CN211125435U - Self-generating wireless switch - Google Patents

Self-generating wireless switch Download PDF

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Publication number
CN211125435U
CN211125435U CN201922183405.4U CN201922183405U CN211125435U CN 211125435 U CN211125435 U CN 211125435U CN 201922183405 U CN201922183405 U CN 201922183405U CN 211125435 U CN211125435 U CN 211125435U
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China
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self
linkage
generating
driving
plate
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CN201922183405.4U
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Chinese (zh)
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刘远芳
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Guangdong Yibailong Intelligent Technology Co ltd
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Guangdong Yibailong Intelligent Technology Co ltd
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Abstract

The utility model provides a from electricity generation wireless switch, wherein from electricity generation wireless switch include an at least switch board linkage system, a from electricity generation kernel and a signal transmission unit, wherein the linkage system is coupled in with can be in under the switch board by the linkage and take place to remove when the switch board is pressed, wherein from electricity generation kernel is coupled in the linkage system with can be in when the switch board is pressed by the linkage system linkage drive and produce the electric energy, wherein by from the electric energy supply of electricity generation, signal transmission kernel quilt the switch board triggers and is controlled a radio control signal that the emission corresponds.

Description

Self-generating wireless switch
Technical Field
The utility model relates to a from the wireless switch that generates electricity, especially, relate to a from electricity generation wireless switch with aggregate unit, wherein by aggregate unit's linkage, from electricity generation wireless switch's switch board can the linkage drive from electricity generation from the electricity generation kernel electricity generation.
Background
Conventional switches are primarily wired directly or powered by batteries. As electrical equipment is widely used, the electrical equipment has higher requirements on the range of use and functionality of the switch. However, the wired power supply narrows the range of use of the switch and reduces the flexibility of use of the switch. And rely on the traditional switch of battery, must lead to the fact a large amount of discarded batteries correspondingly when using a large amount of batteries, this undoubtedly can aggravate environmental pollution, is unfavorable for green.
At present, a plurality of self-generating switches exist in the market, because the conventional multi-switch plate type self-generating switch cannot utilize one power generation core to supply a plurality of switch plates to work, most of the multi-switch plate type self-generating switches can configure the number of the power generation cores according to the number of the switch plates, so that the power generation cores are suitable for being driven by the switch plates with corresponding sizes to generate electric energy. That is to say, because the size of the self-generating kernel can not be adapted to the switch boards with various sizes, the multi-switch-board self-generating switch can not utilize one generating kernel to supply power. In other words, the generating core of the current self-generating switch has low universality and cannot be adapted to self-generating switches with various sizes. Specifically, the power generation core of the self-power generation switch is generally provided with a fixed size, and when the self-power generation switch is assembled in self-power generation switches of different sizes, since the size of the switch board of the self-power generation switch is not matched with the size of the power generation core, a situation that the switch board cannot drive the power generation core to generate electric energy in a linkage mode may occur, and therefore the self-power generation switch is in a failure mode. However, in the field of the self-generating switch, if different power generation cores are configured according to different sizes of the switch boards, various power generation cores need to be arranged, which increases the manufacturing difficulty of the power generation cores and also greatly increases the manufacturing cost of the self-generating switch. And various power generation cores can not be used alternately, so that the use of the cores of the self-generating switch is limited and the waste of resources is caused.
SUMMERY OF THE UTILITY MODEL
An object of the utility model is to provide a from electricity generation wireless switch, wherein from electricity generation wireless switch includes a linkage, wherein by linkage, from electricity generation wireless switch's switch board can the linkage drive from electricity generation wireless switch's the kernel of generating electricity from electricity generation produces the electric energy, in order to give from electricity generation wireless switch provides electric energy output, thereby is convenient for from electricity generation wireless switch is with the mode work of no battery.
Another object of the present invention is to provide a self-generating wireless switch, wherein the self-generating wireless switch operates in a battery-less manner, thereby providing an environment-friendly self-generating wireless switch.
Another object of the utility model is to provide a from electricity generation wireless switch, wherein by linkage, the switch board is right the linkage of the kernel from electricity generation does not receive the restriction of switch board size, so that the kernel from electricity generation is applicable to various sizes from electricity generation wireless switch.
Another object of the present invention is to provide a self-generating wireless switch, wherein the linkage is set under the switch board, and the size thereof is adapted to the size of the switch board, so that when the arbitrary position of the switch board is pressed, the linkage can be moved by the switch board, that is, when the arbitrary position of the switch board is pressed, the self-generating core can be driven by linkage to generate electric energy.
Another object of the utility model is to provide a from electricity generation wireless switch, wherein by linkage, it is a plurality of the switch board can drive same from electricity generation kernel produces the electric energy, that is to say, from electricity generation wireless switch can be by one from electricity generation kernel supplies a plurality ofly the work of switch board has avoided a plurality of from the complexity that the electricity generation kernel was laid and can reduce from electricity generation wireless switch's cost provides a simple to operate, low cost from electricity generation wireless switch.
Another object of the utility model is to provide a from electricity generation wireless switch, wherein the aggregate unit includes two drive plates, each the size adaptation of drive plate corresponds the switch plate size is in with this when the switch plate is pressed, it corresponds the drive plate can be promoted to remove, thereby is convenient for the switch plate is right from the linkage drive of electricity generation kernel.
Another object of the present invention is to provide a self-generating wireless switch, wherein the self-generating core includes a linkage bracket and a power generating device coupled to the linkage bracket, wherein two of the driving plates are linked to the linkage bracket, so as to be any when the driving plates are pressed, the driving plates move downwards and push the linkage bracket move downwards, thereby the linkage bracket drives the power generating device to generate electric energy in a balanced manner.
Another object of the utility model is to provide a from electricity generation wireless switch, wherein from the electricity generation kernel the linkage support includes two linkage arms, two linkage arm is connected and respectively corresponding each linkage arm is set up, in order to be as arbitrary when the drive plate is pressed, it is corresponding linkage arm is driven and linkage another linkage arm, thereby two linkage arm drives balancedly power generation facility produces the electric energy.
