Rotary wrench storage device

By designing a rotary wrench storage device, using the stacked and rotating storage plate structure, the existing wrench tool assembly rack is solved, and the wrench is quickly selected and put back, improving the user experience.

CN222903996UActive Publication Date: 2025-05-27HANGZHOU QIANYE TOOLS CO LTD +1
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Patent Information

Application Number
CN202422003987.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Priority Date
2024-04-19
Filing Date
2024-08-16
Publication Date
2025-05-27
Estimated Expiration
2034-08-16

AI Technical Summary

Technical Problem

The existing wrench tool assembly rack needs to turn in sequence when removing and replacing the wrench, which makes the operation cumbersome and it is difficult to quickly select and replace the required wrench.

Method used

A rotary wrench storage device is designed to quickly remove and retract the wrench by stacking and rotating at least two storage plates and positioning shafts. The positioning shafts between the storage plates allow relative rotation, allowing for direct removal and reposition of the wrench of the required specification.

Benefits of technology

By rotating the storage plate, you can directly and quickly remove and put the wrench of the required specifications, which significantly improves the user experience and avoids the cumbersome operation problems in traditional wrench assembly racks.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a rotary wrench storage device which comprises at least two storage plates and a positioning shaft. Wherein the at least two storage plates are stacked up and down or left and right, each storage plate is provided with a positioning shaft hole for a positioning shaft to pass through, and the side surface of each storage plate is provided with at least one tool placing hole for inserting a wrench; and the positioning shaft penetrates through the positioning shaft hole of each storage plate, so that the storage plates can relatively rotate around the positioning shaft. Wrenches are taken in a rotating mode, the problem that an existing wrench collection frame is inconvenient to take is solved, and the use experience of a user is improved.
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Description

Technical Field

[0001] The utility model relates to a wrench storage device, especially a rotary wrench storage device which can be easily and quickly selected and pulled out. Background Art

[0002] Most of the existing wrench storage racks for wrench tools (as shown in Figure 12 ) are composed of several wrenches of different sizes, such as 01, 02, 03, 04, 05, etc., which are assembled on a storage rack A. When it is necessary to take out the No. 01 wrench for use, the wrenches No. 02, 03, and 04 must be rotated to an angle respectively, otherwise the No. 01 wrench will be blocked and cannot be taken out. Except for the No. 05 wrench which can be directly pulled out, the other wrenches No. 01, 02, 03, and 04 must be turned in sequence before they can be taken out. Similarly, when putting the wrenches back into the storage rack A, they also need to be turned in sequence before they can be put back to their original positions. Therefore, in order to make the wrenches on the wrench storage rack easier to be selected and taken out, a wrench tool storage device that is convenient for taking and placing has been created. Content of the Utility Model

[0003] Aiming at the deficiencies of the prior art, the technical problem to be solved by the utility model is to provide a rotary wrench storage device.

[0004] To achieve the above utility model purpose, the rotary wrench storage device of the utility model includes at least two storage plates and a positioning shaft; wherein, the at least two storage plates are stacked, and each storage plate is provided with a positioning shaft hole for the positioning shaft to pass through, and at least one tool placement hole is provided on the side of each storage plate for inserting a wrench; the positioning shaft passes through the positioning shaft holes of each storage plate, so that the storage plates can rotate relative to each other around the positioning shaft.

[0005] Optionally, the tool placement holes of the at least two storage plates increase or decrease in sequence.

[0006] Optionally, a limiting structure is provided between the storage plates to limit the relative rotation angle of two adjacent storage plates.

[0007] Optionally, the rotation angle is 0 to 30 degrees.

[0008] Optionally, the limiting structure includes a limiting groove and a limiting protrusion; wherein, one of the two adjacent storage plates is provided with the limiting protrusion, and the other storage plate is provided with a limiting groove for restricting the movement of the limiting protrusion.

[0009] Optionally, a damping structure is provided between two adjacent storage plates to prevent the storage plates from rotating randomly.

[0010] Optionally, the damping structure is a damping protrusion, which is arranged on one of the adjacent storage plates; the damping protrusion is arranged in an arc shape along the rotation direction of the storage plate or in a circular ring shape around the positioning shaft hole.

