Storage structure and vehicle
By incorporating a synchronization component, including a pull rope and a rotation unit, into the vehicle handrail structure, the problem of asynchronous opening times of the double handrails was solved, enabling synchronized opening of the doors and improving the user experience.
Patent Information
- Application Number
- CN202422756552.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-11
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-11-11
AI Technical Summary
In existing technologies, the opening times of the split handrails in vehicle handrail structures are not synchronized after unlocking, which affects the user experience.
By setting up a synchronization component, including a first pull rope, a second pull rope, a rotating unit, and a coil spring unit, the double doors can be opened synchronously. The cooperation of the rotating unit and the pull rope ensures that the doors flip synchronously when unlocked.
This improves the user experience by ensuring that the double doors open simultaneously when unlocked, reducing the opening time difference and enhancing ease of use.
Smart Images

Figure CN223574329U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] Embodiments of the present application relate to the technical field of vehicles, and particularly relate to a storage structure and a vehicle. BACKGROUND
[0002] In the related art, an armrest structure is arranged between a main driver seat and a co-driver seat of a vehicle or between two passenger seats in the rear row, the armrest structure comprising an armrest seat and two split armrests, the armrest seat having a storage space therein, and in a normal case, the two split armrests are locked on the armrest seat, when a user presses any one of the split armrests, the split armrest can be unlocked from the armrest seat, and then the split armrest is opened to facilitate the user to take or place articles.
[0003] However, when the two split armrests are unlocked from the armrest seat, the two split armrests are not opened synchronously, which affects the user experience. CONTENT OF THE UTILITY MODEL
[0004] In view of this, embodiments of the present application provide a storage structure and a vehicle, the storage structure is used to drive the first door body and the second door body of the split door to be opened synchronously by arranging a synchronous assembly, thereby improving the user experience.
[0005] To achieve the above purpose, the technical scheme of embodiments of the present application is as follows:
[0006] In a first aspect, the present application provides a storage structure, the storage structure comprising a box body, the box body having a storage cavity;
[0007] The split door comprises a first door body and a second door body, the first door body and the second door body are located on two sides of the box body, and the first door body and the second door body are both rotationally connected with the box body to open or close the storage cavity;
[0008] The synchronous assembly comprises a first pull rope, a second pull rope, a rotating unit and a coil spring unit, the rotating unit is rotationally connected with the box body, the first end of the first pull rope and the first end of the second pull rope are both wound on the rotating unit, the second end of the first pull rope is connected with the first door body, the second end of the second pull rope is connected with the second door body, the coil spring unit is connected with the rotating unit, and the coil spring unit is used to drive the rotating unit to wind the first pull rope and the second pull rope.
[0009] The storage structure provided by the embodiment of the present application is used for storing articles through the storage cavity, is used for controlling the opening and closing state of the storage cavity through the first door body and the second door body, is used for winding and releasing the first pull rope and the second pull rope through the rotating unit, is used for connecting the rotating unit and the first door body through the first pull rope, is used for connecting the rotating unit and the second door body through the second pull rope, and then when one of the first door body and the second door body is opened, the other one of the first door body and the second door body can also be synchronously opened through the rotating unit, the first pull rope and the second pull rope. The winding spring unit is used for driving the rotating unit to rotate, and then resets the first pull rope and the second pull rope. Therefore, the storage structure provided by the embodiment of the present application can improve the use experience of the user.
[0010] In a possible implementation, the rotating unit comprises a first rotating piece and a second rotating piece, the first rotating piece and the second rotating piece are both rotationally connected with the box body, the rotation axes of the first rotating piece and the second rotating piece are consistent, and the first rotating piece and the second rotating piece are meshingly connected.
[0011] The first pull rope is connected with the first rotating piece and the first door body, and the second pull rope is connected with the second rotating piece and the second door body.
[0012] In a possible implementation, the winding spring unit comprises a first winding spring and a second winding spring, the first winding spring is connected with the first rotating piece and is used for providing elastic force for the first rotating piece;
[0013] The second winding spring is connected with the second rotating piece and is used for providing elastic force for the second rotating piece.
[0014] In a possible implementation, the box body comprises a box body, a first support and a second support arranged on the box body, the first rotating piece is rotationally connected with the first support, and the second rotating piece is rotationally connected with the second support.
[0015] The first end of the elastic force direction of the first winding spring is connected with the first rotating piece, and the second end of the elastic force direction of the first winding spring is connected with the first support;
[0016] The first end of the elastic force direction of the second winding spring is connected with the second rotating piece, and the second end of the elastic force direction of the second winding spring is connected with the second support.
