Tool storage container and bit set

By introducing a rotatable tool storage module and a top convex structure into the tool storage container, the problem of inconvenient observation and access of the batch head in the tool box is solved, convenient tool identification and access is achieved, and user experience and fun are improved.

CN120395754APending Publication Date: 2025-08-01YANTAI GREENERY TOOLS CO LTD
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Patent Information

Application Number
CN202510826701.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-19
Publication Date
2025-08-01

AI Technical Summary

Technical Problem

When the batch head is placed flat in the tool box, there is a problem of inconvenience in observing and accessing it.

Method used

A tool storage container is designed, including a rotatable tool storage module and a top convex structure. The tool storage module is tilted up through the top convex structure, which facilitates users to directly identify the tool type and model, and is easy to access through a rotating tool seat.

Benefits of technology

It improves the convenience of observation and access of tools, and increases the fun and user experience of tool storage containers.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a tool storage container and a screwdriver set. The tool storage container comprises a base, a tool seat and a plurality of tool storage modules. Each tool storage module is rotatably mounted on the tool seat, each tool storage module is provided with a tool storage position, and the tool storage positions are configured to be used for horizontally placing tools; the tool seat is movably installed on the base or can rotate around a first axis, the tool seat is provided with receding holes corresponding to the tool storage modules, and in the corresponding receding holes and the tool storage modules, part of the tool storage modules penetrate through the receding holes and extend to the side, facing the base, of the tool seat; the base is provided with a jacking structure, and the jacking structure is configured to jack the tool storage module when the tool storage module moves along with the tool base or rotates to the upper portion of the jacking structure, so that one end of the tool storage module is tilted. After the tool storage container is used for storing tools, a user can conveniently identify, find and take the tools.
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Description

Technical Field

[0001] The embodiments of the present application relate to the technical field of tool storage, and in particular, to a tool storage container and a bit set. Background Art

[0002] Bits (or screwdriver bits), as the core accessories of modern power tools and hand tools, come in a wide variety of types and models to meet the fastening requirements of different specifications of screws.

[0003] In the related art, bits are usually stored in a tool box in a set. A set of bit sets usually includes a tool box and dozens or even hundreds of bits of different sizes (such as Phillips PH0 - PH3, flat head SL4 - SL8, hexagon H3 - H10, etc.) and different shapes (Phillips, flat head, Pozidriv, star, hexagon, square head, etc.) stored in the tool box, and the bits are usually placed flat in the tool box.

[0004] However, when the bits are placed flat in the tool box, there are problems of inconvenient observation and inconvenient access. Summary of the Invention

[0005] The embodiments of the present application provide a tool storage container and a bit set to solve the technical problem that when the bits are placed flat in the tool box, there are problems of inconvenient observation and inconvenient access.

[0006] The embodiments of the present application provide the following technical solutions to solve the above technical problems: The embodiments of the present application provide a tool storage container, which includes a base, a tool holder, and a plurality of tool storage modules; Each of the tool storage modules is rotatably installed on the tool holder. The tool storage module is provided with a tool storage position configured to place tools flat; The tool holder is movably or rotatably installed around a first axis on the base. The tool holder is provided with relief holes corresponding to each of the tool storage modules. In the corresponding relief holes and the tool storage modules, some of the tool storage modules pass through the relief holes and extend to the side of the tool holder facing the base; The base is provided with a top convex structure configured to push the tool storage module when the tool storage module moves or rotates with the tool holder to the upper part of the top convex structure, so that one end of the tool storage module is lifted.

[0007] Advantages of the embodiments of the present application: The tool storage container provided by the embodiments of the present application includes a base, a tool holder movably or rotatably mounted on the base, and a plurality of tool storage modules rotatably mounted on the tool holder. A top convex structure is provided on the base. When the tool storage module moves to the upper part of the top convex structure, the top convex structure lifts the tool storage module, causing one end of the tool storage module to tilt up. After one end of the tool storage module for storing tools tilts up, the user can directly identify the type and model of the tool by direct vision without approaching and looking down. This setting is more convenient for the user to observe and identify the type and model of the tool, and it is also convenient for the user to pick up and place the tool after the tool tilts up with the tool storage module. In addition, when the tool holder is rotatably mounted on the base, the user can rotate the tool holder to make the tools on the tool holder tilt up in turn. This setting not only facilitates the user to identify, find and use the tools, but also increases the playability of the tool storage container and the fun of using the tool storage container.