[0011] Optionally, a circular groove is arranged around the positioning shaft hole, and the groove is used to accommodate a spring structure.

[0012] Optionally, the outermost storage plate among the at least two storage plates is provided with a buckle or a hanging hole.

[0013] Optionally, the outermost storage plate among the at least two storage plates is provided with a screw hole, and the positioning shaft is fixed in the screw hole.

[0014] Optionally, the number of the storage plates can be increased as needed.

[0015] Optionally, each storage plate adopts a different color to facilitate the identification and insertion of the wrench.

[0016] The rotary wrench storage device provided by the present utility model stacks the storage plates in sequence and utilizes the function of the positioning shaft to enable relative rotation between the storage plates. Therefore, by rotating the storage plates, the wrench of the required specification can be directly and quickly taken out for standby, improving the user experience. Description of the Drawings

[0017] Figure 1 It is a schematic diagram of a rotary wrench storage device according to an optional embodiment of the present utility model;

[0018] Figure 2 It is an exploded schematic diagram of a rotary wrench storage device according to an optional embodiment of the present utility model;

[0019] Figure 3 It is a front view of a rotary wrench storage device according to an optional embodiment of the present utility model carrying a wrench;

[0020] Figure 4 It is a side view of a rotary wrench storage device according to an optional embodiment of the present utility model carrying a wrench;

[0021] Figure 5 It is a schematic diagram of the use state of a rotary wrench storage device according to an optional embodiment of the present utility model carrying a wrench;

[0022] Figure 6 It is a schematic diagram of the rotation of a rotary wrench storage device according to an optional embodiment of the present utility model;

[0023] Figure 7 It is a schematic diagram of a rotary wrench storage device according to an optional embodiment of the present utility model;

[0024] Figure 8 Exploded view of a rotary wrench storage device according to an alternative embodiment of the present utility model

[0025] Figures 9A to 9F Side view of a rotary wrench storage device according to an alternative embodiment of the present utility model;

[0026] Figure 10 Schematic diagram of a rotary wrench storage device according to an alternative embodiment of the present utility model;

[0027] Figure 11 Schematic diagram of a rotary wrench storage device according to an alternative embodiment of the present utility model;

[0028] Figure 12 Schematic diagram of an existing wrench tool rack. Detailed implementation manners

[0029] The following further elaborates on the technical means adopted by the present utility model to achieve the predetermined utility model purpose in conjunction with the drawings and the preferred embodiments of the present utility model.

[0030] An embodiment of the present utility model provides a rotary wrench storage device, which can be used to store wrenches of different sizes. As Figure 1 and Figure 2 shown, the rotary wrench storage device includes at least two storage plates 10 and a positioning shaft 20. The outer shapes of the at least two storage plates 10 can be designed according to requirements, such as common geometric shapes like rectangles, squares, triangles, or hexagons, or according to the designer's requirements, biological, plant, or cartoon shapes can also be used. As long as it is convenient for users to extract and place wrenches as the main design purpose, its length, width, and height are not limited in the present utility model under the appropriate use dimensions of the wrench tools. The at least two storage plates 10 are arranged in an up-and-down or left-and-right stacking manner. Each storage plate 10 is provided with a positioning shaft hole 101 for the positioning shaft 20 to pass through. At least one tool placement hole 102 is provided on the side of each storage plate 10 for inserting wrenches. The tool placement holes can be any geometric shape, such as circular, elliptical, semi-circular, arc-shaped, rectangular, etc.; or they can be shapes set according to different requirements, such as biological, plant, cartoon characters, cartoon shapes, or other contours. The present utility model does not limit this here. Among them, after the positioning shaft 20 sequentially passes through the positioning shaft holes 101 of each storage plate 10 and is fixed to the storage plate 10, each storage plate 10 can rotate relative to the positioning shaft 20, thereby facilitating the quick extraction of the required wrench.