[0017] In a possible implementation, the first rotating piece comprises a first gear and a first wire winding groove coaxially connected, the first gear and the first wire winding groove are arranged along the rotation axis of the first rotating piece, and the first pull rope is wound on the first wire winding groove.
[0018] The second rotating piece comprises a second gear and a second wire winding groove coaxially connected, the second gear and the second wire winding groove are arranged along the rotation axis of the second rotating piece, and the second pull rope is wound on the second wire winding groove.
[0019] The first gear is in meshing connection with the second gear.
[0020] In a possible implementation, the rotating unit comprises a third rotating member, which is in rotating connection with the box body.
[0021] The third rotating member has a third winding groove and a fourth winding groove, which are arranged along an axis of rotation of the third rotating member.
[0022] The first pull rope is wound on the third winding groove, and the second pull rope is wound on the fourth winding groove, and the winding directions of the first pull rope and the second pull rope are opposite.
[0023] In a possible implementation, the winding spring unit comprises a third winding spring, and the box body and the third rotating member are connected with the third winding spring, and the third winding spring is configured to provide elastic force for the third rotating member.
[0024] In a possible implementation, the storage structure further comprises a first hinged arm and a second hinged arm, a first end of the first hinged arm is coaxially connected with the first door body, and a second end of the first hinged arm is connected with the first pull rope.
[0025] A first end of the second hinged arm is coaxially connected with the second door body, and a second end of the second hinged arm is connected with the second pull rope.
[0026] In a possible implementation, the storage structure further comprises a driving assembly, and the driving assembly comprises a first door opening torsional spring, a first rotating shaft, a second door opening torsional spring, and a second rotating shaft.
[0027] The first door opening torsional spring is sleeved on the first rotating shaft, the first rotating shaft is coaxially connected with the first door body, and the first door opening torsional spring is configured to provide elastic force for the first door body.
[0028] The second door opening torsional spring is sleeved on the second rotating shaft, the second rotating shaft is coaxially connected with the second door body, and the second door opening torsional spring is configured to provide elastic force for the second door body.
[0029] In a second aspect, the embodiments of the present application provide a vehicle, comprising a vehicle body and a storage structure, and the storage structure is connected to the vehicle body.
[0030] The storage structure includes a box body, double doors, and a synchronization assembly. The double doors consist of a first door and a second door, located on opposite sides of the box body. Both doors are rotatably connected to the box body to open or close the storage compartment. The synchronization assembly includes a first pull cord, a second pull cord, a rotating unit, and a coil spring unit. The rotating unit is rotatably connected to the box body. The first end of the first pull cord and the first end of the second pull cord are both wound around the rotating unit. The second end of the first pull cord is connected to the first door, and the second end of the second pull cord is connected to the second door. The coil spring unit is connected to the rotating unit and drives the rotating unit to retract the first and second pull cords. When one of the first and second doors is opened, the rotating unit, the first pull cord, and the second pull cord can simultaneously open the other door. After the first and second doors are closed, the coil spring unit can drive the rotating unit to rotate, thereby resetting the first and second pull cords. Therefore, the storage structure provided by this embodiment improves the user experience. Attached Figure Description
[0031] Figure 1 This is a schematic diagram of the storage structure provided in the embodiments of this application;
[0032] Figure 2 This is a schematic diagram of the storage structure when closed, as provided in the embodiments of this application.
[0033] Figure 3 A schematic diagram of the structure of the double doors and the synchronization component in the storage structure provided in the embodiments of this application;
[0034] Figure 4 for Figure 3 The right view;
[0035] Figure 5 for Figure 2 AA-direction cross-sectional view;
[0036] Figure 6 This is a schematic diagram of the third rotating component in the storage structure provided in the embodiments of this application;
[0037] Figure 7 This is a schematic diagram of the internal structure of the storage structure provided in the embodiments of this application;
[0038] Figure 8 for Figure 7 BB-direction cross-sectional view.
