A safe partition buckle and a safe

By designing a safe partition buckle, the rotational translation of the locking member and the base and the locking mechanism of the elastic arm are solved, and the problems of unfixed fixing and rotating effort in the prior art are achieved, and the stable fixing and convenient adjustment of the partition are achieved.

CN116241158BActive Publication Date: 2025-07-01DELI GROUP CO LTD
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Patent Information

Application Number
CN202310156858.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-02-23
Publication Date
2025-07-01
Estimated Expiration
2043-02-23

AI Technical Summary

Technical Problem

The existing safe partition fixing mechanism is laborious and inconvenient when rotating the lock knob, and is easily loosened during bumps, so it cannot effectively fix the partition.

Method used

A safe partition buckle is designed, and the locking member rotates and translates relative to the base through the rotation and translation, so that the locking member is dislocated from the original rotation axis, so that the locking member cannot rotate and is not easy to loosen, and a clamping distance is formed between the elastic arm and the base.

Benefits of technology

The partition is stable and fixed, avoiding the problem of effort and looseness of rotating the lock knob. The partition is adjusted without removing the locking parts, which is easy to use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a partition buckle for a safe and a safe. The partition buckle includes a locking member and a base. A connecting shaft is provided on the base, and the locking member is mounted on the base through the connecting shaft. The locking member is provided with a sliding groove adapted to the connecting shaft, and the locking member is provided with an elastic arm for unlocking. When it is necessary to form a clamped interval, the locking member rotates towards the base side to clamp the partition, and then the locking member is forced to make the sliding groove translate horizontally relative to the connecting shaft, so that the rotation axes of the locking member and the connecting shaft are misaligned, and the elastic arm is locked with the base, so that the locking member is fixed relative to the base to form a clamped interval. When it is necessary to open the clamped interval, the elastic arm is deformed by force to disengage from the base and translate reversely relative to the base, so that the locking member can rotate reversely relative to the base to open the clamped interval.
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Description

Technical Field

[0001] The present invention relates to the technical field of safes, and more specifically to a partition buckle for a safe and a safe. Background Art

[0002] Most of the currently used safes are provided with partitions inside the box body. The space inside the box body is separated by the partitions, so that items can be neatly stored, improving the space utilization rate inside the safe. However, most of the partitions of the existing safes are fixed by right-angle brackets that only have a supporting function. After installing the brackets, the partitions are merely placed on them, and the partitions are prone to displacement, and the fixing effect on the partitions is poor.

[0003] In view of the above problems, a technical solution has disclosed a fixing mechanism capable of clamping a partition. For example, the utility model patent with the publication number: CN215520521U discloses a partition support bracket for a safe, including an integrally formed load-bearing block and a fixing plate; the fixing plate is vertically arranged on the load-bearing block; the load-bearing block is provided with a spring washer; the fixing plate is provided with a locking knob; a convex block or a round hole is arranged behind the load-bearing block. In this technical solution, the partition is placed on the load-bearing block, and then the locking knob is rotated to clamp the partition, thereby avoiding the displacement of the partition. However, rotating the locking knob causes one side of the locking knob to abut against the partition, and the rotation is relatively laborious. The assembly method of the fixing mechanism is not convenient. Moreover, when the partition needs to be disassembled, first, the locking knob needs to be rotated to unlock and then disassembled from the fixing mechanism. The locking knob is easy to lose after being removed. On the other hand, the locking knob fixes the partition by rotation, and during the transportation of the safe, the locking knob is easily tilted and unlocked due to jolting, resulting in the fixing mechanism being unable to effectively fix the partition. Therefore, there is still a need for a partition fixing mechanism that does not need to be disassembled and is not easily loosened. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to provide a partition buckle for a safe. The partition buckle rotates and translates the locking member relative to the base, so that the locking member is misaligned with the original rotation axis, the locking member cannot rotate and is not easily loosened, and the locking member can be unlocked without disassembly.

[0005] The present invention provides a safe partition buckle, which includes a locking member and a base. A connecting shaft is provided on the base, and the locking member is installed on the base through the connecting shaft. The locking member is provided with a sliding groove adapted to the connecting shaft. The locking member rotates close to the base through the cooperation of the connecting shaft and the sliding groove to form a clamping interval or rotates away from the base to open the clamping interval. The locking member is provided with an elastic arm for unlocking. When it is necessary to form a clamping interval, the locking member rotates towards the base side until it clamps the partition, and then the locking member is forced to make the sliding groove translate relative to the connecting shaft. The rotation axis of the locking member is misaligned with that of the connecting shaft, and the elastic arm is locked with the base, so that the locking member is fixed relative to the base to form a clamping interval. When it is necessary to open the clamping interval, the elastic arm is deformed by force and disengages from the base and translates reversely relative to the base, so that the locking member can rotate reversely relative to the base to open the clamping interval.

