A storage box and a vehicle
Patent Information
- Application Number
- CN202522393119.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-11
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-11-11
AI Technical Summary
[0003]储物和放置杯子是汽车最普遍以及最基本的功能,现有的储物和放置杯子的空间通常集成于储物盒中;为了实现储物空间与放杯空间的完全隔离,以增加放置于储物空间中的物品的稳定性以及增加放置于放杯空间中的水杯的稳定性,通常需要在储物盒中设置隔板,以利用隔板将储物盒的内部空间分为储物空间以及放杯空间;然而,为了增加隔板的稳定性,隔板通常是采用固定或一体成型的方式连接于储物盒,如此便导致用户无法根据实际使用需求对储物空间以及放杯空间进行调整,进而影响了用户的使用体验
1.本申请中的储物盒包括盒体、伸缩导向机构以及隔板,盒体的内部具有容置腔,伸缩导向机构的至少部分位于容置腔中,且伸缩导向机构连接于盒体,隔板位于容置腔中且将容置腔分为储物空间和放杯空间,隔板连接于伸缩导向机构且通过伸缩导向结构滑动连接于盒体,继而一方面能够通过对隔板进行滑动而实现对储物空间和放杯空间的调整,以增加储物盒的灵活性,另一方面能够利用伸缩导向机构对隔板进行导向,以增加隔板运动时的顺畅性,进而提高了用户的使用体验,以提高了用户对安装有申请中储物盒的车辆的使用体验。
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Figure CN224810626U_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of vehicle storage, specifically relating to a storage box and a vehicle. Background Technology
[0002] An automobile is a vehicle with multiple wheels that is powered by a power unit. It is mainly used to carry people and goods and is one of the most important means of transportation in modern society.
[0003] Storage and cup placement are the most common and basic functions of cars, and existing storage and cup placement spaces are usually integrated into the glove compartment. To achieve complete isolation between the storage space and the cup placement space, and to increase the stability of items placed in the storage space and the cups placed in the cup placement space, a divider is usually installed in the glove compartment to divide the internal space into storage and cup placement areas. However, to increase the stability of the divider, it is usually fixed or integrally molded to the storage compartment. This prevents users from adjusting the storage and cup placement spaces according to their actual needs, thus affecting the user experience.
[0004] To improve the user experience by adjusting the storage and cup-holding spaces, one approach is to design the partition to slide relative to the storage box. This allows for adjustment of the storage and cup-holding spaces by sliding the partition. Existing methods for sliding the partition to the storage box typically involve a groove on the inner wall of the storage box and a slider on the side of the partition that slides into the groove. However, this method is prone to causing the slider to get stuck between the slider and the groove wall, affecting the smoothness of the partition adjustment and thus impacting the user's driving experience. Utility Model Content
[0005] This application provides a storage box to improve the smoothness of user adjustment of the partition, thereby enhancing the user's driving experience.
[0006] The technical solution adopted in this application is as follows: A storage box, comprising: A box body, the interior of which has a receiving cavity; A telescopic guide mechanism, at least a portion of which is located within the receiving cavity and is connected to the housing; A partition is located in the accommodating cavity and divides the accommodating cavity into a storage space and a cup placement space. The partition is connected to the telescopic guide mechanism and is slidably connected to the box body through the telescopic guide mechanism.
[0007] By adopting the above technical solution, when a user needs to increase the storage space according to actual needs, the user applies a pushing force to the partition in the direction of the cup placement space, causing the partition to act on the telescopic guide mechanism. This causes the telescopic guide mechanism to telescopically extend and retract under the action of the partition, gradually moving the partition towards the cup placement space, thus gradually reducing the cup placement space and gradually increasing the storage space. Conversely, when a user needs to increase the cup placement space according to actual needs, the user applies a pushing force to the partition in the direction of the storage space, causing the partition to act on the telescopic guide mechanism. This causes the telescopic guide mechanism to telescopically extend and retract under the action of the partition, gradually moving the partition towards the storage space, thus gradually reducing the storage space and gradually increasing the cup placement space.
[0008] Because the partition in this application is slidably connected to the box body through a telescopic guide mechanism, it can achieve a sliding connection between the partition and the box body, thereby enabling adjustments to the storage space and cup placement space, increasing the flexibility of the storage box and improving the user experience. On the other hand, the telescopic guide mechanism can also guide the movement of the partition. Compared with the prior art method of using sliders and grooves to achieve a sliding connection between the partition and the box body, this avoids the situation where the slider and groove walls are prone to jamming, which affects the smoothness of the partition's movement. This improves the smoothness when the user pushes the partition, thereby improving the user experience and ultimately enhancing the user's experience in vehicles equipped with the storage box of this application.
[0009] Optionally, the telescopic guide mechanism includes a telescopic guide structure located in the accommodating cavity. The telescopic guide structure includes a first linkage rod and a second linkage rod. The middle part of the first linkage rod is hinged to the middle part of the second linkage rod. When the partition slides relative to the box body, the included angle formed between the first linkage rod and the second linkage rod changes.
[0010] By adopting the above technical solution, since the telescopic guide structure includes a first linkage rod and a second linkage rod, with the middle part of the first linkage rod hinged to the middle part of the second linkage rod, and the included angle between the first linkage rod and the second linkage rod changes when the partition slides relative to the box body, it enables the partition to slide and connect to the box body through the telescopic guide structure. Furthermore, it guides the movement of the partition using the telescopic guide structure, increasing the stability and smoothness of the partition's movement, thereby improving the user experience of vehicles equipped with the storage box described in this application. Also, since the telescopic guide structure is located within the accommodating cavity, it can be completely hidden within the cavity, thus reducing the volume of the storage box and facilitating its miniaturization. Additionally, it avoids potential interference between the telescopic guide structure and other vehicle components, making it easier to install the storage box in the vehicle.
[0011] Optionally, the telescopic guide structure is provided with at least two sets, the first linkage rods of the two adjacent sets of telescopic guide structures are hinged to each other, and the second linkage rods of the two adjacent sets of telescopic guide structures are hinged to each other.
[0012] By adopting the above technical solution, since the telescopic guide structure is provided in at least two sets, compared with the solution of providing only one set of telescopic guide structure, on the one hand, the sliding range of the partition is increased, thereby increasing the adjustment range of the partition and further increasing the flexibility of the storage box, thus further improving the user experience. On the other hand, the depth of the storage box can be reduced, making it easier for users to retrieve items placed in the storage space. At the same time, it also facilitates the miniaturization of the storage box design.