[0039] Figure label:
[0040] 100 - Box body; 110 - Box main body; 120 - First support; 130 - Second support;
[0041] 200 - double door; 210 - first door body; 220 - second door body;
[0042] 300 - synchronous assembly; 310 - first pull rope; 320 - second pull rope; 330 - rotating unit; 331 - first rotating member; 3311 - first gear; 3312 - first winding groove; 332 - second rotating member; 3321 - second gear; 3322 - second winding groove; 333 - third rotating member; 3331 - third winding groove; 3332 - fourth winding groove; 340 - coil spring unit; 341 - first coil spring; 342 - second coil spring; 350 - first hinged arm; 360 - second hinged arm; 400 - driving assembly; 410 - first door opening torsional spring; 420 - first rotating shaft; 430 - damping member. DETAILED DESCRIPTION
[0043] In order to make the purpose, technical scheme and advantages of the embodiments of the present application clearer, the specific technical scheme of the present application will be further described in detail below with reference to the drawings in the embodiments of the present application. The following embodiments are used to illustrate the present application, but not to limit the scope of the present application.
[0044] In the embodiments of the present application, the terms "first", "second" are only used for descriptive purpose, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the embodiments of the present application, unless otherwise specified, the meaning of "a plurality of" is two or more.
[0045] In addition, in the embodiments of the present application, the orientation terms such as "upper", "lower", "left" and "right" are defined with respect to the orientation of the components shown in the drawings, and it should be understood that these directional terms are relative concepts, which are used for relative description and clarification, and can be changed accordingly according to the change of the orientation of the components placed in the drawings.
[0046] In the embodiments of the present application, unless otherwise explicitly specified and limited, the term "connection" should be understood in a broad sense, for example, "connection" can be fixed connection, or detachable connection, or integral; can be directly connected, or indirectly connected through intermediate medium.
[0047] In the embodiments of the present application, the terms "comprising", "containing" or any other variant thereof are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements not only includes those elements, but can also include other elements not expressly listed or inherent to such process, method, article, or apparatus. Without more limitations, the element defined by the phrase "comprising a" does not exclude the presence of additional identical elements in the process, method, article, or apparatus that includes the element.
[0048] In the embodiments of the present application, the words "exemplary" or "for example" are used to mean serving as an example or illustration. Any embodiment or design presented as "exemplary" or "for example" in the embodiments of the present application should not be construed as preferred or advantageous over other embodiments or designs. Rather, the use of "exemplary" or "for example" is intended to present concepts in a concrete manner.
[0049] In the related art, an armrest structure is provided between the main driver seat and the front passenger seat of a vehicle, or between the two rear passenger seats, the armrest structure comprising an armrest seat and two split armrests, the armrest seat having a storage space therein, and in normal circumstances, both split armrests are locked on the armrest seat, when a user presses any one of the split armrests, the split armrest can be unlocked from the armrest seat, and then the split armrest is opened to facilitate the user to take or place articles. However, when the two split armrests are unlocked from the armrest seat, the two split armrests are not opened synchronously, which affects the user's experience.
[0050] Therefore, the embodiments of the present application provide a storage structure and a vehicle, the storage structure is provided with a synchronous assembly to drive the first door body and the second door body to open synchronously, thereby improving the user's experience.
[0051] The specific embodiments of the storage structure and the vehicle provided by the embodiments of the present application are described in detail below with reference to the accompanying drawings.
[0052] The embodiments of the present application provide a vehicle, it should be noted that the vehicle in the present application can refer to large cars, small cars, special purpose vehicles, etc. For example, according to the vehicle type, the vehicle in the present application can be a sedan, an off-road vehicle, a multi-purpose vehicle (MPV) or other vehicle types. For a vehicle, generally a wheel, a power source, and a transmission system between the wheel and the power source are provided, the transmission system can transmit the power provided by the power source to the wheel to drive the vehicle to run.
[0053] It should be noted that the type of power source of the vehicle is not limited in the embodiments of the present application. For example, for a fuel vehicle, the power source can refer to a gasoline engine, a diesel engine or the like; for an electric vehicle, the power source can refer to an electric motor; for a hybrid vehicle, the power source can refer to an engine or an electric motor; and for a vehicle powered in other ways, the power source can refer to a device that generates power.
[0054] With reference to Figure 1 As shown in the drawings, the vehicle provided by the embodiments of the present application can include a vehicle body and a storage structure, the storage structure including a box body 100, a pair of doors 200 and a synchronization assembly 300, the pair of doors 200 including a first door body 210 and a second door body 220, the first door body 210 and the second door body 220 being located on two sides of the box body 100, and the first door body 210 and the second door body 220 being rotationally connected with the box body 100 to open or close a storage cavity.