[0008] In a possible implementation manner, the top surface of the tool holder is inclined relative to the bottom surface of the base, and the top surface is the side of the tool holder facing away from the bottom surface of the base.

[0009] In a possible implementation manner, the tool holder is rotatably mounted on the base; The top convex structure is provided at a position on the base corresponding to the lowest area of the tool holder, and the top convex structure lifts the tool storage module rotated to the lowest area of the tool holder.

[0010] In a possible implementation manner, the tool holder has an inclined state and a flat state; When the tool holder is in the inclined state, the top surface of the tool holder is inclined relative to the bottom surface of the base, and the top convex structure lifts the tool storage module; When the tool holder is in the flat state, the top surface of the tool holder is substantially parallel to the bottom surface of the base, and the top convex structure does not act on the tool storage module.

[0011] In a possible implementation manner, the base includes a seat body and an adjustment frame connected to the seat body. The adjustment frame can be adjusted between a first position and a second position relative to the seat body; the tool holder is rotatably mounted on the adjustment frame; When the adjustment frame is in the first position, the tool holder is in the flat state; When the adjustment frame is in the second position, the tool holder is in the inclined state.

[0012] In a possible implementation manner, the adjustment frame covers the seat body, the adjustment frame is rotatably mounted on the seat body around a second axis, and the top convex structure is provided on the seat body; One of the adjustment frame or the base is provided with a first limiting structure, and the other is provided with a second limiting structure and a third limiting structure. The second limiting structure and the third limiting structure cooperate with the first limiting structure to limit the position of the adjustment frame so that it rotates between the first position and the second position.

[0013] In a possible implementation, the adjustment frame is provided with a clearance notch on a side close to the top protruding structure, and when the adjustment frame is located at the second position, an edge of the clearance notch substantially coincides with a lower edge of the base.

[0014] In a possible embodiment, the first limiting structure includes a ball, and the ball can be installed on the base body in an in-situ rolling manner; The second limiting structure and the third limiting structure are limiting slots arranged at intervals; When the ball is located in the second limiting structure, the adjustment frame is located in the first position; When the ball is located in the third limiting structure, the adjustment frame is located at the second position.

[0015] In a possible embodiment, the adjustment frame is rotatably mounted on the base body via a first rotating shaft, and the adjustment frame is configured to press the first side of the tool base, rotate to the second position, press the second side of the tool base, and rotate to the first position. The first side and the second side of the tool base are located on both sides of the tool base in a first direction, the first direction is perpendicular to the second axis, and the second axis is the axis of the first rotating shaft.

[0016] In a possible embodiment, the tool base includes a support and a cover plate detachably connected to the support, the support is provided with the clearance holes, and the cover plate is provided with a through opening corresponding to each of the clearance holes; The tool storage modules are rotatably clamped between the support and the cover plate, and each tool storage module is exposed to the outside through the through opening.

[0017] In a possible embodiment, the cover plate is provided with a through opening; The tool holder is rotatably mounted on the base; the first axis passes through the center of the through opening; Each of the through openings is arranged around the through opening, and a first end of each of the through openings is communicated with the through opening.

[0018] In a possible implementation, the support is provided with a mounting groove corresponding to each of the tool storage modules, first positioning grooves are provided on both sides of the mounting groove, and the cover is provided with a second positioning groove corresponding to each of the first positioning grooves; The installation groove is configured to place the tool storage module; the tool storage module is provided with an extension shaft, and the extension shaft is installed in the first positioning groove and the second relief groove corresponding to the first positioning groove; The relief hole is arranged at the bottom of the installation groove.

[0019] In a possible implementation manner, the tool holder is rotatably installed on the base; At least part of the tool storage module is a bit storage module, the tool storage positions arranged on the bit storage module are bit storage positions, and the bit storage positions are configured to place bits flat; The bit storage positions are arranged at intervals around the first axis, and the heads of the bits installed on the bit storage module point to the first axis; When the top convex structure pushes the bit storage module, one end of the bit storage module corresponding to the head of the bit tilts up.