[0013] Optionally, two first linkage rods are arranged opposite each other, and the telescopic guide structure further includes a first connecting body connected to the two first linkage rods. Two second linkage rods are arranged opposite each other, and the telescopic guide structure further includes a second connecting body connected to the two second linkage rods. Both the first connecting body and the second connecting body have an arc-shaped wall surface on the side facing the center of the cup placement space.
[0014] By adopting the above technical solution, since there are two first linkage rods arranged opposite each other, and the telescopic guide structure also includes a first connecting body connected to the two first linkage rods, and two second linkage rods arranged opposite each other, the telescopic guide structure also includes a second connecting body connected to the two second linkage rods, thereby increasing the number of connection points between the partition and the box body through the telescopic guide structure, thus increasing the connection stability between the partition and the box body through the telescopic guide structure, and increasing the guiding effect of the telescopic guide structure on the partition, thereby further increasing the smoothness of the partition's movement, thus further improving the user experience, and also... This allows the two first linkage rods and the two second linkage rods in the same set of telescopic guide structures to move synchronously, thereby further improving the guiding effect of the telescopic guide structure on the partition and thus further increasing the smoothness of the partition's movement. Furthermore, since both the first and second connectors have arc-shaped walls on the side facing the center of the cup placement space, when a cup is placed in the cup placement space, the outer circumference of the cup can contact the arc-shaped wall, thereby using the arc-shaped wall to limit the cup and increase the stability of the cup in the cup placement space, thus further improving the user experience.
[0015] Optionally, the partition is provided with a locking component, and the box body is provided with a mating part, wherein the locking component can cooperate with the mating part to lock the partition.
[0016] By adopting the above technical solution, when adjusting the storage space and cup placement space, the locking component is operated first to disengage from the mating part. Then, the partition is pushed so that it acts on the telescopic guide mechanism, causing the telescopic guide mechanism to telescopically move. This causes the partition to slide relative to the box body. After the partition is adjusted to the set position, the locking component is engaged with the mating part to lock the partition, thereby increasing the stability of the partition and further improving the user experience.
[0017] Optionally, the mating part is a locking groove provided in the cavity wall of the receiving cavity, and the locking assembly includes a locking pin slidably connected to the partition and an elastic member provided in the partition and acting on the locking pin. The locking pin has a locking position that is inserted into the locking groove and an unlocking position that is separated from the locking groove. The elastic member is used to apply an elastic force to the locking pin to move toward the locking position.
[0018] By adopting the above technical solution, when adjusting the storage space and cup placement space, a force is first applied to the locking pin to move it toward the unlocking position, so that the locking pin overcomes the elastic force of the elastic element and moves toward the unlocking position, thereby separating the locking pin from the locking groove. Then, a pushing force is applied to the partition to make the partition slide relative to the box body. When the partition moves to the set position, the locking pin is released, and the elastic element gradually recovers its deformation and applies an elastic force to the locking pin to move toward the locking position, so that the locking pin and the locking groove are engaged together to lock the partition, thereby increasing the stability of the partition. At the same time, since the elastic element is used to apply an elastic force to the locking pin to move toward the locking position, the elastic force of the elastic element needs to be overcome when unlocking the locking pin, so as to increase the force required to drive the locking pin toward the unlocking position to a certain extent, thereby increasing the locking stability of the locking assembly on the partition.
[0019] Optionally, the locking assembly further includes an unlocking member, which is movably connected to the partition and acts on the locking pin. When the unlocking member moves in the first direction, the locking pin moves toward the unlocking position under the action of the unlocking member.
[0020] By adopting the above technical solution, when unlocking the partition, a force is applied to the unlocking component to move in the first direction, so that the unlocking component moves in the first direction, and then the locking pin moves towards the unlocking position under the action of the unlocking component, thereby achieving the effect of facilitating the driving of the locking pin to the unlocking position, so as to facilitate the user to unlock the partition, and further achieve the effect of facilitating the user to adjust the partition, thereby further improving the user experience.
[0021] Optionally, the locking assembly further includes a reset member that acts on the unlocking member, and when the unlocking member moves along the first direction, the reset member deforms to apply an elastic force toward the unlocking member in a second direction, wherein the first direction and the second direction are opposite to each other.
[0022] By adopting the above technical solution, when unlocking the locking pin, a force is applied to the unlocking component in a first direction, causing the unlocking component to exert pressure on the reset component. Under the pressure applied by the unlocking component, the reset component deforms, causing the unlocking component to overcome the elastic force of the reset component and move along the first direction. Ultimately, the unlocking component acts on the locking pin, causing the locking pin to move towards the unlocked position. After the force applied to the unlocking component in the first direction is removed, the reset component gradually recovers its deformation, causing the unlocking component to move towards the second direction under the action of the reset component, thereby resetting the unlocking component. At the same time, the locking pin moves towards the locked position under the action of the elastic component, thus realizing the automatic reset of the unlocking component. Furthermore, when applying a force to the unlocking component in the first direction, it is also necessary to overcome the elastic force of the reset component, which to a certain extent increases the force required to unlock the unlocking component when unlocking the partition, thereby avoiding the situation where the locking component is unlocked due to accidental user contact, and further increasing the locking stability of the locking component on the partition.
[0023] Optionally, one of the unlocking component and the locking pin is provided with a linkage groove, and the other is provided with a linkage shaft extending into the linkage groove. When the unlocking component moves along the first direction, the locking pin moves toward the unlocking position under the cooperation of the linkage shaft and the groove wall of the linkage groove.
[0024] By adopting the above technical solution, when unlocking the locking pin, a force is applied to the unlocking component in the first direction so that the unlocking component overcomes the elastic force of the reset component and moves in the first direction, thereby causing the unlocking component and the locking pin to move relative to each other. At the same time, the locking pin moves towards the unlocking position under the cooperation of the linkage shaft and the groove wall of the linkage groove, thus realizing that when the unlocking component moves towards the first direction, the locking pin moves towards the unlocking position under the action of the unlocking component.
[0025] This application also provides a vehicle to improve the smoothness of user adjustment of the partition, thereby improving the user's driving experience.
[0026] A vehicle including a storage box as described above.
[0027] By adopting the above technical solution, since the vehicle in this application uses the aforementioned storage box, on the one hand, the storage space and cup-placement space can be adjusted to increase the flexibility of the vehicle's storage space, and on the other hand, the smoothness of adjusting the storage space and cup-placement space is increased to improve the smoothness of the user's adjustment of the partition, thereby improving the user's driving experience.
