Side door lock and motor vehicle
By introducing activation failure control of the safety rod and super lock rod in the side door lock, the safety problem caused by the opening of the inner opening rod is solved, and it is achieved that illegal opening cannot be achieved under specific conditions, thereby improving the safety performance of the vehicle.
Patent Information
- Application Number
- CN202411626943.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-14
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2044-11-14
Smart Images

Figure CN119466451B_ABST
Abstract
Description
Technical Field
[0001] The present disclosure relates to a side door lock and a motor vehicle. Background Art
[0002] This section merely provides background information related to the present disclosure and is not necessarily prior art.
[0003] With the development of electrification and intelligent vehicles, electric door locks have become popular on vehicle hoods or doors. When using electric door locks, the reliability of locking and the real-time unlocking are the biggest challenges faced by technicians.
[0004] In existing side door locks, the inner opening lever can be operated to open the side door. However, this undoubtedly reduces the safety of the side door lock. For example, a person can operate the inner opening lever by smashing the window glass, and then use the inner opening lever to open the vehicle's side door.
[0005] Therefore, it is necessary to design a new side door lock, which, under a certain state, cannot be opened by an inner opening pull rod to improve the safety performance of the side door lock. Summary of the Invention
[0006] The present disclosure provides a side door lock and a motor vehicle.
[0007] According to one aspect of the present disclosure, there is provided a side door lock comprising:
[0008] a locking tongue component, the locking tongue component being configured to rotate about a first axis and comprising at least a locked position and an unlocked position;
[0009] a pawl assembly, the pawl assembly being used to cooperate with the lock tongue component and at least to keep the lock tongue component in a locked position;
[0010] an electric unlocking assembly, the electric unlocking assembly being used to cooperate with the pawl assembly so that the pawl assembly can release the bolt component;
[0011] a second manual unlocking assembly, the second manual unlocking assembly being configured to selectively cooperate with the pawl assembly to enable the pawl assembly to release the bolt member;
[0012] a safety lever, the safety lever being rotatable and having a first position and a second position; and
[0013] A super lock lever, wherein the super lock lever has an activated position and a deactivated position, wherein when the super lock lever is in the activated position, the second manual unlocking component is not allowed to drive the safety lever from the second position to the first position; when the super lock lever is in the deactivated position, the second manual unlocking component is allowed to drive the safety lever from the second position to the first position.
[0014] According to at least one embodiment of the present disclosure, the side door lock further includes:
[0015] A first manual unlocking assembly is configured to selectively cooperate with the pawl assembly to enable the pawl assembly to release the lock tongue component; wherein, when the safety lever is in a first position, the first manual unlocking assembly is allowed to drive the pawl assembly to move and release the lock tongue component; and when the safety lever is in a second position, the first manual unlocking assembly is not allowed to drive the pawl assembly to move.
[0016] According to the side door lock of at least one embodiment of the present disclosure, the electric unlocking assembly includes a first motor and a worm gear assembly drivingly connected to the first motor, and the worm gear assembly is configured to drive the safety lever to rotate, so that when the safety lever is in the first position, the worm gear assembly drives the safety lever from the first position to the second position; and when the safety lever is in the second position, the worm gear assembly drives the safety lever from the second position to the first position.
[0017] According to the side door lock of at least one embodiment of the present disclosure, the worm gear assembly includes a worm gear component and a safety drive component, one end of the safety drive component is rotatably connected to the worm gear component, and the other end of the safety drive component extends to the outside of the worm gear component.
[0018] According to the side door lock of at least one embodiment of the present disclosure, the safety pull rod includes a first matching portion and a second matching portion; the safety drive member selectively matches with the first matching portion or the second matching portion to push the safety pull rod to rotate in different rotation directions.
[0019] According to the side door lock of at least one embodiment of the present disclosure, when the safety lever is located at the first position, the safety driving member can cooperate with the first matching portion to drive the safety lever from the first position to the second position.
[0020] According to the side door lock of at least one embodiment of the present disclosure, the first matching portion includes a first groove, the first groove is formed on a side of the safety lever, and an opening of the first groove faces the worm gear assembly.
[0021] According to the side door lock of at least one embodiment of the present disclosure, the first groove includes a first upper side wall and a first lower side wall; when the safety pull rod is in the first position, the other end of the safety drive member can contact the first upper side wall, and as the worm gear component further rotates, the other end of the safety drive member can slide along the inner side wall of the first groove and can cooperate with the first lower side wall to push the safety pull rod to move from the first position to the second position.
[0022] According to the side door lock of at least one embodiment of the present disclosure, the safety pull rod is formed with a protrusion, which is used to form the first upper side wall of the first groove. When the other end of the safety drive member cooperates with the first lower side wall, the protrusion contacts the first side surface of the safety drive member.
[0023] According to the side door lock of at least one embodiment of the present disclosure, the first side surface is formed as a concave arc surface.
[0024] According to the side door lock of at least one embodiment of the present disclosure, when the safety lever is located at the second position, the safety driving member can cooperate with the second matching portion to drive the safety lever from the second position to the first position.
[0025] According to the side door lock of at least one embodiment of the present disclosure, the second matching portion includes a second groove, the second groove is formed on a side of the safety lever, and an opening of the second groove faces the worm gear assembly.
[0026] According to the side door lock of at least one embodiment of the present disclosure, the second groove includes a second upper side wall; when the safety lever is in the second position, the other end of the safety drive member can contact the second upper side wall to push the safety lever from the second position to the first position.
[0027] According to the side door lock of at least one embodiment of the present disclosure, the safety pull rod is formed with a protrusion, which is used to form the second lower side wall of the second groove. When the other end of the safety drive member cooperates with the second upper side wall, the protrusion contacts the second side surface of the safety drive member.
[0028] According to the side door lock of at least one embodiment of the present disclosure, the second side surface is formed as an outwardly convex arc surface.
[0029] According to the side door lock of at least one embodiment of the present disclosure, the safety lever includes an extension component located at the upper end of the safety lever. When the safety lever moves from the second position to the first position, the extension component can push the super lock lever from the activation position to the deactivation position.
[0030] According to the side door lock of at least one embodiment of the present disclosure, the safety pull rod includes: a first stop portion, a second stop portion and a central axis portion, the axis of the central axis portion is the same as the rotation axis of the safety pull rod, and a torsion spring is sleeved on the central axis portion, one end of the torsion spring is stopped by the first stop portion, and the second end of the torsion spring is stopped by the second stop portion, and the torsion spring is in a pre-compressed state.
[0031] According to the side door lock of at least one embodiment of the present disclosure, when the second manual unlocking assembly is operated and rotated, one end of the torsion spring is located within the motion envelope of the second manual unlocking assembly.
[0032] According to the side door lock of at least one embodiment of the present disclosure, when the super lock lever is located at the activated position, the super lock lever contacts the other end of the torsion spring and restricts the position of the other end of the torsion spring.
[0033] According to the side door lock of at least one embodiment of the present disclosure, when the super lock rod is in the failure position, the super lock rod is spaced apart from the torsion spring; when the second manual unlocking component is operated and rotated, the safety rod moves from the second position to the first position by pushing one end of the torsion spring.
[0034] According to at least one embodiment of the present disclosure, the side door lock further includes:
[0035] A child-safety worm gear is rotatably arranged on the lock body; wherein the super lock pull rod and the child-safety worm gear have the same rotation axis.
[0036] According to at least one embodiment of the present disclosure, the side door lock further includes:
[0037] A second motor is used to drive the child-safety worm gear to rotate, wherein when the second motor drives the child-safety worm gear to rotate and the child-safety function of the side door lock is effective, the super lock rod can be driven to the activation position.
