US20120132026A1 - Vehicle seat - Google Patents
Vehicle seat Download PDFInfo
- Publication number
- US20120132026A1 US20120132026A1 US13/302,204 US201113302204A US2012132026A1 US 20120132026 A1 US20120132026 A1 US 20120132026A1 US 201113302204 A US201113302204 A US 201113302204A US 2012132026 A1 US2012132026 A1 US 2012132026A1
- Authority
- US
- United States
- Prior art keywords
- operating
- link
- lever
- escape
- lock
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
Links
Images
Classifications
-
- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05G—CONTROL DEVICES OR SYSTEMS INSOFAR AS CHARACTERISED BY MECHANICAL FEATURES ONLY
- G05G9/00—Manually-actuated control mechanisms provided with one single controlling member co-operating with two or more controlled members, e.g. selectively, simultaneously
- G05G9/08—Manually-actuated control mechanisms provided with one single controlling member co-operating with two or more controlled members, e.g. selectively, simultaneously the controlled members being actuated successively by progressive movement of the controlling member
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/02—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable
- B60N2/0296—Central command actuator to selectively switch on or engage one of several special purpose circuits or mechanisms
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/02—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable
- B60N2/04—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable
- B60N2/06—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable
- B60N2/062—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable transversally slidable
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/02—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable
- B60N2/04—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable
- B60N2/06—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable
- B60N2/065—Rear seats
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/02—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable
- B60N2/04—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable
- B60N2/06—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable
- B60N2/07—Slide construction
- B60N2/0702—Slide construction characterised by its cross-section
- B60N2/0705—Slide construction characterised by its cross-section omega-shaped
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/02—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable
- B60N2/04—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable
- B60N2/06—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable
- B60N2/07—Slide construction
- B60N2/0702—Slide construction characterised by its cross-section
- B60N2/0715—C or U-shaped
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/02—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable
- B60N2/04—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable
- B60N2/06—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable
- B60N2/08—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable characterised by the locking device
- B60N2/0812—Location of the latch
- B60N2/0818—Location of the latch inside the rail
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/02—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable
- B60N2/04—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable
- B60N2/06—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable
- B60N2/08—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable characterised by the locking device
- B60N2/0831—Movement of the latch
- B60N2/0837—Movement of the latch pivoting
- B60N2/0843—Movement of the latch pivoting about a longitudinal axis
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/02—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable
- B60N2/04—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable
- B60N2/12—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles the seat or part thereof being movable, e.g. adjustable the whole seat being movable slidable and tiltable
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60N—SEATS SPECIALLY ADAPTED FOR VEHICLES; VEHICLE PASSENGER ACCOMMODATION NOT OTHERWISE PROVIDED FOR
- B60N2/00—Seats specially adapted for vehicles; Arrangement or mounting of seats in vehicles
- B60N2/90—Details or parts not otherwise provided for
- B60N2/919—Positioning and locking mechanisms
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10T—TECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
- Y10T74/00—Machine element or mechanism
- Y10T74/20—Control lever and linkage systems
- Y10T74/20012—Multiple controlled elements
Definitions
- the invention relates to vehicle seat. More particularly, the invention relates to a vehicle seat provided with an actuating mechanism that actuates two mechanisms in response to an operation of a single lever.
- JP-A-2009-2924335 describes a vehicle seat provided with an actuating mechanism that releases locks of two mechanisms in response to an operation of a single lever.
- the two mechanisms are configured such that the lock of one is released first by the lever being operated, and the lock of the other is then released by the lever being operated further.
- a mechanism is provided that allows the power that is transmitted to escape midway so that an unreasonable load will not be applied to the mechanism on the side where the lock is released first due to the progression of the lever operation.
- the mechanism on the side where the lock is released later is configured to continue to receive a load from the operation of the lever even after the lock has been released by the progression of the lever operation. Therefore, it is difficult to set sufficient allowance for the lever operating amount, which is problematic.
- the invention provides a vehicle seat in which, in an actuating mechanism that actuates two mechanisms in response to an operation of a single lever, an excessive load following the lever operation will not be applied to the mechanisms even if sufficient operating amount allowance is provided for the lever.
- a first aspect of the invention relates to a vehicle seat that includes a first mechanism; a second mechanism; and an actuating mechanism that actuates the first mechanism and the second mechanism in response to an operation of a single lever.
- the actuating mechanism has an operating mechanism that is operated by the lever, a first link that is operated by the operating mechanism to actuate the first mechanism, and a second link that is operated to actuate the second mechanism.
- a transmitting portion that receives operating force of the lever transmitted from the operating mechanism and transmits the operating force to the first and second mechanisms, and an escape portion that allows the operating force transmitted from the operating mechanism to escape are formed side by side on each of the links, and power transmitted from the lever to each of the links via the operating mechanism is allowed to escape during operation.
- the links may be pivotally supported around a common shaft.
- pivotally providing the links around a common shaft enables the transmitting portions and the escape portions to be arranged side by side in order in the radial direction so that they are consolidated in one location, such that both links can be rotated or movement is allowed to escape so that both links will not rotate by a single actuating mechanism.
- the structure is able to be made more compact.
- a connecting position of a first cable that is connected to the first link may be farther away from the shaft than a connecting position of a second cable that is connected to the second link.
- the amount of movement of the first cable is able to be made greater than the amount of movement of the second cable, when the first link and the second link are rotated the same angle.
- each of the links may have a shape that extends flat, and the escape portion may have a curved shape.
- the links may be arranged side by side in an axial direction.
- arranging the links side by side in the axial direction enables the links to be arranged so that their movable ranges overlap in the axial direction.
- the actuating mechanism can be made compact in the radial direction.
- FIG. 1 is a plan view schematically showing the structure of a vehicle seat according to one example embodiment of the invention
- FIG. 2 is a side view of the vehicle seat according to the example embodiment
- FIG. 3 is an enlarged view of an actuating mechanism of the vehicle seat according to the example embodiment
- FIG. 4 is an enlarged view showing a state in which a lock of a longitudinal slide mechanism is released by operation of an operating lever of the vehicle seat according to the example embodiment;
- FIG. 5 is an enlarged view showing a state in which the operating force transmitted from the operating lever to a first link is allowed to escape;
- FIG. 6 is an enlarged view showing a state in which a lock of a lateral slide mechanism is released by operation of the operating lever;
- FIG. 7 is an enlarged view showing a state in which the operating force transmitted from the operating lever to a second link is allowed to escape;
- FIG. 8 is an enlarged view showing a state in which the operating lever has been operated to the maximum position
- FIG. 9 is a sectional view taken along line IX-IX in FIG. 2 , that shows a lock structure of the longitudinal slide mechanism (and the lateral slide mechanism) of the vehicle seat according to the example embodiment;
- FIG. 10 is an enlarged view of the structure of a transmitting mechanism of the vehicle seat according to the example embodiment.
- FIG. 11 is an enlarged view showing a state in which the transmitting mechanism is actuated by a seat back being tilted forward, in the vehicle seat according to the example embodiment.
- FIG. 12 is an enlarged view showing a state in which the operating lever is operated by the seat back being tilted forward, in the vehicle seat according to the example embodiment.
- the vehicle seat in this example embodiment is configured such that a seat main body 1 is able to slide in the longitudinal direction of the vehicle (i.e., longitudinally) as well as in the width direction of the vehicle (i.e., laterally), by a longitudinal slide mechanism (longitudinal slide mechanism 4 ) and a lateral slide mechanism (lateral slide mechanism 5 ), respectively, with respect to a vehicle floor F, as shown in FIG. 1 .
- the longitudinal slide mechanism 4 and the lateral slide mechanism 5 are always in slide-locked states.
- the operation to release these locks is performed by operating an operating lever 7 provided on an outer side portion of the seat main body 1 , as shown in FIG. 2 .
- the operating lever 7 is one example of the lever of the invention.
- this operation to release the locks may also be performed by an operation that involves operating a release lever 6 C provided on the outer side portion of the seat main body 1 , and tilting a seat back 2 to a forward tilted position that will be described later.
- a release operation is performed by operating this release lever 6 C, the seat main body 1 is placed in a state in which it is able to slide toward the inside and front of the vehicle with the seat back 2 in the forward tilted position and thus is bent over compactly toward the front of the vehicle, as shown in FIG. 1 , which enables a space L for getting into and out of a back row (third row seat 1 ′) of seats from a door Dr on that side to be wider than the initial space La before the seat is moved out of the way.
