑动连接所述第一固定架(31);所述第二同步摆臂(72)包括滑动端(721)和转动端(722),所述第二同步摆臂(72)的转动端(722)转动连接所述主轴(1),所述第二同步摆臂(72)的转动端(722)啮合所述第二齿轮(732),所述第二同步摆臂(722)的滑动端(721)滑动连接所述第二固定架(32)。
- 一种电子设备,其特征在于,包括依次连接的第一壳体(10)、转动机构(20)以及第二壳体(30),所述转动机构(20)能够发生形变,以使所述电子设备处于展平状态或折叠状态;所述转动机构(20)包括主轴(1)、第一固定架(31)、第二固定架(32)、第一传动臂(41)、第一连接件(61)、第一转动臂(51)、第二传动臂(42)、第二连接件(62)以及第二转动臂(52);所述第一固定架(31)的至少一部分固定于所述第一壳体(10),所述第二固定架(32) 的至少一部分固定于所述第二壳体(30);所述第一传动臂(41)包括滑动端(411)和转动端(412),所述第一传动臂(41)的滑动端(411)滑动连接所述第二固定架(32),所述第一传动臂(41)的转动端(412)转动连接所述主轴(1),所述第一传动臂(41)的转动端(412)转动连接所述第一连接件(61),所述第一连接件(61)转动连接所述第一转动臂(51)的第二端(512),所述第一转动臂(51)的第一端(511)转动连接所述第一固定架(31);所述第二传动臂(42)包括滑动端(421)和转动端(422),所述第二传动臂(42)的滑动端(421)滑动连接所述第一固定架(31),所述第二传动臂(42)的转动端(422)转动连接所述主轴(1),所述第二传动臂(42)的转动端(422)转动连接所述第二连接件(62),所述第二连接件(62)转动连接所述第二转动臂(52)的第二端(522),第二转动臂(52)的第一端(521)转动连接所述第二固定架(32)。
- 根据权利要求59所述的电子设备,其特征在于,所述主轴(1)包括外轴(14)和内轴(15),所述外轴(14)与所述内轴(15)固定连接;所述内轴(15)包括第一弧形凸块(153a)和第二弧形凸块,所述外轴(14)包括第一弧形凹槽(142a)和第二弧形凹槽,所述第一传动臂(41)的转动端(412)呈弧形且与所述第一弧形凸块(153a)及所述第一弧形凹槽(142a)转动连接,所述第二传动臂(42)的转动端(422)呈弧形且与所述第二弧形凸块及所述第二弧形凹槽转动连接。
- 根据权利要求60所述的电子设备,其特征在于,所述第一转动臂(51)与所述第一连接件(61)通过第二转轴(6121)连接,所述外轴(14)与所述内轴(15)围设形成弧形槽(156),所述第二转轴(6121)与所述弧形槽(156)滑动配合。
- 根据权利要求59所述的电子设备,其特征在于,所述第二固定架(32)包括第一滑槽(322),所述第一固定架(31)包括第二滑槽(312);所述第一传动臂(41)的滑动端(411)滑动连接所述第二固定架(32),包括:所述第一传动臂(41)的滑动端(411)与所述第一滑槽(322)滑动连接;所述电子设备由所述展平状态向所述折叠状态转换过程中,所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动;所述第二传动臂(42)的滑动端(421)滑动连接所述第一固定架(31),包括:所述第二传动臂(42)的滑动端(421)与所述第二滑槽(312)滑动连接;所述电子设备由所述展平状态向所述折叠状态转换过程中,所述第二传动臂(42)的滑动端(421)相对所述第二滑槽(312)滑动。
- 根据权利要求62所述的电子设备,其特征在于,所述第一传动臂(41)还包括第一限位件(81),所述第一限位件(81)设置于所述第一传动臂(41)的滑动端(411);所述第一滑槽(322)的侧壁间隔设置有第一凸部和第一凹部;所述第一限位件(81)包括第二弹性件;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第一位置,所述第一限位件与所述第一凸部配合,所述第二弹性件的压缩量为第一压缩量;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第二位置,所述第一限位件与所述第一凹部配合,所述第二弹性件的压缩量为第二压缩量,其中,所述第一压缩量大于所述第二压缩量。