[0028] Due to the adoption of the above technical solution, the beneficial effects achieved by this application are as follows: 1. The storage box in this application includes a box body, a telescopic guide mechanism, and a partition. The box body has an internal cavity. At least a portion of the telescopic guide mechanism is located in the cavity and is connected to the box body. The partition is located in the cavity and divides the cavity into a storage space and a cup holder space. The partition is connected to the telescopic guide mechanism and is slidably connected to the box body via the telescopic guide mechanism. Thus, on the one hand, the storage space and cup holder space can be adjusted by sliding the partition to increase the flexibility of the storage box. On the other hand, the telescopic guide mechanism can guide the partition to increase the smoothness of the partition's movement, thereby improving the user experience and enhancing the user experience of vehicles equipped with the storage box of this application.
[0029] 2. The telescopic guide mechanism in this application includes a telescopic guide structure located in the accommodating cavity, which allows the telescopic guide structure to be completely hidden within the accommodating cavity. This reduces the volume of the storage box, facilitating miniaturization, and prevents interference between the telescopic guide structure and other vehicle components, thus facilitating installation of the storage box in the vehicle. The telescopic guide structure includes a first linkage rod and a second linkage rod, with the middle portion of the first linkage rod hinged to the middle portion of the second linkage rod. When the partition slides relative to the box body, the angle between the first and second linkage rods changes. This allows the partition to slide smoothly to the box body via the telescopic guide structure and guides the movement of the partition, increasing stability and smoothness of movement and improving the user experience of vehicles equipped with the storage box described in this application.
[0030] 3. The telescopic guide structure in this application has at least two sets, with the first linkage rods of two adjacent sets of telescopic guide structures hinged to each other, and the second linkage rods of two adjacent sets of telescopic guide structures hinged to each other. Compared with a solution with only one set of telescopic guide structures, this increases the sliding range of the partition, thereby increasing the adjustment range of the partition and further increasing the flexibility of the storage box, thus improving the user experience. On the other hand, it can also reduce the depth of the storage box, making it easier for users to retrieve items placed in the storage space, and also facilitating the miniaturization of the storage box design. Attached Figure Description
[0031] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings: Figure 1 This is a schematic diagram of the structure of the storage box described in one embodiment of this application; Figure 2This is a schematic diagram of the storage box when the telescopic guide mechanism described in one embodiment of this application is in the display state; Figure 3 This is a cross-sectional view of the storage box when the telescopic guide mechanism described in one embodiment of this application is in the display state; Figure 4 This is a schematic diagram of the storage box when the telescopic guide mechanism described in one embodiment of this application is in the retracted state; Figure 5 This is a cross-sectional view of the storage box when the telescopic guide mechanism described in one embodiment of this application is in the retracted state; Figure 6 This is a schematic diagram of the structure of the partition and the telescopic guide mechanism in one embodiment of this application; Figure 7 This is a schematic diagram of the telescopic guide mechanism described in one embodiment of this application; Figure 8 This is a schematic diagram of the structure of the box body according to one embodiment of this application; Figure 9 This is a cross-sectional view of the storage box described in one embodiment of this application; Figure 10 This is a schematic diagram showing the connection relationship between the locking component and the partition in one embodiment of this application; Figure 11 This is a schematic diagram of the locking component described in one embodiment of this application; Figure 12 This is a schematic diagram of the structure of the partition described in one embodiment of this application; Figure 13 This is a schematic diagram of the structure of the unlocking component described in one embodiment of this application; Figure 14 This is a schematic diagram of the locking pin in one embodiment of this application.
[0032] Figure label: 1. Box body; 11. Storage space; 12. Cup holder space; 13. Reinforcing plate; 14. Edge retainer; 15. Mating part; 2. Telescopic guide structure; 21. First linkage rod; 211. Sliding shaft; 22. Second linkage rod; 23. First connecting body; 231. Curved wall surface; 24. Second connecting body; 3. Partition; 31. Edge; 311. Sliding groove; 32. Stop rib; 33. Dividing rib; 4. Locking assembly; 41. Locking pin; 411. Stop block; 412. Mating piece; 413. Linkage groove; 42. Elastic element; 43. Unlocking element; 431. Mounting piece; 432. Linkage shaft; 433. Protrusion; 44. Reset element. Detailed Implementation
[0033] To more clearly illustrate the overall concept of this application, a detailed explanation is provided below with reference to the accompanying drawings.
[0034] Many specific details are set forth in the following description in order to provide a full understanding of this application. However, this application may also be implemented in other ways different from those described herein. Therefore, the scope of protection of this application is not limited to the specific embodiments disclosed below.
[0035] Furthermore, it should be understood in the description of this application that the terms "top", "bottom", "inner", "outer", "axial", "radial", "circumferential", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.
[0036] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection, an electrical connection, or a communication connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0037] In this application, unless otherwise expressly specified and limited, the "above" or "below" of the second feature can mean that the first and second features are in direct contact, or that the first and second features are in indirect contact through an intermediate medium. In the description of this specification, references to terms such as "implementation," "example," "a particular embodiment," "example," or "specific example," etc., indicate that the specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described can be combined in any suitable manner in one or more embodiments or examples.
[0038] Reference Figures 1 to 14 A storage box is disclosed, which includes a box body 1, a telescopic guide mechanism and a partition 3. The box body 1 has an internal cavity. At least part of the telescopic guide mechanism is located in the cavity and is connected to the box body 1. The partition 3 is located in the cavity and divides the cavity into a storage space 11 and a cup placement space 12. The partition 3 is connected to the telescopic guide mechanism and is slidably connected to the box body 1 through the telescopic guide mechanism.
[0039] It is understandable that the top of the box 1 is open and forms the opening of the accommodating cavity. The telescopic guide mechanism can perform telescopic movement. When a pushing force is applied to the partition 3, the partition 3 acts on the telescopic guide mechanism to make the telescopic guide mechanism perform telescopic movement. The telescopic guide mechanism has an unfolded state, a retracted state, and an intermediate state between the unfolded state and the retracted state.
[0040] When a user needs to increase the storage space 11 according to actual needs, the user applies a pushing force to the partition 3 in the direction of the cup-placement space 12, so that the partition 3 acts on the telescopic guide mechanism, and then the telescopic guide mechanism moves telescopically under the action of the partition 3, so that the partition 3 gradually moves in the direction of the cup-placement space 12, thereby gradually reducing the cup-placement space 12 and gradually increasing the storage space 11; when a user needs to increase the cup-placement space 12 according to actual needs, the user applies a pushing force to the partition 3 in the direction of the storage space 11, so that the partition 3 acts on the telescopic guide mechanism, and then the telescopic guide mechanism moves telescopically under the action of the partition 3, so that the partition 3 gradually moves in the direction of the storage space 11, thereby gradually reducing the storage space 11 and gradually increasing the cup-placement space 12.