Another object of the present invention is to provide a self-generating wireless switch, wherein each of the driving plates is provided with a groove for driving the driving plates to provide an operation space for the linkage arms.
Another object of the present invention is to provide a self-generating wireless switch, wherein each of the driving plates is configured as a wing plate and has a driving portion and a pivoting portion, wherein when the switching plate is pressed, the pivoting portion pivots so that the driving portion can drive the linkage arm downward.
Another object of the present invention is to provide a self-generating wireless switch, wherein the self-generating wireless switch includes a bottom case, wherein the driving board is pivotally disposed on both sides of the linking bracket, wherein when the switch board is pressed, the driving board is pushed towards the self-generating core to move downwards, thereby the linking driving the self-generating core generates electric energy.
Another object of the present invention is to provide a self-generating wireless switch, wherein the linkage further comprises two buffering reset pieces, wherein each of the buffering reset pieces is respectively disposed at each of the elastic support under the driving plate, wherein by the elastic support force of the buffering reset pieces is right to the buffering effect of the switch plate, the user is pressing the switch plate can have good pressing hand feeling.
Another object of the present invention is to provide a self-generating wireless switch, wherein each of the bottom of the driving board is provided with a supporting groove, wherein each of the supporting grooves is adapted to each of the buffer reset pieces so that each of the buffer reset pieces elastically supports each of the driving boards in the supporting groove.
Another object of the present invention is to provide a self-generating wireless switch, wherein two the buffering reset member is right the balance support of the switch board makes the switch board can be kept balanced by the whole, so that when the switch board is pressed, the switch board can be driven by the linkage device balance the self-generating kernel generates electric energy.
Another object of the utility model is to provide a from electricity generation wireless switch, wherein when the switch board is pressed, two the buffering resets and is pressed by two the drive plate and deposits the potential energy, and then works as when the switch board was released, two the buffering resets and can release the potential energy in order to drive two the drive plate replies to the normal position, drive then the switch board restores to the normal position to this provides one and has the automatic formula that resets the switch board from electricity generation wireless switch.
Another object of the utility model is to provide a from electricity generation wireless switch, wherein linkage's simple structure, the preparation is convenient, so that from electricity generation kernel with comparatively economic mode adaptation in various sizes from electricity generation wireless switch.
Another object of the present invention is to provide a self-generating wireless switch, wherein the self-generating wireless switch is pressed to generate electric energy, and the operation of the self-generating wireless switch is in accordance with the traditional operation habit of the user.
Another object of the present invention is to provide a self-generating wireless switch, wherein the bottom case further extends to have a plurality of stoppers, the stoppers can be in the pivot path of the driving board with the driving board is abutted and restricted the pivot angle of the driving board, and by the stoppers in the pivot path of the driving board is right the abutment restriction of the driving board the angle at which the pivoting of the driving board occurs is less than 30 °, so as to satisfy the self-generating wireless switch power supply amount while also obtaining the pressing hand feeling of the preferred.
Another object of the present invention is to provide a self-generating wireless switch, wherein the self-generating wireless switch is set to a self-generating wireless switch, wherein the self-generating wireless switch is capable of responding to different power supplies from the self-generating core, and the switch board is pressed to transmit different wireless control signals.
Another object of the present invention is to provide a self-generating wireless switch, wherein the self-generating wireless switch further comprises a signal transmitting unit, wherein the signal transmitting unit comprises a plurality of touch members corresponding to the switch board, and is configured to be driven when the switch board is pressed, the self-generating core generates electric energy, and the touch members are corresponding to the touch members and are driven to transmit corresponding wireless control signals to the signal transmitting unit.
For at least one purpose above realizing, the utility model provides a from electricity generation wireless switch, include:
at least one switch board;
a linkage, wherein the linkage is coupled under the switch plate to be capable of being moved in linkage when the switch plate is pressed;
a self-generating core, wherein the self-generating core is coupled to the linkage device to be driven by the linkage device to generate electric energy when the switch board is pressed; and
the signal transmitting unit comprises at least one touch control piece and a signal transmitting plate, wherein the touch control piece is arranged corresponding to the switch board, the signal transmitting plate is electrically connected to the self-generating core, when the switch board is pressed, the linkage device can be driven by the switch board in a linkage mode to drive the self-generating core to generate electric energy, the touch control piece is pressed by the switch board to be triggered, and the signal transmitting plate is controlled to transmit a wireless control signal corresponding to the triggered touch control piece through the electric energy supply of the self-generating core.
In an embodiment of the present invention, the self-generating wireless switch further includes a bottom case, wherein the self-generating core is disposed on the bottom case, wherein the linkage device includes two driving plates, two driving plates respectively disposed on two sides of the self-generating core and pivotally disposed on the bottom case, wherein when the switch board is pressed, the driving plates are pushed toward the self-generating core to move downward, thereby driving the self-generating core to generate electric energy.
In an embodiment of the present invention, the switch board has at least one pushing ridge extending from a position corresponding to the driving board, so that when the switch board is pressed, the pushing ridge of the switch board pushes the driving board to move.
In an embodiment of the present invention, the bottom casing is provided with a plurality of supporting members, each of the supporting members is provided with a pivot hole, wherein a pivot shaft extends from both sides of the driving plate, and each of the pivot shafts is disposed in the corresponding pivot hole, so as to form a state that the driving plate is pivotably disposed in the bottom casing.
In an embodiment of the present invention, the bottom shell is provided with a plurality of supporting members, each of the supporting members extends to form a pivot shaft, two sides of the driving plate are respectively provided with a pivot hole, and each of the pivot shafts is disposed in the corresponding pivot hole, so as to form a state that the driving plate is pivotably disposed in the bottom shell.
In an embodiment of the present invention, the self-generating core includes a linkage bracket and a power generating device coupled to the linkage bracket, wherein two of the driving boards are respectively disposed on the linkage bracket, so that when the driving boards are driven by the switch board to move downwards, the driving boards can push the linkage bracket to move downwards, and thus the linkage bracket drives the power generating device to generate electric energy.