[0055] The synchronization assembly 300 includes a first pull rope 310, a second pull rope 320, a rotation unit 330 and a coil spring unit 340, the rotation unit 330 being rotationally connected with the box body 100, the first end of the first pull rope 310 and the first end of the second pull rope 320 being wound on the rotation unit 330, the second end of the first pull rope 310 being connected with the first door body 210, the second end of the second pull rope 320 being connected with the second door body 220, and the coil spring unit 340 being connected with the rotation unit 330, the coil spring unit 340 being configured to provide elastic force to the rotation unit 330, thereby driving the rotation unit 330 to wind the first pull rope 310 and the second pull rope 320.
[0056] In this way, when the first door body 210 and the second door body 220 are both unlocked with the box body 100, one of the first door body 210 and the second door body 220 is opened, and the other of the first door body 210 and the second door body 220 can be driven to be synchronously opened by the first pull rope 310, the rotation unit 330 and the second pull rope 320, so that the opening time of the first door body 210 and the second door body 220 is synchronized. The rotation unit 330 can be rotated under the driving of the elastic force of the coil spring unit 340, thereby winding the first pull rope 310 and the second pull rope 320, so as to reset the first pull rope 310 and the second pull rope 320.
[0057] It should be noted that the synchronization described in the embodiments of the present application is not absolute synchronization, but synchronization within an error allowable range, for example, the error can be 1 second, 0.5 seconds or the like.
[0058] It can be understood that the first door body 210 and the second door body 220 can be respectively locked with the box body 100, or the first door body 210 can be locked with the box body 100, and the second door body 220 can be interlocked with the first door body 210, thereby making the first door body 210 and the second door body 220 both locked with the box body 100.
[0059] The vehicle body has a driver cabin and a passenger cabin, and the storage structure can be arranged in one or both of the driver cabin and the passenger cabin. For example, the storage structure can be arranged between the main driver seat and the assistant driver seat of the driver cabin, the first door body 210 can be arranged corresponding to the main driver seat, and the second door body 220 can be arranged corresponding to the assistant driver seat. In this way, when a user located at the main driver seat opens the first door body 210, the second door body 220 can be driven to open synchronously, thereby expanding the opening of the storage cavity, so as to facilitate the user to take and place articles.
[0060] Referring to Figures 1 to 3 The storage structure includes a box body 100, a split door 200, and a synchronous assembly 300. The box body 100 has a storage cavity. The split door 200 includes a first door body 210 and a second door body 220. The first door body 210 and the second door body 220 are located on two sides of the box body 100. The first door body 210 and the second door body 220 are both rotationally connected with the box body 100 to open or close the storage cavity.
[0061] The synchronous assembly 300 includes a first pull rope 310, a second pull rope 320, a rotation unit 330, and a coil spring unit 340. The rotation unit 330 is rotationally connected with the box body 100. The first end of the first pull rope 310 and the first end of the second pull rope 320 are both wound on the rotation unit 330. The second end of the first pull rope 310 is connected with the first door body 210, and the second end of the second pull rope 320 is connected with the second door body 220. The coil spring unit 340 is connected with the rotation unit 330, and is configured to provide elastic force for the rotation unit 330.
[0062] In this embodiment, the storage cavity is used to store articles, and the first door body 210 and the second door body 220 can completely close the storage cavity when they are closed together. Alternatively, when one of the first door body 210 and the second door body 220 is opened and the other is closed, part of the storage cavity can be in an open state, and part of the storage cavity can be in a closed state.
[0063] Since the first pull rope 310 and the second pull rope 320 are both wound on the rotation unit 330, when the rotation unit 330 rotates, the first pull rope 310 and the second pull rope 320 can be released synchronously, thereby driving the first door body 210 to open and driving the second door body 220 to open.
[0064] Exemplarily, after the first door body 210 and the second door body 220 are both unlocked from the box body 100, if the first door body 210 rotates first towards the outside of the box body 100, the first door body 210 can drive the first pull rope 310, so that the first pull rope 310 drives the rotating unit 330 to rotate, and when the rotating unit 330 rotates, the second pull rope 320 can be released synchronously, so that the second pull rope 320 drives the second door body 220 to also flip towards the outside of the box body 100, thereby eliminating or reducing the time difference of the first door body 210 and the second door body 220 opening, so that the first door body 210 and the second door body 220 open synchronously.