- 根据权利要求62所述的电子设备,其特征在于,所述第一传动臂(41)还包括第一限位件(81),所述第一限位件(81)设置于所述第一传动臂(41)的滑动端(411);所述第二限位件(82)设置于所述第二传动臂(42)的滑动端(421);所述第一滑槽(322)的侧壁间隔设置有第一凸部和第一凹部;所述第一凸部包括第二弹性件;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第一位置,所述第一限位件与所述第一凸部配合,所述第二弹性件的压缩量为第一压缩量;所述第一传动臂(41)的滑动端(411)相对所述第一滑槽(322)滑动至第二位置,所述第一限位件与所述第一凹部配合,所述第二弹性件的压缩量为第二压缩量,其中,所述第一压缩量大于所述第二压缩量。
- 根据权利要求59所述的电子设备,其特征在于,所述电子设备还包括柔性显示屏(200);所述柔性显示屏包括依次排列的第一非折弯部(2001)、折弯部(2002)以及第二非折弯部(2003);所述第一壳体(10)与所述第一非折弯部(2001)固定连接,所述第二壳体(30)与所述第二非折弯部(2003)固定连接;所述转动机构(20)还包括第一弹性组件,所述第一弹性组件位于所述第一转动臂(51)与所述第一壳体(10)之间,所述第一弹性组件与所述第一转动臂(51)转动连接,所述第一弹性组件与所述第一壳体(10)固定连接,所述第一弹性组件包括所述第一固定架(31);第一结构件(9113)与第一转动臂(51)的第一端(511)抵接,其中,所述第一结构件(9113)是所述第一弹性组件的一部分;所述第一弹性组件在第一方向的压缩量产生弹力,通过所述第一壳体(10)和所述第一非折弯部(2001)将至少部分所述弹力传递至所述折弯部(2002),其中,所述第一方向垂直于所述主轴(1)的长度延伸方向,且所述第一方向平行于所述第一壳体(10);所述电子设备处于所述展平状态,所述第一结构件(9113)的第一处和所述第一转动臂(51)的第一端(511)的第一处抵接,所述第一弹性组件在第一方向的压缩量为第三压缩量;所述第一壳体(10)和所述第一弹性组件相对所述主轴(1)转动,所述第二壳体(30)相对所述主轴(1)转动,所述电子设备由所述展平状态转变为所述折叠状态;所述电子设备处于所述折叠状态,所述第一结构件(9113)的第二处和所述第一转动臂(51)的第一端(511)的第二处抵接,所述第一弹性组件在所述第一方向的压缩量为第四压缩量,所述第四压缩量小于所述第三压缩量;其中,所述第一结构件(9113)的第一处和所述第一结构件(9113)的第二处不同,和/或,所述第一转动臂(51)的第一端(511)的第一处和所述第一转动臂(51)的第一 端(511)的第二处不同。
- 根据权利要求65所述的电子设备,其特征在于,所述第一转动臂(51)的第一端(511)与所述第一弹性组件通过第一转轴(5112)转动连接;所述电子设备处于所述展平状态,所述第一转轴(5112)的轴线与所述第一转动臂(51)的第一端(511)的第一处的距离为第一距离,所述第一距离在第一平面的投影长度为第一投影长度;所述电子设备处于所述折叠状态,所述第一转轴(5112)的轴线与所述第一转动臂(51)的第一端(511)的第二处的距离为第二距离,所述第二距离在所述第一平面的投影长度为第二投影长度,所述第二投影长度小于所述第一投影长度;其中,所述第一平面为所述第一壳体(10)与所述第一非折弯部(2001)固定连接的面所在的平面。
- 根据权利要求65所述的电子设备,其特征在于,所述第一弹性组件设置有连接孔(3111);所述第一转动臂(51)的第一端(511)与所述第一弹性组件通过第一转轴(5112)转动连接,包括:所述第一转轴(5112)穿设于所述连接孔(3111)。
- 根据权利要求67所述的电子设备,其特征在于,所述连接孔(3111)包括第一侧壁和第二侧壁;所述第一转轴(5112)的轴线与所述第一侧壁的距离为第一距离,所述第一转轴(5112)的轴线与所述第二侧壁的距离为第二距离,所述第一距离小于所述第二距离;响应于作用于所述第一弹性组件的第一力,所述连接孔相对于所述第一转轴(5112)运动,所述第一转轴(5112)的轴线与所述第一侧壁的距离为第三距离,所述第一转轴(5112)的轴线与所述第二侧壁的距离为第四距离,所述第三距离大于所述第四距离;其中,所述第一力的方向为所述第二侧壁朝向所述第一侧壁的方向,所述第一侧壁与所述第一壳体(10)的距离为第五距离,所述第二侧壁与所述第一壳体(10)的距离为第六距离,所述第五距离小于所述第六距离。