[0020] In a possible implementation manner, the top convex structure includes a top convex member, and the top convex member is telescopically installed on the base; The tool storage container further includes a top cover, and the top cover covers the tool holder to cover each tool storage module; When the top cover covers the tool holder, the top convex member acting on the tool storage module retracts, and the lifted tool storage module resets.

[0021] In a possible implementation manner, the top convex structure further includes a fixing member and an elastic member, the fixing member is connected to the base, and the fixing member is provided with a first through hole; The top convex member is provided with an extension edge, the extension edge is located between the fixing member and the base, part of the top convex member passes through the fixing member through the first through hole, and the extension edge blocks the top convex member from completely passing through the first through hole; The elastic member is arranged between the top convex member and the base.

[0022] In a possible implementation manner, the top cover is provided with a first closing member, the tool holder is provided with a second closing member, and the top cover and the tool holder are tightly closed through the mutual cooperation of the first closing member and the second closing member.

[0023] In a possible implementation manner, both the first closing member and the second closing member are magnetic members, and the top cover and the tool holder are tightly closed through the magnetic attraction cooperation of the first closing member and the second closing member.

[0024] In a possible implementation, the top convex structure further includes a lifting control structure for controlling the lifting of the top convex member. When the top cover is placed on the tool base, the lifting control structure controls the top convex member to retract.

[0025] In a possible implementation, the tool base is rotatably mounted on the base; a through hole is provided at the rotation center of the tool base; The tool storage container further includes a connecting member. The first end of the connecting member is detachably connected to the base. The second end of the connecting member is provided with an outer extension limiting edge, and the outer extension limiting edge abuts against the circumferential edge of the through hole. The connecting member serves as the rotating shaft of the tool base.

[0026] In a possible implementation, at least part of the tool storage module is a bit storage module. The tool storage positions provided on the bit storage module are bit storage positions, and the bit storage positions are configured to horizontally place bits. Each of the bit storage modules is arranged around the connecting member; The connecting member is provided with an insertion hole, and the insertion hole is configured to insert a screwdriver.

[0027] In a possible implementation, a storage cavity is provided on the side of the base facing away from the tool base, and the storage cavity is configured to be able to store at least a screwdriver.

[0028] In a possible implementation, a screwdriver storage position for storing a screwdriver is provided in the storage cavity; The base is provided with a mounting hole, and the mounting hole communicates with the screwdriver storage position; The connecting member is detachably connected to the mounting hole, and the insertion hole communicates with the screwdriver storage position through the mounting hole.

[0029] In a possible implementation, the screwdriver storage position is configured to store an electric screwdriver; The tool storage container further includes a charging female part. The charging female part is detachably mounted on the insertion hole from the screwdriver storage position, and part of the charging female part is exposed at the screwdriver storage position. The charging female part is configured to be able to connect to a power source; The charging female part is stored in the storage cavity in the storage and transportation state of the tool storage container, and is mounted on the insertion hole in the use state of the tool storage container. The charging female part contacts the electric screwdriver inserted in the insertion hole and charges the electric screwdriver.

[0030] In a possible implementation, the circumferential edge of the through hole protrudes upward to form a raised ring; The outer extension limiting edge abuts against one end of the raised ring facing away from the tool base; The tool storage container further includes a top cover. The top cover is provided with a second through hole. The top cover is sleeved on the raised ring through the second through hole and covers the tool seat to cover each of the tool storage modules.

[0031] In a possible implementation manner, the base includes a bottom cover, and the bottom cover is configured to seal or open the storage cavity.

[0032] In a possible implementation manner, the tool seat is rotatably mounted on the base; The base is provided with an annular mounting edge; The tool seat is rotatably sleeved on the annular mounting edge; One of the outer side wall of the annular mounting edge and the inner side wall of the tool seat is provided with a plurality of convex teeth arranged at intervals, and the other is provided with convex points. When the tool seat rotates around the annular mounting edge, the convex points collide with the convex teeth to generate a sound.

[0033] In a possible implementation manner, the tool storage position is configured to store a bit; The multiple tool storage modules are divided into multiple groups, and the tool storage modules in different groups have different colors.