[0065] Similarly, if the second door body 220 rotates first towards the outside of the box body 100, the second door body 220 can drive the second pull rope 320, so that the second pull rope 320 drives the rotating unit 330 to rotate, and when the rotating unit 330 rotates, the first pull rope 310 can be released synchronously, so that the first pull rope 310 drives the first door body 210 to also flip towards the outside of the box body 100, thereby eliminating or reducing the time difference of the first door body 210 and the second door body 220 opening, so that the first door body 210 and the second door body 220 open synchronously.
[0066] In this way, when one of the first door body 210 and the second door body 220 rotates first towards the outside of the box body 100, the other one can also be driven to rotate towards the outside of the box body 100 synchronously, thereby making the first door body 210 and the second door body 220 open synchronously.
[0067] The coil spring unit 340 can provide elastic force for the rotating unit 330, so that when the first door body 210 and the second door body 220 are both closed, the rotating unit 330 rotates around its own rotating axis under the driving of the elastic force, thereby the first pull rope 310 and the second pull rope 320 can be wound on the rotating unit 330, so that the first pull rope 310 and the second pull rope 320 reset.
[0068] In addition, in the storage structure of the embodiment of the present application, the first door body 210 and the second door body 220 can be opened synchronously, and one of the first door body 210 and the second door body 220 can be closed, and the other one of the first door body 210 and the second door body 220 can be closed, to adapt to different use scenarios.
[0069] For example, the first door body 210 and the second door body 220 can be locked with the box body 100 respectively, when the first door body 210 rotates towards the inner side of the box body 100 and is locked with the box body 100, the first door body 210 can be closed, the first pull rope 310 is in a relaxed state, the first pull rope 310, the rotating unit 330 and the second pull rope 320 do not move, and the second door body 220 can be in an open state, the second pull rope 320 is in a tensioned state. After the second door body 220 is closed, the coil spring unit 340 can drive the rotating unit 330 to rotate, so that the first pull rope 310 and the second pull rope 320 are wound, and the first pull rope 310 and the second pull rope 320 are both in a tensioned state.
[0070] The storage structure provided by the embodiment of the present application comprises a box body 100, a double door 200 and a synchronous assembly 300, the box body 100 comprises a storage cavity, the double door 200 comprises a first door body 210 and a second door body 220, and the synchronous assembly 300 comprises a first pull rope 310, a second pull rope 320, a rotating unit 330 and a coil spring unit 340. The storage cavity is arranged to store articles, the first door body 210 and the second door body 220 are arranged to control the opening and closing state of the storage cavity, the rotating unit 330 is arranged to wind and release the first pull rope 310 and the second pull rope 320, the first pull rope 310 is arranged to connect the rotating unit 330 and the first door body 210, and the second pull rope 320 is arranged to connect the rotating unit 330 and the second door body 220, so that when one of the first door body 210 and the second door body 220 is opened, the other one of the first door body 210 and the second door body 220 can also be synchronously opened by the rotating unit 330, the first pull rope 310 and the second pull rope 320, and the coil spring unit 340 is arranged to drive the rotating unit 330 to rotate, so as to reset the first pull rope 310 and the second pull rope 320. Therefore, the storage structure provided by the embodiment of the present application can improve the user experience.
[0071] With reference to Figures 1 to 3 As shown in FIG. 1, in a possible implementation, the rotating unit 330 comprises a first rotating piece 331 and a second rotating piece 332, the first rotating piece 331 and the second rotating piece 332 are both rotationally connected with the box body 100, the rotation axes of the first rotating piece 331 and the second rotating piece 332 are consistent, and the first rotating piece 331 and the second rotating piece 332 are meshed and connected. The first pull rope 310 connects the first rotating piece 331 and the first door body 210, and the second pull rope 320 connects the second rotating piece 332 and the second door body 220.
[0072] It can be understood that the first rotating member 331 and the second rotating member 332 are engaged with each other, and the first pull rope 310 is wound around the first rotating member 331 and the second pull rope 320 is wound around the second rotating member 332. Therefore, when the first door body 210 is opened, the first rotating member 331 can be rotated by the first pull rope 310, and then the second rotating member 332 is rotated by the first rotating member 331, and then the second door body 220 is opened by the second pull rope 320, so that the second door body 220 is opened synchronously with the first door body 210.
[0073] Alternatively, when the second door body 220 is opened, the second rotating member 332 can be rotated by the second pull rope 320, and then the first rotating member 331 is rotated by the second rotating member 332, and then the first door body 210 is opened by the first pull rope 310, so that the first door body 210 is opened synchronously with the second door body 220.