[0041] Since the partition 3 in this application is slidably connected to the box body 1 through a telescopic guide mechanism, it can achieve a sliding connection between the partition 3 and the box body 1, thereby enabling adjustment of the storage space 11 and the cup placement space 12, thus increasing the flexibility of the storage box and improving the user experience. On the other hand, the telescopic guide mechanism can also guide the movement of the partition 3. Compared with the prior art method of sliding the partition 3 to the box body 1 through sliders and grooves, it avoids the situation where the slider and groove walls are easily stuck, which affects the smoothness of the movement of the partition 3. This improves the smoothness when the user pushes the partition 3, thereby improving the user experience and the user's experience of using the vehicle equipped with the storage box of this application.
[0042] This application does not impose specific limitations on the structure of the telescopic guide mechanism, which can adopt any of the following embodiments: Implementation Method 1, in this implementation method, refer to Figures 1 to 7 The telescopic guide mechanism includes a telescopic guide structure 2 located in the accommodating cavity. The telescopic guide structure 2 includes a first linkage rod 21 and a second linkage rod 22. The middle part of the first linkage rod 21 is hinged to the middle part of the second linkage rod 22. When the partition 3 slides relative to the box 1, the included angle formed between the first linkage rod 21 and the second linkage rod 22 changes.
[0043] It is understandable that the middle part of the first linkage rod 21 in the length direction is hinged to the middle part of the second linkage rod 22 in the length direction, and the first linkage rod 21 and the second linkage rod 22 together form a cross structure. When a pushing force is applied to the partition 3, the first linkage rod 21 and the second linkage rod 22 can rotate relative to each other.
[0044] It should be noted that the aforementioned "when the partition 3 slides relative to the box 1, the included angle formed between the first linkage rod 21 and the second linkage rod 22 changes" refers to applying a pushing force to the partition 3 so that when the partition 3 slides relative to the box 1, the degree of the included angle formed between the first linkage rod 21 and the second linkage rod 22 changes.
[0045] Since the telescopic guide structure 2 includes a first linkage rod 21 and a second linkage rod 22, the middle part of the first linkage rod 21 is hinged to the middle part of the second linkage rod 22. When the partition 3 slides relative to the box body 1, the included angle formed between the first linkage rod 21 and the second linkage rod 22 changes. Thus, on the one hand, the partition 3 can be slidably connected to the box body 1 through the telescopic guide structure 2, and on the other hand, the movement of the partition 3 can be guided by the telescopic guide structure 2 to increase the stability and smoothness of the movement of the partition 3, thereby improving the user's driving experience of the vehicle equipped with the storage box of this application.
[0046] Furthermore, since the telescopic guide structure 2 is located in the accommodating cavity, it can be completely hidden within the accommodating cavity. This reduces the volume of the storage box, facilitating its miniaturization, and avoids potential interference between the telescopic guide structure 2 and other vehicle components, thus making it easier to install the storage box in the vehicle.
[0047] This application does not specify the number of telescopic guide structures 2, which can be any of the following embodiments: In Example 1, the telescopic guide structure 2 is provided with a set of components, and one end of the first linkage rod 21 is hinged to the partition 3, and the other end of the first linkage rod 21 is slidably connected to the cavity wall of the accommodating cavity in the vertical direction; one end of the second linkage rod 22 is hinged to the cavity wall of the accommodating cavity, and the other end of the second linkage rod 22 is slidably connected to the partition 3 in the vertical direction.
[0048] Specifically, when adjusting the partition 3, a pushing force is applied to the partition 3 toward the side where the cup-holding space 12 or the storage space 11 is located, so that the first linkage rod 21 and the second linkage rod 22 move under the squeezing or driving action of the partition 3. This causes one end of the first linkage rod 21 to rotate relative to the partition 3, and the other end of the first linkage rod 21 to slide relative to the cavity wall of the accommodating cavity. One end of the second linkage rod 22 rotates relative to the cavity wall of the accommodating cavity, and the other end of the second linkage rod 22 slides relative to the partition 3. At the same time, the first linkage rod 21 and the second linkage rod 22 rotate relative to each other. Thus, on the one hand, the sliding connection between the partition 3 and the box body 1 is realized by the telescopic guide structure 2, and on the other hand, the movement of the partition 3 is guided by the telescopic guide structure 2 to ensure the smoothness of the movement of the partition 3, thereby improving the user experience.
[0049] This application does not specifically limit the sliding connection method between the first linkage rod 21 and the cavity wall of the accommodating cavity, or the sliding connection method between the second linkage rod 22 and the partition 3. Preferably, both the partition 3 and the cavity wall of the accommodating cavity are provided with sliding grooves 311 extending in the vertical direction. The end of the first linkage rod 21 away from the partition 3 and the end of the second linkage rod 22 near the partition 3 are provided with sliding shafts 211. The sliding shaft 211 of the first linkage rod 21 is slidably connected to the sliding groove 311 of the cavity wall of the accommodating cavity, and the sliding shaft 211 of the second linkage rod 22 is slidably connected to the sliding groove 311 of the partition 3, so as to realize the sliding connection between the first linkage rod 21 and the cavity wall of the accommodating cavity and the sliding connection between the second linkage rod 22 and the partition 3, while simplifying the structural design of the storage box. Of course, in other implementation examples, the end of the first linkage rod 21 away from the partition 3 and the end of the second linkage rod 22 near the partition 3 are both rotatably connected to a rotating block. The partition 3 and the accommodating cavity are both provided with optical axes extending in the vertical direction. The optical axis provided in the partition 3 passes through the rotating block rotatably connected to the second linkage shaft 432, and the optical axis provided in the accommodating cavity passes through the rotating block rotatably connected to the first linkage shaft 432.
[0050] Example 2, in this example, refer to Figures 1 to 7 The telescopic guide structure 2 is provided with at least two sets, the first linkage rods 21 of the two adjacent sets of telescopic guide structures 2 are hinged to each other, and the second linkage rods 22 of the two adjacent sets of telescopic guide structures 2 are hinged to each other.
[0051] It is understandable that multiple sets of telescopic guide structures 2 are arranged sequentially along the sliding direction of the partition 3, and the first linkage rods 21 in two adjacent sets of telescopic guide structures 2 are hinged to each other at their closest ends, and the second linkage rods 22 in two adjacent sets of telescopic guide structures 2 are hinged to each other at their closest ends.
[0052] Since the telescopic guide structure 2 is provided with at least two sets, compared with the scheme of providing only one set of telescopic guide structure 2, on the one hand, the sliding range of the partition 3 is increased, thereby increasing the adjustment range of the partition 3, which further increases the flexibility of the storage box and improves the user experience. On the other hand, the depth of the storage box can be reduced, so as to facilitate the user to take out the items placed in the storage space 11. At the same time, it can also facilitate the miniaturization of the storage box design.