[0038] According to the side door lock of at least one embodiment of the present disclosure, when the second motor drives the child safety worm gear to rotate and disables the child safety function of the side door lock, the super lock pull rod can be driven to the disabled position.
[0039] According to the side door lock of at least one embodiment of the present disclosure, the super lock pull rod is configured to be able to rotate relative to the child safety worm gear. When the child safety worm gear is configured to activate the child safety function of the side door lock, the super lock pull rod can be driven to move from the activation position to the deactivation position.
[0040] According to the side door lock of at least one embodiment of the present disclosure, a spring is provided between the super lock rod and the child-safety worm gear, and the elastic force of the spring causes the super lock rod to have a movement tendency from the disabled position to the activated position.
[0041] According to another aspect of the present disclosure, a motor vehicle is provided, comprising the above-mentioned side door lock. BRIEF DESCRIPTION OF THE DRAWINGS
[0042] The accompanying drawings illustrate exemplary embodiments of the present disclosure and together with the description serve to explain the principles of the present disclosure. These drawings are included to provide a further understanding of the present disclosure and are incorporated in and constitute a part of this specification.
[0043] Figure 1 It is a structural schematic diagram of a side door lock according to an embodiment of the present disclosure.
[0044] Figure 2 1 is a schematic structural diagram of a bolt component and a pawl assembly according to one embodiment of the present disclosure.
[0045] Figure 3 It is a structural schematic diagram of a lock tongue component and a pawl assembly from another angle according to an embodiment of the present disclosure.
[0046] Figure 4 It is a schematic diagram of the principle of a side door lock according to one embodiment of the present disclosure.
[0047] Figure 5 Schematic diagram of the structure of an electric lock assembly according to one embodiment of the present disclosure.
[0048] Figure 6 2 is a schematic structural diagram of an electric lock assembly according to an embodiment of the present disclosure from another angle.
[0049] Figure 7 It is a structural schematic diagram of a partial structure of a side door lock according to an embodiment of the present disclosure.
[0050] Figures 8 to 10 FIG. 1 is a schematic diagram of a movement of a safety lever driven from a first position to a second position according to an embodiment of the present disclosure.
[0051] Figures 11 to 13 FIG. 1 is a schematic diagram of a movement of a safety lever driven from a second position to a first position according to an embodiment of the present disclosure.
[0052] Figure 14 It is a structural schematic diagram of a lock cylinder pull rod according to an embodiment of the present disclosure.
[0053] Figure 15It is a structural schematic diagram of a side door lock according to another embodiment of the present disclosure (super locked safety state).
[0054] Figure 16 It is a structural schematic diagram of a side door lock from another angle according to another embodiment of the present disclosure (super lock released safety state).
[0055] Figure 17 It is a schematic structural diagram of a safety pull rod of a side door lock according to another embodiment of the present disclosure.
[0056] Figure 18 It is a schematic structural diagram of a safety pull rod of a side door lock according to another embodiment of the present disclosure from another angle.
[0057] Figure 19 It is a structural schematic diagram of a side door lock super lock lever in an activated position according to another embodiment of the present disclosure.
[0058] Figure 20 It is a structural schematic diagram of another angle in which the super lock lever of a side door lock according to another embodiment of the present disclosure is in an activated position.
[0059] Figure 21 It is a structural schematic diagram of a side door lock super lock rod in a failure position according to another embodiment of the present disclosure (safety rod driven).
[0060] Figure 22 It is a structural schematic diagram of a side door lock super lock lever in a failure position according to another embodiment of the present disclosure (child-safety worm gear drive).
[0061] Figure 23 It is a structural schematic diagram of a side door lock super lock rod in a failure position according to another embodiment of the present disclosure.
[0062] The specific reference numerals in the figure are:
[0063] 100 lock body
[0064] 101 lock cylinder pull rod
[0065] 102 lock cylinder
[0066] 200 lock tongue parts
[0067] 300 pawl assembly
[0068] 310 first pawl component
[0069] 320 second pawl component
[0070] 321 Second Pawl First Groove Features
[0071] 322 Second pawl second groove features
[0072] 330 sliding pawl component
[0073] 331 sliding pawl first axis characteristics
[0074] 340 limit components
[0075] 400 electric unlocking components
[0076] 410 First Motor
[0077] 420 worm gear assembly
[0078] 421 worm gear components
[0079] 421A cam structure
[0080] 422 insurance drive parts
[0081] 422A first side surface
[0082] 422B second side surface
[0083] 422C columnar part
[0084] 423 first circlip
[0085] 430 operating lever parts
[0086] 431 operating lever first arm features
[0087] 432 operating lever second arm features
[0088] 433 operating lever third arm features
[0089] 434 operating lever slot features
[0090] 500 first manual unlocking assembly
[0091] 510 outward opening pull rod
[0092] 520 outward opening transmission rod
[0093] 600 safety lever
[0094] 601 second circlip
[0095] 610 arc groove
[0096] 620 limit protrusion
[0097] 630 first matching part
[0098] 631 first upper side wall
[0099] 632 first lower side wall
[0100] 640 second matching part
[0101] 641 second upper side wall
[0102] 642 second lower side wall
[0103] 650 raised part
[0104] 660 extension parts
[0105] 670 first stopper
[0106] 680 second stopper
[0107] 690 center axis
[0108] 691 torsion spring
[0109] 700 safety release lever
[0110] 710 limit column
[0111] 800 child care components
[0112] 810 second motor
[0113] 820 worm gear
[0114] 830 child safety connecting rod
[0115] 900 second manual unlocking assembly
[0116] 910 super lock lever
[0117] 920 spring. DETAILED DESCRIPTION
[0118] The present disclosure will be further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only intended to explain the relevant content and are not intended to limit the present disclosure. It should also be noted that, for ease of description, only the portions relevant to the present disclosure are shown in the accompanying drawings.
[0119] It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in the present disclosure can be combined with each other. The technical solution of the present disclosure will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.
[0120] Unless otherwise stated, the exemplary embodiments / examples shown are to be understood as providing exemplary features of various details of some ways in which the technical concepts of the present disclosure can be implemented in practice. Therefore, unless otherwise stated, the features of the various embodiments / examples may be further combined, separated, interchanged, and / or rearranged without departing from the technical concepts of the present disclosure.
[0121] The use of cross hatching and / or shading in the accompanying drawings is generally used to make the boundaries between adjacent components clear. As such, unless otherwise indicated, the presence or absence of cross hatching or shading does not convey or indicate any preference or requirement for the specific materials, material properties, dimensions, proportions, commonalities between the components shown, and / or any other characteristics, attributes, properties, etc. of the components. In addition, in the accompanying drawings, the sizes and relative sizes of the components may be exaggerated for clarity and / or descriptive purposes. When the exemplary embodiments can be implemented differently, the specific process sequence can be performed in a different order than described. For example, two successively described processes can be performed substantially simultaneously or in an order opposite to the order described. In addition, the same figure numbers represent the same components.
[0122] When a component is referred to as being “on,” “over,” “connected to,” or “coupled to” another component, the component may be directly on, directly connected to, or directly coupled to the other component, or intervening components may be present. However, when a component is referred to as being “directly on,” “directly connected to,” or “directly coupled to” another component, there are no intervening components present. For this purpose, the term “connected” may refer to a physical connection, an electrical connection, etc., with or without intervening components.