- the seat main body 1 includes a seat back 2 that is a backrest, and a seat cushion 3 that is a sitting portion.
- the lower end portion on both sides of the seat back 2 is connected, via a reclining mechanism 6 that functions as a rotating shaft device that can be stopped from rotating, to a rear end portion on both sides of the seat cushion 3 .
- the seat back 2 is retained with the backrest angle constantly fixed with respect to the seat cushion 3 by the reclining mechanisms 6 .
- the rotation-locked state of the reclining mechanisms 6 can be released all together by operating the release lever 6 C described above.
- the reclining mechanisms 6 are interposed between an outer plate portion of both side frames of a back frame 2 F that is the frame of the seat back 2 , and an inner plate portion of both side frames of a cushion frame 3 F that is the frame of the seat cushion 3 , and are provided connecting these together.
- the reclining mechanisms 6 are such that operating arms 6 B that are integrally connected to an operating shaft 6 A that protrudes through a center portion of the operating arms are rotatably operated via a cable, not shown, by the release lever 6 C described above (see FIG. 2 ) being operated, and the rotation-locked states of the reclining mechanisms 6 can be released together by the operating shafts 6 A being rotatably operated.
- the fixed state of the backrest angle is released, such that the seat back 2 is able to tilt forward and backward about the center shaft axis (i.e., the axis of the operating shafts 6 A) of the reclining mechanisms 6 . Accordingly, when an occupant is not seated in the seat main body 1 , the seat back 2 can be tilted to the forward tilted position shown in FIG. 11 by the urging force of a spring, not shown, that is strung between it and the seat cushion 3 .
- retaining plates 2 A formed in L-shapes and fixed to both side frames of the back frame 2 F are able to tilt forward or backward to positions in which they abut against a front protrusion (i.e., a forward tilt stopper 3 A) or a rear protrusion (i.e., a back tilt stopper 3 B) formed on both side frames of the cushion frame 3 F of the seat cushion 3 .
- the retaining plates 2 A are retained by falling into positions where they hit the forward tilt stopper 3 A, by the fixed state of the backrest according to the reclining mechanisms 6 being released and the retaining plates 2 A being urged forward by the spring.
- each longitudinal slide mechanism 4 has a slide rail 4 A that extends lengthwise in the longitudinal direction of the vehicle, a slider 4 B that is incorporated so as to be able to slide along the slide rail 4 A, and a lock pawl 4 C that is able to lock movement of the slider 4 B with respect to the slide rail 4 A.
- the slide rails 4 A are provided fixed on the vehicle floor F.
- each lateral slide mechanism 5 has a slide rail 5 A that extends lengthwise in the width direction of the vehicle, a slider 5 B that is incorporated so as to be able to slide along the slide rail 5 A, and a lock pawl 5 C that is able to lock movement of the slider 5 B with respect to the slide rail 5 A.
- the slide rails 5 A are provided fixed, spanning between the upper portions of the sliders 4 B of the longitudinal slide mechanisms 4 described above.
- both side frames of the cushion frame 3 F of the seat cushion 3 are provided fixed, spanning between the upper portions of the sliders 5 B, to the sliders 5 B that are mounted to these slide rails 5 A.
- slide lock structures of the longitudinal slide mechanisms 4 and the lateral slide mechanisms 5 will be described with reference to FIG. 9 .
- the basic structure of both of these slide lock structures is the same, so the following description will be centered around the slide lock structure of the longitudinal slide mechanism 4 , while collectively referring to the structure of the slide lock structure of the lateral slide mechanism 5 , that has basically the same structure, by placing its reference characters in parentheses.
- the lock pawl 4 C ( 5 C) is provided rotatably shaft-connected to the slider 4 B ( 5 B) by a spindle 4 C 1 ( 5 C 1 ), and is constantly retained in a state that stops movement of the slider 4 B ( 5 B) by the tip end of the lock pawl 4 C ( 5 C) passing through a lock hole 4 B 1 ( 5 B 1 ) formed in the slider 4 B ( 5 B) and a lock hole 4 A 1 ( 5 A 1 ) formed in the slide rail 4 A ( 5 A), by rotation (rotation in the counterclockwise direction in the drawing) from the urging force of a spring 4 C 2 ( 5 C 2 ) hooked between it and the slider 4 B ( 5 B).
- the lock pawl 4 C ( 5 C) releases the slide lock state of the slider 4 B ( 5 B) by rotating in a direction (clockwise in the drawing) such that it pulls out of the lock holes 4 A 1 ( 5 A 1 ) and 4 B 1 ( 5 B) against the urging force of the spring 4 C 2 ( 5 C 2 ), as shown by the virtual lines in FIG. 9 , in response to a cable 14 A ( 15 A) being pulled by the operating lever 7 being operated.
- the lock holes 4 A 1 ( 5 A 1 ) that are formed in the slide rail 4 A ( 5 A) are formed in multiple locations in a line at equidistant intervals in the length direction of the slide rail 4 A ( 5 A), such that the sliding movement of the slider 4 B ( 5 B) can be locked over a wide area.
- the operating lever 7 is provided shaft-connected, in a manner that enables it to be pulled up by the rotation of a connecting shaft 7 B, to a base plate 11 that is integrally fixed to the cushion frame 3 F of the seat cushion 3 , as shown in FIG. 3 .
- the operating lever 7 is constantly rotationally urged in a direction (counterclockwise in the drawing) in which it is pulled down with respect to the base plate 11 by the urging force of a spring 7 C that is hooked between it and the base plate 11 , and thus kept in a state in which it is retained abutting against a stopper 11 A formed on an upper end portion of the base plate 11 from the rear.
- the operating lever 7 is configured such that, when an operating portion 7 A that is formed, with a resin grip attached, on an arm portion that extends out toward the front of the vehicle, of the operating lever 7 is pulled upward, the operating lever 7 consequently transmits that operating force to the release mechanism 10 .
- the operating lever 7 is pulled up until it reaches a position where it is stopped by abutting against a stopper 11 A formed on an upper end portion of the base plate 11 from the front, as shown in FIG. 8 .
- the release mechanism 10 has an operating pin 12 , a transmitting mechanism 13 , a first link 14 , and a second link 15 , as shown in FIG. 3 .
- the operating pin 12 is an example of the operating mechanism of the invention.
- the operating pin 12 is provided integrally joined with the operating lever 7 and moves when the operating lever 7 is pulled upward, so as to push and rotate the first link 14 and the second link 15 that will be described later.
- the transmitting mechanism 13 has an operating arm 13 A provided rotatably shaft-connected to the operating shaft 6 A of the reclining mechanism 6 of the outer side portion, and an operating cable 13 B that connects the lower end portion of this operating arm 13 A with the rear upper end portion of the operating lever 7 shown in FIG. 3 .
- the former operating arm 13 A shown in FIG. 10 is retained, via the operating cable 13 B, with the upper end portion of the operating arm 13 A exposed along the path of forward rotational movement of the retaining plate 2 A that is fixed to the back frame 2 F of the seat back 2 described above, as shown in FIG. 10 , by the force with which the operating lever 7 shown in FIG. 3 is kept in the initial position by the urging force of the spring 7 C.
- the latter operating cable 13 B With the latter operating cable 13 B, the end portion on the side that is connected to the operating lever 7 is hooked inside a long hole 7 D formed in the operating lever 7 , as shown in FIG. 3 , such that the operating cable 13 B is initially retained in the lower end portion of the long hole 7 D.
- the long hole 7 D is formed curved in the shape of an arc centered around the connecting shaft 7 B.
- the operating arm 13 A is pushed by the retaining plate 2 A and rotates counterclockwise in the drawing, thus pulling the operating lever 7 up, as shown in FIG. 12 , via the operating cable 13 B, in response to the seat back 2 being tilted to the forward tilted position by the release lever 6 C (see FIG. 2 ) described above being operated.
- the first link 14 is provided side by side with the second link 15 in the axial direction, and is provided shaft-connected so as to be able to rotate with respect to the base plate 11 by a rotating shaft 16 , together with the second link 15 .
- the rotating shaft 16 is integrally joined with the base plate 11 , and the first link 14 and the second link 15 are pivotally provided so as to be able to rotate with respect to the rotating shaft 16 .