[0031] As Figure 2As shown, the positioning shaft 20 is a nail-shaped body with uniform thickness. One end of it is provided with a nail head 201, and the other end is provided with a thread 202. After the positioning shaft 20 passes through the positioning shaft holes 101 of each storage board 10 in sequence, it can be fixed on the outermost storage board 10. There are various fixing methods. In a preferred embodiment, a nut 107 (or thread) is provided inside the outermost storage board 10, and the thread 202 of the positioning shaft 20 can be directly screwed onto the outermost storage board 10. After selecting an appropriate length for the positioning shaft 20, one side of the thread 202 can be hidden inside the outermost storage board 10; at the same time, the positioning shaft hole 101 of the innermost storage board 10 is set to a concave structure (see Figure 1 ), herein, the nail head 201 of the positioning shaft 20 can be hidden in the inner storage board 10. Through the above setting method, both ends of the positioning shaft 20 can be hidden inside the storage board 10. Herein, both sides of the storage board are in a flat state, and patterns or colors can be coated on the outside of the storage board 10 to improve the aesthetics of the outside of the storage board 10.

[0032] Of course, if aesthetics are not considered, other methods can also be used to fix the positioning shaft 20. For example, both ends of the positioning shaft 20 can stack the storage boards 10 together by means of external nuts. Or, other clamping methods can be used to clamp the positioning shaft 20 on the two side storage boards 10 and other methods. It should be noted that the fixing method of the positioning shaft 20 in the preferred embodiment of the present invention is only for explanation and illustration, and is not used to limit the present invention.

[0033] As Figure 1 and Figure 2 shown in the embodiment, each storage board 10 adopts a cuboid board structure, and the positions of all corners adopt smooth rounded corners, which improve the safety while enhancing the aesthetics. Through holes of the positioning shaft 101 are provided on the front and rear sides of the storage board 10. The positioning shaft holes 101 in the figure are arranged at a position on one side near the middle of the board body. On the one hand, it is conducive to fixing the positioning shaft 20, and on the other hand, it avoids the position of the tool placement hole 102 for storing wrenches on the side. Among them, each storage board 10 preferably adopts different lengths. As shown in the figure, when stacking, they are arranged in sequence according to the length of the storage board 10, so that the storage boards 10 present a stepped shape. Due to the different lengths, when selecting a wrench, the corresponding storage board 10 can be quickly selected and rotated, and then the corresponding wrench in the storage board 10 can be quickly taken out. Of course, storage boards 10 with the same length can also be used, but the convenience of selection will be slightly worse. Further, each storage board 10 can adopt different widths or the same width. As Figure 1 and Figure 3 shown, each storage board 10 preferably adopts the same width, so that when there is no rotation, both sides present a flat state, which is convenient for the user to hold both sides of the storage board. Figure 10 and Figure 11shows different embodiments, in which, Figure 10 in the embodiment, the storage board adopts a circular structure. And Figure 11 in the embodiment, in addition to showing Figure 10 the circular structure of, it also shows a storage board with a heart shape and an oval storage board.

[0034] As Figures 1 to 9C shown, in this embodiment, the tool placement holes 102 provided on the sides of each storage board 10 are all circular, elliptical or other arc shapes, or other shapes such as triangular or more than three angles, or three sides or more than three sides. Since the radial direction of the wrench is hexagonal, circular or other shapes, the wrench can be held by the aperture size of the circular tool placement hole 102 or by providing a plurality of concave structures or a plurality of convex inner-hole structures in the hole to hold the six corners of the wrench and prevent the wrench from slipping. The sizes of the tool placement holes 102 of each storage board 10 are all different to accommodate different models of wrenches, and they increase or decrease in sequence according to the stacking order of the storage boards 10. For example, as Figure 9A shown, each storage board 10 is provided with a tool placement hole 102. After the storage boards 10 are stacked, the tool placement holes 102 form a column and are arranged in descending order. The positioning shaft 20 can be seen on the right side of the tool placement hole 102. As Figure 1 and Figure 9B shown, except for the outermost storage board 10 which is provided with one tool placement hole 102, other storage boards 10 are all provided with two tool placement holes 102. After the positioning shaft 20 fixes each storage board 10, the tool placement holes 102 of each storage board 10 are arranged in two columns, and the sizes of the tool placement holes 102 in each column increase as the length of the storage board 10 increases. And Figure 4 and Figure 8 in, the models of each wrench are marked on both sides of the storage board 10. As Figure 4 shown, the models of the wrenches in one column are successively 10, 3, 2.5, 2, 1.5; Figure 8 in the other column, the models of the wrenches are 10, 8, 6, 5, 4. The models of the wrenches in both columns increase as the length of the storage board increases. Again, as Figure 9C shown, each storage board 10 is provided with three tool placement holes 102, and the sizes of the three tool placement holes 102 can be the same or different. The tool placement holes 102 are arranged in three columns, and the sizes of the tool placement holes 102 in each column decrease in sequence.