In an embodiment of the present invention, each of the bottoms of the driving plates is provided with a groove, wherein the linkage bracket includes two linkage arms, two of the linkage arms are connected in linkage with each other and are respectively disposed under the corresponding grooves, wherein when any one of the driving plates is pushed to move downward, the linkage arms correspond to the driving plates and are driven to drive the other linkage arm, thereby driving the power generation device to generate electric energy in balance.
In an embodiment of the present invention, each of the driving plates has a driving portion and a pivoting portion extending from the driving portion, wherein the groove is disposed at a bottom of the driving portion, wherein when the driving plate is pushed, the pivoting portion of the driving plate pivots so that the driving portion can drive the linkage arm downward.
In an embodiment of the present invention, the pivot portion of the driving plate has an inclined surface, so that the driving plate is an airfoil.
The utility model discloses an in an embodiment, wherein linkage further includes two buffering resets, wherein each buffering resets and is set up in the drive plate with elastic support between the drain pan the drive plate, wherein work as when the switch board is pressed, corresponding buffering resets and is pressed and deposit potential energy, and then work as when the switch board is released, buffering resets and releases potential energy and the drive plate that the drive corresponds with the switch board restores to the original position.
In an embodiment of the present invention, the bottom casing is provided with two limiting members, wherein each of the limiting members respectively corresponds to the position of the buffer reset member is set to be used for fixing the position of the buffer reset member.
In an embodiment of the present invention, each of the bottom portions of the driving plates is provided with a supporting groove, wherein the buffering reset member is disposed in the corresponding supporting groove to elastically support the driving plates.
In an embodiment of the present invention, each of the support columns extends from the bottom of the driving board, wherein the support columns are respectively disposed in the corresponding buffer reset member to enable the buffer reset member to elastically support the driving board.
In an embodiment of the present invention, the buffering restoring member is configured as a spring.
In an embodiment of the present invention, the bottom casing further extends with a plurality of stoppers, each stopper has an extending end extending from the bottom casing and a stopping end extending from the extending end to a pivoting path of the driving plate, so that the stopping end can limit a pivoting angle of the driving plate by abutting the pivoting path of the driving plate against the driving plate, and the angle of the driving plate pivoting is limited to be less than 30 ° by abutting the pivoting path of the driving plate against the driving plate.
The utility model discloses an in an embodiment, from electricity generation wireless switch further includes a touch-control piece safety cover, wherein the touch-control piece safety cover is covered and is located on the signal transmission unit, be used for the protection touch-control piece.
The utility model discloses an in the embodiment, wherein the touch-control piece protection cover is provided with a plurality of operation grooves and has a shielding piece in each operation groove extension, each shielding piece corresponds to the position of touching the controlling part is set up and is made by elastic material by the setting, wherein when the switch board is pressed, shielding piece is pressed and triggers downwards and correspond touch the controlling part.
The utility model discloses an in the embodiment, wherein touch-control spare safety cover is provided with an installation axle, the switchboard both sides are provided with a mounting groove respectively, the switchboard by the mounting groove is blocked in touch-control spare safety cover the installation axle, with this the switchboard can be followed installation axle seesaw, thereby when pressing all can drive during the arbitrary one end of switchboard linkage.
The utility model discloses an in the embodiment, wherein the kernel of generating electricity further includes a supporting seat, wherein the supporting seat has a plurality of setting elements, and is a plurality of be provided with an installation room between the setting element, wherein the linkage support with power generation facility be set up in the installation room.
In an embodiment of the present invention, each of the two sides of the linkage arm of the linkage bracket is provided with a rotation shaft, wherein each of the positioning members of the supporting seat is provided with a rotation slot, and each of the rotation shafts is disposed in the rotation slot so as to be capable of rotating in the rotation slot when the linkage arm is linked.
In an embodiment of the present invention, the self-generating core further includes a reset unit, the reset unit is disposed below the linkage arm to store potential energy when the linkage arm is pushed to move downwards and release potential energy when the linkage arm is released, so that the linkage arm returns to the original position.
In an embodiment of the present invention, the reset member is a torsion spring.
In an embodiment of the present invention, the power generating device includes an energy storage member coupled to the linkage bracket, a magnetic assembly connected to the energy storage member, and a coil assembly, wherein when the linkage bracket is driven, the energy storage member is linked to store potential energy and drive the magnetic assembly to move, so that the magnetic assembly and the coil assembly generate relative motion therebetween to generate electric energy.
In an embodiment of the present invention, the power generating device further includes a swing arm, wherein one end of the swing arm is rotatably disposed on the coil assembly and the other end is connected to the magnetic assembly, so that when the magnetic assembly is linked, the swing arm is rotated along the coil assembly to facilitate the relative movement between the magnetic assembly and the coil assembly.
In an embodiment of the present invention, the coil assembly includes an iron core and a coil disposed around the iron core, wherein the magnetic assembly includes two magnetic conductive members and a permanent magnetic member disposed between the two magnetic conductive members, two lengths of the magnetic conductive members are greater than lengths of the permanent magnetic members so as to form a magnetic gap between the two magnetic conductive members, wherein one end of the iron core is disposed in the magnetic gap, so that when the magnetic assembly is moved in a linked manner, the iron core alternately contacts each of the magnetic conductive members in the magnetic gap, thereby generating an induced current in the coil.
The utility model discloses on the other hand still provides a linkage method from the aggregate unit of electricity generation wireless switch, including following step:
(a) pressing a switch plate;
(b) pushing a driving plate to move by pressing the switch plate;
(c) a linkage support for driving a self-generating core in a linkage manner by the movement of the driving plate;
(d) the linkage of the linkage bracket drives a power generation device to generate electric energy; and
(e) by means of pressing the switch board and supplying electric energy to the power generation device, a touch control piece is triggered and a signal transmitting board is controlled to transmit a wireless control signal corresponding to the touch control piece.
In an embodiment of the present invention, in the step (b), when the driving plate moves, the driving plate presses a buffer reset member to store potential energy.
In an embodiment of the present invention, when the switch board is released, the buffering reset member releases potential energy to push the driving board and the switch board to return to the original position.