[0074] Continuing to refer to Figures 1 to 3 In some embodiments, the coil spring unit 340 includes a first coil spring 341 and a second coil spring 342, the first coil spring 341 is connected with the first rotating member 331 and is used to provide elastic force for the first rotating member 331. The second coil spring 342 is connected with the second rotating member 332 and is used to provide elastic force for the second rotating member 332.
[0075] In this way, the first coil spring 341 can provide elastic force for the first rotating member 331, and then drive the first rotating member 331 to rotate, so that the first pull rope 310 is reset. The second coil spring 342 can provide elastic force for the second rotating member 332, and then drive the second rotating member 332 to rotate, so that the second pull rope 320 is reset.
[0076] Referring to Figure 2 and Figure 3 In a possible implementation, the box body 100 includes a box body 110, a first support 120 and a second support 130 arranged on the box body 110, the first rotating member 331 is rotationally connected with the first support 120, and the second rotating member 332 is rotationally connected with the second support 130.
[0077] The first end of the elastic force direction of the first coil spring 341 is connected with the first rotating member 331, and the second end of the elastic force direction of the first coil spring 341 is connected with the first support 120. The first end of the elastic force direction of the second coil spring 342 is connected with the second rotating member 332, and the second end of the elastic force direction of the second coil spring 342 is connected with the second support 130.
[0078] In this way, the inside of the box body 110 can define a storage cavity, the first support 120 can be used to be rotationally connected with the first rotating piece 331, so that the first rotating piece 331 is rotationally connected with the box body 100, the second support 130 can be used to be rotationally connected with the second rotating piece 332, so that the second rotating piece 332 is rotationally connected with the box body 100, and the first support 120 can also be used to mount the first coil spring 341, and the second support 130 can also be used to mount the second coil spring 342.
[0079] Since the second end of the first coil spring 341 has a restoring tendency relative to the first end of the first coil spring 341, the first rotating piece 331 can be provided with elastic force, so that the first rotating piece 331 drives the first pull rope 310 to reset.
[0080] Similarly, since the second end of the second coil spring 342 has a restoring tendency relative to the first end of the second coil spring 342, the second rotating piece 332 can be provided with elastic force, so that the second rotating piece 332 drives the second pull rope 320 to reset.
[0081] Referring to Figures 3 to 5 In a possible implementation, the first rotating piece 331 includes a coaxially connected first gear 3311 and a first winding groove 3312, the first gear 3311 and the first winding groove 3312 are arranged along the rotation axis of the first rotating piece 331, and the first pull rope 310 is wound on the first winding groove 3312.
[0082] The second rotating piece 332 includes a coaxially connected second gear 3321 and a second winding groove 3322, the second gear 3321 and the second winding groove 3322 are arranged along the rotation axis of the second rotating piece 332, and the second pull rope 320 is wound on the second winding groove 3322. The first gear 3311 is meshingly connected with the second gear 3321.
[0083] In this way, the first pull rope 310 can be connected with the first rotating piece 331 through the first winding groove 3312, when the first door body 210 is opened, the first pull rope 310 can drive the first rotating piece 331 to rotate, and then drive the first gear 3311 to rotate, the first gear 3311 can drive the second gear 3321 to rotate synchronously, and then drive the second rotating piece 332 to rotate, so as to drive the second door body 220 to open through the second pull rope 320.
[0084] Similarly, the second pull rope 320 can be connected with the second rotating member 332 through the second winding groove 3322. When the second door body 220 is opened, the second pull rope 320 can drive the second rotating member 332 to rotate, and then drive the second gear 3321 to rotate, and the second gear 3321 can drive the first gear 3311 to rotate synchronously, and then drive the first rotating member 331 to rotate, so as to drive the first door body 210 to open through the first pull rope 310.
[0085] Referring to Figure 6 As shown in some embodiments, the rotating unit 330 includes a third rotating member 333, and the third rotating member 333 is rotationally connected with the box body 100. The third rotating member 333 has a third winding groove 3331 and a fourth winding groove 3332, and the third winding groove 3331 and the fourth winding groove 3332 are arranged at intervals along the rotation axis of the third rotating member 333. The first pull rope 310 is wound on the third winding groove 3331, and the second pull rope 320 is wound on the fourth winding groove 3332, and the winding directions of the first pull rope 310 and the second pull rope 320 are opposite.