[0053] Preferably, the telescopic guide structure 2 is provided in two sets. For ease of understanding of the technical solution in this embodiment, the two sets of telescopic guide structures 2 are respectively defined as the first telescopic guide structure and the second telescopic guide structure. One end of the first linkage rod 21 of the first telescopic guide structure is hinged to the partition plate 3, and one end of the first linkage rod 21 of the second telescopic guide structure is hinged to the cavity wall of the accommodating cavity. The end of the first linkage rod 21 of the first telescopic guide structure away from the partition plate 3 is hinged to the end of the first linkage rod 21 of the second telescopic guide structure near the partition plate 3. One end of the second linkage rod 22 of the first telescopic guide structure is slidably connected to the partition plate 3 in the vertical direction, and one end of the second linkage rod 22 of the second telescopic guide structure is slidably connected to the cavity wall of the accommodating cavity in the vertical direction. The end of the second linkage rod 22 of the first telescopic guide structure away from the partition plate 3 is hinged to the end of the second linkage rod 22 of the second telescopic guide structure near the partition plate 3.
[0054] This application does not specifically limit the sliding connection method between the second linkage rod 22 of the first telescopic guide structure and the partition plate 3, nor the sliding method between the second linkage rod 22 of the second telescopic guide structure and the cavity wall. Preferably, refer to Figures 1 to 7Both the partition 3 and the cavity wall of the accommodating cavity are provided with sliding grooves 311 extending vertically. The end of the second linkage rod 22 of the first telescopic guide structure away from the second telescopic guide structure and the end of the second linkage rod 22 of the second telescopic guide structure away from the first telescopic guide structure are provided with sliding shafts 211. The sliding shafts 211 on the second linkage rod 22 of the first telescopic guide structure are slidably connected to the sliding grooves 311 on the partition 3, and the sliding shafts 211 on the second linkage rod 22 of the second telescopic guide structure are slidably connected to the sliding grooves 311 on the cavity wall of the accommodating cavity, so as to realize the sliding connection between the second linkage rod 22 of the first telescopic guide structure and the partition 3 and the sliding connection between the second linkage rod 22 of the second telescopic guide structure and the cavity wall of the accommodating cavity, while simplifying the structural design of the storage box. Of course, in other implementation examples, the end of the second linkage rod 22 of the first telescopic guide structure away from the second telescopic guide structure and the end of the second linkage rod 22 of the second telescopic guide structure away from the first telescopic guide structure are both rotatably connected to a rotating block. The partition 3 and the accommodating cavity are both provided with optical axes extending in the vertical direction. The optical axis provided in the partition 3 passes through the rotating block rotatably connected to the second linkage rod 22 of the first telescopic guide structure, and the optical axis provided in the accommodating cavity passes through the rotating block rotatably connected to the second linkage rod 22 of the second telescopic guide structure.
[0055] In the two embodiments described above, the formation of the sliding groove 311 is not specifically limited. Preferably, the partition 3 has an edge 31 on the side near the telescopic guide structure 2, the edge 31 is located outside the telescopic guide structure 2, and the sliding groove 311 on the partition 3 is located on the edge 31. At the same time, the first linkage rod 21 is hinged to the edge 31 to increase the contact area between the partition 3 and the cavity wall, thereby further increasing the stability of the partition 3. The cavity is fixedly connected to a reinforcing plate 13, the reinforcing plate 13 is located outside the telescopic guide structure 2, and the sliding groove 311 on the cavity is located on the reinforcing plate 13 to increase the structural strength of the box 1 and increase the sealing performance of the box 1. Of course, in other embodiments, the sliding groove 311 can also be directly provided on the partition 3 and the wall of the box 1.
[0056] Of course, in other embodiments, the telescopic guide structure 2 may also be provided with other numbers of groups, such as 3 groups, 4 groups, etc.
[0057] This application does not specify the location of the telescopic guide structure 2; preferably, refer to... Figures 1 to 5 The telescopic guide structure 2 is located in the cup-holding space 12 so that the telescopic guide structure 2 avoids the storage space 11, so as to facilitate the user to take out the cup-holding space 11 and also increase the volume of the storage space 11 to a certain extent, thereby further improving the user experience.
[0058] Understandably, referring to Figures 2 to 5 When the telescopic guide mechanism is in the extended state, the volume of the cup-holding space 12 is at its maximum, while the volume of the storage space 11 is at its minimum; when the telescopic guide mechanism is in the retracted state, the volume of the cup-holding space 12 is at its minimum, while the volume of the storage space 11 is at its maximum.
[0059] Of course, in other embodiments, the telescopic guide structure 2 may also be located in the storage space 11 so that the telescopic guide structure 2 avoids the cup placement space 12.
[0060] This application does not specify the number of the first linkage rod 21 and the second linkage rod 22 in the same set of telescopic guide structures 2. Preferably, refer to Figure 6 and Figure 7 Two first linkage rods 21 are arranged opposite each other. The telescopic guide structure 2 also includes a first connecting body 23 connected to the two first linkage rods 21. Two second linkage rods 22 are arranged opposite each other. The telescopic guide structure 2 also includes a second connecting body 24 connected to the two second linkage rods 22. Both the first connecting body 23 and the second connecting body 24 have an arc-shaped wall surface 231 on the side facing the center of the cup placement space 12.
[0061] It is understood that the two first linkage rods 21 are located on both sides of the partition 3, and the two second linkage rods 22 are located on both sides of the partition 3. The two first linkage rods 21 and the two second linkage rods 22 are arranged in a one-to-one correspondence. The middle part of the length direction of each first linkage rod 21 is hinged to the middle part of the length direction of its corresponding second linkage rod 22. The two ends of the first connecting body 23 are fixedly connected to the two first linkage rods 21, and the two ends of the second connecting body 24 are fixedly connected to the two second linkage rods 22.
[0062] Since there are two first linkage rods 21 arranged opposite each other, the telescopic guide structure 2 also includes a first connecting body 23 connected to the two first linkage rods 21, and two second linkage rods 22 arranged opposite each other, the telescopic guide structure 2 also includes a second connecting body 24 connected to the two second linkage rods 22. This increases the number of connection points between the partition 3 and the box 1 through the telescopic guide structure 2, thereby increasing the connection stability between the partition 3 and the box 1 through the telescopic guide structure 2. On the other hand, it increases the guiding effect of the telescopic guide structure 2 on the partition 3, thereby further increasing the smoothness of the movement of the partition 3, thus further improving the user experience. Furthermore, it enables the two first linkage rods 21 in the same set of telescopic guide structures 2 to move synchronously and the two second linkage rods 22 in the same set of telescopic guide structures 2 to move synchronously, thereby further improving the guiding effect of the telescopic guide structure 2 on the partition 3, and further increasing the smoothness of the movement of the partition 3.
