This application claims the priority of Chinese patent Application No. 200810022271.1, filed with the Chinese Intellectual Property Office on Jun. 30, 2008, entitled “LOCK DEVICE FOR SLIDING DOOR”, the overall disclosure of which is hereby incorporated herein by reference.
The present invention relates to the field of vehicle door lock, and in particular to a lock device for sliding door.
Currently, on a sliding door of vehicle, the space for arranging door lock control mechanism and door handle that is left by sheet-metal structure of vehicle body is not abundant. Therefore, it is very hard to reach a satisfactory effect through existing conventional arrangement. As shown in
The objective of the invention is to provide a lock device for sliding door, which is simple in structure and is easy to install.
In order to achieve the above objective, the following technical solution is adopted by the invention: a lock device for a sliding door comprises an outer handle fixed on an outside surface of the sliding door, the outer handle is connected to a door lock switching mechanism provided inside the sliding door via a cable, the door lock switching mechanism is connected to a lock body via an unlocking lever/string, and the outer handle opens the lock body through the cable, the door lock switching mechanism and the unlocking lever/string sequentially.
As can be known from the above technical solution, in the invention, the cable is provided between the outer handle and the door lock switching mechanism. Since the cable is a line shape component, it takes up a small space in vehicle door, thus considerably reducing the difficulty in arranging lock body. As can be known from above, the invention is simple in structure, easy to install and low in cost.
As shown in
As can be knows from above, the arrangement of the cable 20 enables that the outer handle 10 and the door lock switching mechanism can be more reasonably disposed in such a limited space as in the vehicle door in the invention, thus simplifying the structure and reducing cost.
As a preferred solution of the invention, as shown in
Since the cable 20 is employed to transmit force in invention, and the direction in which the cable 20 is subject to force is always perpendicular to the fixed end of the cable 20 on the cantilever 11, a waste of force for opening the sliding door is reduced so that the sliding door is easier to open.
As shown in
The above arrangement realizes that an opening force is transmitted along the outer switching element 40 and the lock body switching element 60 in sequence, and finally opens the lock body 70 by means of the unlocking lever/string 30 on the lock body switching element 60, thus shorting an opening routine of force and reducing a loss.
As a further preferred solution of the invention, the pin shaft 91 is horizontally disposed and perpendicular to the length direction of vehicle, and the pulling force direction of the cable 20 is in a tangent line direction to rotation of the pin shaft 91.
The length direction of vehicle is namely the longitudinal direction from the front of vehicle to the rear of vehicle. The above arrangement of pin shaft 91 causes the opening direction of existing outer handle 10 to be perpendicular to the direction of force in the cable 20, so that user's effort is further reduced; while the fact that the pulling force direction of the cable 20 is in a tangent line direction to rotation of the pin shaft 91 ensures that the force required for the cable 20 to rotate the outer switching element 40 is less. The combination of two above-described manners provides a comfortable hand feel and a less opening force at the time of opening the sliding door with the outer handle 10.
As shown in FIGS. 4 and 8-11, the door lock switching mechanism further comprises an inner switching element 50 which is disposed coaxially with the outer switching element 40 and the lock body switching element 60 and is connected to an inner handle. One end of a restoring spring 53 is fixed on the bracket 90, and the other end is connected to the inner switching element 50 to restore it. The inner handle opens the lock body 70 through the inner switching element 50, the lock body switching element 60 and the unlocking lever/string 30 sequentially.
The above arrangement realizes that an opening force is transmitted along the inner switching element 50 and the lock body switching element 60 in sequence, and finally opens the lock body 70 by means of the unlocking lever/string 30 on the lock body switching element 60, thus also shorting an opening routine of internal opening force and reducing a loss.
As shown in
A third cantilever 43 of the outer switching element 40 forms an abutting fit with a second cantilever 62 of the lock body switching element 60 and enables the outer switching element 40 to drive the lock body switching element 60 to rotate and restore. A limit stop is provided on the bracket 90 for restoring a fourth cantilever 44 of the outer switching element 40 to original position after the rotation of the fourth cantilever 44. The fourth cantilever 44 of the outer switching element 40 is connected to the restoring spring 45.
A first cantilever 61 of the lock body switching element 60 is hinged to the unlocking lever/string 30, and a third cantilever 63 forms an abutting fit with the limit stop of the bracket 90 which limits the stroke of the third cantilever 63.
The limited stroke of the second cantilever 52 of the inner switching element 50 enables the moving stroke of the unlocking lever/string 30 to open the lock body 70.
As described above, the pre-described arrangement enables the inner switching element 50, the outer switching element 40 and the lock body switching element 60 to be integrated together. Not only can users open vehicle door from the outside of vehicle body conveniently, but also the vehicle door can be conveniently opened from the inside of vehicle body. Beside, during opening process, all of the transmitting routines of force are short, the whole door lock device is simple in structure and easy to realize.
Alongside the door lock switching mechanism is provided a lock-up mechanism 80 for switching the lock body switching element 60 between a locked state and a free state.
Due to the provision of the lock-up mechanism, vehicle door will not be opened accidentally, thus protecting people inside and outside of the vehicle from damage.
As a preferred solution of the invention, as shown in
Since force has to be transmitted through the outer switching element 40, no matter the sliding door is opened from the inner side of vehicle body or from the outer side of vehicle body as described above, the invention arranges the sliding block on the end of the crank 82 to form a top-abutment fit with the outer switching element 40, thus limiting rotation of the outer switching element 40 and interrupting the transmission of force so that the sliding door lock is in the locked state.
As a further preferred solution of the invention, also as shown in
An opening hole 83 which is connected to the lever of an electrically actuated or manual deadlock mechanism is provided in the rocker arm 81.
The operation process of the invention will be described below in combination with
As shown in
When operating the outer handle 10, the inner switching element 50 is rotated. Since the first cantilever 51 of the inner switching element 50 is in abutment fit with the second cantilever 42 of the outer switching element 40, the outer switching element 40 rotates accordingly. Other operational actions have been described above.
In an unlocked state, the electrically-actuated or manual deadlock mechanism takes actions, and the lock-up mechanism 80 of the invention is operated by means of the opening hole 83. The rocker arm 81 moves in a stroke limited by the stop 811 and simultaneously drives the crank 82 to operate, so that the sliding block moves to the inner side of the rotating locus of the outer switching element 40 along the sliding groove 64. As shown in
When the inner handle is operated after the lock body 70 is unlocked, the inner switching element 50 rotates. Since the first cantilever 51 of the inner switching element 50 is in abutment fit with the second cantilever 42 of the outer switching element 40 mutually, the outer switching element 40 rotates accordingly. Other operational actions have been described above.
Number | Date | Country | Kind |
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200810022271.1 | Jun 2008 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN2009/072526 | 6/30/2009 | WO | 00 | 12/28/2010 |