Further objects and advantages of the invention will be fully apparent from the ensuing description and drawings.
Drawings
Fig. 1 is a perspective view of the self-generating wireless switch according to a preferred embodiment of the present invention.
Fig. 2 is a partial exploded view of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 3 is a partial exploded view of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 4 is a partial exploded view of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 5A is a schematic diagram of a half-section structure of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 5B is a schematic diagram of a half-section structure of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 6A is a schematic cross-sectional view of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 6B is a schematic cross-sectional view of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 7 is a partial exploded view of a self-generating core of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 8A is an enlarged side view of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 8B is an enlarged side view of the self-generating core of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 9 is a partial exploded view of a power generation device of the self-generating wireless switch according to the above preferred embodiment of the present invention.
Fig. 10 is a schematic diagram of a half-section structure of the power generation device of the self-power-generation wireless switch according to the above preferred embodiment of the present invention.
Detailed Description
The following description is presented to disclose the invention so as to enable any person skilled in the art to practice the invention. The preferred embodiments in the following description are given by way of example only, and other obvious variations will occur to those skilled in the art. The basic principles of the invention, as defined in the following description, may be applied to other embodiments, variations, modifications, equivalents and other technical solutions without departing from the spirit and scope of the invention.
It will be understood by those skilled in the art that in the present disclosure, the terms "vertical," "horizontal," "up," "down," "front," "back," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," and the like are used in the orientation or positional relationship indicated in the drawings for ease of description and simplicity of description, and do not indicate or imply that the referenced device or element must have a particular orientation, be constructed and operated in a particular orientation, and thus, are not to be considered limiting.
It is understood that the terms "a" and "an" should be interpreted as meaning that a number of one element or element is one in one embodiment, while a number of other elements is one in another embodiment, and the terms "a" and "an" should not be interpreted as limiting the number.
In the description of the present invention, it is to be noted that, unless otherwise explicitly specified or limited, the terms "mounted," "connected," and "connected" are to be construed broadly, and may be, for example, fixedly connected, detachably connected, or integrally connected; may be mechanically connected, may be electrically connected or may be in communication with each other; either directly or indirectly through intervening media, either internally or in any other relationship. The specific meaning of the above terms in the present invention can be understood according to specific situations by those skilled in the art.
Referring to fig. 1 to 4 of the drawings, the self-generating wireless switch according to a preferred embodiment of the present invention is illustrated, as shown in fig. 1 to 4, and includes at least one switch board 10, a linkage 20, a self-generating core 30, and a signal transmitting unit 40, wherein the linkage 20 is coupled below the switch board 10 to be capable of being interlocked and moved when the switch board 10 is pressed, wherein the self-generating core 30 is coupled to the linkage 20 to be capable of being interlocked and driven by the linkage 20 to generate electric power when the switch board 10 is pressed, wherein the signal transmitting unit 40 includes at least one touch control 41 provided corresponding to the switch board 10 and a signal transmitting board 42 electrically connected to the self-generating core 30, wherein when the switch board 10 is pressed, the linkage device 20 can be moved by the switch board 10 to drive the self-generating core 30 to generate electric energy, the touch control part 41 is pressed by the switch board 10 to be triggered, and the signal transmitting board 42 is controlled to transmit a wireless control signal corresponding to the triggered touch control part by the supply of the electric energy of the self-generating core 30.
It should be noted that, in this preferred embodiment of the present invention, the self-generating wireless switch includes two switch boards 10, wherein when any one of the switch boards 10 is pressed, the linkage 20 can be driven by the switch boards 10 in linkage. In some embodiments of the present invention, the self-generating wireless switch may also include one or more switch boards 10, that is, the self-generating wireless switch may be a single-control, double-control, four-control or multi-control self-generating wireless switch, and the number of the switch boards 10 is not understood as being limited to the present invention.
Furthermore, it is worth mentioning that, the touch control component 41 of the signal transmitting unit 40 is correspondingly disposed under the switch board 10 and the number thereof can be set to be one, two, four or more, when the switch board 10 is pressed, the touch control component 41 corresponding to the switch board 10 is pressed by the switch board 10 to be triggered, so as to control the signal transmitting board 42 to transmit the corresponding wireless control signal, therefore, the number of the touch control component 41 can not be understood as a limitation of the present invention.
It is worth mentioning that the signal transmitting board 42 may be implemented as a single chip, wherein the touch control component 41 may be, but not limited to, a conductive film switch, a light touch switch, a detection switch, a micro switch, a conductive rubber switch, a metal contact switch, a switch made of semiconductor material, and the like.
In particular, as shown in fig. 2 and 3, in this preferred embodiment of the present invention, the switch board 10 is configured as a rocker switch board 10, and correspondingly, each rocker switch board 10 is correspondingly configured with two touch control components 41, specifically, two touch control components 41 are respectively configured below two ends of the rocker switch board 10, and the different touch control components 41 can control the self-generating wireless switch to transmit different wireless control signals by triggering, so that two ends of the rocker switch board 10 can respectively correspond to different control modes, in other words, pressing any one end of the rocker switch board 10 can drive the signal transmitting unit 40 to transmit different wireless control signals.
In some embodiments of the present invention, the switch board 10 may also correspond to only one of the touch control members 41, that is, one of the switch boards 10 may also correspond to one of the control modes, which is not limited by the present invention.
It should be noted that, as shown in fig. 2 and fig. 3, the self-generating wireless switch further includes a touch-control protection cover 50, wherein the touch-control protection cover 50 is covered on the signal transmitting unit 40 for protecting the touch-control 41.
It can be understood that, wherein when the switch board 10 is pressed many times, the touch control member 40 can be pressed repeatedly, when pressed many times repeatedly, the touch control member 40 may be damaged, so as to avoid the touch control member 40 being damaged and in order to prolong the service life of the self-generating wireless switch, the self-generating wireless switch of the present invention is provided with the touch control member protection cover 50 for protecting the touch control member 41.
