Integrated screwdriver storage

CN224725860UActive Publication Date: 2026-09-08SHENZHEN SANTEMORE TECH CO LTD
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Patent Information

Application Number
CN202521391370.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-07-03
Publication Date
2026-09-08
Estimated Expiration
2035-07-03

AI Technical Summary

Technical Problem

[0005]有鉴于此,本实用新型的目的在于提供一种螺丝刀收纳集成装置,以解决现有技术中的螺丝刀收纳装置只能单纯用来收纳螺丝刀,拆装眼镜的时候,需要另外寻找工作台,导致影响拆装效率的技术问题

Benefits of technology

该种螺丝刀收纳集成装置,主要由螺丝刀收纳机构和修理工作台构成,螺丝刀收纳机构上设有若干个用于扦插螺丝刀的扦插孔,修理工作台设于螺丝刀收纳机构的上表面,并且与螺丝刀收纳机构固定连接。与现有的螺丝刀收纳装置仅提供工具存放功能,维修操作需额外准备独立工作台面相比。本实用新型通过结构集成将工具存取与操作平台合二为一,在保持收纳功能完整性的同时增加操作平面,有效缩短工具取放路径。特别是在空间受限的维修环境中,该集成装置能够减少作业区域占用面积,提升操作连贯性。

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Abstract

The utility model provides a kind of screwdriver storage integrated device, it is related to glasses auxiliary maintenance technical field, this kind of screwdriver storage integrated device, mainly by screwdriver storage mechanism and repair workbench constitute, screwdriver storage mechanism is equipped with several for the cutting hole of cutting screwdriver, repair workbench is located in the upper surface of screwdriver storage mechanism, and is fixedly connected with screwdriver storage mechanism.Compared with the prior art screwdriver storage device only provides tool storage function, repair operation needs additional preparation independent worktop.The utility model integrates structure and combines two into one by tool access and operation platform, increases operation plane while maintaining the integrity of storage function, effectively shortens tool taking and placing path.Especially in the repair environment of limited space, the integrated device can reduce the area of occupied area of operation area, improve operation coherence.
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Description

Technical Field

[0001] This utility model relates to the field of glasses repair technology, and in particular to an integrated screwdriver storage device. Background Technology

[0002] Eyeglasses are lenses encased in frames and worn in front of the eyes to improve vision, protect the eyes, or for decorative purposes. Eyeglasses can correct various vision problems, including nearsightedness, farsightedness, astigmatism, presbyopia, and strabismus. They are available in four types: nearsighted glasses, farsighted glasses, presbyopia glasses, and astigmatism glasses. Specialized eyeglasses are also available for viewing 3D or virtual reality images.

[0003] Modern eyeglasses consist of two temples that can be extended or retracted. When worn, the temples are positioned on either side of the user's face and rest on either ear for support. Over time, and due to individual wearing habits (wearing or removing glasses with one hand), the glasses are prone to distortion and deformation. To address this, adjustments are typically made by unscrewing the screws connecting the frame and temples with a screwdriver. However, this requires frequent handling, and current technology uses a separate screwdriver storage unit for storage.

[0004] However, screwdriver storage devices currently on the market can only be used to store screwdrivers. When disassembling or assembling glasses, a separate workbench is needed, which affects the efficiency of disassembly and assembly. Utility Model Content

[0005] In view of this, the purpose of this utility model is to provide an integrated screwdriver storage device to solve the technical problem that existing screwdriver storage devices can only be used to store screwdrivers, and when disassembling and assembling glasses, a separate workbench is required, which affects the disassembly and assembly efficiency.

[0006] To achieve the above objectives, this utility model provides an integrated screwdriver storage device, including a screwdriver storage mechanism and a repair workbench. The screwdriver storage mechanism is provided with a plurality of insertion holes for inserting screwdrivers, and the repair workbench is disposed on the upper surface of the screwdriver storage mechanism and is fixedly connected to the screwdriver storage mechanism.

[0007] Optionally, the screwdriver storage mechanism includes a first base and a second base, the second base being rotatably disposed on the first base, and the insertion hole being disposed on the upper surface of the second base.

[0008] Optionally, the upper surface of the first base is configured as a frustum conical structure.

[0009] Optionally, both the upper and lower surfaces of the second base are configured as frustum conical structures.

[0010] Optionally, the cross-sections of both the first base and the second base are circular.

[0011] Optionally, the radius of the second base is smaller than the radius of the first base.

[0012] Optionally, the repair workbench includes a support column and an operating table. One end of the support column is fixedly located at the center of the second base, and the other end of the support column is detachably connected to the operating table.