- the first link 14 is formed in an L-shape with an arm that extends out in two directions in the radial direction about the rotating shaft 16 .
- the portion where the arm extends out toward the upper front of the seat with respect to the rotating shaft 16 is a portion that is rotationally operated upon receiving transmission of rotational operating force from the operating pin 12 that is joined with the operating lever 7 described above. Also, the portion where the arm extends out toward the lower front of the seat with respect to the rotating shaft 16 is a portion that is connected to a cable 14 A for releasing the lock pawl 4 C of the longitudinal slide mechanism 4 shown in FIG. 9 described above, and that releases the lock of the longitudinal slide mechanism 4 by pulling the cable 14 A in response to that rotational operation.
- the end portion of the cable 14 A on the side that is connected to the first link 14 is provided hooked inside of a long hole 14 A 1 formed in the first link 14 , as shown in FIG. 3 .
- the long hole 14 A 1 is formed in a shape curved in an arc around the rotating shaft 16 .
- the second link 15 is formed in a shape of an arm that extends out in a T-shape toward the front of the seat, centered around the rotating shaft 16 .
- a portion of the arm where the arm extends upward from the front side of the seat is a portion that is rotationally operated upon receiving rotational operating force transmitted by the operating pin 12 that is joined with the operating lever 7 described above.
- a portion of the arm where the arm extends downward from the front side of the seat is a portion that is connected to a cable 15 A for releasing the lock pawl 5 C of the lateral slide mechanism 5 shown in FIG. 9 described above, and that releases the lock of the lateral slide mechanism 5 by pulling the cable 15 A in response to the movement of that rotational operation.
- the end portion of the cable 15 A on the side that is connected to the second link 15 is provided hooked inside of a long hole 15 A 1 formed in the second link 15 , as shown in FIG. 3 .
- the long hole 15 A 1 is formed in a shape curved in an arc around the rotating shaft 16 .
- the cable 14 A that is connected to the first link 14 described above is connected to the first link 14 in a position farther from the rotating shaft 16 than the cable 15 A that is connected to the second link 15 .
- the amount of movement in the pulling operation when the first link 14 and the second link 15 are rotated the same angle is greater with the cable 14 A that is connected to the first link 14 than it is with the cable 15 A that is connected to the second link 15 .
- a spring 17 is hooked between a hooking portion 15 D of the second link 15 and the rotating shaft 16 , so the second link 15 is constantly rotatably urged in the in the clockwise direction in the drawing by the urging force of the spring 17 .
- a pawl 15 E is formed, protruding out and bent back so as to be able to abut against an edge portion of the downward extending arm portion of the first link 14 , on the arm portion that extends out and downward with respect to the seat, of the second link 15 .
- the second link 15 initially transmits the force by which it is rotatably urged in the clockwise direction in the drawing by the spring 17 to the first link 14 via the pawl 15 E, such the first link 14 is also rotatably urged in the same direction, and the second link 15 stops rotating, and is thus retained, in a position where the first link 14 abuts with and is retained by the operating pin 12 that is fixed to the operating lever 7 . In this retained state, the second link 15 does not abut against the operating pin 12 . Instead, there is a gap in the rotational direction between the second link 15 and the operating pin 12 .
- the release mechanism 10 having this structure operates in the manner as described below in response to the operating lever 7 being pulled upward. That is, when the operating lever 7 is pulled upward from the initial position shown in FIG. 3 , the arm portion of the first link 14 is first pushed around in the counterclockwise direction in the drawing by the operating pin 12 , as shown in FIG. 4 . As a result, the second link 15 in which the pawl 15 E is abutted against the first link 14 is also pushed around by the first link 14 , and thus rotates in the counterclockwise direction in the drawing, together with the first link 14 . Also, from this rotation, the cable 14 A that is connected to the first link 14 is pulled more than the cable 15 A that is connected to the second link 15 . As a result, the locked stated of the longitudinal slide mechanisms 4 is released.
- a transmitting portion 14 B with a surface that extends flat in the radial direction, and an escape portion 14 C with a surface that is curved in an arc shape, are formed next to each other in the radial direction, on an edge surface on the upper side in the drawing, of the arm portion that is pushed by the operating pin 12 of the first link 14 .
- the latter escape portion 14 C forms an arced surface centered around the connecting shaft 7 B, when the first link 14 is rotated to the rotational position in FIG. 5 by the operating pin 12 .
- the first link 14 structured as described above is rotated by the operating pin 12 moving along the area where the transmitting portion 14 B is formed, until a rotational position (the position in FIG. 5 ) midway from the initial rotational position where the first link 14 started to be pushed around by the operating pin 12 in response to the operating lever 7 being pulled up, as shown in FIGS. 3 to 5 .
- a rotational position the position in FIG. 5
- the operating pin 12 will move along the area where the escape portion 14 C is formed, so even if the operating lever 7 continues to be pulled up, the first link 14 will not receive the power transmitted from the operating pin 12 .
- a transmitting portion 15 B with a surface that extends flat in the radial direction, and an escape portion 15 C with a surface that is curved in an arc shape, are formed next to each other in the radial direction, on an edge surface on the right side in the drawing, of the arm portion that is pushed by the operating pin 12 of the second link 15 .
- the latter escape portion 15 C forms an arced surface that is curved in an arc centered around the connecting shaft 7 B, when the second link 15 is rotated to the rotational position in FIG. 7 by the operating pin 12 .
- the second link 15 structured as described above is rotated by the operating pin 12 moving along the area where the transmitting portion 15 B is formed, until a rotational position (the position in FIG. 5 ) midway from the initial rotational position where the second link 15 started to be pushed around by the operating pin 12 in response to the operating lever 7 being pulled up, as shown in FIGS. 5 to 7 .
- a rotational position the position in FIG. 5
- the operating pin 12 will move along the area where the escape portion 15 C is formed, so even if the operating lever 7 continues to be pulled up, the second link 15 will not receive the power transmitted from the operating pin 12 .
- the lock release operations of the longitudinal slide mechanism 4 and the lateral slide mechanism 5 via the release mechanism 10 may similarly be performed by pulling up on the release lever 6 C described above. That is, when the release lever 6 C is operated, the seat back 2 tilts forward to the forward tilted position such that the operating arm 13 A is pushed around, as illustrated in FIG. 11 . This rotation causes the operating cable 13 B to be pulled, such that the operating lever 7 is pulled up, as shown in FIG. 12 . As a result, the release mechanism 10 operates to release the locks of the longitudinal slide mechanism 4 and the lateral slide mechanism 5 , as illustrated in FIGS. 3 to 8 .
- the transmitting portions 14 B and 15 B and the escape portions 14 C and 15 C are formed side by side, respectively, on the links 14 and 15 , and power transmitted from the operating lever 7 to the links 14 and 15 is allowed to escape midway through the operation.
- the operating force of the operating lever 7 after the locks of the slide mechanisms 4 and 5 have been released is allowed to escape so that it is not transmitted to the links 14 and 15 . Therefore, even if sufficient operating amount allowance is provided for the operating lever 7 , an excessive load following operation of the operating lever 7 will not be applied to the mechanisms (i.e., the slide mechanisms 4 and 5 ).
- the links 14 and 15 are arranged side by side in the axial direction, so the links 14 and 15 can be arranged so that their movable ranges overlap in the axial direction.
- the release mechanism 10 i.e., the actuating mechanism
- pivotally providing the links 14 and 15 around a common shaft enables the transmitting portions 14 B and 15 B and the escape portions 14 C and 15 C to be arranged side by side in order in the radial direction so that they are consolidated in one location, as shown in FIG. 3 , such that both links 14 and 15 can be rotated or movement is allowed to escape so that both links 14 and 15 will not rotate by a single release mechanism 10 (i.e., the actuating mechanism).
- the structure is able to be more compact.
- the invention has been described using one example embodiment, but the invention may also be carried out by various modes other than the example embodiment described above.
- a structure in which the operating pin 12 for actuating the first link 14 and the second link 15 is integrally provided with the operating lever 7 is given as an example of the structure corresponding to the operating mechanism of the invention.
- another actuating mechanism such as a gear mechanism or a link mechanism that actuates the first link 14 and the second link 15 by receiving operating force transmitted from the operating lever 7 (lever) may also be employed.