[0086] In the above embodiment, when the first door body 210 rotates first towards the outside of the box body 100, the first door body 210 drives the first pull rope 310, and the first pull rope 310 is released from the third rotating member 333, and then drives the third rotating member 333 to rotate through the first pull rope 310. Since the winding directions of the first pull rope 310 and the second pull rope 320 on the third rotating member 333 are opposite, the third rotating member 333 can release the second pull rope 320, and then drive the second door body 220 to open through the second pull rope 320.
[0087] In a possible implementation, the winding spring unit 340 includes a third winding spring, and the box body 100 and the third rotating member 333 are connected with the third winding spring. The third winding spring is used to provide elastic force for the third rotating member 333.
[0088] In this way, the third winding spring can drive the third rotating member 333 to rotate, and then make the third rotating member 333 wind the first pull rope 310 and the second pull rope 320, so as to reset the first pull rope 310 and the second pull rope 320.
[0089] Referring to Figures 1 to 3 As shown in some embodiments, the storage structure further includes a first hinged arm 350 and a second hinged arm 360. The first end of the first hinged arm 350 is coaxially connected with the first door body 210, and the second end of the first hinged arm 350 is connected with the first pull rope 310. The first end of the second hinged arm 360 is coaxially connected with the second door body 220, and the second end of the second hinged arm 360 is connected with the second pull rope 320.
[0090] Figure 1The motion direction of the synchronization assembly 300 is shown. When the first door body 210 rotates towards the outside of the box body 100, the first door body 210 can first drive the first hinge arm 350 coaxially connected with the first door body 210 to rotate. At this time, the second end of the first hinge arm 350 rotates towards the inside of the box body 100 relative to the first end of the first hinge arm 350, and then drives the first pull rope 310 to move through the second end of the first hinge arm 350. The first pull rope 310 drives the rotating unit 330 to rotate, and then makes the rotating unit 330 release the second pull rope 320. After that, the second end of the second hinge arm 360 rotates towards the inside of the box body 100 relative to the first end of the first hinge arm 350, and then drives the second door body 220 coaxially connected with the second hinge arm 360 to rotate towards the outside of the box body 100, so as to open the second door body 220. In this way, the second door body 220 can be opened synchronously with the first door body 210.
[0091] Referring to Figure 1 , Figure 7 and Figure 8 In a possible implementation, the storage structure further includes a driving assembly 400. The driving assembly 400 includes a first door opening torsional spring 410, a first rotating shaft 420, a second door opening torsional spring, and a second rotating shaft. The first door opening torsional spring 410 is sleeved on the first rotating shaft 420, the first rotating shaft 420 is coaxially connected with the first door body 210, and the first door opening torsional spring 410 is configured to provide elastic force for the first door body 210. The second door opening torsional spring is sleeved on the second rotating shaft, the second rotating shaft is coaxially connected with the second door body 220, and the second door opening torsional spring is configured to provide elastic force for the second door body 220.
[0092] That is, after the first door body 210 and the second door body 220 are both unlocked from the box body 100, the first door body 210 can rotate towards the outside of the box body 100 under the action of the elastic force of the first door opening torsional spring 410, and the second door body 220 can rotate towards the outside of the box body 100 under the action of the elastic force of the second door opening torsional spring. Due to the partial error of the mass of the first door body 210 and the second door body 220 and the partial error of the elastic force of the first door opening torsional spring 410 and the elastic force of the second door opening torsional spring, the opening time of the first door body 210 and the second door body 220 is inconsistent. However, the storage structure of the present embodiment can eliminate this error and make the first door body 210 and the second door body 220 open synchronously, because the synchronization assembly 300 is arranged.
[0093] It should be noted that the driving assembly 400 can further include at least one damping member 430 connected to the first rotating shaft 420 or the second rotating shaft, so as to play a buffering role when the first door body 210 or the second door body 220 is opened. Alternatively, two damping members 430 are respectively connected to the first rotating shaft 420 and the second rotating shaft, so as to play a buffering role when the first door body 210 and the second door body 220 are opened.
[0094] The above-mentioned sequence numbers of the embodiments of the present application are only for description, and do not represent the advantages and disadvantages of the embodiments. The above are only preferred embodiments of the present application, and do not limit the patent scope of the present application, and any equivalent structure or equivalent process transformation using the content of the specification and drawings of the present application, or direct or indirect application in other related technical fields, are also included in the patent protection scope of the present application.