[0035] As Figure 2As shown, a limiting mechanism is provided between adjacent storage plates to limit the relative rotation angle between two adjacent storage plates. Here, the storage plates are sequentially defined as the first storage plate, the second storage plate... the fifth storage plate from left to right, and each storage plate includes an A side and a B side. The A side is the side facing the front, and the B side is the side facing the back. Here, the A side of the first storage plate is the display surface of the product (not shown in the figure), and the B side contacts the A side of the second storage plate. The B side of the second storage plate contacts the A side of the third storage plate, and so on. The outermost side of the B side of the fifth storage plate. Among them, an arc-shaped groove 103 is provided on the A side of the second storage plate, which is consistent with the rotation direction of the storage plate. A protrusion 104 is provided on the B side of the first storage plate. The protrusion 104 is a small arc-shaped structure, which can slide in the groove 103 on the A side of the second storage plate. In this way, the rotation angle between the two storage plates can be limited by the length of the groove 103. Figure 5 As shown, the size of a row of wrenches in the storage plate 10 is slightly larger, and the size of the other row of wrenches is slightly smaller. When in use, the storage plate 10 is rotated, as Figure 5 shown, a rotation angle is generated between the fourth storage plate and the fifth storage plate, and the wrench can be taken out from the fourth storage plate without taking out other wrenches. As Figure 6 shown, a state where a rotation angle is generated between adjacent storage plates 10, so that wrenches of all sizes can be quickly taken out, effectively improving work efficiency. Among them, preferably, as Figure 5 described, the set rotation angle α is 0 to 30 degrees. Here, a small rotation angle can ensure that the wrench can be taken out. Of course, the set rotation angle can also be increased / decreased along the clockwise direction or the counterclockwise direction according to requirements. The specific angle is not limited to 0 to 30 degrees here. 0 to 30 degrees is only a preferred example, and can be designed as a priority according to the angle convenient for the user to extract. Of course, the installation positions of the groove 103 and the protrusion 104 can be interchanged. For example, the groove 103 is provided on the B side of the first storage plate, and the protrusion 104 is provided on the A side of the second storage plate.

[0036] See Figure 2 and Figure 7 , a damping structure is also provided between adjacent storage plates 10 to prevent the storage plates 10 from sliding randomly. Specifically, a damping structure is provided on one of the adjacent storage plates 10, and the corresponding contact position of the other storage plate 10 is not specially treated, that is, it remains flat. See Figure 2, three different setting positions of the A-side damping protrusion 105 of the second storage plate 10 are shown in the figure. The three positions are: one is to set an annular damping protrusion 105 around the positioning shaft hole 101, and the other two are to set arc-shaped protrusions. The damping protrusions 105 at these three positions can be set simultaneously, or one or two of them can be selected for setting. The B side of the corresponding first storage plate is a planar structure. Of course, the damping protrusion 105 can also be set on the A side of the second storage plate 10, and the corresponding position on the B side of the first storage plate 10 is a planar structure.

[0037] See Figure 7 , a rebounding structure is provided between adjacent storage plates 10, and this rebounding structure generates an interaction force between the two storage plates 10, and uses the interaction force to generate a gap between the storage plates 10. As Figure 8 shown, a circular concave structure is provided at the position of the positioning shaft hole 101 of one of the two adjacent storage plates 10, and the other storage plate 10 is not processed. This concave structure is used to accommodate the rebounding spring 106. When the positioning shaft 20 passes through the positioning shaft hole 101, it simultaneously passes through the spring 106 in the concave structure of the positioning shaft hole 101. After the positioning shaft 20 is fixed, the top surface of the spring 106 abuts against the other storage plate 10 by elastic force, and the interaction force between the two storage plates 10 facilitates the rotation of the storage plate 10 by an external force.