- a structure in which the lock of the longitudinal slide mechanism 4 is released first and then the lock of the lateral slide mechanism 5 is released, as a result of the release mechanism 10 that corresponds to the actuating mechanism of the invention being actuated is given as an example.
- the structure may also be one in which the lock of the lateral slide mechanism 5 is released first and then the lock of the longitudinal slide mechanism 4 is released.
- the lock release operations of these slide mechanisms 4 and 5 may be performed together.
- the actuating mechanism of the invention is not limited to being used to release the locks of the longitudinal slide mechanism 4 and the lateral slide mechanism 5 as described in the example embodiment. To the contrary, the actuating mechanism of the invention may be used as a mechanism for actuating a variety of mechanisms provided in a vehicle seat.
Landscapes
- Engineering & Computer Science (AREA)
- Aviation & Aerospace Engineering (AREA)
- Transportation (AREA)
- Mechanical Engineering (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Automation & Control Theory (AREA)
- Seats For Vehicles (AREA)
Abstract
An actuating mechanism (release mechanism) includes an operating pin (operating mechanism) that is operated by an operating lever, a first link that is operated by the operating pin to release a lock of a longitudinal slide mechanism, and a second link that is operated to release a lock of a lateral slide mechanism. A transmitting portion that receives operating force of the lever transmitted from the operating pin and transmits the operating force to a lock portion of each slide mechanism, and an escape portion that allows the operating force transmitted from the operating pin to escape are formed side by side on each of the links, and power transmitted from the lever to each of the links via the operating pin is allowed to escape during operation.
Description
- The disclosure of Japanese Patent Application No. 2010-264765 filed on Nov. 29, 2010 including the specification, drawings and abstract is incorporated herein by reference in its entirety.
- 1. Field of the Invention
- The invention relates to vehicle seat. More particularly, the invention relates to a vehicle seat provided with an actuating mechanism that actuates two mechanisms in response to an operation of a single lever.
- 2. Description of the Related Art
- Japanese Patent Application Publication No. 2009-292435 (JP-A-2009-292435) describes a vehicle seat provided with an actuating mechanism that releases locks of two mechanisms in response to an operation of a single lever. The two mechanisms are configured such that the lock of one is released first by the lever being operated, and the lock of the other is then released by the lever being operated further.
- In this related art, a mechanism is provided that allows the power that is transmitted to escape midway so that an unreasonable load will not be applied to the mechanism on the side where the lock is released first due to the progression of the lever operation. However, the mechanism on the side where the lock is released later is configured to continue to receive a load from the operation of the lever even after the lock has been released by the progression of the lever operation. Therefore, it is difficult to set sufficient allowance for the lever operating amount, which is problematic.
- In view of the foregoing problem, the invention provides a vehicle seat in which, in an actuating mechanism that actuates two mechanisms in response to an operation of a single lever, an excessive load following the lever operation will not be applied to the mechanisms even if sufficient operating amount allowance is provided for the lever.
- A first aspect of the invention relates to a vehicle seat that includes a first mechanism; a second mechanism; and an actuating mechanism that actuates the first mechanism and the second mechanism in response to an operation of a single lever. The actuating mechanism has an operating mechanism that is operated by the lever, a first link that is operated by the operating mechanism to actuate the first mechanism, and a second link that is operated to actuate the second mechanism. Also, a transmitting portion that receives operating force of the lever transmitted from the operating mechanism and transmits the operating force to the first and second mechanisms, and an escape portion that allows the operating force transmitted from the operating mechanism to escape are formed side by side on each of the links, and power transmitted from the lever to each of the links via the operating mechanism is allowed to escape during operation.
- According to the vehicle seat having the structure described above, having the transmitting portion and the escape portion formed side by side on each of the links, and allowing the power transmitted from the lever to the links to escape midway enables the operating force of the lever after the mechanisms have been actuated to escape so that the operating force does not affect the links. Therefore, even if sufficient operating amount allowance is provided for the lever, an excessive load following operation of the lever will not be applied to the mechanisms.
- In the vehicle seat described above, the links may be pivotally supported around a common shaft.
- According to the vehicle seat having the structure described above, pivotally providing the links around a common shaft enables the transmitting portions and the escape portions to be arranged side by side in order in the radial direction so that they are consolidated in one location, such that both links can be rotated or movement is allowed to escape so that both links will not rotate by a single actuating mechanism. As a result, the structure is able to be made more compact.
- Also, a connecting position of a first cable that is connected to the first link may be farther away from the shaft than a connecting position of a second cable that is connected to the second link.
- According to the vehicle seat described above, the amount of movement of the first cable is able to be made greater than the amount of movement of the second cable, when the first link and the second link are rotated the same angle.
- Also, the transmitting portion of each of the links may have a shape that extends flat, and the escape portion may have a curved shape.
- According to the vehicle seat described above, when the first link and the second link are rotated by the operating mechanism, power is transmitted according to the operating amount when the operating mechanism transmits power via the transmitting portion that extends flat, but power is not transmitted according to the operating amount when the operating mechanism transmits power via the escape portion that has a curved shape. Therefore, an unreasonable load will not be applied to the cables and the first and second mechanisms.
- Moreover, in the vehicle seat described above, the links may be arranged side by side in an axial direction.
- According to the vehicle seat described above, arranging the links side by side in the axial direction enables the links to be arranged so that their movable ranges overlap in the axial direction. As a result, the actuating mechanism can be made compact in the radial direction.
- The features, advantages, and technical and industrial significance of this invention will be described in the following detailed description of example embodiments of the invention with reference to the accompanying drawings, in which like numerals denote like elements, and wherein:
-
FIG. 1 is a plan view schematically showing the structure of a vehicle seat according to one example embodiment of the invention; -
FIG. 2 is a side view of the vehicle seat according to the example embodiment; -
FIG. 3 is an enlarged view of an actuating mechanism of the vehicle seat according to the example embodiment; -
FIG. 4 is an enlarged view showing a state in which a lock of a longitudinal slide mechanism is released by operation of an operating lever of the vehicle seat according to the example embodiment; -
FIG. 5 is an enlarged view showing a state in which the operating force transmitted from the operating lever to a first link is allowed to escape; -
FIG. 6 is an enlarged view showing a state in which a lock of a lateral slide mechanism is released by operation of the operating lever; -
FIG. 7 is an enlarged view showing a state in which the operating force transmitted from the operating lever to a second link is allowed to escape; -
FIG. 8 is an enlarged view showing a state in which the operating lever has been operated to the maximum position; -
FIG. 9 is a sectional view taken along line IX-IX inFIG. 2 , that shows a lock structure of the longitudinal slide mechanism (and the lateral slide mechanism) of the vehicle seat according to the example embodiment; -
FIG. 10 is an enlarged view of the structure of a transmitting mechanism of the vehicle seat according to the example embodiment; -
FIG. 11 is an enlarged view showing a state in which the transmitting mechanism is actuated by a seat back being tilted forward, in the vehicle seat according to the example embodiment; and -
FIG. 12 is an enlarged view showing a state in which the operating lever is operated by the seat back being tilted forward, in the vehicle seat according to the example embodiment. - Example embodiment of the invention will hereinafter be described with reference to the accompanying drawings.