[0006] In this technical solution, a connecting shaft is provided on the base, and the locking member is provided with a sliding groove adapted to the connecting shaft. The connecting shaft is connected to the sliding groove, and the rotation axis of the locking member overlaps with the rotation axis of the connecting shaft, so that the locking member can rotate relative to the base. The locking member rotates close to or away from the base. When the locking member rotates close to the base, a clamping interval is formed between the locking member and the base, and this clamping interval is used to fix the partition. When the locking member rotates away from the base, the clamping interval between the locking member and the base is opened, and at this time, the partition can be disassembled or installed; when it is necessary to form a clamping interval, the user applies force to the locking member so that the locking member has a lateral moving force relative to the base. The sliding groove translates relative to the connecting shaft, and the rotation axis of the locking member is misaligned with the rotation axis of the connecting shaft, so that the locking member cannot rotate relative to the base. And the locking member is locked with the base through the elastic arm, so that the locking member is axially limited relative to the base, and the locking member cannot translate reversely to make the rotation axis of the locking member overlap with the rotation axis of the connecting shaft. Even when the partition is in a bumpy state, the locking member cannot rotate relative to the base due to the locking effect of the misaligned rotation axis, and the partition is fixed reliably; when it is necessary to open the clamping interval, the user presses the elastic arm to make the elastic arm deform and disengage from the base, so that the locking member can slide relative to the base. At this time, the user pulls the locking member laterally, so that the sliding groove translates reversely relative to the connecting shaft, and further makes the rotation axis of the locking member overlap with the rotation axis of the connecting shaft. The locking member can rotate and open relative to the base. Therefore, it is not necessary to disassemble the locking member for partition adjustment, which is convenient for partition adjustment.

[0007] As an improvement, a first limiting portion is provided on the elastic arm. When the locking member is forced to make the sliding groove translate relative to the connecting shaft, the elastic arm is axially limited through the first limiting portion and buckled with the base. When the elastic arm is deformed by force, the first limiting portion is disengaged from the base, and the locking member is unlocked from the base.

[0008] In this technical solution, a first limiting portion capable of buckling with the base is provided on the elastic arm. When the locking member is subjected to a lateral moving force, the locking member transversely moves relative to the base, so that the first limiting portion can be buckled with the base to realize the axial limiting of the locking member, and the locking member is fixed relative to the base, improving the stability and fixing effect of the partition buckle. When it is necessary to unlock the axial limit of the locking member, the user presses the elastic arm to deform the elastic arm and move inward, and the first limiting portion moves with the elastic arm to disengage from the base, so that the axial limit of the locking member relative to the base is released. The elastic arm has a simple structure and is convenient to use.

[0009] As an improvement, the base is provided with a second limiting portion adapted to the first limiting portion, and the base is buckled with the first limiting portion through the second limiting portion so that the locking member and the base form a clamping interval.

[0010] In this technical solution, by providing a second limiting portion on the base, when the locking member transversely moves relative to the base, the first limiting portion is buckled with the second limiting portion to axially limit the locking member relative to the base, preventing the locking member from retracting relative to the base.

[0011] As an improvement, the first limiting portion is a convex structure at the end of the elastic arm, and the first limiting portion is semicircular.

[0012] In this technical solution, the first limiting portion is arranged at the end of the elastic arm, so that the path for the first limiting portion to laterally move to buckle the base or the second limiting portion on the base is short, without increasing the volume of the partition buckle. And the first limiting portion is set to be semicircular, so when the locking member rotates relative to the base, the semicircular first limiting portion will not affect the rotation efficiency of the locking member, and the rotation is smoother.

[0013] As an improvement, elastic arms are arranged on both sides of the locking member.

[0014] In this technical solution, by arranging elastic arms on both sides of the locking member, when the user needs to open the clamping interval, the user only needs to press the elastic arms on both sides of the locking member inward with two fingers and simultaneously pull the locking member to transversely move, so that the rotation axis of the locking member coincides with the rotation axis of the connecting shaft to complete unlocking. Among them, both pressing and pulling can be completed through the elastic arms, and the user does not need to change the force application position, which is labor-saving and convenient to use, and the connection structure stability between the locking member and the base is better.