[0013] Optionally, the supporting column has a plurality of constricted necks in the radial direction.

[0014] Optionally, the operating table is circular, with its radius located between the supporting column and the second base, and the surface of the operating table is provided with a soft silicone layer.

[0015] Optionally, the insertion holes include a plurality of holes, which are arranged in an array around the circumference of the support column.

[0016] The screwdriver storage integrated device provided by this utility model has the following technical effects: This integrated screwdriver storage device mainly consists of a screwdriver storage mechanism and a repair workbench. The screwdriver storage mechanism has several insertion holes for inserting screwdrivers, and the repair workbench is located on the upper surface of the screwdriver storage mechanism and is fixedly connected to it. Compared with existing screwdriver storage devices that only provide tool storage and require a separate work surface for maintenance operations, this invention integrates tool storage and the operating platform into one through structural integration. While maintaining the integrity of the storage function, it increases the operating surface and effectively shortens the tool retrieval path. Especially in space-constrained maintenance environments, this integrated device can reduce the area occupied by the work area and improve operational continuity. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a three-dimensional structural diagram of a preferred embodiment of the screwdriver storage integrated device of this utility model; Figure 2 yes Figure 1 Front view of the integrated screwdriver storage device; Figure 3 yes Figure 1A top view of the integrated screwdriver storage device.

[0019] in, Figures 1-3 : 1. Screwdriver storage mechanism; 11. First base; 12. Second base; 121. Insertion hole; 2. Repair workbench; 21. Support column; 211. Neck reduction; 22. Operating table. Detailed Implementation

[0020] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be described in detail below. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other implementation methods obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0021] In existing technologies, eyeglass repair requires frequent use of screwdrivers to adjust the screws at the temple connections. Current screwdriver storage devices only have a single storage function, requiring repair personnel to repeatedly switch tools between the storage device and a separate workbench, resulting in a cumbersome and inefficient process. For example, in confined repair spaces, scattered tools can be inconvenient to access, affecting the continuity of repair work.

[0022] To address the aforementioned issues, the inventors noticed the pain point of frequent tool switching in traditional maintenance scenarios. Observation revealed that maintenance operations often require both tool storage and a workbench function. Based on this, the inventors proposed physically integrating tool storage with the operating platform. This structural integration reduces the need for tool handling, thereby improving operational efficiency.

[0023] Therefore, as Figure 1-3 As shown, this utility model provides a screwdriver storage integrated device, which includes a screwdriver storage mechanism 1 and a repair workbench 2. The screwdriver storage mechanism 1 is provided with a plurality of insertion holes 121 for inserting screwdrivers. The insertion holes 121 are inclined. The repair workbench 2 is located on the upper surface of the screwdriver storage mechanism 1 and is fixedly connected to the screwdriver storage mechanism 1.

[0024] The screwdriver storage mechanism 1 is the main structure that supports and secures the screwdrivers. It can be implemented using a base with positioning holes arranged in an array to accommodate screwdrivers of different sizes. The repair workbench 2 is a functional module that provides an operating surface. It can be made of metal or engineering plastic sheeting and connected to the screwdriver storage mechanism 1 via welding or bolting to form an integral structure. The insertion hole 121 is a positioning structure for accommodating the screwdrivers. It can be implemented using through holes or blind holes, with anti-slip textured walls to enhance the securing effect.

[0025] Specifically, the screwdriver storage mechanism 1 uses multiple insertion holes 121 on its upper surface to store screwdrivers at an angle, allowing for direct retrieval of tools during repairs, which is ergonomic. The repair workbench 2 and the screwdriver storage mechanism 1 are fixedly connected to form a rigid support structure. When adjusting eyeglasses, the repair personnel can place the glasses to be repaired on the workbench and quickly retrieve the corresponding screwdriver from the storage mechanism below. This integrated design allows tool storage and repair operations to be completed within the same spatial plane, avoiding frequent body movement or switching of work areas during operation.

[0026] Compared to existing screwdriver storage devices that only provide tool storage and require a separate work surface for maintenance operations, this invention integrates tool storage and the operating platform into one through structural integration. While maintaining the integrity of the storage function, it increases the operating surface and effectively shortens the tool retrieval path. Especially in space-constrained maintenance environments, this integrated device reduces the area occupied by the work area and improves operational continuity.

[0027] Through the above technical solution, this application achieves the integration of physical space for tool storage and maintenance operations. Maintenance personnel can perform both tool storage and part adjustment operations on the same device, significantly reducing the frequency of tool switching. This design is particularly suitable for maintenance scenarios requiring one-handed operation. While the operating table 22 provides stable support for eyeglass parts, the tilted insertion hole 121 ensures that the screwdriver is used in a direction parallel to the operator's line of sight, improving operational accuracy and efficiency.