- First, the structure of a vehicle seat according to an example embodiment will be described with reference to
FIGS. 1 to 12 . The vehicle seat in this example embodiment is configured such that a seatmain body 1 is able to slide in the longitudinal direction of the vehicle (i.e., longitudinally) as well as in the width direction of the vehicle (i.e., laterally), by a longitudinal slide mechanism (longitudinal slide mechanism 4) and a lateral slide mechanism (lateral slide mechanism 5), respectively, with respect to a vehicle floor F, as shown inFIG. 1 . Thelongitudinal slide mechanism 4 and thelateral slide mechanism 5 are always in slide-locked states. The operation to release these locks is performed by operating anoperating lever 7 provided on an outer side portion of the seatmain body 1, as shown inFIG. 2 . Here, theoperating lever 7 is one example of the lever of the invention. - Also, this operation to release the locks may also be performed by an operation that involves operating a
release lever 6C provided on the outer side portion of the seatmain body 1, and tilting aseat back 2 to a forward tilted position that will be described later. When a release operation is performed by operating thisrelease lever 6C, the seatmain body 1 is placed in a state in which it is able to slide toward the inside and front of the vehicle with the seat back 2 in the forward tilted position and thus is bent over compactly toward the front of the vehicle, as shown inFIG. 1 , which enables a space L for getting into and out of a back row (third row seat 1′) of seats from a door Dr on that side to be wider than the initial space La before the seat is moved out of the way. - Next, each structure of the vehicle seat will be described in detail. As shown in
FIG. 2 , the seatmain body 1 includes aseat back 2 that is a backrest, and aseat cushion 3 that is a sitting portion. The lower end portion on both sides of theseat back 2 is connected, via a recliningmechanism 6 that functions as a rotating shaft device that can be stopped from rotating, to a rear end portion on both sides of theseat cushion 3. Accordingly, theseat back 2 is retained with the backrest angle constantly fixed with respect to theseat cushion 3 by the recliningmechanisms 6. The rotation-locked state of the recliningmechanisms 6 can be released all together by operating therelease lever 6C described above. - More specifically, as shown in
FIG. 10 , the recliningmechanisms 6 are interposed between an outer plate portion of both side frames of aback frame 2F that is the frame of theseat back 2, and an inner plate portion of both side frames of acushion frame 3F that is the frame of theseat cushion 3, and are provided connecting these together. Also, the recliningmechanisms 6 are such that operatingarms 6B that are integrally connected to anoperating shaft 6A that protrudes through a center portion of the operating arms are rotatably operated via a cable, not shown, by therelease lever 6C described above (seeFIG. 2 ) being operated, and the rotation-locked states of the recliningmechanisms 6 can be released together by theoperating shafts 6A being rotatably operated. - According to this release operation, the fixed state of the backrest angle is released, such that the
seat back 2 is able to tilt forward and backward about the center shaft axis (i.e., the axis of theoperating shafts 6A) of the recliningmechanisms 6. Accordingly, when an occupant is not seated in the seatmain body 1, theseat back 2 can be tilted to the forward tilted position shown inFIG. 11 by the urging force of a spring, not shown, that is strung between it and theseat cushion 3. More specifically, in theseat back 2, retainingplates 2A formed in L-shapes and fixed to both side frames of theback frame 2F are able to tilt forward or backward to positions in which they abut against a front protrusion (i.e., aforward tilt stopper 3A) or a rear protrusion (i.e., aback tilt stopper 3B) formed on both side frames of thecushion frame 3F of theseat cushion 3. The retainingplates 2A are retained by falling into positions where they hit theforward tilt stopper 3A, by the fixed state of the backrest according to thereclining mechanisms 6 being released and the retainingplates 2A being urged forward by the spring. - Next, as shown in
FIGS. 1 and 2 , a lower portion of theseat cushion 3 is supported provided on the vehicle floor F via a pair of left and rightlongitudinal slide mechanisms 4 and a pair of front and backlateral slide mechanisms 5 that are stacked and joined together in the shape of a pound sign. Here, eachlongitudinal slide mechanism 4 has aslide rail 4A that extends lengthwise in the longitudinal direction of the vehicle, aslider 4B that is incorporated so as to be able to slide along theslide rail 4A, and alock pawl 4C that is able to lock movement of theslider 4B with respect to theslide rail 4A. The slide rails 4A are provided fixed on the vehicle floor F. On the other hand, eachlateral slide mechanism 5 has aslide rail 5A that extends lengthwise in the width direction of the vehicle, aslider 5B that is incorporated so as to be able to slide along theslide rail 5A, and alock pawl 5C that is able to lock movement of theslider 5B with respect to theslide rail 5A. The slide rails 5A are provided fixed, spanning between the upper portions of thesliders 4B of thelongitudinal slide mechanisms 4 described above. Also, both side frames of thecushion frame 3F of theseat cushion 3 are provided fixed, spanning between the upper portions of thesliders 5B, to thesliders 5B that are mounted to theseslide rails 5A. - Next, the slide lock structures of the
longitudinal slide mechanisms 4 and thelateral slide mechanisms 5 will be described with reference toFIG. 9 . The basic structure of both of these slide lock structures is the same, so the following description will be centered around the slide lock structure of thelongitudinal slide mechanism 4, while collectively referring to the structure of the slide lock structure of thelateral slide mechanism 5, that has basically the same structure, by placing its reference characters in parentheses. That is, thelock pawl 4C (5C) is provided rotatably shaft-connected to theslider 4B (5B) by a spindle 4C1 (5C1), and is constantly retained in a state that stops movement of theslider 4B (5B) by the tip end of thelock pawl 4C (5C) passing through a lock hole 4B1 (5B1) formed in theslider 4B (5B) and a lock hole 4A1 (5A1) formed in theslide rail 4A (5A), by rotation (rotation in the counterclockwise direction in the drawing) from the urging force of a spring 4C2 (5C2) hooked between it and theslider 4B (5B). The lock pawl 4C (5C) releases the slide lock state of theslider 4B (5B) by rotating in a direction (clockwise in the drawing) such that it pulls out of the lock holes 4A1 (5A1) and 4B1 (5B) against the urging force of the spring 4C2 (5C2), as shown by the virtual lines inFIG. 9 , in response to acable 14A (15A) being pulled by the operatinglever 7 being operated. The lock holes 4A1 (5A1) that are formed in theslide rail 4A (5A) are formed in multiple locations in a line at equidistant intervals in the length direction of theslide rail 4A (5A), such that the sliding movement of theslider 4B (5B) can be locked over a wide area. - Next, the structures of the operating
lever 7 described above and a release mechanism 10 (one example of the actuating mechanism of the invention) that releases the slide lock states of thelongitudinal slide mechanisms 4 andlateral slide mechanisms 5 in response to operation of the operatinglever 7, will be described. The operatinglever 7 is provided shaft-connected, in a manner that enables it to be pulled up by the rotation of a connectingshaft 7B, to abase plate 11 that is integrally fixed to thecushion frame 3F of theseat cushion 3, as shown inFIG. 3 . The operatinglever 7 is constantly rotationally urged in a direction (counterclockwise in the drawing) in which it is pulled down with respect to thebase plate 11 by the urging force of aspring 7C that is hooked between it and thebase plate 11, and thus kept in a state in which it is retained abutting against astopper 11A formed on an upper end portion of thebase plate 11 from the rear. The operatinglever 7 is configured such that, when anoperating portion 7A that is formed, with a resin grip attached, on an arm portion that extends out toward the front of the vehicle, of the operatinglever 7 is pulled upward, the operatinglever 7 consequently transmits that operating force to therelease mechanism 10. Here, the operatinglever 7 is pulled up until it reaches a position where it is stopped by abutting against astopper 11A formed on an upper end portion of thebase plate 11 from the front, as shown inFIG. 8 . - The