[0015] As an improvement, an anti-slip structure is provided on the surface of the elastic arm. In this technical solution, the user presses and pulls the elastic arm with fingers. By providing an anti-slip structure on the surface of the elastic arm, the anti-slip structure is preferably a plurality of convex ribs arranged in parallel, so that it is more labor-saving for the user to pull the locking member.

[0016] As an improvement, a first rotating shaft is provided at one end of the connecting shaft, and a second rotating shaft is provided at the other end of the connecting shaft. The sliding groove includes a first sliding groove and a second sliding groove. The first rotating shaft is connected to the first sliding groove, and the second rotating shaft is connected to the second sliding groove.

[0017] In this technical solution, by providing a first rotating shaft and a second rotating shaft at both ends of the connecting shaft, and providing a first sliding groove and a second sliding groove in the locking member, the connecting shaft is inserted into the first sliding groove through the first rotating shaft and into the second sliding groove through the second rotating shaft, realizing the movable connection between the connecting shaft and the locking member. When the locking member moves horizontally relative to the base, the first rotating shaft slides in the first sliding groove and the second rotating shaft slides in the second sliding groove, and the structure is simple.

[0018] As an improvement, the second limiting portion is provided with an arc-shaped guiding surface, and the first limiting portion passes through the second limiting portion through the arc-shaped guiding surface and is buckled with the second limiting portion.

[0019] In this technical solution, the first limiting portion is a convex structure at the end of the elastic arm, and the second limiting portion is a convex structure on the base adapted to the first limiting portion. When the locking member moves horizontally relative to the base, the first limiting portion needs to pass through the second limiting portion to be buckled with the second limiting portion to prevent the locking member from moving horizontally in the reverse direction and resetting. By providing an arc-shaped guiding surface on the second limiting portion, when the locking member is forced to move horizontally relative to the base, the bottom surface of the first limiting portion drives the elastic arm to contract and deform inward under the action of the arc-shaped guiding surface, so that the first limiting portion can pass through the second limiting portion without the user pressing the elastic arm, making it more labor-saving and convenient to use.

[0020] As an improvement, a third limiting portion is provided in the sliding groove, and the connecting shaft is limited in the sliding groove through the third limiting portion. In this technical solution, a third limiting portion is provided at the end of the sliding groove close to the connecting shaft to prevent the connecting shaft from sliding out of the sliding groove when the connecting shaft slides relative to the sliding groove.

[0021] As an improvement, a sponge pad is further included, and the sponge pad is installed on the base. In this technical solution, by installing a sponge pad on the base, when the base is fixed to the partition of the locking member, the partition has a buffer through the sponge pad, and the fit between the partition and the partition buckle is better.

[0022] The present invention can also provide a safe, including a safe partition buckle as described above.

[0023] A partition buckle for a safe and a safe according to the present invention. The partition buckle includes a locking member and a base. A connecting shaft is provided on the base, and a sliding groove adapted to the connecting shaft is provided on the locking member. The locking member is connected to the base through the connecting shaft and the sliding groove, so that the rotation axis of the locking member coincides with the rotation axis of the connecting shaft, and the locking member can rotate relative to the base. The locking member is provided with an elastic arm. By applying a force to the locking member, the locking member is translated horizontally relative to the base, so that the rotation axis of the locking member is displaced from the rotation axis of the connecting shaft, and the elastic arm is locked with the base, so that the locking member is fixed relative to the base to form a clamping interval. By pressing the elastic arm, the elastic arm is disengaged from the base and translated horizontally in the opposite direction relative to the base, so that the locking member can rotate in the opposite direction relative to the base to open the clamping interval. By pulling the locking member in the opposite direction, the locking member is reset, the rotation axis of the locking member coincides with the rotation axis of the connecting shaft, and the locking member can rotate relative to the base to open. The partition can be adjusted without disassembling the locking member, and the locking member is not easily loosened. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 FIG. is a perspective structural view of the partition buckle in the present disclosure.

[0025] Figure 2 FIG. is an exploded view of a partition buckle for a safe according to the present disclosure.

[0026] Figure 3 In the present disclosure Figure 1 FIG. is a sectional structural view.

[0027] Figure 4 FIG. is a perspective structural view of the partition buckle in the present disclosure when forming a clamping interval.