[0123] For descriptive purposes, the present disclosure may use spatially relative terms such as "below," "beneath," "under," "down," "above," "upper," "above," "higher," and "side (e.g., as in "sidewall")," to describe the relationship of one component to another (other) component as shown in the accompanying drawings. The spatially relative terms are intended to encompass different orientations of the device in use, operation, and / or manufacture in addition to the orientation depicted in the accompanying drawings. For example, if the device in the drawings is turned over, a component described as "below" or "beneath" another component or feature would then be positioned "above" the other component or feature. Thus, the exemplary term "below" can encompass both the "above" and "below" orientations. Furthermore, the device may be otherwise oriented (e.g., rotated 90 degrees or at other orientations), and as such, the spatially relative descriptors used herein should be interpreted accordingly.
[0124] The terms used herein are for the purpose of describing specific embodiments and are not intended to be restrictive. As used herein, unless the context clearly indicates otherwise, the singular forms "one (kind, person)" and "said (the)" are also intended to include plural forms. In addition, when the terms "comprise" and / or "include" and their variations are used in this specification, the features, integral bodies, steps, operations, parts, assemblies and / or their groups stated are explained, but the presence or addition of one or more other features, integral bodies, steps, operations, parts, assemblies and / or their groups is not excluded. It should also be noted that, as used herein, the terms "substantially", "approximately" and other similar terms are used as approximate terms and not as degree terms, so that they are used to explain the inherent deviations of the measured values, calculated values and / or the values provided that will be recognized by those of ordinary skill in the art.
[0125] Figure 1 It is a schematic structural diagram of a side door lock according to an embodiment of the present disclosure.
[0126] like Figure 1 As shown, the side door lock of the present disclosure may include components such as a lock body 100 , a lock tongue component 200 , a pawl assembly 300 , and an electric unlocking assembly 400 .
[0127] The lock body 100 can form the housing portion of the side door lock of the present disclosure, for example, it can include a back plate, a cover, and other structures. Accordingly, components such as the lock tongue component 200 and the pawl assembly 300 can be mounted on the back plate and / or the cover. The mounting methods of these components can be implemented using methods known in the art, and will not be detailed in this disclosure.
[0128] In some embodiments of the present disclosure, the bolt member 200 is rotatably disposed on the lock body 100, and the rotation axis of the bolt member 200 relative to the lock body 100 is the first axis. When the bolt member 200 rotates, the bolt member 200 can include at least a locked position and an unlocked position.
[0129] Figure 2 1 is a schematic structural diagram of a bolt component and a pawl assembly according to one embodiment of the present disclosure. Figure 3 1 is a schematic structural diagram of a bolt component and a pawl assembly from another angle according to an embodiment of the present disclosure.
[0130] like Figure 2 and Figure 3 As shown, in a specific embodiment, the lock tongue component 200 can be located in a locked position, a semi-locked position, and an unlocked position; in other words, when the lock tongue component 200 is driven to rotate, the lock tongue component 200 can move to one of the locked position, the semi-locked position, and the unlocked position.
[0131] by Figure 2In the state shown, the locking tongue component 200 is in the locked position. Figure 2 In the direction shown, when the lock tongue component 200 is rotated counterclockwise, it can be in the semi-locked position and the unlocked position. Conversely, when the lock tongue component 200 is in the unlocked position and rotated clockwise, it can be in the semi-locked position and the locked position. When the lock tongue component 200 is in the locked position, the side door lock is in the locked state; when the lock tongue component 200 is in the unlocked position, the side door lock is in the unlocked state.
[0132] In the present disclosure, the counterclockwise movement of the bolt component 200 (i.e., the unlocking process) can be achieved by the elastic force of the return spring. The clockwise movement of the bolt component 200 (i.e., the locking process) can be achieved by the pushing force applied to the bolt component 200 by a striker, or by an electric locking mechanism pulling the bolt component 200. In this case, the side door lock has an electric locking function. The electric locking mechanism can be implemented using solutions in the prior art, and this disclosure will not elaborate on them one by one.
[0133] Refer again Figure 2 and Figure 3 In the present disclosure, the pawl assembly 300 is used to cooperate with the lock tongue component 200 and at least keep the lock tongue component 200 in the locked position; specifically, the pawl assembly 300 of the present disclosure can keep the lock tongue component 200 in the locked position and the semi-locked position.
[0134] In a specific embodiment, the pawl assembly 300 includes a first pawl component 310 , a second pawl component 320 , and a sliding pawl component 330 .
[0135] The first pawl component 310 is rotatably disposed on the lock body 100. The rotation axis of the first pawl component 310 relative to the lock body 100 is the second axis, and the second axis can be parallel to or substantially horizontal with the first axis. Figures 1 to 3 In the orientation shown, the first axis and the second axis may both be disposed generally vertically.
[0136] The second pawl component 320 is rotatably disposed on the lock body 100. The rotation axis of the second pawl component 320 relative to the lock body 100 is a third axis, which is parallel or substantially parallel to the second axis and spaced apart from the second axis.
[0137] Thus, the first pawl member 310 can hold the bolt member 200 at the locked position, and the second pawl member 320 can hold the bolt member 200 at the semi-locked position.
[0138] The second pawl component 320 of the present disclosure can be driven and rotated by the electric unlocking assembly 400 to unlock the side door lock. Figure 2 In the direction shown, when the second pawl component 320 is driven to rotate counterclockwise, it can drive the sliding pawl component 330 to move and drive the first pawl component 310 to move, thereby unlocking the side door lock.
[0139] Specifically, the second pawl component 320 includes a second pawl first groove feature 321 and a second pawl second groove feature 322; the rotating shaft of the first pawl component 310 is slidably disposed in the second pawl first groove feature 321, thereby, when the second pawl component 320 is driven and rotated, the first pawl component 310 will not affect the rotation of the second pawl component 320.
[0140] The sliding pawl component 330 includes a first axis feature 331 of the sliding pawl, which is slidably arranged in the second groove feature 322 of the second pawl, and when the second pawl component 320 rotates, it can drive the sliding pawl component 330 to move, that is, generate a sliding action, thereby, the sliding pawl component 330 can leave from between the first pawl component 310 and the limiting component 340, and allow the first pawl component 310 to rotate counterclockwise, and the first pawl component 310 can release the lock tongue component 200, and enable the lock tongue component 200 to leave the locked position and move toward the semi-locked position.
[0141] Refer again Figure 3 The sliding pawl component 330 can also drive the first pawl component 310 to rotate. Specifically, when the second pawl component 320 rotates counterclockwise, the sliding pawl first axis feature 331 of the sliding pawl component 330 can move along the tangential direction of the circle with the third axis as the center line. At this time, the sliding pawl component 330 will push the first pawl component 310 to rotate counterclockwise.
[0142] Those skilled in the art should know that the reverse movement of the first pawl component 310 , the second pawl component 320 and the sliding pawl component 330 can be achieved by a return spring, which will not be described in detail here.
[0143] Generally speaking, during the unlocking process of the side door lock, the second pawl component 320 will be driven to rotate counterclockwise; and when the second pawl component 320 is allowed to rotate clockwise and reset, the second pawl component 320 can rotate clockwise and reset under the action of the reset force provided by the reset spring.
[0144] Figure 4 It is a schematic diagram of the principle of a side door lock according to one embodiment of the present disclosure. Figure 5 Schematic diagram of the structure of an electric lock assembly according to one embodiment of the present disclosure.
[0145] The electric unlocking assembly 400 is used to cooperate with the pawl assembly 300 so that the pawl assembly 300 can release the lock tongue component 200; in other words, the electric unlocking assembly 400 of the present disclosure can drive the second pawl component 320 of the pawl assembly 300 to rotate counterclockwise and unlock the side door lock.
[0146] Specifically, the electric unlocking assembly 400 of the present disclosure includes a first motor 410 and a worm gear assembly 420 drivingly connected to the first motor 410. Furthermore, the worm gear assembly 420 may include a worm gear component 421 and a safety drive 422. One end of the safety drive 422 is rotatably connected to the worm gear component 421, and the other end (free end) of the safety drive 422 extends outward from the worm gear component 421. A worm is provided on the output shaft of the first motor 410, and the worm is capable of cooperating with the worm gear component 421, so that the rotation of the worm causes the worm gear component 421 to rotate.