release mechanism 10 has anoperating pin 12, atransmitting mechanism 13, afirst link 14, and asecond link 15, as shown inFIG. 3 . Here, the operatingpin 12 is an example of the operating mechanism of the invention. The operatingpin 12 is provided integrally joined with the operatinglever 7 and moves when the operatinglever 7 is pulled upward, so as to push and rotate thefirst link 14 and thesecond link 15 that will be described later. As shown inFIG. 10 , the transmittingmechanism 13 has anoperating arm 13A provided rotatably shaft-connected to theoperating shaft 6A of thereclining mechanism 6 of the outer side portion, and anoperating cable 13B that connects the lower end portion of thisoperating arm 13A with the rear upper end portion of the operatinglever 7 shown inFIG. 3 . Initially, theformer operating arm 13A shown inFIG. 10 is retained, via theoperating cable 13B, with the upper end portion of theoperating arm 13A exposed along the path of forward rotational movement of the retainingplate 2A that is fixed to theback frame 2F of the seat back 2 described above, as shown inFIG. 10 , by the force with which theoperating lever 7 shown inFIG. 3 is kept in the initial position by the urging force of thespring 7C. With thelatter operating cable 13B, the end portion on the side that is connected to the operatinglever 7 is hooked inside along hole 7D formed in the operatinglever 7, as shown inFIG. 3 , such that theoperating cable 13B is initially retained in the lower end portion of thelong hole 7D. Thelong hole 7D is formed curved in the shape of an arc centered around the connectingshaft 7B. As shown inFIG. 11 , with the transmittingmechanism 13 of this structure, theoperating arm 13A is pushed by the retainingplate 2A and rotates counterclockwise in the drawing, thus pulling the operatinglever 7 up, as shown inFIG. 12 , via theoperating cable 13B, in response to the seat back 2 being tilted to the forward tilted position by therelease lever 6C (seeFIG. 2 ) described above being operated. - As shown in
FIG. 3 , thefirst link 14 is provided side by side with thesecond link 15 in the axial direction, and is provided shaft-connected so as to be able to rotate with respect to thebase plate 11 by a rotatingshaft 16, together with thesecond link 15. More specifically, the rotatingshaft 16 is integrally joined with thebase plate 11, and thefirst link 14 and thesecond link 15 are pivotally provided so as to be able to rotate with respect to therotating shaft 16. Thefirst link 14 is formed in an L-shape with an arm that extends out in two directions in the radial direction about the rotatingshaft 16. Of the portions of the arm that extends out in two directions, the portion where the arm extends out toward the upper front of the seat with respect to therotating shaft 16 is a portion that is rotationally operated upon receiving transmission of rotational operating force from the operatingpin 12 that is joined with the operatinglever 7 described above. Also, the portion where the arm extends out toward the lower front of the seat with respect to therotating shaft 16 is a portion that is connected to acable 14A for releasing thelock pawl 4C of thelongitudinal slide mechanism 4 shown inFIG. 9 described above, and that releases the lock of thelongitudinal slide mechanism 4 by pulling thecable 14A in response to that rotational operation. The end portion of thecable 14A on the side that is connected to thefirst link 14 is provided hooked inside of a long hole 14A1 formed in thefirst link 14, as shown inFIG. 3 . The long hole 14A1 is formed in a shape curved in an arc around the rotatingshaft 16. - The
second link 15 is formed in a shape of an arm that extends out in a T-shape toward the front of the seat, centered around the rotatingshaft 16. A portion of the arm where the arm extends upward from the front side of the seat is a portion that is rotationally operated upon receiving rotational operating force transmitted by the operatingpin 12 that is joined with the operatinglever 7 described above. Also, a portion of the arm where the arm extends downward from the front side of the seat is a portion that is connected to acable 15A for releasing thelock pawl 5C of thelateral slide mechanism 5 shown inFIG. 9 described above, and that releases the lock of thelateral slide mechanism 5 by pulling thecable 15A in response to the movement of that rotational operation. The end portion of thecable 15A on the side that is connected to thesecond link 15 is provided hooked inside of a long hole 15A1 formed in thesecond link 15, as shown inFIG. 3 . The long hole 15A1 is formed in a shape curved in an arc around the rotatingshaft 16. - More specifically, the
cable 14A that is connected to thefirst link 14 described above is connected to thefirst link 14 in a position farther from the rotatingshaft 16 than thecable 15A that is connected to thesecond link 15. As a result, the amount of movement in the pulling operation when thefirst link 14 and thesecond link 15 are rotated the same angle is greater with thecable 14A that is connected to thefirst link 14 than it is with thecable 15A that is connected to thesecond link 15. - Here, a
spring 17 is hooked between a hookingportion 15D of thesecond link 15 and therotating shaft 16, so thesecond link 15 is constantly rotatably urged in the in the clockwise direction in the drawing by the urging force of thespring 17. Also, apawl 15E is formed, protruding out and bent back so as to be able to abut against an edge portion of the downward extending arm portion of thefirst link 14, on the arm portion that extends out and downward with respect to the seat, of thesecond link 15. Therefore, thesecond link 15 initially transmits the force by which it is rotatably urged in the clockwise direction in the drawing by thespring 17 to thefirst link 14 via thepawl 15E, such thefirst link 14 is also rotatably urged in the same direction, and thesecond link 15 stops rotating, and is thus retained, in a position where thefirst link 14 abuts with and is retained by the operatingpin 12 that is fixed to the operatinglever 7. In this retained state, thesecond link 15 does not abut against the operatingpin 12. Instead, there is a gap in the rotational direction between thesecond link 15 and theoperating pin 12. - The
release mechanism 10 having this structure operates in the manner as described below in response to the operatinglever 7 being pulled upward. That is, when the operatinglever 7 is pulled upward from the initial position shown inFIG. 3 , the arm portion of thefirst link 14 is first pushed around in the counterclockwise direction in the drawing by the operatingpin 12, as shown inFIG. 4 . As a result, thesecond link 15 in which thepawl 15E is abutted against thefirst link 14 is also pushed around by thefirst link 14, and thus rotates in the counterclockwise direction in the drawing, together with thefirst link 14. Also, from this rotation, thecable 14A that is connected to thefirst link 14 is pulled more than thecable 15A that is connected to thesecond link 15. As a result, the locked stated of thelongitudinal slide mechanisms 4 is released. - Next, when operating
lever 7 is pulled up even further, the operatingpin 12 abuts against the arm portion on the side that protrudes upward with respect to the seat, of thesecond link 15, as shown inFIG. 5 . Then, by pulling up the operatinglever 7 still further from there, the operatingpin 12 rotates thesecond link 15 in the counterclockwise direction in the drawing (seeFIG. 6 ). As a result, thesecond link 15 leaves thefirst link 14 behind, rotating by itself a large amount, such that thecable 15A that is connected to thesecond link 15 is pulled more. As a result, the looked state of thelateral slide mechanisms 5 is released. - Here, a transmitting
portion 14B with a surface that extends flat in the radial direction, and anescape portion 14C with a surface that is curved in an arc shape, are formed next to each other in the radial direction, on an edge surface on the upper side in the drawing, of the arm portion that is pushed by the operatingpin 12 of thefirst link 14. Theformer transmitting portion 14B abuts against the operatingpin 12 described above when thefirst link 14 is in the initial state. Thelatter escape portion 14C forms an arced surface centered around the connectingshaft 7B, when thefirst link 14 is rotated to the rotational position inFIG. 5 by the operatingpin 12. As the operatinglever 7 is pulled up, thefirst link 14 structured as described above is rotated by the operatingpin 12 moving along the area where the transmittingportion 14B is formed, until a rotational position (the position inFIG. 5 ) midway from the initial rotational position where thefirst link 14 started to be pushed around by the operatingpin 12 in response to the operatinglever 7 being pulled up, as shown inFIGS. 3 to 5 . However, as shown inFIGS. 5 and 6 , in the area beyond the midway rotational position, the operatingpin 12 will move along the area where theescape portion 14C is formed, so even if the operatinglever 7 continues to be pulled up, thefirst link 14 will not receive the power transmitted from the operatingpin 12. That is, the movement of theoperating pin 12 is allowed to escape, so thefirst link 14 will not continue to rotate. As a result, even more excessive pull operating force from thecable 14A will not be applied to thelongitudinal slide mechanism 4 in which the slide lock is released first, after that release operation, so an unreasonable load will not be applied to the lock structure portion (i.e., thelock pawl 4C; seeFIG. 9 ) of thelongitudinal slide mechanism 4 and thecable 14A. - Also, similarly, a transmitting