Specifically, the touch control protection cover 50 is provided with a plurality of operation slots 52 and a shielding member 51 extending from each operation slot, each shielding member 51 is disposed at a position corresponding to the touch control member 41 and is made of an elastic material, wherein when the switch board 10 is pressed, the shielding member 51 is pressed to trigger the corresponding touch control member 41 downward, and when the switch board 10 is released, the shielding member 51 returns to the original position to facilitate the return of the touch control member 41.
More specifically, when the switch board 10 is pressed, the shielding member 51 is pressed to be elastically deformed, so as to move downwards to trigger the touch control member 41, and when the switch board 10 is released, the restoring force of the shielding member 51 enables the shielding member 51 to restore to the original state, so that the acting force on the touch control member 41 disappears, so that the touch control member 41 automatically restores to the original state, and thus, the touch control member 41 is prevented from being repeatedly pressed for many times to cause a failure condition. It can be understood that the shielding member 51 can prevent the acting force of the switch board 10 from directly acting on the touch control member 41, that is, the shielding member 51 can play a role of buffering when the switch board 10 triggers the touch control member 41, so as to prevent the touch control member 41 from being damaged, and can also enable a user to have a better pressing feeling.
It should be noted that the touch-control member protection cover 50 is provided with a mounting shaft 53, the switch board 10 is provided with a mounting groove 101 at each of both sides thereof, and the switch board 10 is engaged with the mounting shaft 53 of the touch-control member protection cover 50 through the mounting groove 101, so that the switch board 10 can be tilted along the mounting shaft 53, and thus the linkage 20 can be driven when any one end of the switch board 10 is pressed, thereby forming the rocker switch board 10.
It should be understood that, in some embodiments of the present invention, the installation shaft 53 and the installation groove 101 may also be disposed reversely, that is, the touch control protection cover 50 may also be disposed with two installation grooves 101, and the switch board 10 is disposed with the installation shaft 53, so that the state that the switch board 10 is disposed on the touch control protection cover 50 in a tilting manner is formed by the mutual engagement of the installation groove 101 and the installation shaft 53, which is not limited by the present invention.
Alternatively, the touch piece protection cover 50 may be made of, but not limited to, plastic, rubber, etc.
Further, the linkage device 20 includes two driving plates 21, wherein the two driving plates 21 are disposed below the switch board 10 and the two driving plates 21 are disposed on two sides of the self-generating core 30, respectively, so that when any end of the switch board 10 is pressed, the driving plate 21 corresponding to the switch board 10 can be pushed to move to drive the self-generating core 30 to generate electric energy in linkage.
It can be understood that, both ends of the switch board 10 can correspond to one of the driving boards 21 respectively, so that when any one end of the switch board 10 is pressed, the driving board 21 corresponding to the one end of the switch board 10 can be pushed to move downwards towards the self-generating kernel 30, thereby the multi-control self-generating switch can supply electric energy to the signal transmitting unit 40 to transmit different wireless control signals by one self-generating kernel 30, therefore, the self-generating switch of the present invention avoids the complexity of the layout of a plurality of self-generating kernels 30 and a plurality of switch boards 10 and can correspondingly reduce the production cost of the self-generating wireless switch.
It should be understood that, in the preferred embodiment of the present invention, the self-generating wireless switch is configured as a four-control self-generating wireless switch, specifically, the touch control members 41 are configured as four, and four touch control members 41 are respectively configured two by two corresponding to two ends of the switch board 10, so that when any one end of the switch board 10 is pressed, the signal transmitting unit 40 can be correspondingly controlled to transmit the corresponding wireless control signal.
It is worth mentioning that, at least one pushing ridge 102 extends from the switch board 10 corresponding to the position of the driving board 21, so that when the switch board 10 is pressed, the pushing ridge 102 of the switch board 10 pushes the driving board 21 to move.
Furthermore, the self-generating wireless switch further includes a bottom case 11, and a receiving cavity 110 is disposed between the bottom case 11 and the switch board 10 for receiving the linkage 20, the self-generating core 30 and the signal transmitting unit 40.
Specifically, the self-generating core 30 is disposed on the bottom case 11, wherein the two driving plates 21 are pivotally disposed on the bottom case 11 at two sides of the self-generating core 30, respectively, and when the switch board 10 is pressed, the driving plate 21 corresponding to the switch board 10 is pushed to move downward toward the self-generating core 30, so that the self-generating core 30 is driven to generate electric energy in a linkage manner.
It should be noted that, the bottom shell 11 is provided with a plurality of supporting members 113, each supporting member 113 is provided with a pivot hole 112, wherein a pivot shaft 2122 extends from both sides of the driving plate 21, and each pivot shaft 2122 is disposed in the corresponding pivot hole 112, so as to form a state that the driving plate 21 is pivotably disposed on the bottom shell 11.
Furthermore, it is worth mentioning that, in some embodiments of the present invention, the pivot shaft 2122 may be disposed on the supporting member 113, wherein both sides of the driving plate 21 may be respectively disposed with the pivot holes 112, wherein each pivot shaft 2122 is disposed on the corresponding pivot hole 112, so as to form a state that the driving plate 21 is pivotably disposed on the bottom case 11, which is not limited by the present invention.
Further, the self-generating core 30 comprises a linkage bracket 31 and a generating device 32 coupled to the linkage bracket 31, wherein the two driving plates 21 are respectively disposed on the linkage bracket 31, so that when the driving plates 21 are pushed by the switch board 10 to move, the driving plates 21 can push the linkage bracket 31 to move downwards towards the generating device 32, and the linkage bracket 31 is linked to drive the generating device 32 to generate electric energy.
It should be noted that a groove 210 is disposed at the bottom of each driving plate 21, wherein the linking bracket 31 includes two linking arms 311, the two linking arms 311 are connected in a linking manner and disposed below the corresponding groove 210, respectively, when any one of the driving plates 21 is pushed to move downward, the linking arm 311 corresponding to the driving plate 21 is driven to drive the other linking arm 311 in a linking manner, so that the two linking arms 311 drive the power generation device 32 to generate electric energy in a balanced manner.
It can be understood that when any driving plate 21 is driven, the corresponding linkage arm 311 is driven to move downwards in a linkage manner, so as to link the other linkage arm 311 to move, and therefore, when any one of the two linkage arms 311 is driven, the other linkage arm 311 moves in a linkage manner, so that any driving plate 21 can balance and drive the two linkage arms 311 to move downwards, and thus balance and drive the power generation device 32 to generate electric energy. In other words, pressing either end of the switch board 10 balances the ability to drive the generator 32 to generate electricity.
In addition, it is worth mentioning that each driving plate 21 has a driving portion 211 and a pivot portion 212 extending from the driving portion, wherein the groove 210 is disposed at the bottom of the driving portion 211, and when the driving plate 21 is pushed, the pivot portion 212 of the driving plate 21 pivots so that the driving portion 211 can drive the linkage arm 311 downward.