[0034] The embodiment of the present application also provides a bit set. The bit set includes bits and the tool storage container according to any one of the above solutions. At least part of the tool storage positions in the tool storage container are configured to store the bits.

[0035] The beneficial effects of the bit set provided by the embodiment of the present application are the same as those of the above tool storage container, and will not be described in detail here.

[0036] In addition to the technical problems solved by the present application, the technical features constituting the technical solutions, and the beneficial effects brought by these technical features of the technical solutions described above, other technical problems that can be solved by the tool storage container and the bit set provided by the present application, other technical features included in the technical solutions, and the beneficial effects brought by these technical features will be further described in detail in the specific implementation manner. Description of the Drawings

[0037] The drawings here are incorporated into the specification and constitute a part of this specification, showing the embodiments conforming to the present application, and are used together with the specification to explain the principles of the present application.

[0038] Figure 1 It is a schematic diagram of a bit storage container according to an embodiment of the present application; Figure 2 It is an exploded view of a bit storage container according to an embodiment of the present application; Figure 3This is a partial exploded view of the bit storage container according to an embodiment of the present application from a bottom-up perspective; Figure 4 This is a schematic diagram of a connector according to an embodiment of the present application; Figure 5 A schematic diagram of a bit storage container with a top cover according to an embodiment of the present application; Figure 6 A schematic diagram of a bit storage container according to an embodiment of the present application, viewed from above; Figure 7 This is a schematic diagram of a cover plate according to an embodiment of the present application; Figure 8 A schematic diagram of a support according to an embodiment of the present application; Figure 9 This is a schematic diagram of a batch head storage module according to an embodiment of the present application; Figure 10 This is a schematic diagram of a bit storage container in Example 2 of the present application; Figure 11 This is a schematic diagram of a bit storage container with a top cover in Example 2 of the present application; Figure 12 This is a schematic diagram of a bit storage container with a tool stand in a flat position according to an embodiment of the present application; Figure 13 A schematic diagram of a base according to an embodiment of the present application; Figure 14 This is an exploded schematic diagram of the base of an embodiment of the present application.

[0039] Description of reference numerals: 100, base; 110, top convex structure; 120, bottom surface; 130, base; 140, adjustment frame; 150, first rotating shaft; 160, storage cavity; 170, mounting hole; 180, bottom cover; 190, annular mounting edge; 111, top protrusion; 112, fixing member; 113, outer extension; 114, first through hole; 131. First limiting structure; 141. Give way to the gap; 161. Screwdriver storage space; 181, convex point; 182, convex point mounting groove; 200, tool holder; 210, clearance hole; 220, top surface; 230, support; 240, cover plate; 250, through hole; 260, convex tooth; 270, annular convex; 231, first positioning groove; 232, mounting groove; 241, through-mouth; 242, through-mouth; 300. Tool storage module; 310. Tool storage position; 320. Extension shaft; 400. Top cover; 410. Second through-hole; 500. Connector; 510. Extension limit edge; 520. Insertion hole; 600. Bit; 700. Screwdriver; 800. Charging female part.

[0040] Through the above-mentioned drawings, the specific embodiments of the present application have been shown, and there will be more detailed descriptions hereinafter. These drawings and text descriptions are not intended to limit the scope of the concept of the present application in any way, but to illustrate the concept of the present application to those skilled in the art by referring to specific embodiments. Detailed implementation manners

[0041] In the related art, the bit is usually placed flat in a tool box. However, when the bit is placed flat in the tool box, there are problems of inconvenient observation and inconvenient access.

[0042] In view of this, the present application sets a rotatable tool storage module and a convex structure, and the convex structure tilts and lifts the tool storage module, thereby tilting and lifting the tool placed flat on the tool storage module, so as to facilitate the user to observe, identify and access the tool.