[0028] Figure 5 In the present disclosure Figure 4 FIG. is a sectional structural view.

[0029] Figure 6 FIG. is a perspective structural view of the partition buckle in the present disclosure when the clamping interval is opened.

[0030] As shown in the figure: 1. Locking member; 11. First limiting portion; 12. Elastic arm; 121. Anti-slip structure; 13. First sliding groove; 14. Second sliding groove; 15. Third limiting portion; 2. Base; 21. Second limiting portion; 3. Connecting shaft; 31. First rotating shaft; 32. Second rotating shaft. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0031] In order to better understand the present application, various aspects of the present application will be described in more detail with reference to the accompanying drawings. It should be understood that these detailed descriptions are only descriptions of the exemplary embodiments of the present application and do not limit the scope of the present application in any way. Throughout the specification, the same reference numerals refer to the same elements.

[0032] In the drawings, for the sake of clarity, the thickness, dimensions and shape of the objects have been slightly exaggerated. The drawings are only examples and are not drawn to strict scale.

[0033] It should also be understood that the terms "comprising", "including", "having", "containing", "include", when used in this specification, denote the presence of the stated features, integers, steps, operations, elements and / or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components and / or combinations thereof.

[0034] As Figures 1 to 6 shown, the present application discloses a safe partition buckle, including a locking member 1 and a base 2. A connecting shaft 3 is fixedly arranged on the base 2. The locking member 1 is mounted on the base 2 through the connecting shaft 3. The locking member 1 is provided with a chute adapted to the connecting shaft 3. The connecting shaft 3 is connected with the chute. The rotation axis of the locking member 1 coincides with the rotation axis of the connecting shaft 3, so that the locking member 1 can rotate relative to the base 2. The locking member 1 rotates close to or away from the base 2 through the cooperation of the connecting shaft 3 and the chute. When the locking member 1 rotates close to the base 2, a clamping interval is formed between the locking member 1 and the base 2. As Figure 4 shown, this is the state of fixing the partition at this time. When the locking member 1 rotates away from the base 2, the clamping interval between the locking member 1 and the base 2 is opened. As Figure 6 shown, this is the state of disassembling or installing the partition at this time.

[0035] As Figure 1 and Figure 3 shown, an elastic arm 12 is arranged on the locking member 1. When it is necessary to form a clamping interval, the locking member 1 and the base 2 are in a clamping state. At this time, the rotation axis of the locking member 1 coincides with the rotation axis of the connecting shaft 3. The user applies a force to the locking member 1 so that the locking member 1 has a lateral moving force, and the chute moves laterally relative to the connecting shaft 3. As Figure 4 and Figure 5 shown, the rotation axis of the locking member 1 is misaligned with the rotation axis of the connecting shaft 3, so that the locking member 1 cannot rotate relative to the base 2, and the elastic arm 12 is locked with the base, so that the locking member 1 is axially limited relative to the base 2. The stability of the partition buckle is better and the fixation is more reliable. And when it is necessary to open the clamping interval, the user only needs to press the elastic arm 12 to make the elastic arm 12 deform and disengage from the base 2, so that the locking member 1 and the base 2 are unlocked. At this time, the user pulls the locking member 1 laterally, so that the chute moves laterally in the opposite direction relative to the connecting shaft 3, and further makes the rotation axis of the locking member 1 coincide with the rotation axis of the connecting shaft 3. The locking member 1 can rotate and open relative to the base 2. Therefore, it is not necessary to disassemble the locking member 1 for partition adjustment, which is convenient for partition adjustment.

[0036] As Figures 1 to 5As shown in the figure, a first limiting portion 11 is provided on the elastic arm 12, and a second limiting portion 21 adapted to the first limiting portion 11 is provided on the base 2. When the locking member 1 is subjected to a lateral moving force, the locking member 1 transversely moves relative to the base 2, the first limiting portion 11 slides and is buckled with the second limiting portion 21, and the locking member 1 is axially limited relative to the base 2, so that the locking member 1 cannot transversely move and reset in the reverse direction, and the locking member 1 and the base 2 are in a clamped and locked state, improving the stability and fixing effect of the partition buckle;

[0037] When it is necessary to unlock the axial limit of the locking member, the user presses the elastic arm 12, causing the elastic arm 12 to deform and move inward. The first limiting portion 11 moves with the elastic arm 12 to disengage from the base 2 or the second limiting portion 21 on the base 2, so that the locking member 1 is axially released from the limit relative to the base 2. The elastic arm 12 has a simple structure and is convenient to use.