[0063] Furthermore, since both the first connector 23 and the second connector 24 have an arc-shaped wall 231 on the side facing the center of the cup placement space 12, when the cup is placed in the cup placement space 12, the outer circumference of the cup can contact the arc-shaped wall 231, thereby limiting the cup and increasing the stability of the cup in the cup placement space 12, thus further improving the user experience.
[0064] This application does not specifically limit the fixed connection method between the first connecting body 23 and the first linkage rod 21, or the fixed connection method between the second connecting body 24 and the second linkage rod 22. Preferably, the first connecting body 23 and the first linkage rod 21 are integrally formed to increase the connection stability between the first connecting body 23 and the first linkage rod 21 and reduce the number of parts required to assemble the storage box, thereby improving the assembly efficiency of the storage box. The second connecting body 24 and the second linkage rod 22 are integrally formed to increase the connection stability between the second connecting body 24 and the second linkage rod 22 and reduce the number of parts required to assemble the storage box, thereby further improving the assembly efficiency of the storage box. In other embodiments, the first connecting body 23 can also be fixedly connected to the first linkage rod 21 by adhesive or screws; the second connecting body 24 can also be fixedly connected to the second linkage rod 22 by adhesive or screws.
[0065] In other embodiments, the same set of telescopic guide structures 2 may include only one first linkage rod 21 and one second linkage rod 22; or, the number of first linkage rod 21 and second linkage rod 22 may both be more than two.
[0066] In the second embodiment, the telescopic guide mechanism includes a guide tube and a guide rod passing through the guide tube. The central axes of the guide tube and the guide rod are both parallel to the sliding direction of the partition 3. The guide tube and the guide rod are fixedly connected to the partition 3, and the other one of them is fixedly connected to the box body 1.
[0067] It is understandable that when the partition 3 is pushed, the partition 3 can drive the guide tube or guide rod to move, so that the guide tube and guide rod can slide relative to each other.
[0068] Specifically, when adjusting the partition 3, the partition 3 is pushed so that the partition 3 drives the guide tube or guide rod to move, thereby causing the guide tube and guide rod to slide relative to each other. Then, on the one hand, the telescopic guide structure 2 realizes the sliding connection between the partition 3 and the box 1, and on the other hand, the telescopic guide structure 2 guides the movement of the partition 3 to increase the smoothness of the movement of the partition 3.
[0069] Preferably, the guide rod is fixedly connected to the partition 3 and located inside the accommodating cavity, and the guide tube is fixedly connected to the box body 1 and at least partially located outside the box body 1, so as to increase the sliding range of the partition 3 and thus increase the flexibility of the storage box.
[0070] Preferably, the telescopic guide mechanism is provided in multiple sets, and the multiple sets of telescopic guide mechanisms are located at multiple corners of the partition 3, so as to increase the number of guide points for the partition 3 and further increase the stability of the partition 3.
[0071] In some other embodiments, the telescopic guide mechanism includes a telescopic rod, with the outermost section and the innermost section of the telescopic rod respectively fixedly connected to the partition 3 and the box 1, so that the telescopic guide mechanism can also be used to achieve the sliding connection between the partition 3 and the box 1 and to guide the partition 3.
[0072] In a preferred embodiment, refer to Figures 1 to 5 A baffle 14 is fixedly connected to the top of the box body 1. The baffle 14 extends circumferentially along the box body 1, and at least part of the baffle protrudes from the cavity wall of the receiving cavity so that the baffle 14 can block the partition 3 to increase the stability of the partition 3.
[0073] In a preferred embodiment, refer to Figures 8 to 13 The partition 3 is provided with a locking component 4, and the box body 1 is provided with a mating part 15. The locking component 4 can cooperate with the mating part 15 to lock the partition 3.
[0074] When adjusting the storage space 11 and the cup placement space 12, the locking component 4 is operated first to disengage it from the mating part 15. Then, the partition 3 is pushed so that it acts on the telescopic guide mechanism, causing the telescopic guide mechanism to telescopically move. This causes the partition 3 to slide relative to the box body 1. After the partition 3 is adjusted to the set position, the locking component 4 is engaged with the mating part 15 to lock the partition 3, thereby increasing the stability of the partition 3 and further improving the user experience.
[0075] This application does not specifically limit the structure of the mating part 15 and the locking component 4. Preferably, refer to Figures 8 to 13 The mating part 15 is a locking groove provided on the cavity wall of the receiving cavity. The locking assembly 4 includes a locking pin 41 slidably connected to the partition 3 and an elastic member 42 provided on the partition 3 and acting on the locking pin 41. The locking pin 41 has a locking position that is inserted into the locking groove and an unlocking position that is separated from the locking groove. The elastic member 42 is used to apply an elastic force to the locking pin 41 toward the locking position.
[0076] It is understandable that multiple locking grooves are provided at intervals along the sliding direction of the partition 3.
[0077] When adjusting the storage space 11 and the cup-holding space 12, a force is first applied to the locking pin 41 to move it toward the unlocking position, so that the locking pin 41 overcomes the elastic force of the elastic member 42 and moves toward the unlocking position, thereby separating the locking pin 41 from the locking groove. Then, a pushing force is applied to the partition 3 to make the partition 3 slide relative to the box body 1. When the partition 3 moves to the set position, the locking pin 41 is released, and the elastic member 42 gradually recovers its deformation and applies an elastic force to the locking pin 41 to move toward the locking position, so that the locking pin 41 is inserted and engaged with the locking groove to lock the partition 3, thereby increasing the stability of the partition 3. At the same time, since the elastic member 42 is used to apply an elastic force to the locking pin 41 to move toward the locking position, it is necessary to overcome the elastic force of the elastic member 42 when unlocking the locking pin 41, so as to increase the force required to drive the locking pin 41 toward the unlocking position to a certain extent, thereby increasing the locking stability of the locking assembly 4 on the partition 3.
[0078] This application does not specifically limit the sliding direction of the locking pin 41. Preferably, refer to... Figure 9 and Figure 10 The partition 3 has an internal mounting channel that extends horizontally. A locking pin 41 is slidably connected to the mounting channel, meaning the locking pin 41 is slidably connected to the partition 3 horizontally. A locking groove is located on the side of the partition 3, and one opening of the mounting channel is also located on the side of the partition 3, allowing the end of the locking pin 41 to extend from the side of the partition 3 and into the locking groove. Alternatively, in other embodiments, the locking pin 41 can also be slidably connected to the partition 3 vertically, with the locking groove located at the bottom of the partition 3.