portion 15B with a surface that extends flat in the radial direction, and anescape portion 15C with a surface that is curved in an arc shape, are formed next to each other in the radial direction, on an edge surface on the right side in the drawing, of the arm portion that is pushed by the operatingpin 12 of thesecond link 15. Theformer transmitting portion 15B abuts against the operatingpin 12 before theescape portion 15C does, in response to the operatinglever 7 being pulled up, as shown inFIG. 5 . Thelatter escape portion 15C forms an arced surface that is curved in an arc centered around the connectingshaft 7B, when thesecond link 15 is rotated to the rotational position inFIG. 7 by the operatingpin 12. As the operatinglever 7 is pulled up, thesecond link 15 structured as described above is rotated by the operatingpin 12 moving along the area where the transmittingportion 15B is formed, until a rotational position (the position inFIG. 5 ) midway from the initial rotational position where thesecond link 15 started to be pushed around by the operatingpin 12 in response to the operatinglever 7 being pulled up, as shown inFIGS. 5 to 7 . However, as shown inFIGS. 7 and 8 , in the area beyond the midway rotational position, the operatingpin 12 will move along the area where theescape portion 15C is formed, so even if the operatinglever 7 continues to be pulled up, thesecond link 15 will not receive the power transmitted from the operatingpin 12. That is, the movement of theoperating pin 12 is allowed to escape, so thesecond link 15 will not continue to rotate. As a result, even more excessive pull operating force from thecable 15A will not be applied to thelateral slide mechanism 5 in which the slide lock has been released, after that release operation, so an unreasonable load will not be applied to the lock structure portion (i.e., thelock pawl 5C; seeFIG. 9 ) of thelateral slide mechanism 5 and thecable 15A. - Also, as shown in
FIG. 2 , the lock release operations of thelongitudinal slide mechanism 4 and thelateral slide mechanism 5 via therelease mechanism 10 may similarly be performed by pulling up on therelease lever 6C described above. That is, when therelease lever 6C is operated, the seat back 2 tilts forward to the forward tilted position such that theoperating arm 13A is pushed around, as illustrated inFIG. 11 . This rotation causes theoperating cable 13B to be pulled, such that the operatinglever 7 is pulled up, as shown inFIG. 12 . As a result, therelease mechanism 10 operates to release the locks of thelongitudinal slide mechanism 4 and thelateral slide mechanism 5, as illustrated inFIGS. 3 to 8 . - In this way, according to the vehicle seat of the example embodiment, the transmitting
portions escape portions links lever 7 to thelinks lever 7 after the locks of theslide mechanisms links lever 7, an excessive load following operation of the operatinglever 7 will not be applied to the mechanisms (i.e., theslide mechanisms 4 and 5). - Also, the
links links links portions escape portions FIG. 3 , such that bothlinks links - Heretofore, the invention has been described using one example embodiment, but the invention may also be carried out by various modes other than the example embodiment described above. For example, in the example embodiment described above, a structure in which the
operating pin 12 for actuating thefirst link 14 and thesecond link 15 is integrally provided with the operatinglever 7 is given as an example of the structure corresponding to the operating mechanism of the invention. However, another actuating mechanism such as a gear mechanism or a link mechanism that actuates thefirst link 14 and thesecond link 15 by receiving operating force transmitted from the operating lever 7 (lever) may also be employed. - Also, in the example embodiment described above, a structure in which the lock of the
longitudinal slide mechanism 4 is released first and then the lock of thelateral slide mechanism 5 is released, as a result of therelease mechanism 10 that corresponds to the actuating mechanism of the invention being actuated, is given as an example. However, the structure may also be one in which the lock of thelateral slide mechanism 5 is released first and then the lock of thelongitudinal slide mechanism 4 is released. Also, the lock release operations of theseslide mechanisms longitudinal slide mechanism 4 and thelateral slide mechanism 5 as described in the example embodiment. To the contrary, the actuating mechanism of the invention may be used as a mechanism for actuating a variety of mechanisms provided in a vehicle seat. - While the invention has been described with reference to example embodiments thereof, it is to be understood that the invention is not limited to the example described embodiments or constructions. To the contrary, the invention is intended to cover various modifications and equivalent arrangements. In addition, while the various elements of the example embodiments are shown in various combinations and configurations, other combinations and configurations, including more, less or only a single element, are also within the scope of the invention.
Claims (5)
1. A vehicle seat comprising:
a first mechanism;
a second mechanism; and
an actuating mechanism that actuates the first mechanism and the second mechanism in response to an operation of a single lever,
wherein the actuating mechanism has an operating mechanism that is operated by the lever, a first link that is operated by the operating mechanism to actuate the first mechanism, and a second link that is operated to actuate the second mechanism; and a transmitting portion that receives operating force of the lever transmitted from the operating mechanism and transmits the operating force to the first and second mechanisms, and an escape portion that allows the operating force transmitted from the operating mechanism to escape are formed side by side on each of the links, and power transmitted from the lever to each of the links via the operating mechanism is allowed to escape during operation.
2. The vehicle seat according to claim 1 , wherein the links are pivotally supported around a common shaft.
3. The vehicle seat according to claim 2 , wherein a connecting position of a first cable that is connected to the first link is farther away from the shaft than a connecting position of a second cable that is connected to the second link.
4. The vehicle seat according to claim 2 , wherein the transmitting portion of each of the links has a shape that extends flat, and the escape portion has a curved shape.
5. The vehicle seat according to claim 1 , wherein the links are arranged side by side in an axial direction.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US14/466,276 US9296318B2 (en) | 2010-11-29 | 2014-08-22 | Vehicle seat |
Applications Claiming Priority (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP2010264765A JP5591664B2 (en) | 2010-11-29 | 2010-11-29 | Vehicle seat |
JP2010-264765 | 2010-11-29 |
Related Child Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US14/466,276 Continuation US9296318B2 (en) | 2010-11-29 | 2014-08-22 | Vehicle seat |
Publications (1)
Publication Number | Publication Date |
---|---|
US20120132026A1 true US20120132026A1 (en) | 2012-05-31 |
Family
ID=46049964
Family Applications (2)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US13/302,204 Abandoned US20120132026A1 (en) | 2010-11-29 | 2011-11-22 | Vehicle seat |
US14/466,276 Active 2031-12-25 US9296318B2 (en) | 2010-11-29 | 2014-08-22 | Vehicle seat |
Family Applications After (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
US14/466,276 Active 2031-12-25 US9296318B2 (en) | 2010-11-29 | 2014-08-22 | Vehicle seat |
Country Status (4)
Country | Link |
---|---|
US (2) | US20120132026A1 (en) |
JP (1) | JP5591664B2 (en) |
CN (1) | CN102476594B (en) |
DE (1) | DE102011087174B4 (en) |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US9085247B2 (en) | 2012-06-09 | 2015-07-21 | GM Global Technology Operations LLC | Adjusting device for a vehicle seat, vehicle seat, row of seats,vehicle seat and method for this |