Specifically, the pivot shaft 2122 of the drive plate 21 is disposed on two sides of the drive portion 212, so that the pivot portion 212 of the drive plate 21 is pivotably disposed on the bottom case 11 via the pivot shaft 2122 and the pivot hole 112. The driving portion 212 of the driving plate 21 has an inclined surface 2121, so that the driving plate 21 is an airfoil-shaped plate, that is, the driving portion 211 of the driving plate 21 is higher than the pivoting portion 212 of the driving plate 21, so that when the switch board 10 is pressed, the pivoting portion 212 of the driving plate 21 pivots on the bottom case 11, thereby facilitating the driving portion 211 of the driving plate 21 to move downward to push the linkage 20.
Further, wherein linkage 20 further includes two buffering resets 22, wherein each buffering resets 22 set up in with elastic support between drive plate 21 and the drain pan 11 drive plate 21, wherein when switchboard 10 is pressed, corresponding buffering resets 22 is pressed and deposit the potential energy, and then when switchboard 10 is released, buffering resets 22 release the potential energy and drive corresponding drive plate 21 with switchboard 10 returns to the normal position, so that the utility model provides a have automatic reset formula switchboard 10 from the wireless switch of electricity generation.
Specifically, in the preferred embodiment of the present invention, as shown in fig. 6A and 6B, a supporting groove 213 is respectively disposed at the bottom of each of the driving plates 21, wherein each of the supporting grooves 213 is adapted to each of the buffering restoring members 22 so that each of the buffering restoring members 22 elastically supports each of the driving plates 21 in each of the supporting grooves 213. It can be understood that, in addition to the buffer reset member 22 for elastically supporting the driving plate 21 and restoring the driving plate 21 and the switch plate 10 to the original positions by the restoring force of the buffer reset member 22, the buffer reset member 22 is also used for balancing the movement of the driving plate 21 when the driving plate 21 is driven, so that a user can have a good pressing feeling.
In some embodiments of the present invention, a supporting column may also extend from the bottom of each driving plate 21, wherein the supporting column is respectively disposed on the corresponding buffering reset member 22 so that the buffering reset member 22 can elastically support the driving plate 21, which is not limited by the present invention.
It should be mentioned that, the bottom shell 11 is provided with two limiting members 111, wherein each limiting member 111 is respectively arranged corresponding to the position of the buffering reset member 22 for fixing the position of each buffering reset member 22.
Specifically, the limiting member 111 is a cross member extending from the bottom case 11, wherein the buffering restoring member 22 is configured as a spring, and the spring is sleeved on the limiting member 111 to be limited by the limiting member 111 along the radial direction.
In addition, it is worth mentioning that the buffering reset element 22 may also be configured as a spring, and the limiting element 111 may also be in other shapes and structures, which is not limited by the present invention.
In particular, a plurality of stoppers 114 further extend from the bottom case 11, each stopper 114 has an extending end 1141 extending from the bottom case 11 and a stopping end 1142 extending from the extending end 1141 to the pivot path of the driving plate 21, so that the stopping end 1142 can abut against the driving plate 21 in the pivot path of the driving plate 21 to limit the pivot angle of the driving plate 21, and the abutting of the stopping end 1142 against the driving plate 21 in the pivot path of the driving plate 21 limits the pivot angle of the driving plate 21 to be less than 30 °.
It can be understood that, when the driving plate 21 is pushed to move downwards, the driving plate 21 pivots on the supporting member 113 of the bottom case 11, wherein when the driving plate 21 pivots by an angle less than 30 °, the power generated by the power generation device 32 is driven in a linkage manner to generate enough power for the self-generating wireless switch to transmit the wireless control signal at least once, and when the driving plate 21 pivots by an angle less than 30 °, a user can have a better pressing hand feeling. That is, the blocking member 114 is used to limit the pivoting angle of the driving plate 21 to less than 30 °, so as to satisfy the power supply amount, facilitate the user to have a better pressing feeling, and conform to the conventional pressing habit.
Further, wherein the power generating device 32 is electrically connected to the signal transmitting board 42 of the signal transmitting unit 40 to provide power to the signal transmitting board 42, wherein when the switch board 10 is pressed once, the power generating device 32 is driven to generate power at least for the signal transmitting board 42 to transmit the wireless control signal at least once.
In particular, wherein the dimensions of each of said driving plates 21 are adapted to the dimensions of said switching plate 10 so as to be pushed by said switching plate 10. Specifically, in this preferred embodiment of the present invention, the length of the driving plate 21 is set according to the overall width of the switch board 10 of the self-generating wireless switch, so that the driving plate 21 can be pushed to move downward when any one of the switch boards 10 is driven.
Therefore, it can be understood that, in practical applications, the size of the driving plate 21 of the linkage device 20 may be set according to the size of the switch board 10, so that it can be satisfied that the switch board 10 drives the self-generating core 30 to generate electric energy by the linkage device 20 in a linkage manner, and thus, electric energy required by the signal transmitting unit 40 to transmit different wireless control signals can be provided by one self-generating core 30 when a plurality of switch boards 10 are pressed, thereby solving the problem that the self-generating core 30 is not common in practical applications, and simplifying the installation process of the self-generating wireless switch.
As shown in fig. 5A and fig. 6A, which are schematic diagrams of an initial state of the self-generating wireless switch, it can be seen that in this state, the two driving plates 21 of the linkage device 20 are elastically supported by the buffer reset member 22 and are blocked and limited by the blocking member 114 of the bottom case 11 to be maintained within 30 ° from the bottom case 11, wherein there is a certain angle between the two linkage arms 311 of the linkage bracket 31 and the bottom case 11, respectively, wherein when any end of the switch board 10 is pressed to drive the corresponding driving plate 21 to move downwards, the linkage arm 311 corresponding to the driving plate 21 is pushed to move downwards and is linked with the other linkage arm 311 to move downwards, so that the two linkage arms 311 of the self-generating core 30 move downwards towards the bottom case 11 to drive the generating device 32 to generate electric energy in a balanced manner, as shown in fig. 5B and 6B.
It should be noted that, as shown in fig. 5B and fig. 6B, in the pressed state of the self-generating wireless switch, the buffering reset piece 22 of the linkage 20 corresponding to the driving plate 21 is pressed to store potential energy. When the switch board 10 is released, the buffer reset piece 22 can release potential energy to return the driving board 21 and the switch board 10 to the original positions, i.e., return the self-generating wireless switch to the initial state.
In addition, when the switch board 10 is pressed to move downwards, the power generation device 32 generates power and supplies the power to the signal transmitting board 42 of the communication unit, and the touch control 41 is triggered by the switch board 10 and transmits the corresponding wireless control signal with the power supplied by the power generation device 32.