[0079] This application does not specify the number of locking pins 41; preferably, refer to... Figures 9 to 11 There are two locking pins 41, and the two locking pins 41 are located on both sides of the partition 3 respectively, so as to increase the locking points of the partition 3 and thus increase the locking stability of the partition 3.
[0080] This application does not specifically limit the structure of the elastic element 42; preferably, refer to... Figures 9 to 11 The elastic element 42 is a spring sleeved on the outside of the locking pin 41. The locking pin 41 has a stop block 411, and the partition 3 has a stop rib 32 located inside the stop block 411. The spring is located between the stop block 411 and the stop rib 32, so that the stop rib 32 supports the spring, and the spring applies an elastic force to the locking pin 41 through the stop block 411 to move toward the locking position. In other embodiments, the elastic element 42 may also be an elastic post sleeved on the outside of the locking pin 41; or, the elastic element 42 may be an elastic sheet with one end engaged with the locking pin 41 and the other end engaged with the inner wall of the mounting channel.
[0081] This application does not specify a particular method for unlocking the locking pin 41; preferably, refer to... Figure 9 , Figure 10 , Figure 11 and Figure 13 The locking assembly 4 also includes an unlocking member 43, which is movably connected to the partition 3 and acts on the locking pin 41. When the unlocking member 43 moves in the first direction, the locking pin 41 moves toward the unlocking position under the action of the unlocking member 43.
[0082] Understandably, the unlocking element 43 is located between the two locking pins 41.
[0083] When the partition 3 is unlocked, a force is applied to the unlocking member 43 to move in the first direction, so that the unlocking member 43 moves in the first direction, and then the locking pin 41 moves towards the unlocking position under the action of the unlocking member 43, thereby achieving the effect of driving the locking pin 41 to the unlocking position, so as to facilitate the user to unlock the partition 3, and further achieve the effect of facilitating the user to adjust the partition 3, thereby further improving the user experience.
[0084] Furthermore, refer to Figures 9 to 11 The locking assembly 4 also includes a reset member 44, which acts on the unlocking member 43. When the unlocking member 43 moves in the first direction, the reset member 44 deforms to apply an elastic force toward the unlocking member 43 in the second direction. The first direction and the second direction are opposite to each other.
[0085] When unlocking the locking pin 41, a force is applied to the unlocking member 43 in a first direction, causing the unlocking member 43 to exert pressure on the resetting member 44. Under the pressure applied by the unlocking member 43, the resetting member 44 deforms, causing the unlocking member 43 to overcome the elastic force of the resetting member 44 and move along the first direction. Ultimately, the unlocking member 43 acts on the locking pin 41, causing the locking pin 41 to move towards the unlocked position. After the force applied to the unlocking member 43 in the first direction is removed, the resetting member 44 gradually returns to its original deformation, allowing the unlocking member 43 to return to its original position. The unlocking component 43 is reset by moving downwards in the second direction, while the locking pin 41 moves towards the locking position under the action of the elastic member 42, thereby realizing the automatic reset of the unlocking component 43. Furthermore, when applying a force towards the first direction to the unlocking component 43, it is also necessary to overcome the elastic force of the reset member 44, so as to increase the force required to unlock the unlocking component 43 when unlocking the partition 3 to a certain extent, thereby avoiding the situation where the locking component 4 is unlocked due to accidental contact by the user, and further increasing the locking stability of the locking component 4 on the partition 3.
[0086] This application does not specify the specific method of the movable connection between the unlocking component 43 and the partition 3, and it can adopt any of the following implementation examples: Implementation Example 1, in this implementation example, refer to Figures 9 to 11 The partition 3 is provided with an assembly channel extending in a vertical direction. The unlocking component 43 is slidably connected to the assembly channel, that is, the unlocking component 43 is slidably connected to the partition 3. A part of the unlocking component 43 protrudes from the top of the partition 3 to further reduce the difficulty of unlocking the partition 3, thereby further improving the user experience.
[0087] In this embodiment, the first direction is not specifically limited. Preferably, the first direction is vertically downward, so that when the user unlocks the partition 3, he only needs to apply downward pressure to the unlocking member 43, thereby further reducing the difficulty for the user to unlock the partition 3.
[0088] Furthermore, refer to Figures 9 to 14 One of the unlocking component 43 and the locking pin 41 is provided with a linkage groove 413, and the other is provided with a linkage shaft 432 extending into the linkage groove 413. When the unlocking component 43 moves in the first direction, the locking pin 41 moves toward the unlocking position under the action of the linkage shaft 432 and the groove wall of the linkage groove 413.
[0089] When the locking pin 41 is unlocked, a force is applied to the unlocking member 43 in the first direction, so that the unlocking member 43 overcomes the elastic force of the resetting member 44 and moves in the first direction. This causes the unlocking member 43 and the locking pin 41 to move relative to each other. At the same time, the locking pin 41 moves towards the unlocking position under the action of the linkage shaft 432 and the groove wall of the linkage groove 413. Thus, when the unlocking member 43 moves in the first direction, the locking pin 41 moves towards the unlocking position under the action of the unlocking member 43.
[0090] The better one is to refer to Figures 9 to 11 The partition 3 has an installation cavity that communicates with the installation channel and the assembly channel. The bottom of the unlocking component 43 has an installation piece 431 located in the installation cavity. The linkage shaft 432 is fixedly connected to the installation piece 431. The inner end of the locking pin 41 is fixedly connected to a mating piece 412 located in the installation cavity. The linkage groove 413 is provided on the mating piece 412, and the linkage groove 413 is inclined from bottom to top toward the side away from the locking pin 41, so that when the unlocking component 43 moves downward, the locking pin 41 moves toward the unlocking position under the mutual squeezing action of the linkage shaft 432 and the groove wall of the linkage groove 413.
[0091] In this embodiment, the structure of the reset member 44 is not specifically limited; preferably, it refers to... Figures 9 to 11The reset member 44 is a spring sleeved outside the unlocking member 43. The unlocking member 43 has a protrusion 433, and the partition 3 has a dividing rib 33 located at the bottom of the protrusion 433. The spring is located between the protrusion 433 and the dividing rib 33, so that the dividing rib 33 supports the spring, and the spring applies an upward elastic force to the unlocking member 43 through the protrusion 433. In other embodiments, the reset member 44 can also be an elastic column, elastic sheet, or other structure that can apply an upward elastic force to the unlocking member 43.
[0092] In other implementation examples, the first direction can also be a vertically upward direction, and the bottom of the unlocking member 43 is hinged with a connecting arm, which is hinged to the inner end of the locking pin 41, so as to unlock the partition 3 by applying an upward pulling force to the unlocking member 43.