- 根据权利要求65至68中任一项所述的电子设备,其特征在于,所述转动结构(20)还包括第二弹性组件;所述第二弹性组件位于所述第二转动臂(52)与所述第二壳体(30)之间,所述第二弹性组件与所述第二转动臂(52)转动连接,所述第二弹性组件与所述第二壳体(30)固定连接,所述第二弹性组件包括所述第二固定架(32);第三结构件与第二转动臂(52)的第一端(521)抵接,其中,所述第三结构件是所述第二弹性组件的一部分;所述第二弹性组件在第二方向的压缩量产生弹力,通过所述第二壳体(30)和所述第二非折弯部(2003)将至少部分所述弹力传递至所述折弯部(2002),其中,所述第二方向垂直于所述轴的长度延伸方向,且所述第二方向平行于所述第二壳体(30);所述电子设备处于所述展平状态,所述第三结构件的第一处和所述第二转动臂(52)的第一端(521)的第一处抵接,所述第二弹性组件在第二方向的压缩量为第五压缩量;所述电子设备处于所述折叠状态,所述第三结构件的第二处和所述第二转动臂(52)的第一端(521)的第二处抵接,所述第二弹性组件在所述第二方向的压缩量为第六压缩量,所述第五压缩量小于所述第六压缩量;其中,所述第三结构件的第一处和所述第三结构件的第二处不同,和/或,所述第二转动臂(52)的第一端(521)的第一处和所述第二转动臂(52)的第一端(521)的第二处不同。
- 根据权利要求59至69中任一项所述的电子设备,其特征在于,所述转动机构(20)还包括第一支撑板(21)和第二支撑板(22),所述第一支撑板(21)固定连接所述第二传动臂(42)的滑动端(421),所述第二支撑板(22)固定连接所述第一传动臂(41)的滑动端(411);所述电子设备处于所述展平状态,所述第一支撑板(21)与所述第二支撑板(22)齐平,所述第一支撑板(21)搭设在所述第一固定架(31)与所述主轴(1)之间,所述第二支撑板(22)搭设在所述第二固定架(32)与所述主轴(1)之间;所述电子设备处于所述折叠状态,所述第一支撑板(21)堆叠于所述第一固定架(31)背离所述第二固定架(32)的一侧,所述第二支撑板(22)堆叠于所述第二固定架(32)背离所述第一固定架(31)的一侧。
- 根据权利要求70所述的电子设备,其特征在于,所述主轴(1)具有支撑面(11),所述电子设备处于所述折叠状态,所述主轴(1)的支撑面(11)相对所述第一支撑板(21)及所述第二支撑板(22)露出,所述主轴(1)的支撑面呈弧形。
- 根据权利要求59至71中任一项所述的电子设备,其特征在于,所述转动机构(20)还包括第一遮蔽板(23)和第二遮蔽板(24);所述第一遮蔽板(23)固定连接所述第二传动臂(42)的滑动端(421),所述第二遮蔽板(24)固定连接所述第一传动臂(41)的滑动端(411);或所述第一遮蔽板(23)固定连接所述第一支撑板(21)的至少一部分,所述第二遮蔽板(24)固定连接所述第二支撑板(22)的至少一部分。
- 根据权利要求59至72中任一项所述的电子设备,其特征在于,所述主轴(1)还包括遮蔽板(16),所述内轴(15)位于所述外轴(14)与所述遮蔽板(16)之间。
- 根据权利要求59至73中任一项所述的电子设备,其特征在于,所述转动机构(20)还包括同步组件(70);所述同步组件(70)包括第一同步摆臂(71)、第二同步摆臂(72)、第一齿轮(731)以及第二齿轮(732);所述第一齿轮(731)设置于所述主轴(1),所述第一齿轮(731)转动连接所述主轴(1);所述第二齿轮(732)设置于所述主轴(1),所述第二齿轮(732)转动连接所 述主轴(1);所述第一齿轮(731)与所述第二齿轮(732)啮合;所述第一同步摆臂(71)包括滑动端(711)和转动端(712),所述第一同步摆臂(71)的转动端(712)转动连接所述主轴(1),所述第一同步摆臂(71)的转动端(712)啮合所述第一齿轮(731),所述第一同步摆臂(71)的滑动端(711)滑动连接所述第一固定架(31);所述第二同步摆臂(72)包括滑动端(721)和转动端(722),所述第二同步摆臂(72)的转动端(722)转动连接所述主轴(1),所述第二同步摆臂(72)的转动端(722)啮合所述第二齿轮(732),所述第二同步摆臂(722)的滑动端(721)滑动连接所述第二固定架(32)。
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CN112901643A (zh) | 2021-06-04 |
AU2021338733A9 (en) | 2024-04-18 |
CN116018574A (zh) | 2023-04-25 |
JP2023541909A (ja) | 2023-10-04 |
JP7506255B2 (ja) | 2024-06-25 |
EP4198680A1 (en) | 2023-06-21 |
US20240069604A1 (en) | 2024-02-29 |
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AU2021338733A1 (en) | 2023-05-04 |
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