[0147] like Figure 5 As shown, the safety driving member 422 includes a first side surface 422A and a second side surface 422B. Figure 5 In the direction shown, the first side surface 422A forms the upper surface of the safety driving member 422, and the second side surface 422B forms the lower surface of the safety driving member 422. More preferably, the first side surface 422A is formed as a concave arc surface, and the second side surface 422B is formed as a convex arc surface, so that the safety driving member 422 is formed as a curved rod-shaped member as a whole.
[0148] A first retaining spring 423 is provided on the worm wheel component 421 of the worm wheel assembly 420. The first retaining spring 423 is used to limit the safety driving member 422 to the initial position, and when the safety driving member 422 leaves the initial position, the first retaining spring 423 is used to reset the safety driving member 422 to the initial position.
[0149] Specifically, the first retaining spring 423 can be a torsion spring, which can be mounted on the rotating shaft of the worm gear component 421. The two ends of the first retaining spring 423 are arranged roughly in parallel. Moreover, two columnar portions 422C are provided on the safety drive 422. The two ends of the first retaining spring 423 are used to clamp the columnar portions 422C, so that the first retaining spring 423 can limit the safety drive 422 to the initial position.
[0150] The worm gear component 421 of the present disclosure rotates about a fourth axis relative to the lock body 100, and the safety drive 422 rotates about a fifth axis relative to the lock body 100. The fourth and fifth axes are arranged parallel or approximately parallel to each other. The worm gear component 421 has a tangent plane passing through the fifth axis, and the tangent plane is tangent to a cylindrical surface centered on the fourth axis. The fourth axis is located on one side of the tangent plane, and the other end of the safety drive 422 is located on the other side of the tangent plane. At this time, an angle is formed between the safety drive 422 and the tangent plane (the line connecting one end and the other end of the safety drive 422 has an angle with the tangent plane), and the angle value of this angle can change with the rotation of the safety drive 422.
[0151] In a preferred embodiment, the diameter of the columnar portion 422C can be the same as the distance between the two ends of the first retaining spring 423. In this case, the distance between the two ends of the first retaining spring 423 is at a minimum. When the safety driver 422 rotates, the distance between the two ends of the first retaining spring 423 increases as the included angle changes. At this time, the two ends of the first retaining spring 423 tend to contract inward, thereby causing the safety driver 422 to return to its initial position.
[0152] Figure 6 2 is a schematic structural diagram of an electric lock assembly according to an embodiment of the present disclosure from another angle. Figure 7 It is a structural schematic diagram of a partial structure of a side door lock according to an embodiment of the present disclosure.
[0153] like Figure 6 and Figure 7 As shown, the electric unlocking assembly 400 of the present disclosure can also operate the rod component 430, which cooperates with the worm gear assembly 420 to drive the operating rod component 430 to rotate through the rotation of the worm gear assembly 420; wherein, when the operating rod component 430 rotates, it can push the pawl assembly 300 to move.
[0154] Specifically, if Figure 6 and Figure 7 As shown, the operating lever component 430 includes a first operating lever arm feature 431, a second operating lever arm feature 432, a third operating lever arm feature 433, and an operating lever slot feature 434. The first operating lever arm feature 431, the second operating lever arm feature 432, and the third operating lever arm feature 433 are all formed as arm portions of the operating lever component 430. The first operating lever arm feature 431 can cooperate with the cam structure 421A on the worm gear component 421, so that when the worm gear component 421 rotates, it can push the operating lever component 430 to rotate.
[0155] Specifically, Figure 6In the direction shown, when the worm wheel component 421 rotates clockwise, it can push the operating rod component 430 to rotate counterclockwise. Figure 5 In the direction shown, when the worm wheel component 421 rotates counterclockwise, it can push the operating lever component 430 to rotate clockwise. As a result, the operating lever second arm feature 432 of the operating lever component 430 can push the second pawl component 320 to rotate. Figure 2 and Figure 3 In the direction shown, the second pawl component 320 will rotate counterclockwise, thereby unlocking the side door lock.
[0156] Of course, the operating lever component 430 of the present disclosure can rotate counterclockwise (in Figure 5 direction shown).
[0157] The side door lock of the present disclosure may further include a first manual unlocking assembly 500, which is used to cooperate with the pawl assembly 300 to enable the pawl assembly 300 to release the lock tongue component 200; that is, the first manual unlocking assembly 500 of the present disclosure can be configured to drive the second pawl component 320 of the pawl assembly 300 to rotate. Specifically, as Figure 5 As shown, the first manual unlocking assembly 500 is an outward opening pull rod assembly, which may include an outward opening pull rod 510 and an outward opening transmission rod 520. The outward opening pull rod 510 is rotatably arranged on the lock body 100, one end of which can be connected to the outward opening handle of the side door, and when the outward opening handle of the side door is pulled, the outward opening pull rod 510 can generate a clockwise rotation action (in Figure 5 The outward opening transmission rod 520 is rotatably disposed on the lock body 100, and one end of the outward opening transmission rod 520 cooperates with the other end of the outward opening pull rod 510, so that when the outward opening pull rod 510 rotates clockwise, it can push the outward opening transmission rod 520 to rotate counterclockwise.
[0158] The safety lever 600 is configured to rotate about a sixth axis and has a first position and a second position; when the safety lever 600 is in the first position, the first manual unlocking assembly 500 is allowed to drive the pawl assembly 300 to move; when the safety lever 600 is in the second position, the first manual unlocking assembly 500 is not allowed to drive the pawl assembly 300 to move.
[0159] Figures 8 to 10 FIG. 1 is a schematic diagram of a movement of a safety lever driven from a first position to a second position according to an embodiment of the present disclosure. Figures 11 to 13 FIG. 1 is a schematic diagram of a movement of a safety lever driven from a second position to a first position according to an embodiment of the present disclosure.
[0160] refer to Figures 8 to 13In the present disclosure, the worm gear assembly 420 is configured to drive the safety lever 600 from the first position to the second position, or to drive the safety lever 600 from the second position to the first position.
[0161] Specifically, an arc-shaped groove 610 is provided at the lower end of the safety rod 600, and one end of the safety release rod 700 is slidably and rotatably arranged in the arc-shaped groove 610 of the safety rod 600, and the other end of the safety release rod 700 is slidably and rotatably arranged in the operating rod groove feature 434 of the operating rod component 430. Therefore, when the safety rod 600 is driven and rotated, it can drive the safety release rod 700 to produce horizontal displacement.
[0162] Among them, when the safety lever 600 is in the first position, the outward opening transmission rod 520 of the first manual unlocking assembly 500 can drive the safety unlocking lever 700 (that is, the other end of the safety unlocking lever 700 is located within the motion envelope of the outward opening transmission rod 520), and drive the operating lever component 430 to rotate through the safety unlocking lever 700; on the other hand, when the safety lever 600 is in the second position, the first manual unlocking assembly 500 cannot drive the safety unlocking lever 700. At this time, the other end of the safety unlocking lever 700 is located outside the motion envelope of the outward opening transmission rod 520.
[0163] In a preferred embodiment, a limiting column 710 is provided at one end of the safety release rod 700, and a second retaining spring 601 is provided on the safety pull rod 600. The second retaining spring 601 cooperates with the limiting column 710 to limit one end of the safety release rod 700 to the approximate middle position of the arc groove 610 of the safety pull rod 600.