[0093] In Example 2, the partition 3 is provided with an assembly channel extending vertically. The unlocking member 43 is rotatably connected to the assembly channel. The partition 3 has an installation cavity that is connected to both the assembly channel and the installation channel. One bottom end of the unlocking member 43 is located in the installation cavity, and the inner end of the locking pin 41 is located in the installation cavity. A gear is coaxially fixedly connected to the bottom of the unlocking member 43. Two locking pins 41 are located on opposite sides of the gear, and the sides of the inner ends of the two locking pins 41 have meshing teeth that engage with the gear. The partition 3 is unlocked by rotating the unlocking member 43.
[0094] It is understandable that in this implementation example, the first direction is the circumferential direction of the unlocking component 43.
[0095] In this embodiment, preferably, the reset member 44 is a torsion spring sleeved on the outside of the unlocking member 43. One end of the torsion spring is fixedly connected to the partition 3, and the other end of the torsion spring is fixedly connected to the unlocking member 43, so as to realize the automatic reset of the unlocking member 43.
[0096] In other embodiments, the mating part 15 is a rack fixedly connected to the cavity wall. The rack extends along the sliding direction of the partition 3. The locking assembly 4 includes a sliding member slidably connected to the partition 3 in the vertical direction. The side of the sliding member is provided with locking teeth that can engage with the teeth of the rack. The partition 3 is locked by the engagement of the locking teeth and the rack. When the partition 3 is unlocked, the sliding member only needs to be slid in the vertical direction to make the locking teeth and the rack misaligned and separated. At the same time, stepless locking of the partition 3 is also achieved, which further increases the flexibility of the storage box.
[0097] In other embodiments, the locking component 4 can be omitted, and a driving component can be added to the storage box. The driving component includes a motor and a lead screw pair. The lead screw pair includes a lead screw and a nut threaded to the lead screw. The lead screw is coaxially fixedly connected to the output shaft of the motor. The lead screw is set parallel to the sliding direction of the partition 3 and rotatably connected to the box body 1. The nut is fixedly connected to the partition 3, so that the motor drives the lead screw to realize the automatic adjustment of the position of the partition 3, thereby further improving the user experience. At the same time, the threaded engagement between the nut and the lead screw can also realize the automatic locking of the partition 3.
[0098] This application also discloses a vehicle that includes a storage box as described above.
[0099] Since the vehicle in this application uses the aforementioned storage box, it enables the adjustment of the storage space 11 and the cup holder 12 to increase the flexibility of the vehicle's storage space 11. On the other hand, it also increases the smoothness of adjusting the storage space 11 and the cup holder 12, thereby improving the user's ease of adjusting the partition 3 and thus enhancing the user's driving experience.
[0100] This application does not specify the installation location of the storage box. It can be installed on the armrest between the driver's seat and the passenger seat, in the center of the rear seats, or even in other locations in the vehicle.
[0101] For any parts not mentioned in this application, existing technologies may be used or referenced.
[0102] The various embodiments in this specification are described in a progressive manner. The same or similar parts between the various embodiments can be referred to each other. Each embodiment focuses on describing the differences from other embodiments.
[0103] The above description is merely an embodiment of this application and is not intended to limit the scope of this application. Various modifications and variations can be made to this application by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this application should be included within the scope of the claims of this application.
Claims
1. A storage box, characterized in that, include: The box body (1) has an internal cavity; A telescopic guide mechanism, at least a portion of which is located in the receiving cavity and is connected to the housing (1). The partition (3) is located in the accommodating cavity and divides the accommodating cavity into a storage space (11) and a cup placement space (12). The partition (3) is connected to the telescopic guide mechanism and is slidably connected to the box body (1) through the telescopic guide mechanism.
2. A storage box according to claim 1, characterized in that, The telescopic guide mechanism includes a telescopic guide structure (2) located in the accommodating cavity. The telescopic guide structure (2) includes a first linkage rod (21) and a second linkage rod (22). The middle part of the first linkage rod (21) is hinged to the middle part of the second linkage rod (22). When the partition (3) slides relative to the box (1), the included angle formed between the first linkage rod (21) and the second linkage rod (22) changes.
3. A storage box according to claim 2, characterized in that, The telescopic guide structure (2) is provided with at least two sets, the first linkage rods (21) of the two adjacent sets of the telescopic guide structure (2) are hinged to each other, and the second linkage rods (22) of the two adjacent sets of the telescopic guide structure (2) are hinged to each other.
4. A storage box according to claim 2, characterized in that, Two first linkage rods (21) are arranged opposite each other. The telescopic guide structure (2) also includes a first connecting body (23) connected to the two first linkage rods (21). Two second linkage rods (22) are arranged opposite each other. The telescopic guide structure (2) also includes a second connecting body (24) connected to the two second linkage rods (22). Both the first connecting body (23) and the second connecting body (24) have an arc-shaped wall surface (231) on the side facing the center of the cup placement space (12).
5. A storage box according to any one of claims 1-4, characterized in that, The partition (3) is provided with a locking component (4), and the box body (1) is provided with a mating part (15). The locking component (4) can cooperate with the mating part (15) to lock the partition (3).
6. A storage box according to claim 5, characterized in that, The mating part (15) is a locking groove provided on the cavity wall of the receiving cavity. The locking assembly (4) includes a locking pin (41) slidably connected to the partition (3) and an elastic member (42) provided on the partition (3) and acting on the locking pin (41). The locking pin (41) has a locking position that is inserted into the locking groove and an unlocking position that is separated from the locking groove. The elastic member (42) is used to apply an elastic force to the locking pin (41) to move toward the locking position.
7. A storage box according to claim 6, characterized in that, The locking assembly (4) further includes an unlocking member (43), which is movably connected to the partition (3) and acts on the locking pin (41). When the unlocking member (43) moves in the first direction, the locking pin (41) moves toward the unlocking position under the action of the unlocking member (43).
8. A storage box according to claim 7, characterized in that, The locking assembly (4) further includes a reset member (44), which acts on the unlocking member (43). When the unlocking member (43) moves along the first direction, the reset member (44) deforms to apply an elastic force toward the unlocking member (43) in a second direction. The first direction and the second direction are opposite to each other.
9. A storage box according to claim 7, characterized in that, One of the unlocking component (43) and the locking pin (41) is provided with a linkage groove (413), and the other is provided with a linkage shaft (432) extending into the linkage groove (413). When the unlocking component (43) moves along the first direction, the locking pin (41) moves toward the unlocking position under the cooperation of the linkage shaft (432) and the groove wall of the linkage groove (413).
10. A vehicle, characterized in that, Includes the storage box as described in any one of claims 1-9 above.