Claims
1. A storage structure, characterized by, The box body (100) has a storage cavity; The pair of doors (200) includes a first door body (210) and a second door body (220), which are located on both sides of the box body (100) and are rotationally connected with the box body (100) to open or close the storage cavity; The synchronization assembly (300) includes a first pull rope (310), a second pull rope (320), a rotating unit (330), and a coil spring unit (340). The rotating unit (330) is rotationally connected with the box body (100). The first ends of the first pull rope (310) and the second pull rope (320) are wound around the rotating unit (330). The second end of the first pull rope (310) is connected with the first door body (210), and the second end of the second pull rope (320) is connected with the second door body (220). The coil spring unit (340) is connected with the rotating unit (330) and is used to drive the rotating unit (330) to wind the first pull rope (310) and the second pull rope (320).
2. The storage structure of claim 1, wherein, The rotating unit (330) includes a first rotating member (331) and a second rotating member (332), which are rotationally connected with the box body (100) and have consistent rotation axes. The first rotating member (331) and the second rotating member (332) are meshingly connected. The first pull rope (310) is connected with the first rotating member (331) and the first door body (210), and the second pull rope (320) is connected with the second rotating member (332) and the second door body (220).
3. The storage structure of claim 2, wherein, The coil spring unit (340) includes a first coil spring (341) and a second coil spring (342). The first coil spring (341) is connected with the first rotating member (331) and is used to provide elastic force for the first rotating member (331). The second coil spring (342) is connected with the second rotating member (332) and is used to provide elastic force for the second rotating member (332).
4. The storage structure of claim 3, wherein, The box body (100) includes a box body (110), a first support (120), and a second support (130) arranged on the box body (110). The first rotating member (331) is rotationally connected with the first support (120), and the second rotating member (332) is rotationally connected with the second support (130). The first end of the elastic force direction of the first coil spring (341) is connected with the first rotating member (331), and the second end of the elastic force direction of the first coil spring (341) is connected with the first support (120). A first end of an elastic force direction of the second coil spring (342) is connected with the second rotating member (332), and a second end of the elastic force direction of the second coil spring (342) is connected with the second support (130).
5. The storage structure of claim 3, wherein, The first rotating member (331) comprises a coaxially connected first gear (3311) and a first wire winding groove (3312), the first gear (3311) and the first wire winding groove (3312) are arranged along the rotating axis of the first rotating member (331), and the first pull rope (310) is wound on the first wire winding groove (3312). The second rotating member (332) comprises a coaxially connected second gear (3321) and a second wire winding groove (3322), the second gear (3321) and the second wire winding groove (3322) are arranged along the rotating axis of the second rotating member (332), and the second pull rope (320) is wound on the second wire winding groove (3322). The first gear (3311) is in meshing connection with the second gear (3321).
6. The storage structure of claim 1, wherein, The rotating unit (330) comprises a third rotating member (333) which is in rotating connection with the box body (100). The third rotating member (333) has a third wire winding groove (3331) and a fourth wire winding groove (3332), and the third wire winding groove (3331) and the fourth wire winding groove (3332) are arranged along the rotating axis of the third rotating member (333) and are spaced apart. The first pull rope (310) is wound on the third wire winding groove (3331), the second pull rope (320) is wound on the fourth wire winding groove (3332), and the winding directions of the first pull rope (310) and the second pull rope (320) are opposite.
7. The storage structure of claim 6, wherein, The coil spring unit (340) comprises a third coil spring, the box body (100) and the third rotating member (333) are connected with the third coil spring, and the third coil spring is used for providing elastic force for the third rotating member (333).
8. The storage structure of any of claims 1-7, wherein, The first hinge arm (350) has a first end coaxially connected with the first door body (210) and a second end connected with the first pull rope (310), and the second hinge arm (360) has a first end coaxially connected with the second door body (220) and a second end connected with the second pull rope (320). The drive assembly (400) comprises a first door opening torsional spring (410), a first rotating shaft (420), a second door opening torsional spring and a second rotating shaft.
9. The storage structure of any of claims 1-7, wherein, The first door opening torsional spring (410) is sleeved on the first rotating shaft (420), the first rotating shaft (420) is coaxially connected with the first door body (210), and the first door opening torsional spring (410) is used for providing elastic force for the first door body (210). The second door opening torsion spring is sleeved on the second rotating shaft, the second rotating shaft is coaxially connected with the second door body (220), and the second door opening torsion spring is used for providing elastic force for the second door body (220).
10. A vehicle characterized by comprising: comprising a vehicle body; the storage structure of any one of claims 1-9, the storage structure being connected to the vehicle body.