[0038] More specifically, as Figure 2 and Figure 6 shown, the first limiting portion 11 is a convex structure at the end of the elastic arm 12, and the first limiting portion 11 is semicircular. The first limiting portion 11 is arranged at the end of the elastic arm 12, so that the path for the first limiting portion 11 to laterally move to buckle the base 2 or the second limiting portion 21 on the base 2 is short, without increasing the volume of the partition buckle. And the first limiting portion 11 is set to be semicircular, so when the locking member 1 rotates relative to the base 2, the semicircular first limiting portion 11 will not affect the rotation efficiency of the locking member 1, and the rotation is smoother.

[0039] More specifically, elastic arms 12 are provided on both sides of the locking member 1. When the user releases the clamped and locked state of the partition buckle, the user only needs to press the elastic arms 12 on both sides of the locking member 1 inward with two fingers and pull the locking member 1 transversely at the same time, so that the rotation axis of the locking member 1 coincides with the rotation axis of the connecting shaft 3 to complete the unlocking. It is labor-saving and convenient to use, and the connection structure stability between the locking member 1 and the base 2 is better.

[0040] More specifically, as Figure 1 and Figure 2 shown, an anti-slip structure 121 is provided on the surface of the elastic arm 12. The anti-slip structure 121 can be a number of convex ribs arranged in parallel. When the user presses and pulls the elastic arm 12 with a finger, the anti-slip structure 121 can increase the friction between the surface of the user's finger and the surface of the elastic arm 12, making it more labor-saving for the user to pull the locking member 1.

[0041] In this embodiment, as Figure 2As shown, the structure of the connecting shaft 3 is set as follows: a first rotating shaft 31 is provided at one end of the connecting shaft 3, and a second rotating shaft 32 is provided at the other end of the connecting shaft 3. The chute includes a first chute 13 and a second chute 14. The connecting shaft 3 is movably connected to the locking member 1 by inserting the first rotating shaft 31 into the first chute 13 and the second rotating shaft 32 into the second chute 14. When the locking member 1 moves horizontally relative to the base 2, the first rotating shaft 31 slides in the first chute 13 and the second rotating shaft 32 slides in the second chute 14.

[0042] More specifically, as Figure 3 and Figure 4 shown, the first limiting portion 11 is a convex structure at the end of the elastic arm 12, and the second limiting portion 21 is a convex structure on the base 2 adapted to the first limiting portion 11. When the locking member 1 moves horizontally relative to the base 2, the first limiting portion 11 needs to pass through the second limiting portion 21 to achieve buckling with the second limiting portion 21, preventing the locking member 1 from moving horizontally in the reverse direction and resetting. By providing an arc-shaped guiding surface on the second limiting portion 21, when the locking member 1 is stressed and moves horizontally relative to the base 2, the bottom surface of the first limiting portion 11 drives the elastic arm 12 to contract and deform inward under the action of the arc-shaped guiding surface, so that the first limiting portion 11 can pass through the second limiting portion 21 without the user pressing the elastic arm 12, making it more labor-saving and convenient to use.

[0043] More specifically, as Figure 3 shown, a third limiting portion 15 is provided in the chute. The connecting shaft 3 is limited in the chute by the third limiting portion 15 to prevent the connecting shaft 3 from sliding out of the chute when the connecting shaft 3 and the chute slide relative to each other; the third limiting portion 15 is provided with two arc-shaped convex structures, and the two arc-shaped convex structures are arranged vertically opposite to each other, facilitating the assembly of the connecting shaft 3 and the chute.

[0044] More specifically, a sponge pad is installed on the surface of the base 2. When the partition buckle fixes the partition, the partition is placed on the sponge pad. The partition has buffering through the sponge pad, and the sponge pad makes the fitting between the partition and the partition buckle better.

[0045] This application also discloses a safe, including a partition buckle for a safe as described above. The partition buckle is installed on the inner wall of the safe box body, and at least 4 partition buckles are required to cooperate to fix one partition.