[0028] As a preferred embodiment, see below. Figures 1-3 As shown, the screwdriver storage mechanism 1 includes a first base 11 and a second base 12. The second base 12 is rotatably mounted on the first base 11, and the insertion hole 121 is located on the upper surface of the second base 12.

[0029] In this embodiment, the second base 12 is superimposed on the first base 11. Specifically, it can be rotatably connected to the first base 11 via a connecting shaft and bearings, and is used to provide an installation base for the repair workbench 2.

[0030] The second base 12 is rotatably mounted on the first base 11, making it easy for operators to rotate the second base 12 to retrieve the screwdriver as needed.

[0031] Specifically, the second base 12, as the main part of the tool storage, allows for the tilting of screwdrivers by setting a slightly concave insertion hole 121. The second base 12 forms an integral structure with the first base 11 through a mechanical connection, which not only ensures the installation strength of the repair workbench 2, but also avoids mutual interference between the storage space and the operating area.

[0032] Specifically, in this embodiment, the upper surface of the first base 11 is configured as a frustum conical structure, while the upper and lower surfaces of the second base 12 are both configured as frustum conical structures.

[0033] A frustum of a cone is a geometric shape formed by cutting a cone into two parallel planes. The inclination angle of the cone surface can range from, for example, 15 degrees to 45 degrees. This structure allows screwdrivers to slide naturally towards the edge under gravity, forming an orderly arrangement that facilitates quick positioning of the target tool.

[0034] Because both the upper and lower surfaces of the second base 12 are designed as frustum conical structures, when a screwdriver is inserted into the insertion hole 121, the inclined surface of the frustum conical structure guides the screwdriver to tilt towards the edge of the base, forming an outward radial arrangement. Furthermore, the circumferential surface area of ​​the frustum conical structure is larger than that of a planar structure, allowing the insertion holes 121 to be distributed at a higher density in the circumferential direction, for example, increasing the storage capacity by approximately 30% under the same diameter conditions. Simultaneously, the upper and lower double frustum conical structure of the second base 12 enhances the overall stability of the base, effectively dispersing the impact of external forces on the storage mechanism when operating the repair workbench 2.

[0035] In addition, such as Figure 1 and Figure 3 As shown, the cross-sections of the first base 11 and the second base 12 are both circular.

[0036] The cross-section is the sectional shape of the base in the horizontal direction. The first base 11 and the second base 12 adopt a circular cross-section so that they form a concentric cylindrical structure when axially superimposed. The arcuate contour of the base edge can avoid interference with the screwdriver handle or operating tool, while the circular symmetry characteristic ensures that the base remains coaxially aligned with the support column 21 of the repair workbench 2 at any rotation angle, thereby ensuring the spatial layout stability of the workbench 22.

[0037] See also Figure 1 and Figure 3 As shown, the radius of the second base 12 is smaller than the radius of the first base 11.

[0038] The first base 11 and the second base 12 form a stepped hierarchical structure due to their different radii. The second base 12 is located in the central region of the upper surface of the first base 11, and its smaller radius creates a ring-shaped platform region between the edge of the second base 12 and the edge of the first base 11. The central region of the second base 12 is connected to the operating table 22 via a supporting column 21. Because the radius of the second base 12 is smaller than that of the first base 11, a height difference is formed between the operating table 22 and the first base 11, preventing interference between the screwdriver and the operating table 22 when it is being accessed.

[0039] As a preferred embodiment, see below. Figures 1-3 As shown, the repair workbench 2 includes a support column 21 and an operating table 22. One end of the support column 21 is fixedly located at the center of the second base 12, and the other end of the support column 21 is detachably connected to the operating table 22. In this embodiment, the supporting column 21 is a columnar structure vertically connecting the second base 12 and the operating table 22. It can be implemented using a metal tube or a rigid plastic tube. Its function is to transmit supporting force through a rigid connection, ensuring the stability of the operating table 22 during maintenance operations. The operating table 22 is a planar structure for placing items to be repaired. It can be implemented using non-slip rubber or a frosted metal plate. Its function is to provide a flat operating surface for eyeglass repair, preventing screwdrivers or lenses from slipping. The center position is the intersection of the axes of symmetry of the second base 12's geometry. Its function is to ensure even force distribution on the supporting column 21, preventing the device from tipping over due to eccentricity.