[0038] In addition, in an alternative embodiment, the side storage plate 10 is further provided with a hanging hole 108 for easy hanging. This wrench storage device can be hung in a non-use state, which is beneficial for its storage.

[0039] As Figures 9D to 9F shown, the number of storage plates 10 can be adjusted according to actual needs. Figure 1 There are 5 storage plates 10 in Figures 9D to 9F , the storage plates 10 can be increased to 7. Correspondingly, the length of the positioning shaft 20 will also increase accordingly to connect all the storage plates 10.

[0040] The material used for the storage plate 10 is composed of any plastic material, and among them, plastic or plastic composites, rubber or rubber composites are particularly preferred. Preferably, as in the above embodiments, each storage plate 10 can be made of materials or prints of different colors to facilitate the identification of the inserted wrenches.

[0041] Based on the above, the rotary wrench storage device provided by the present invention stacks the storage plates in sequence and uses the function of the positioning shaft to make the storage plates rotatable relative to each other. Therefore, by rotating the storage plate, the required specification wrench can be directly and quickly taken out for standby, without having to Figure 10For the described traditional wrench rack, it is necessary to adjust wrenches of other specifications first before taking out the required specification, which improves the user experience.

[0042] The above are only the preferred embodiments of the present invention, and do not impose any form of limitation on the present invention. Although the present invention has been disclosed above with the preferred embodiments, it is not intended to limit the present invention. Any person skilled in the art can make some changes or modifications to equivalent embodiments by using the above-disclosed technical content within the scope of the technical solution of the present invention. However, as long as it does not depart from the content of the technical solution of the present invention, any simple modification, equivalent change and modification made to the above embodiments according to the technical essence of the present invention still fall within the scope of the technical solution of the present invention.

Claims

1. A rotary wrench storage device, characterized in that: It comprises at least two storage plates and a positioning shaft; wherein, the at least two storage plates are stacked, and each of the storage plates is provided with a positioning shaft hole for the positioning shaft to pass through, and the side of each storage plate is provided with at least one tool placement hole for inserting a wrench; the positioning shaft passes through the positioning shaft hole of each storage plate, so that the storage plates can rotate relative to each other around the positioning shaft.

2. The rotary wrench storage device according to claim 1, characterized in that: The tool placement holes of the at least two storage plates increase or decrease in sequence.

3. The rotary wrench storage device according to claim 1, characterized in that: A limiting structure is arranged between the storage plates to limit the relative rotation angle of two adjacent storage plates.

4. The rotary wrench storage device according to claim 3, characterized in that: The rotation angle is 0 to 30 degrees.

5. The rotary wrench storage device according to claim 3, characterized in that: The limiting structure includes a limiting groove and a limiting protrusion; wherein, one of the two adjacent storage plates is provided with the limiting protrusion, and the other storage plate is provided with a limiting groove for limiting the movement of the limiting protrusion.

6. The rotary wrench storage device according to claim 1, characterized in that: A damping structure is arranged between two adjacent storage plates to prevent the storage plates from rotating at will.

7. The rotary wrench storage device according to claim 6, characterized in that: The damping structure is a damping protrusion, and the damping protrusion is arranged on a receiving plate among adjacent receiving plates.

8. The rotary wrench storage device according to claim 1, characterized in that: A circular groove is arranged around the positioning shaft hole, and the groove is used to accommodate a spring structure.

9. The rotary wrench storage device according to claim 1, characterized in that: The storage plate located at the outermost side of the at least two storage plates is provided with a buckle or a hanging hole.

10. The rotary wrench storage device according to claim 1, characterized in that: The storage plate located at the outermost side of the at least two storage plates is provided with a screw hole, and the positioning shaft is fixed in the screw hole.

11. The rotary wrench storage device according to claim 1, characterized in that: The number of the storage plates can be increased as needed.

12. The rotary wrench storage device according to claim 11, characterized in that: Each storage plate adopts a different color to facilitate the identification and insertion of the wrench.