[0046] A safe partition buckle and a safe mentioned in this embodiment. The partition buckle includes a locking member 1 and a base 2. A connecting shaft 3 is provided on the base 2, and the locking member 1 is provided with a chute adapted to the connecting shaft 3. The locking member 1 is connected to the chute through the connecting shaft 3, so that the rotation axis of the locking member 1 coincides with the rotation axis of the connecting shaft 3, enabling the locking member 1 to rotate relative to the base 2. The locking member 1 is provided with an elastic arm 12. By applying force to the locking member 1, the locking member 1 is horizontally displaced relative to the base 2, causing the rotation axis of the locking member 1 to be misaligned with the rotation axis of the connecting shaft 3, and the elastic arm 12 is locked with the base 2, so that the locking member 1 is fixed relative to the base 2. By pulling the locking member 1 in the reverse direction, the locking member 1 is reset, the rotation axis of the locking member 1 coincides with the rotation axis of the connecting shaft 3, and the locking member 1 can be rotated and opened relative to the base 2. The partition can be adjusted without disassembling the locking member 1, and the locking member 1 is not easily loosened.

[0047] The present invention is not limited to the above-mentioned best implementation mode. Any person can obtain other various forms of products under the inspiration of the present invention. However, no matter what changes are made in its shape or structure, as long as it has the same or similar technical solutions as the present application, it falls within the protection scope of the present invention.

Claims

1. A safe partition buckle, comprising a locking member (1) and a base (2), characterized in that, A connecting shaft (3) is provided on the base (2), and the locking member (1) is mounted on the base (2) through the connecting shaft (3). The locking member (1) is provided with a sliding groove adapted to the connecting shaft (3). The locking member (1) rotates close to the base (2) through the cooperation of the connecting shaft (3) and the sliding groove to form a clamping interval or rotates away from the base (2) to open the clamping interval. The locking member (1) is provided with an elastic arm (12) for unlocking. When it is necessary to form a clamping interval, the locking member (1) rotates towards the base (2) to clamp the partition board, and then the locking member (1) is forced to make the sliding groove translate relative to the connecting shaft (3). The rotation axis of the locking member (1) and the connecting shaft (3) is misaligned, and the elastic arm (12) is locked with the base (2), so that the locking member (1) is fixed relative to the base (2) to form a clamping interval. When it is necessary to open the clamping interval, the elastic arm (12) is deformed by force and disengages from the base (2) and translates in the reverse direction relative to the base (2), so that the locking member (1) can rotate in the reverse direction relative to the base (2) to open the clamping interval; a first limiting portion (11) is provided on the elastic arm (12). When the locking member (1) is forced to make the sliding groove translate relative to the connecting shaft (3), the elastic arm (12) is axially limited by buckling the first limiting portion (11) with the base (2). The elastic arm (12) is deformed by force, so that the first limiting portion (11) is disengaged from the base (2), and the locking member (1) is unlocked from the base (2).

2. The snap fastener for a safe partition according to claim 1, wherein The base (2) is provided with a second limiting portion (21) adapted to the first limiting portion (11). The base (2) and the first limiting portion (11) are buckled through the second limiting portion (21) so that the locking member (1) and the base (2) form a clamping interval.

3. A safety deposit box partition buckle according to claim 1, characterized in that, The first limiting portion (11) is a convex structure at the end of the elastic arm (12), and the first limiting portion (11) is semicircular.

4. The snap fastener for a safe partition according to claim 3, wherein, Elastic arms (12) are provided on both sides of the locking member (1).

5. The snap fastener for a safe partition according to claim 4, characterized in that An anti-slip structure (121) is provided on the surface of the elastic arm (12).

6. The snap buckle for the partition of a safe according to claim 1, characterized in that, One end of the connecting shaft (3) is provided with a first rotating shaft (31), and the other end of the connecting shaft (3) is provided with a second rotating shaft (32). The sliding groove includes a first sliding groove (13) and a second sliding groove (14). The first rotating shaft (31) is connected to the first sliding groove (13), and the second rotating shaft (32) is connected to the second sliding groove (14).

7. The snap fastener for a safe partition according to claim 2, wherein, The second limiting portion (21) is provided with an arc-shaped guiding surface. The first limiting portion (11) passes through the second limiting portion (21) through the arc-shaped guiding surface and is buckled with the second limiting portion (21).

8. A safety box partition buckle according to claim 1, characterized in that, A third limiting portion (15) is provided in the sliding groove, and the connecting shaft (3) is limited in the sliding groove through the third limiting portion (15).

9. The snap fastener for the partition of a safe according to claim 1, wherein, It further includes a sponge pad, and the sponge pad is mounted on the base (2).

10. A safe, characterized in that, It includes a safe partition buckle according to any one of claims 1-9.

Citation Information

Patent Citations

  • Safety box partition plate supporting bracket

    CN215520521U

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    CN205299335U