[0040] Specifically, the support column 21 is connected to the second base 12 by bottom welding or bolt fixing, and the top is connected to the operating table 22 by a snap-fit ​​or threaded structure. The plane of the operating table 22 is perpendicular to the axis of the support column 21. During maintenance, the eyeglass frame can be placed directly on the operating table 22, and the maintenance angle can be adjusted by rotating the operating table 22. The height of the support column 21 can be set to an adjustable structure according to ergonomic needs, for example, by using a telescopic sleeve in conjunction with a locking knob to achieve height adjustment.

[0041] The upper surface of the operating table 22 is provided with a soft silicone layer, which covers the upper surface of the operating table 22 to prevent damage to the lens during operation.

[0042] Meanwhile, the lower part of the operating table 22 in this embodiment has an arc-shaped transition structure, which facilitates a detachable connection with the support column 21.

[0043] like Figure 1 and Figure 2 As shown, the supporting column 21 is further proposed to have several constricted necks 211 in the radial direction.

[0044] The neck 211 is a recessed or contracted area formed radially in the support column 21. Its function is to increase the elastic deformation ability of the support column 21 to grip the support column 21, so that the operating table 22 can buffer the external force through the deformation of the neck 211 when it is subjected to force.

[0045] In this embodiment, the support column 21 is designed as a columnar structure with multiple necks 211. When the operating table 22 is subjected to external force, the necks 211 can absorb energy through local deformation, thereby reducing the overall rigidity of the support column 21. For example, when adjusting the screws of an eyeglass frame, the lateral force applied by the user to the operating table 22 can be dispersed through the elastic deformation of the necks 211, preventing the support column 21 from breaking due to stress concentration. At the same time, the distribution density and depth of the necks 211 can be adjusted according to the material properties. For example, when using nylon material, the depth of the necks 211 can be designed to be 10%-15% of the column diameter, thereby balancing structural strength and deformation requirements.

[0046] As a preferred embodiment, it is further proposed that the insertion holes 121 include a plurality of holes and are arranged in an array around the circumference of the support column 21. In this embodiment, it is preferred that there are five insertion holes 121.

[0047] Specifically, the insertion holes 121 extend outward from the support column 21 to form a circular array, with each hole evenly spaced. The operating table 22 is located at the top of the support column 21, creating a layered structure with the screwdriver storage area and the operating area at an angle. When adjusting the glasses, the screwdriver can be tilted and removed directly from the holes around the support column 21, and returned to its original position after adjustment, preventing the screwdriver from scattering or getting mixed with other tools.

[0048] In some specific embodiments, the inner diameter of the insertion hole 121 may be slightly larger than the diameter of the screwdriver handle. For example, the cavity may be made of elastic rubber material, and the screwdriver may be fixed by deformation clamping.

[0049] In the description of this utility model, it should be noted that, unless otherwise stated, "a plurality of" means two or more; the terms "upper," "lower," "left," "right," "inner," "outer," "front end," "rear end," "head," "tail," 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 utility model 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 utility model. Furthermore, the terms "first," "second," "third," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0050] In the description of this utility model, it should also be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0051] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the protection scope of the claims.

Claims

1. A screwdriver storage integrated device characterized by comprising: The device includes a screwdriver storage mechanism and a repair workbench. The screwdriver storage mechanism has several insertion holes for inserting screwdrivers. The repair workbench is located on the upper surface of the screwdriver storage mechanism and is fixedly connected to it.

2. The screwdriver storage integrated device according to claim 1, wherein The screwdriver storage mechanism includes a first base and a second base, the second base being rotatably mounted on the first base, and the insertion hole being located on the upper surface of the second base.

3. The screwdriver storage integrated device according to claim 2, wherein The upper surface of the first base is designed as a frustum conical structure.

4. The screwdriver storage integrated device according to claim 2, wherein The upper and lower surfaces of the second base are both designed as frustum cones.

5. The screwdriver storage integrated device according to claim 2, characterized in that, The cross-sections of both the first base and the second base are circular.

6. The screwdriver storage integrated device according to claim 5, wherein The radius of the second base is smaller than the radius of the first base.

7. The integrated screwdriver storage device of any of claims 2-6, wherein, The repair workbench includes a support column and an operating table. One end of the support column is fixedly located at the center of the second base, and the other end of the support column is detachably connected to the operating table.

8. The screwdriver storage integrated device according to claim 7, wherein The supporting column has several constrictions in its radial direction.

9. The screwdriver storage integrated device according to claim 7, wherein The operating platform is circular, with its radius located between the supporting column and the second base. The surface of the operating platform is provided with a soft silicone layer.

10. The screwdriver storage integrated device according to claim 7, wherein The insertion holes include several holes, which are arranged in an array around the circumference of the supporting column.