[0164] More preferably, a limiting protrusion 620 is provided at the lower end of the safety lever 600 , and the two ends of the second clamping spring 601 are used to clamp the limiting column 710 and the limiting protrusion 620 ; wherein the two ends of the second clamping spring 601 are arranged substantially in parallel.
[0165] In the present disclosure, the second clamping spring 601 may be a torsion spring, which is sleeved on the rotating shaft of the safety lever 600. Moreover, the second clamping spring 601 and the first clamping spring 423 have the same / similar working principles, which will not be described in detail in this disclosure.
[0166] The following will be combined Figures 8 to 13 The specific structure of the safety lever 600 and its matching relationship with the worm gear assembly 420 will be described below.
[0167] like Figures 8 to 13As shown, the safety lever 600 of the present disclosure includes a first matching portion 630 and a second matching portion 640 ; the safety driving member 422 selectively matches with the first matching portion 630 or the second matching portion 640 to push the safety lever 600 to rotate in different rotation directions.
[0168] When the safety lever 600 is located at the first position, the safety driving member 422 can cooperate with the first matching portion 630 to drive the safety lever 600 from the first position to the second position.
[0169] Specifically, the first matching portion 630 includes a first groove formed on a side of the safety lever 600 , and an opening of the first groove faces the worm gear assembly 420 .
[0170] The first groove includes a first upper side wall 631 and a first lower side wall 632; when the safety lever 600 is in the first position, the other end of the safety driving member 422 contacts the first upper side wall 631 (eg Figure 9 At this time, since the safety lever 600 is in the first position, it cannot continue to rotate counterclockwise. Therefore, as the worm wheel component 421 rotates further, the safety driving member 422 will slide along the inner side wall of the first groove and cooperate with the first lower side wall 632 (as shown in FIG. Figure 10 shown).
[0171] The safety lever 600 is formed with a protrusion 650, which is used to form the first upper side wall 631 of the first groove. Figure 10 In the state shown, when the other end of the safety driving member 422 is engaged with the first lower side wall 632, the protrusion 650 contacts the first side surface of the safety driving member 422, and makes the angle of the safety driving member 422 larger and larger, so as to push the safety lever 600 to rotate clockwise (as shown in FIG. Figures 8 to 10 and moves from the first position to the second position.
[0172] Figure 11 The state shown is that the safety lever 600 is located at the second position. Figures 11 to 13 As shown, when the safety lever 600 is located at the second position, the safety driving member 422 can cooperate with the second matching portion 640 to drive the safety lever 600 from the second position to the first position.
[0173] Specifically, the second matching portion 640 includes a second groove formed on a side of the safety lever 600 , and an opening of the second groove faces the worm gear assembly 420 .
[0174] In other words, the second groove of the present disclosure is located above the first groove, and the portion between the first groove and the second groove is the aforementioned protrusion 650 .
[0175] The second groove includes a second upper sidewall 641 and a second lower sidewall 642. When the safety lever 600 is in the second position, the other end of the safety driver 422 contacts the second upper sidewall 641, pushing the safety lever 600 to rotate counterclockwise and move from the second position to the first position. In other words, when the safety lever 600 is in the second position, the other end of the safety driver 422 can pass over the first groove and directly engage with the second groove instead of the first groove.
[0176] The protrusion 650 is used to form the second lower side wall 642 of the second groove. When the other end of the safety driving member 422 is matched with the second upper side wall 641 , the protrusion 650 contacts the second side surface 422B of the safety driving member 422 .
[0177] Generally speaking, when the safety lever 600 is in the first position, the upper end of the safety lever 600 is away from the worm gear assembly 420, and the lower end of the safety lever 600 is close to the worm gear assembly 420. When the safety lever 600 is in the second position, the upper end of the safety lever 600 is close to the worm gear assembly 420, and the lower end of the safety lever 600 is away from the worm gear assembly 420. In this way, the safety lever 600 of the present disclosure can be easily matched with the safety drive member 422.
[0178] Based on the above structure, when the side door lock of the present disclosure is working, when the first motor 410 rotates in the first direction, the worm gear component 421 of the electric unlocking assembly 400 will rotate counterclockwise (in degrees). Figure 5 When the first motor 410 rotates in the second direction, the worm wheel component 421 of the electric unlocking component 400 will rotate clockwise (in the direction shown). Figure 5 When the safety lever 600 is in the first position, the safety lever 600 is in the released state, and the side door lock can be opened by the external opening lever 510. When the safety lever 600 is in the second position, the safety lever 600 is in the engaged state, and the side door lock cannot be opened by the external opening lever 510.
[0179] Based on the above structure, the side door lock of the present disclosure can be unlocked directly by the electric unlocking assembly. Moreover, the electric unlocking assembly can also switch the state of the safety lever 600. At the same time, the electric unlocking assembly performs these two functions in forward and reverse rotation. Accordingly, when the side door lock is electrically unlocked, it will not affect the armed or disarmed state of the safety lever 600.
[0180] Generally speaking, the worm gear assembly of the present disclosure can rotate the safety lever from the first position to the second position in the same direction as it rotates from the second position to the first position. That is, each time the first motor rotates in the second direction, the safety lever changes position. For example, when the first motor rotates in the second direction for the first time, it can drive the safety lever from the first position to the second position. The first motor then rotates in the first direction, and the worm gear assembly resets. When the first motor rotates in the second direction a second time, it can drive the safety lever from the second position to the first position.
[0181] Figure 14 It is a structural schematic diagram of a lock cylinder pull rod according to an embodiment of the present disclosure.
[0182] like Figure 4 and Figure 14 As shown, the side door lock of the present disclosure may also include a lock cylinder pull rod 101, thereby enabling the side door lock to be installed on the side door corresponding to the driver's seat. Accordingly, the side door lock of the present disclosure can be opened and closed using a key. Specifically, when the lock cylinder 102 rotates, it can drive the lock cylinder pull rod 101 to move, and through the lock cylinder pull rod 101, it drives the safety pull rod 600, and causes the safety pull rod 600 to be located in the first position or the second position. Furthermore, when the side door lock needs to be opened, the safety pull rod 600 can be driven to the first position, and then the side door lock can be unlocked using the first manual unlocking assembly 500; when the side door lock needs to be closed, the safety pull rod 600 can be driven to the second position, thereby preventing the side door lock from being unlocked even if the first manual unlocking assembly 500 is pulled.
[0183] Refer again Figure 6 The side door lock of the present disclosure may also have an electric child safety function. Specifically, the side door lock of the present disclosure further includes a child safety assembly 800. When the child safety assembly 800 is in the safety-on state, the side door lock cannot be unlocked by the second manual unlocking assembly 900. When the child safety assembly 800 is in the safety-off state, the side door lock can be unlocked by the second manual unlocking assembly 900.
[0184] Specifically, the second manual unlocking assembly 900 of the present disclosure may include an inner opening pull rod, which is rotatably arranged on the lock body 100, and the inner opening pull rod has the same rotation axis as the operating rod component 430, and the inner opening pull rod can selectively cooperate with the operating rod third arm feature 433 of the operating rod component 430 to selectively drive the operating rod component 430 to rotate.
[0185] Specifically, the child-safety component 800 may include a second motor 810, which is arranged on the lock body, and a worm is provided on the output shaft of the second motor 810, which can engage with the child-safety worm wheel 820 and rotate the child-safety worm wheel 820 through the rotation of the worm.
[0186] An arc-shaped hole is provided on the child-safety worm gear 820, and one end of the child-safety connecting rod 830 is rotatably and slidably arranged in the arc-shaped hole of the child-safety worm gear 820, and an elongated hole is provided on the inner pull rod, and the other end of the child-safety connecting rod 830 is rotatably and slidably arranged in the elongated hole.