As shown in fig. 7, the self-generating core 30 of the self-generating wireless switch according to the above preferred embodiment of the present invention is illustrated, wherein the self-generating core 30 further includes a supporting base 33, wherein the supporting base 33 has a plurality of positioning members 331, and a plurality of installation chambers 330 are disposed between the positioning members 331, wherein the linking bracket 31 and the power generating device 32 are disposed in the installation chambers 330.
Further, two sides of each linkage arm 311 of the linkage bracket 31 are respectively provided with a rotating shaft 312, wherein each positioning member 331 of the supporting seat 33 is respectively provided with a rotating groove 332, wherein the rotating shaft 312 is arranged in the corresponding rotating groove 332 so as to be capable of rotating in the rotating groove 332 when the linkage arms 311 are linked, thereby facilitating the two linkage arms 311 to be driven in a balanced manner.
Furthermore, the self-generating core 30 further comprises a reset element 34, wherein the reset element 34 is arranged below the two linkage arms 311 to store potential energy when the linkage arms 311 are pushed to move downwards and release potential energy when the linkage arms 311 are released, so that the linkage arms 311 return to the original position.
Specifically, the reset part 34 elastically supports the two linkage arms 311 in the initial state of the self-generating wireless switch, and stores potential energy in the pressed state of the self-generating wireless switch, and further when the switch board 10 is released, the reset part 34 releases the potential energy to return the two linkage arms 311 to the original position.
It should be noted that the restoring member 34 can be, but not limited to, a torsion spring or a spring plate.
In addition, it should be noted that each of the linkage arms 311 has a driving arm 3111 and two transmission arms 3112 respectively extending from two ends of the driving arm 3111, so that each of the linkage arms 311 is a "U" shaped arm, wherein the transmission arms 3112 of the two linkage arms 311 are mutually connected in a transmission manner to form a state that the two linkage arms 311 are mutually linked.
Optionally, the two linkage arms 311 may be connected to each other, embedded into each other, or engaged with each other to form a mutual linkage state, which is not limited by the present invention.
As shown in fig. 8A, in the initial state of the self-generating wireless switch, the two linkage arms 311 of the self-generating core 30 and the supporting base 33 form a certain angle, when the switch board 10 is pressed, the two linkage arms 311 rotate in the rotating groove 332 through the rotating shaft 312 and are driven in a balanced manner, so as to drive the power generation device 32 in a linkage manner to generate electric energy, and at this time, the angle between the two linkage arms 311 and the supporting base 33 changes, as shown in fig. 8B.
It is worth mentioning that, as shown in fig. 8B, in the pressed state of the self-generating wireless switch, the reset piece 34 of the self-generating core 30 is pressed by the two linkage arms 311 to store potential energy. When the two linkage arms 311 are released, the reset piece 34 releases potential energy to enable the two linkage arms 311 to return to the original positions, so that the power generation device 32 is linked by the linkage bracket 31 again to generate electric energy.
Further, as shown in fig. 9 and 10, the power generation device 32 includes an energy storage member 321 coupled to the linking bracket 31, a magnetic assembly 322 connected to the energy storage member 321, and a coil assembly 323, wherein when the linking bracket 31 is driven, the energy storage member 321 is linked to store potential energy and drive the magnetic assembly 322 to move, so that the magnetic assembly 322 and the coil assembly 323 generate relative motion to generate electric energy in the coil assembly 323.
In particular, the power generation device 32 further comprises a swing arm 324, wherein one end of the swing arm 324 is rotatably disposed on the coil assembly 323 and the other end is connected to the magnet assembly 322, so that when the magnet assembly 322 is coupled, the swing arm 324 rotates along the coil assembly 323 to facilitate the relative movement between the magnet assembly 322 and the coil assembly 323.
Further, the coil assembly 323 includes an iron core 3231 and a coil 3232 disposed around the iron core 3231, wherein the magnetic assembly 322 includes two magnetic conductive members 3221 and a permanent magnetic member 3222 disposed between the two magnetic conductive members 3221, a length of the two magnetic conductive members 3221 is greater than a length of the permanent magnetic member 3222 to form a magnetic gap 3223 between the two magnetic conductive members 3221, and an end of the iron core 3231 is disposed in the magnetic gap 3223, so that when the magnetic assembly 322 is moved in an interlocking manner, the iron core 3231 alternately contacts each of the magnetic conductive members 3221 in the magnetic gap 3223, thereby generating an induced current in the coil 3232.
It should be noted that the power generation device 32 further includes two mounting members 325, and the two mounting members 325 are disposed on two sides of the magnetic assembly 322 for fixing the two magnetic conductive members 3221 of the magnetic assembly 322.
To sum up, linkage 20's simple structure is convenient for from the actual manufacturing and the installation of electricity generation wireless switch, and be convenient for from the electricity generation kernel with comparatively economy and simple mode adaptation in various sizes from electricity generation wireless switch.
The utility model discloses on the other hand still provides a linkage method from linkage device 20 of electricity generation wireless switch, including following step:
(a) pressing a switch plate 10;
(b) pushing a driving plate 21 to move by pressing the switch plate 10;
(c) a linkage bracket 31 for driving a self-generating core 30 in linkage by the movement of the driving plate 21;
(d) the linkage of the linkage bracket 31 drives a power generation device 32 to generate electric energy; and
(e) by pressing the switch board 10 and supplying power to the power generating device 32, a touch control part 41 is triggered and a signal emitting board 42 is controlled to emit a wireless control signal corresponding to the touch control part 41.
It is worth mentioning that, when the switch board 10 is pressed, the touch control 41 is triggered and turns on the operating circuit of the signal transmitting board 42, and the signal transmitting board 42 transmits the wireless control signal corresponding to the triggered touch control by the electric energy generated by the power generation device 32 being driven, so it can be understood that the signal transmitting board 42 can transmit the wireless control signal when the power generation device 32 is driven to generate the electric energy, that is, the signal transmitting board 42 is powered on.
It is also worth mentioning that in the step (d), the electric energy generated by the power generation device 32 is enough for the signal transmitting board 42 to transmit the wireless control signal at least once, that is, the electric energy generated by driving the power generation device 32 once is enough for the signal transmitting board 42 to transmit the wireless control signal once.
Specifically, in the step (b), when the driving plate 21 moves, a buffering reset piece 22 is pressed, so that the buffering reset piece 22 stores potential energy. Moreover, when the switch board 10 is released, the buffering reset piece 22 releases potential energy to push the driving board 21 and the switch board 10 to return to the original position.
It will be understood by those skilled in the art that the embodiments of the present invention as described above and shown in the drawings are given by way of example only and are not limiting of the present invention. The objects of the present invention have been fully and effectively accomplished. The functional and structural principles of the present invention have been shown and described in the embodiments without departing from the principles, embodiments of the present invention may have any deformation or modification.