US20160039316A1 (en) * | 2013-03-27 | 2016-02-11 | Johnson Controls Components GmbH & Co. KG. | Easy-entry system for a vehicle seat, and vehicle seat |
Families Citing this family (5)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US10017085B2 (en) * | 2012-07-18 | 2018-07-10 | Johnson Controls Gmbh | Adjustment unit for a vehicle on seat and vehicle seat |
CN109435793A (en) * | 2018-09-29 | 2019-03-08 | 延锋安道拓座椅有限公司 | A kind of unlocking mechanism convenient for rear passenger disengaging |
CN109501641A (en) * | 2018-10-16 | 2019-03-22 | 日照国峤汽车零部件有限公司 | A kind of seat |
CN111016746A (en) * | 2019-12-17 | 2020-04-17 | 张家港市隆旌汽车零部件有限公司 | Four-way adjusting seat |
CN113428053B (en) * | 2021-07-15 | 2022-04-01 | 盐城晶心精密机械有限公司 | Electric sliding rail structure of automobile seat |
Citations (14)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US2918109A (en) * | 1956-08-16 | 1959-12-22 | Anton Lorenz | Adjustable reclining chair |
US3164407A (en) * | 1960-05-17 | 1965-01-05 | Anton Lorenz | Reclining chair and control arrangement |
US3299466A (en) * | 1963-10-12 | 1967-01-24 | Keiper Fa F | Joint fitting for adjustable backrest |
US4653807A (en) * | 1984-05-18 | 1987-03-31 | Mazda Motor Corporation | Adjustable seat assembly |
US5813726A (en) * | 1997-02-18 | 1998-09-29 | Hoover Universal, Inc. | Inertia locking device for a vehicle seat adjustment mechanism |
US6106067A (en) * | 1996-07-25 | 2000-08-22 | P.L. Porter Co., | Seat adjustment and dumping mechanism with memory adjustment coordinated with seat positioning |
US6474739B1 (en) * | 2000-10-18 | 2002-11-05 | Duea Global Technologies | Seat track assembly for fold and flip seat |
US6857702B2 (en) * | 2001-10-19 | 2005-02-22 | Burckhard Becker | Forwardly displaceable vehicle seat with access to a rear seat through a front door |
US6935691B1 (en) * | 2004-04-13 | 2005-08-30 | Tachi-S Co., Ltd. | Vehicle seat with seat cushion tip-up structure |
US7588293B2 (en) * | 2005-11-29 | 2009-09-15 | Aisin Seiki Kabushiki Kaisha | Vehicle walk-in device |
US7959229B2 (en) * | 2006-01-27 | 2011-06-14 | Toyota Jidosha Kabushiki Kaisha | Adjustable seat including operating members |
US8162404B2 (en) * | 2006-01-27 | 2012-04-24 | Toyota Jidosha Kabushiki Kaisha | Seat |
US20120175932A1 (en) * | 2011-01-07 | 2012-07-12 | Aisin Seiki Kabushiki Kaisha | Vehicle seat device |
US20120223561A1 (en) * | 2009-11-26 | 2012-09-06 | Magna Seating Inc. | Seat Track Easy-Entry Actuation Mechanism |
Family Cites Families (14)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US4834452A (en) * | 1988-07-05 | 1989-05-30 | Goodrich Grover G | Swivel seat and frame |
FR2747079B1 (en) * | 1996-04-05 | 1998-06-12 | Faure Bertrand Equipements Sa | VEHICLE SEAT, MOVABLE FORWARD TO ACCESS REAR SPACE |
US5788330A (en) * | 1997-03-27 | 1998-08-04 | Fisher Dynamics Corporation | Seat hinge mechanism with easy entry memory feature |
US6024398A (en) * | 1998-03-05 | 2000-02-15 | Horton; Fred | Sliding seat assembly for an automobile |
DE10052234A1 (en) * | 2000-10-21 | 2002-05-02 | Brose Fahrzeugteile | Motor vehicle car seat adjustment mechanism has a coupling and switching mechanism that allows switching between fixed and adjustment modes that is not placed in the magnetic field of the stepper mechanism |
FR2824795B1 (en) * | 2001-05-16 | 2004-01-09 | Faurecia Sieges Automobile | CONTROL SYSTEM FOR UNLOCKING THE LINKAGES OF A MOTOR VEHICLE SEAT ON THE FLOOR OF SAID VEHICLE |
JP4206844B2 (en) * | 2003-07-03 | 2009-01-14 | マツダ株式会社 | Vehicle seat device |
DE102004015450B4 (en) * | 2004-03-30 | 2006-11-30 | Faurecia Autositze Gmbh & Co. Kg | Automotive seat |
DE102005020696A1 (en) * | 2005-04-28 | 2006-11-02 | Brose Fahrzeugteile Gmbh & Co. Kommanditgesellschaft, Coburg | Adjustment unit for motor vehicle seat, has operating unit acting on control unit, where operating unit continues rotational movement under deformation of elastic unit when rotational movement of operating unit is prevented by end stop |
JP4957990B2 (en) * | 2006-09-19 | 2012-06-20 | テイ・エス テック株式会社 | Arrangement device for automobile seat |
PL2109553T3 (en) * | 2007-01-24 | 2014-04-30 | Johnson Controls Tech Co | Vehicle seat |
JP2008201235A (en) * | 2007-02-20 | 2008-09-04 | Toyota Boshoku Corp | Unlocking mechanism for vehicle seat |
JP4505028B2 (en) * | 2008-06-09 | 2010-07-14 | トヨタ自動車株式会社 | Sheet |
JP5594092B2 (en) | 2010-11-29 | 2014-09-24 | トヨタ紡織株式会社 | Vehicle seat |
-
2010
- 2010-11-29 JP JP2010264765A patent/JP5591664B2/en active Active
-
2011
- 2011-11-22 US US13/302,204 patent/US20120132026A1/en not_active Abandoned
- 2011-11-28 CN CN201110384815.0A patent/CN102476594B/en active Active
- 2011-11-28 DE DE102011087174.8A patent/DE102011087174B4/en active Active
-
2014
- 2014-08-22 US US14/466,276 patent/US9296318B2/en active Active
Patent Citations (14)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US2918109A (en) * | 1956-08-16 | 1959-12-22 | Anton Lorenz | Adjustable reclining chair |
US3164407A (en) * | 1960-05-17 | 1965-01-05 | Anton Lorenz | Reclining chair and control arrangement |
US3299466A (en) * | 1963-10-12 | 1967-01-24 | Keiper Fa F | Joint fitting for adjustable backrest |
US4653807A (en) * | 1984-05-18 | 1987-03-31 | Mazda Motor Corporation | Adjustable seat assembly |
US6106067A (en) * | 1996-07-25 | 2000-08-22 | P.L. Porter Co., | Seat adjustment and dumping mechanism with memory adjustment coordinated with seat positioning |
US5813726A (en) * | 1997-02-18 | 1998-09-29 | Hoover Universal, Inc. | Inertia locking device for a vehicle seat adjustment mechanism |
US6474739B1 (en) * | 2000-10-18 | 2002-11-05 | Duea Global Technologies | Seat track assembly for fold and flip seat |
US6857702B2 (en) * | 2001-10-19 | 2005-02-22 | Burckhard Becker | Forwardly displaceable vehicle seat with access to a rear seat through a front door |
US6935691B1 (en) * | 2004-04-13 | 2005-08-30 | Tachi-S Co., Ltd. | Vehicle seat with seat cushion tip-up structure |
US7588293B2 (en) * | 2005-11-29 | 2009-09-15 | Aisin Seiki Kabushiki Kaisha | Vehicle walk-in device |
US7959229B2 (en) * | 2006-01-27 | 2011-06-14 | Toyota Jidosha Kabushiki Kaisha | Adjustable seat including operating members |
US8162404B2 (en) * | 2006-01-27 | 2012-04-24 | Toyota Jidosha Kabushiki Kaisha | Seat |
US20120223561A1 (en) * | 2009-11-26 | 2012-09-06 | Magna Seating Inc. | Seat Track Easy-Entry Actuation Mechanism |
US20120175932A1 (en) * | 2011-01-07 | 2012-07-12 | Aisin Seiki Kabushiki Kaisha | Vehicle seat device |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US9085247B2 (en) | 2012-06-09 | 2015-07-21 | GM Global Technology Operations LLC | Adjusting device for a vehicle seat, vehicle seat, row of seats,vehicle seat and method for this |
US20160039316A1 (en) * | 2013-03-27 | 2016-02-11 | Johnson Controls Components GmbH & Co. KG. | Easy-entry system for a vehicle seat, and vehicle seat |
Also Published As
Publication number | Publication date |
---|---|
US9296318B2 (en) | 2016-03-29 |
US20140360301A1 (en) | 2014-12-11 |
DE102011087174B4 (en) | 2014-04-10 |
JP2012116210A (en) | 2012-06-21 |
CN102476594B (en) | 2015-02-25 |
DE102011087174A1 (en) | 2012-05-31 |
JP5591664B2 (en) | 2014-09-17 |
CN102476594A (en) | 2012-05-30 |
Similar Documents
Publication | Publication Date | Title |
---|---|---|
US9296318B2 (en) | Vehicle seat | |
JP5594092B2 (en) | Vehicle seat | |
US7828382B2 (en) | Vehicle seat having an operation lever arrangement structure | |
US7152924B1 (en) | Unlocking mechanism of reclining device for seat | |
US9327620B2 (en) | Vehicle seat assembly with easy-entry mechanism | |
US6935691B1 (en) | Vehicle seat with seat cushion tip-up structure | |
TW200526439A (en) | Twin recliner for automotive seats | |
JP5867063B2 (en) | Vehicle seat | |
WO2020132153A2 (en) | A seat assembly for use in an automotive vehicle for movement between a plurality of positions | |
JP5682445B2 (en) | Vehicle seat | |
JP2009029272A (en) | Walk-in seat slide device | |
JP5946246B2 (en) | Vehicle seat | |
JP5272722B2 (en) | Vehicle seat operating structure | |
EP4126589B1 (en) | Seat assembly with override condition | |
JP2009262803A (en) | Vehicular seat | |
JP6711143B2 (en) | Seat device | |
JP5272723B2 (en) | Vehicle seat | |
JP2009023384A (en) | Seat for vehicle | |
JP4060730B2 (en) | Storage sheet | |
JP5278780B2 (en) | Vehicle walk-in device | |
JP2018030547A (en) | Vehicular seat | |
JP2004034768A (en) | Floor locking device of automobile seat | |
JP5691774B2 (en) | Vehicle seat | |
JP2003118443A (en) | Lateral slide seat | |
CN117529425A (en) | Vehicle seat |
Legal Events
Date | Code | Title | Description |
---|---|---|---|
AS | Assignment |
Owner name: TOYOTA BOSHOKU KABUSHIKI KAISHA, JAPAN Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:OOTSUKA, TAIYOU;IGARASHI, TOMOKAZU;REEL/FRAME:027273/0071 Effective date: 20111011 |
|
STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO PAY ISSUE FEE |