[0187] Therefore, Figure 7 In the direction shown, when the child-safety link 830 is driven and moves to the right (e.g., to the right end of the elongated slot), the inner opening lever can be in transmission connection with the operating lever component 430. Specifically, when the inner opening lever is driven to rotate clockwise, it can drive the operating lever component 430 to rotate clockwise, thereby unlocking the side door lock. On the other hand, when the child-safety link 830 is driven and moves to the left (e.g., to the left end of the elongated slot), the clockwise rotation of the inner opening lever does not drive the operating lever component 430 to rotate clockwise. Therefore, the side door lock cannot be opened by the inner opening lever, thereby realizing the child-safety function.
[0188] In another embodiment, the child safety link 830 of the present disclosure can be manually operated and moved, thereby enabling the child safety function of the present disclosure to be manually turned on or off.
[0189] In a preferred embodiment, the side door lock may further include a first position detection device, which may be a travel switch that detects the position of the child-safety worm gear 820. When the child-safety component is in the safety-enclosed state, the travel switch can be actuated and closed. Consequently, the controller can disable the unlocking motion of the first motor based on the closed state of the travel switch. In this case, the side door lock cannot be unlocked via the electric unlocking component 400. In other words, the vehicle controller can disable or enable the electric unlocking function based on the state of the child-safety component.
[0190] In another preferred embodiment, the side door lock may further include a second position detection device, which may be a travel switch, and detects the position of the safety lever via the travel switch. When the safety lever is in the safety position, the travel switch can be actuated and closed. Thus, the controller can disable the unlocking motion of the first motor based on the closed state of the travel switch. In this case, the side door lock cannot be unlocked via the electric unlocking assembly 400. In other words, the vehicle controller can disable or enable the electric unlocking function based on the state of the safety lever.
[0191] Generally speaking, when the side door of the present invention is in use, the electric unlocking function and the manual unlocking function do not affect each other. In the power-off state after the whole vehicle collision, it can also be safely unlocked by the inner opening rod, thereby improving the safety performance of the whole vehicle.
[0192] Figure 15 It is a structural schematic diagram of a side door lock according to another embodiment of the present disclosure (super locked safety state). Figure 16 It is a structural schematic diagram of a side door lock from another angle according to another embodiment of the present disclosure (super lock released safety state).
[0193] The side door lock of this embodiment has a similar structure to the side door lock of the above embodiment. The following will focus on the differences between the side door lock of this embodiment and the above embodiment, and the similarities will not be repeated one by one.
[0194] like Figure 15 and Figure 16 As shown, the side door lock of this embodiment is different from the side door lock of the above embodiment in the structure of the safety pull rod 600. Therefore, compared with the side door lock of the above embodiment, the side door lock of the present disclosure has a super lock function.
[0195] Figure 17 It is a schematic structural diagram of a safety pull rod of a side door lock according to another embodiment of the present disclosure. Figure 18 It is a schematic structural diagram of a safety pull rod of a side door lock according to another embodiment of the present disclosure from another angle.
[0196] Specifically, in addition to the structure of the safety lever 600 in the above embodiment, Figure 17 and Figure 18 As shown, the safety lever 600 of the side door lock of the present disclosure further includes an extension component 660, which is located at the upper end of the safety lever 600. When the safety lever 600 moves from the second position to the first position, it can push the super lock lever 910 from the activated position to the disabled position. Figure 15 In the direction shown, the extension component 660 of the present disclosure can be located at the left half of the upper end of the safety lever 600 , so that the extension component 660 can cooperate with the super lock lever 910 .
[0197] In addition, if Figures 16 to 18 As shown, the safety lever 600 of the present disclosure further includes: a first stop portion 670, a second stop portion 680 and a central shaft portion 690. The axis of the central shaft portion 690 is the same as the rotation axis of the safety lever 600. A torsion spring 691 is sleeved on the central shaft portion 690. One end of the torsion spring 691 is stopped by the first stop portion 670, and the second end of the torsion spring 691 is stopped by the second stop portion 680. The torsion spring 691 is in a pre-compressed state.
[0198] In other words, when the first end and the second end of the torsion spring 691 are in pressure contact with the first stop portion 670 and the second stop portion 680 of the safety lever 600 respectively, from the perspective of the safety lever 600 as a whole, the force applied by the torsion spring 691 is an internal force, which does not cause the safety lever 600 to rotate.
[0199] In a preferred embodiment, the torsion spring 691 has a larger wire diameter. For example, the wire diameter of the torsion spring 691 may be about 2 mm to 5 mm. Thus, the torsion spring 691 has a larger Hooke's coefficient, so that the second manual unlocking component 900 can drive the safety lever 600 to rotate via the torsion spring 691 .
[0200] In the present disclosure, one end of the torsion spring 691 can extend a predetermined length along the rotation axis of the safety lever 600, so that when the second manual unlocking assembly 900 is operated and rotated, the one end of the torsion spring 691 is located within the motion envelope of the second manual unlocking assembly 900. In other words, regardless of whether the child safety function of the child safety assembly 800 is engaged, the second manual unlocking assembly 900 can be pulled and rotated. At this time, during the rotation process, the second manual unlocking assembly 900 can contact and apply a thrust to the one end of the torsion spring 691, thereby selectively driving the safety lever 600 to rotate.
[0201] However, not all cases can cause the second manual unlocking assembly 900 to drive the safety lever 600 to rotate. These cases will be described in detail below.
[0202] Specifically, the side door lock of this embodiment may also include a super lock rod 910, which is rotatably arranged on the lock body 100, and the super lock rod 910 has an activation position and an inactivation position, wherein, when the super lock rod 910 is in the activation position, the second manual unlocking component 900 is not allowed to drive the safety rod 600 from the second position to the first position; when the super lock rod 910 is in the inactivation position, the second manual unlocking component 900 is allowed to drive the safety rod from the second position to the first position.
[0203] Figure 19 It is a structural schematic diagram of a side door lock super lock lever in an activated position according to another embodiment of the present disclosure. Figure 20 It is a structural schematic diagram of another angle in which the super lock lever of a side door lock according to another embodiment of the present disclosure is in an activated position.
[0204] like Figure 19 and Figure 20As shown, in the side door lock of the present disclosure, when the super lock lever 910 is in the activated position, the super lock lever 910 contacts the other end of the torsion spring 691 and limits the position of the other end of the torsion spring 691. At this time, even if the second manual unlocking assembly 900 is driven and rotated, and applies a thrust to one end of the torsion spring 691, since the other end of the torsion spring 691 is limited in position by the super lock lever 910, the thrust applied by the second manual unlocking assembly 900 to the torsion spring 691 can only cause one end of the torsion spring 691 to change position relative to the other end of the torsion spring 691. Accordingly, the torsion spring 691 accumulates energy, and the safety lever 600 does not rotate.
[0205] In a preferred embodiment, a bending portion is formed at the other end of the torsion spring 691, and the bending portion can cooperate with the corner of the super lock rod 910, so that the super lock rod 910 can stably hold the other end of the torsion spring 691. Moreover, through the setting of the bending portion, the super lock rod 910 can only move from the activation position to the deactivation position under the action of external force.
[0206] In the present disclosure, the super lock lever 910 and the child-safety worm gear 820 have the same rotation axis. Thus, the super lock lever 910 of the present disclosure can be driven by the child-safety worm gear 820 to be in an activated position or a deactivated position. It should be understood by those skilled in the art that the super lock lever 910 and the child-safety worm gear 820 may also have different rotation axes.
[0207] Specifically, when the second motor 810 drives the child-safety worm gear 820 to rotate and the child-safety function of the side door lock is activated, the super lock rod 910 can be driven to the activation position. At this time, the super lock function of the side door lock can also be in an effective state.