Claims (25)

1. Self-generating wireless switch, its characterized in that includes:
at least one switch board;
a linkage, wherein the linkage is coupled under the switch plate to be capable of being moved in linkage when the switch plate is pressed;
a self-generating core, wherein the self-generating core is coupled to the linkage device to be driven by the linkage device to generate electric energy when the switch board is pressed; and
the signal transmitting unit comprises at least one touch control piece and a signal transmitting plate, wherein the touch control piece is arranged corresponding to the switch board, the signal transmitting plate is electrically connected to the self-generating core, when the switch board is pressed, the linkage device can be driven by the switch board in a linkage mode to drive the self-generating core to generate electric energy, the touch control piece is pressed by the switch board to be triggered, and the signal transmitting plate is controlled to transmit a wireless control signal corresponding to the triggered touch control piece through the electric energy supply of the self-generating core.
2. The self-generating wireless switch according to claim 1, further comprising a bottom case, wherein the self-generating core is disposed on the bottom case, wherein the linkage device comprises two driving plates pivotally disposed on the bottom case at two sides of the self-generating core, respectively, wherein when the switching plate is pressed, the driving plate corresponding to the switching plate is pushed to move downward toward the self-generating core, thereby driving the self-generating core to generate electric energy in linkage.
3. The self-generating wireless switch according to claim 2, wherein the bottom case is provided with a plurality of supporting members, each of the supporting members is provided with a pivot hole, wherein a pivot shaft extends from each of both sides of the driving plate, wherein each of the pivot shafts is provided in the corresponding pivot hole, thereby forming a state in which the driving plate is pivotably provided in the bottom case.
4. The self-generating wireless switch according to claim 2, wherein the bottom case is provided with a plurality of supporting members, each of the supporting members extends with a pivot shaft, wherein both sides of the driving plate are respectively provided with a pivot hole, wherein each of the pivot shafts is provided in the corresponding pivot hole, thereby forming a state in which the driving plate is pivotably provided in the bottom case.
5. The self-generating wireless switch according to claim 2, wherein the self-generating core comprises a linkage bracket and a power generating device coupled to the linkage bracket, wherein the two driving plates are respectively disposed on the linkage bracket, so that when the driving plates are pushed by the switch plate to move, the driving plates can push the linkage bracket to move downwards towards the power generating device, and the linkage bracket drives the power generating device to generate electric energy in linkage.
6. The self-generating wireless switch according to claim 5, wherein a groove is formed at a bottom of each of the driving plates, wherein the linkage bracket comprises two linkage arms which are linked to each other and are respectively disposed under the corresponding grooves, wherein when any one of the driving plates is pushed to move downward, the linkage arm corresponding to the driving plate is driven to link and drive the other linkage arm, so that the two linkage arms drive the power generating device to generate electric energy in a balanced manner.
7. The self-generating wireless switch according to claim 6, wherein each of the driving plates has a driving portion and a pivoting portion extending from the driving portion, wherein the recess is provided at a bottom of the driving portion, wherein when the driving plate is pushed, the pivoting portion of the driving plate pivots so that the driving portion can drive the linkage arm downward.
8. The self-generating wireless switch according to claim 7, wherein the pivoting portion of the driving plate has a slope, whereby the driving plate is a wing plate.
9. The self-generating wireless switch according to claim 8, wherein the linkage further comprises two buffering reset members, wherein each buffering reset member is disposed between the driving plate and the bottom case to elastically support the driving plate, wherein when the switch plate is pressed, the corresponding buffering reset member is pressed to store potential energy, and when the switch plate is released, the buffering reset member releases the potential energy to drive the corresponding driving plate and the switch plate to return to the original positions.
10. The self-generating wireless switch according to claim 9, wherein the bottom case is provided with two stoppers, wherein each stopper is provided corresponding to a position of the buffer reset member for fixing the position of the buffer reset member.
11. The self-generating wireless switch according to claim 10, wherein a supporting groove is formed at a bottom of each of the driving plates, and wherein the buffer restoring members are respectively formed at the corresponding supporting grooves to elastically support the driving plates.
12. The self-generating wireless switch according to claim 10, wherein a supporting column extends from a bottom of each of the driving boards, and wherein the supporting columns are respectively disposed on the corresponding buffer restoring members so that the buffer restoring members can elastically support the driving boards.
13. The self-generating wireless switch according to any one of claims 10 to 12, wherein the buffering reset member is provided as a spring.
14. The self-generating wireless switch according to any one of claims 2 to 12, wherein the switch plate is extended with at least one push ridge corresponding to a position of the driving plate, whereby the push ridge of the switch plate pushes the driving plate to move when the switch plate is pressed.
15. The self-generating wireless switch according to any one of claims 2 to 12, wherein the bottom case is further extended with a plurality of stoppers, each of the stoppers having an extended end extending from the bottom case and a blocking end extending from the extended end to a pivot path of the driving plate, so that the blocking end can limit a pivot angle of the driving plate by abutment of the pivot path of the driving plate with the driving plate, and the angle by which the driving plate pivots is limited to less than 30 ° by abutment of the blocking end with the pivot path of the driving plate with the driving plate.
16. The self-generating wireless switch according to claim 15, further comprising a touch-control member protecting cover, wherein the touch-control member protecting cover is covered on the signal transmitting unit for protecting the touch-control member.
17. The self-generating wireless switch according to claim 16, wherein the touch protection cover is provided with a plurality of operation slots and a shielding member extends from each of the operation slots, each of the shielding members is disposed corresponding to the touch control member and is made of an elastic material, and when the switch board is pressed, the shielding member is pressed to downwardly trigger the corresponding touch control member.
18. The self-generating wireless switch according to claim 17, wherein the touch member protection cover is provided with an installation shaft, and both sides of the switch plate are respectively provided with an installation groove, by which the switch plate is engaged with the installation shaft of the touch member protection cover, whereby the switch plate can be tilted along the installation shaft, so that the link gear can be driven when either end of the switch plate is pressed.
19. The self-generating wireless switch according to any one of claims 6 to 12, wherein the self-generating core further comprises a supporting base, wherein the supporting base has a plurality of positioning members, an installation chamber is provided between the plurality of positioning members, and the linking bracket and the power generating device are provided in the installation chamber.
20. The self-generating wireless switch according to claim 19, wherein a rotating shaft is disposed on each of two sides of each of the linkage arms of the linkage bracket, wherein a rotating groove is disposed on each of the positioning members of the supporting base, and wherein the rotating shaft is disposed in the corresponding rotating groove so as to be capable of rotating in the rotating groove when the linkage arms are linked.
21. The self-generating wireless switch according to claim 20, wherein the self-generating core further comprises a reset member, the reset member is disposed under the two linkage arms to store potential energy when the linkage arms are pushed to move downward and release potential energy when the linkage arms are released so that the linkage arms return to the original position.
22. The self-generating wireless switch according to claim 21, wherein the reset member is configured as a torsion spring.
23. The self-generating wireless switch according to claim 21, wherein the power generating device comprises an energy storage member coupled to the linkage bracket, a magnetic member connected to the energy storage member, and a coil member, wherein when the linkage bracket is driven, the energy storage member is linked to store potential energy and drive the magnetic member to move, so that the magnetic member and the coil member generate relative motion to generate electric energy in the coil member.
24. The self-generating wireless switch according to claim 23, wherein the power generating apparatus further comprises a swing arm, wherein one end of the swing arm is rotatably disposed on the coil assembly and the other end is connected to the magnetic assembly, such that when the magnetic assembly is interlocked, the swing arm rotates along the coil assembly to facilitate the relative movement between the magnetic assembly and the coil assembly.
25. The self-generating wireless switch according to claim 24, wherein the coil assembly comprises an iron core and a coil disposed around the iron core, wherein the magnetic assembly comprises two magnetic conductive members and a permanent magnetic member disposed between the two magnetic conductive members, a length of the two magnetic conductive members is greater than a length of the permanent magnetic member so as to form a magnetic gap between the two magnetic conductive members, and wherein an end of the iron core is disposed in the magnetic gap, so that when the magnetic assembly is moved in a linkage manner, the iron core alternately contacts each of the magnetic conductive members in the magnetic gap, thereby generating an induced current in the coil.
CN201922183405.4U 2019-12-09 2019-12-09 Self-generating wireless switch Active CN211125435U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201922183405.4U CN211125435U (en) 2019-12-09 2019-12-09 Self-generating wireless switch

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201922183405.4U CN211125435U (en) 2019-12-09 2019-12-09 Self-generating wireless switch

Publications (1)

Publication Number Publication Date
CN211125435U true CN211125435U (en) 2020-07-28

Family

ID=71699667

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201922183405.4U Active CN211125435U (en) 2019-12-09 2019-12-09 Self-generating wireless switch

Country Status (1)

Country Link
CN (1) CN211125435U (en)

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