[0208] In the present disclosure, when the child protection function is in effect, whether the super lock rod 910 is in the activation position depends on the state of the safety rod 600. Specifically, when the safety rod 600 is in the second position, the super lock rod 910 can be directly rotated to the activation position; when the safety rod 600 is in the first position, the super lock rod 910 will be blocked by the safety rod 600 and cannot be rotated to the activation position. At this time, only after the safety rod 600 leaves the first position can the super lock rod 910 move to the activation position under the elastic force of the spring 920.
[0209] Figure 21 It is a structural schematic diagram of a side door lock super lock rod in a failure position according to another embodiment of the present disclosure (safety rod driven). Figure 22 It is a structural schematic diagram of a side door lock super lock lever in a failure position according to another embodiment of the present disclosure (child-safety worm gear drive). Figure 23It is a structural schematic diagram of a side door lock super lock rod in a failure position according to another embodiment of the present disclosure.
[0210] The following will be combined Figures 21 to 23 The situation where the super lock lever 910 is in the failure position will be described.
[0211] In the present disclosure, when the super lock lever 910 rotates from the activated position to the deactivated position, the super lock function of the side door lock is disabled. Specifically, when the super lock lever 910 is in the deactivated position, the super lock lever 910 is spaced apart from the torsion spring 691. When the second manual unlocking assembly 900 is operated and rotated, the safety lever 600 moves from the second position to the first position by pushing one end of the torsion spring 691.
[0212] That is, when the super lock function fails, the second manual unlocking assembly 900 can drive the safety lever 600 to rotate, thereby changing the state of the safety lever 600.
[0213] The super lock lever 910 can be driven from the activated position to the deactivated position in two ways. Specifically, on the one hand, the super lock lever 910 is configured to rotate relative to the child safety worm gear 820. When the child safety worm gear 820 is configured to activate the child safety function of the side door lock, the super lock lever 910 can be driven to move from the activated position to the deactivated position. At this time, the super lock lever 910 can be driven by the safety lever 600 to move from the activated position to the deactivated position. For example, when the electric unlocking assembly 400 drives the safety lever 600 and causes the safety lever 600 to move from the second position to the first position, the super lock lever 910 will be moved from the activated position to the deactivated position. At this time, the position of the child safety worm gear 820 can remain unchanged, and the child safety function is in effect. In addition, when the lock core rod 101 drives the safety rod 600 and moves the safety rod 600 from the second position to the first position, the super lock rod 910 will be moved from the activation position to the deactivation position. At this time, the position of the child safety worm gear 820 can remain unchanged and the child safety function is in effect.
[0214] On the other hand, the super lock lever 910 will be released along with the release of the child safety function. Specifically, when the child safety worm gear 820 rotates and disables the child safety function of the side door lock, the super lock lever 910 can be driven to the disabled position by the child safety worm gear 820.
[0215] In the present disclosure, a spring 920 is provided between the super lock lever 910 and the child-safety worm gear 820, and the elastic force of the spring 920 causes the super lock lever 910 to have a movement tendency from the disabled position to the activated position. More preferably, a limiting component is also provided on the child-safety worm gear 820. For example, the limiting component can be two, and the two limiting components are respectively used to limit the super lock lever 910 to two positions, that is, at this time, the super lock lever 910 will only be able to rotate between the two positions, and will not extend beyond the two positions, thereby allowing the super unlocking lever 910 to move between the activated position and the disabled position.
[0216] Generally speaking, in this embodiment, the side door lock of the present invention has a super lock function through the provision of the super lock rod 910, and thus the side door lock of the present invention can be locked and unlocked in the following manner.
[0217] Specifically, when the side door lock assembly of the present invention is locked, not only does the lock tongue component 200 need to move to the locked position, but the child safety worm gear 820 is also driven to the position where the child safety function is activated. The super lock rod 910 will be driven to the activated position, and the safety rod 600 will be driven to the second position to complete the locking of the side door lock.
[0218] When the side door lock is unlocked, it can be unlocked in different ways:
[0219] Method 1: Insert the key into the lock cylinder 102 and turn it to drive the safety lever 600 from the second position to the first position through the lock cylinder rod 101. At this time, the side door lock can be unlocked by driving the outward opening lever 510. At the same time, when the safety lever 600 is driven from the second position to the first position, the super lock lever 910 will be driven to the disabled position.
[0220] Approach 2: By sending a rotation signal to the first motor 410, the first motor 410 will rotate in the second direction and drive the safety lever 600 to move from the second position to the first position. At this time, it can be unlocked by driving the outward opening lever 510. At the same time, when the safety lever 600 is driven from the second position to the first position, the super lock lever 910 will be driven to the disabled position.
[0221] That is, when unlocking via Path 1 or Path 2, the child-safety worm gear 820 can be in either the activated or deactivated position. In other words, regardless of the position of the child-safety worm gear 820, both Path 1 and Path 2 can unlock the child-safety worm gear 820. That is, unlocking via Path 1 or Path 2 does not change the position or operating state of the child-safety worm gear 820.
[0222] Method 3: Drive the child safety worm gear 820 to the position where the child safety function is disabled. At this time, the super lock rod 910 will move to the disabled position together with the child safety worm gear 820; if the safety rod 600 is in the first position at this time, the side door lock can be opened by the inner opening rod; if the safety rod 600 is in the second position at this time, the side door lock can be opened by double pulling the inner opening rod.
[0223] In the present disclosure, the child safety link 830 of the present disclosure can cooperate with the safety lever 600. Specifically, the child safety link 830 can be in a child safety effective position and a child safety invalid position; Figure 15 In the direction shown, the child safety effective position of the child safety link 830 is the maximum position of the child safety link 830 moving to the left (i.e. Figure 15 The child safety failure position of the child safety link 830 is the maximum position of the child safety link 830 to the right. Those skilled in the art should know that when the child safety worm gear 820 rotates clockwise, it can drive the child safety link 830 to the child safety effective position; in addition, when the safety link 600 rotates clockwise and moves to the second position, it can push the child safety link 830 and put the child safety link in the child safety effective position. In other words, the position of the child safety link 830 will be jointly restricted by the child safety worm gear 820 and the safety link 600. Only when these two components release the child safety link 830, the child safety link 830 will be allowed to move from the child safety effective position to the child safety failure position under the elastic force of the return spring. In the child safety failure position, when the inner opening pull rod rotates, it will drive the operating rod component 430 to rotate to unlock the side door lock.
[0224] The action process of the double-pull inner opening lever is as follows: when the child safety worm gear 820 is driven to the position where the child safety function is disabled, the super lock lever 910 will move to the disabled position together with the child safety worm gear 820; at this time, the safety lever 600 is in the second position, and the first pull of the super lock lever 910 will drive the safety lever 600 to rotate counterclockwise (to Figure 15 direction in the middle), and moves from the second position to the first position (at this time, the side door lock can also be unlocked by the outer opening rod); then the inner pulling rod is reset, and at this time the child safety connecting rod 830 is no longer restricted by the safety rod, and it will move from the child safety effective position to the child safety invalid position. At this time, the inner opening rod is pulled again, and the inner opening rod will drive the operating rod component 430 to rotate through the child safety connecting rod 830 to unlock the side door lock.
[0225] Generally speaking, in the side door lock disclosed herein, when the super lock rod 910 is in the activated position, that is, when both the child safety function and the super lock function are in effect, the side door lock can only be opened from the outside, but cannot be opened from the inside; when the child safety function fails and the super lock function fails, the side door lock can be opened by double-pulling the inner opening rod, which solves the problem in the prior art that the side door lock can be opened by double-pulling, and improves the safety performance of the side door lock.
[0226] According to another aspect of the present disclosure, a motor vehicle is provided, which includes the above-mentioned side door lock.
[0227] In the description of this specification, the description with reference to the terms "one embodiment / method", "some embodiments / methods", "example", "specific example", or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment / method or example are included in at least one embodiment / method or example of the present application. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment / method or example. Moreover, the specific features, structures, materials or characteristics described may be combined in an appropriate manner in any one or more embodiments / methods or examples. In addition, those skilled in the art may combine and combine different embodiments / methods or examples described in this specification and the features of different embodiments / methods or examples, unless they are contradictory.
[0228] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of such features. Throughout the description of this application, "plurality" means at least two, for example, two, three, etc., unless otherwise specifically defined.
[0229] Those skilled in the art will appreciate that the above embodiments are merely intended to clearly illustrate the present disclosure and are not intended to limit the scope of the present disclosure. Other changes or modifications may be made based on the above disclosure, and such changes or modifications are still within the scope of the present disclosure.
Claims
1. A side door lock, characterized in that: include: a locking tongue component, the locking tongue component being configured to rotate about a first axis and comprising at least a locked position and an unlocked position; a pawl assembly, the pawl assembly being used to cooperate with the lock tongue component and at least to keep the lock tongue component in a locked position; an electric unlocking assembly, the electric unlocking assembly being used to cooperate with the pawl assembly so that the pawl assembly can release the bolt component; a second manual unlocking assembly, the second manual unlocking assembly being configured to selectively cooperate with the pawl assembly to enable the pawl assembly to release the bolt member; a safety lever, the safety lever being rotatable and having a first position and a second position; a super lock lever, the super lock lever having an activated position and a deactivated position, wherein when the super lock lever is in the activated position, the second manual release assembly is not allowed to drive the safety lever from the second position to the first position; and when the super lock lever is in the deactivated position, the second manual release assembly is allowed to drive the safety lever from the second position to the first position; and A first manual unlocking assembly is configured to selectively cooperate with the pawl assembly to enable the pawl assembly to release the lock tongue component; wherein, when the safety lever is in a first position, the first manual unlocking assembly is allowed to drive the pawl assembly to move and release the lock tongue component; and when the safety lever is in a second position, the first manual unlocking assembly is not allowed to drive the pawl assembly to move.
2. The side door lock according to claim 1, characterized in that: The electric unlocking assembly includes a first motor and a worm gear assembly drivingly connected to the first motor. The worm gear assembly is configured to drive the safety lever to rotate, so that when the safety lever is in the first position, the worm gear assembly drives the safety lever from the first position to the second position; and when the safety lever is in the second position, the worm gear assembly drives the safety lever from the second position to the first position.
3. The side door lock according to claim 2, characterized in that: The worm gear assembly includes a worm gear component and a safety driving component. One end of the safety driving component is rotatably connected to the worm gear component, and the other end of the safety driving component extends outward from the worm gear component.
4. The side door lock according to claim 3, characterized in that: The safety lever comprises a first matching portion and a second matching portion; the safety driving member selectively matches with the first matching portion or the second matching portion to push the safety lever to rotate in different rotation directions.
5. The side door lock according to claim 4, characterized in that: When the safety lever is located at the first position, the safety driving member can cooperate with the first matching portion to drive the safety lever from the first position to the second position.
6. The side door lock according to claim 5, characterized in that: The first matching portion includes a first groove formed on a side of the safety lever, and an opening of the first groove faces the worm gear assembly.
7. The side door lock according to claim 6, characterized in that: The first groove includes a first upper side wall and a first lower side wall; when the safety pull rod is in the first position, the other end of the safety drive member can contact the first upper side wall, and as the worm gear component further rotates, the other end of the safety drive member can slide along the inner side wall of the first groove and can cooperate with the first lower side wall to push the safety pull rod from the first position to the second position.
8. The side door lock according to claim 7, characterized in that: The safety pull rod is formed with a protrusion, which is used to form a first upper side wall of the first groove. When the other end of the safety drive member is matched with the first lower side wall, the protrusion contacts the first side surface of the safety drive member.
9. The side door lock according to claim 8, characterized in that: The first side surface is formed as a concave arc surface.
10. The side door lock according to claim 4, characterized in that: When the safety lever is located at the second position, the safety driving member can cooperate with the second matching portion to drive the safety lever from the second position to the first position.
11. The side door lock according to claim 10, characterized in that: The second matching portion includes a second groove, the second groove is formed on a side of the safety lever, and an opening of the second groove faces the worm gear assembly.
12. The side door lock according to claim 11, characterized in that: The second groove includes a second upper side wall; when the safety lever is located at the second position, the other end of the safety driving member can contact the second upper side wall to push the safety lever to move from the second position to the first position.
13. The side door lock according to claim 12, characterized in that: The safety pull rod is formed with a protrusion, which is used to form the second lower side wall of the second groove. When the other end of the safety driving member is matched with the second upper side wall, the protrusion contacts the second side surface of the safety driving member.
14. The side door lock according to claim 13, characterized in that: The second side surface is formed as an outwardly convex arc surface.
15. The side door lock according to claim 1, characterized in that: The safety lever comprises an extension component, which is located at the upper end of the safety lever. When the safety lever moves from the second position to the first position, the extension component can push the super lock lever from the activation position to the deactivation position.
16. The side door lock according to claim 15, characterized in that: The safety pull rod includes: a first stop portion, a second stop portion and a central shaft portion. The axis of the central shaft portion is the same as the rotation axis of the safety pull rod. A torsion spring is sleeved on the central shaft portion. One end of the torsion spring is stopped by the first stop portion, and the second end of the torsion spring is stopped by the second stop portion. The torsion spring is in a pre-compressed state.
17. The side door lock according to claim 16, characterized in that: When the second manual unlocking assembly is operated and rotated, one end of the torsion spring is located within the motion envelope of the second manual unlocking assembly.
18. The side door lock according to claim 17, characterized in that: When the super lock lever is located at the activation position, the super lock lever contacts the other end of the torsion spring and limits the position of the other end of the torsion spring.
19. The side door lock according to claim 18, characterized in that: When the super lock rod is in the failure position, the super lock rod is spaced apart from the torsion spring; when the second manual unlocking component is operated and rotated, the safety rod moves from the second position to the first position by pushing one end of the torsion spring.
20. The side door lock according to claim 1, characterized in that: Also includes: A child-safety worm gear is rotatably arranged on the lock body; wherein the super lock pull rod and the child-safety worm gear have the same rotation axis.
21. The side door lock according to claim 20, characterized in that: Also includes: A second motor is used to drive the child-safety worm gear to rotate, wherein when the second motor drives the child-safety worm gear to rotate and the child-safety function of the side door lock is effective, the super lock rod can be driven to the activation position.
22. The side door lock according to claim 21, characterized in that: When the second motor drives the child-safety worm gear to rotate and disables the child-safety function of the side door lock, the super lock pull rod can be driven to the disabled position.
23. The side door lock according to claim 22, characterized in that: The super lock pull rod is configured to be rotatable relative to the child safety worm gear. When the child safety worm gear is configured to activate the child safety function of the side door lock, the super lock pull rod can be driven to move from the activation position to the deactivation position.
24. The side door lock according to claim 23, characterized in that: A spring is provided between the super lock pull rod and the child protection worm gear, and the elastic force of the spring causes the super lock pull rod to have a movement tendency from the failure position to the activation position.
25. A motor vehicle, characterized in that: The invention comprises the side door lock according to any one of claims 1 to 24.
Citation Information
Patent Citations
Novel electric child protection device
CN116136136A
Electric release door lock and motor vehicle
CN218406997U