[0043] Next, the technical solutions in the embodiments of the present application will be clearly and completely described with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts shall fall within the protection scope of the present application. Embodiment 1

[0044] As Figure 1 and Figure 2As shown in the figure, the tool storage container provided by the embodiment of the present application includes a base 100, a tool holder 200, and a plurality of tool storage modules 300. Each tool storage module 300 is rotatably installed on the tool holder 200. The tool storage module 300 is provided with a tool storage position 310, and the tool storage position 310 is configured to place tools flat. The tool holder 200 is rotatably installed on the base 100 around a first axis. The tool holder 200 is provided with a relief hole 210 corresponding to each tool storage module 300. Among the corresponding relief holes 210 and tool storage modules 300, part of the tool storage modules 300 pass through the relief holes 210 and extend to the side of the tool holder 200 facing the base 100. The base 100 is provided with a top convex structure 110, and the top convex structure 110 is configured to push the tool storage module 300 when the tool storage module 300 rotates to the upper part of the top convex structure 110, so that one end of the tool storage module 300 is lifted. By setting the top convex structure 110 and the rotatable tool storage module 300 in the embodiment of the present application, when the tool storage module 300 rotates to the upper part of the top convex structure 110, the top convex structure 110 lifts the tool storage module 300, so that one end of the tool storage module 300 is lifted. After one end of the tool storage module 300 storing tools is lifted, the user does not need to approach and look down, and can directly identify the type and model of the tool through direct vision. This setting is more convenient for the user to observe and identify the type and model of the tool, and it is also convenient for the user to take and place the tool after the tool is lifted with the tool storage module 300. In addition, the user can rotate the tool holder 200 to sequentially lift the tools on the tool holder 200. This setting not only facilitates the user to identify, find, and take the tools, but also increases the playability of the tool storage container and the fun of using the tool storage container.

[0045] It should be noted that in the present application, the number of tool storage positions 310 provided on the tool storage module 300 can be one, two, three, etc., and the present application does not limit this.

[0046] Exemplarily, in the present embodiment, at least a part of the tool storage module 300 is a bit 600 storage module, and the tool storage positions 310 provided on the bit 600 storage module are bit storage positions, and the bit storage positions are configured to horizontally place the bits 600. The bit storage positions are arranged at intervals around the first axis, and the heads of the bits 600 mounted on the bit 600 storage module point to the first axis. When the top convex structure 110 pushes the bit 600 storage module, one end of the bit 600 storage module corresponding to the head of the bit 600 tilts up. That is to say, the bit storage positions are arranged radially with the first axis as the center, and the heads of the bits 600 point to the first axis. When the bit 600 storage module is located above the top convex structure 110, one end of the bit 600 storage module corresponding to the head of the bit 600 tilts up. At this time, the bit 600 storage module is inclined towards the user, and the head of the bit 600 is located at the upper part. This setting facilitates the user to observe and identify the types and models of the bits 600, and is also convenient for taking and placing.

[0047] As Figure 2 and Figure 14 shown, in some embodiments of the present application, the top convex structure 110 includes a top convex member 111, and the top convex member 111 is telescopically installed on the base 100. The tool storage container further includes a top cover 400, and the top cover 400 covers the tool seat 200 to cover each tool storage module 300. When the top cover 400 covers the tool seat 200, the top convex member 111 acting on the tool storage module 300 retracts, and the lifted tool storage module 300 resets. The top cover 400 is used to cover each tool storage module 300 to protect each tool storage module 300, reducing dust and the like from falling onto each tool storage module 300 and the tools stored in each tool storage module 300. In order to avoid interference of the lifted tool storage module 300 and the tools stored in the lifted tool storage module 300 with the buckling of the top cover 400, the top convex member 111 is set to be telescopic. When the tool seat 200 does not cover the top cover 400, the top convex member 111 extends. When the tool storage module 300 rotates to the upper part of the top convex member 111, the top convex member 111 lifts one end of the tool storage module 300. When the tool storage container is not in use, the top cover 400 is covered on the tool seat 200. At this time, in order to avoid interference of the top convex member 111 with the buckling of the top cover 400, the top convex member 111 retracts, thereby enabling the lifted tool storage module 300 to reset, so that the top cover 400 can be tightly buckled on the tool seat 200.

[0048] Exemplarily, the retraction mode of the top cover 400 can be controlled by a lifting control structure, or can be through the interaction between the elastic member and the top cover 400, and the top convex member 111 is pressed and retracted by the gravity of the top cover 400.

[0049] As Figure 2 and Figure 14As shown, the retraction of the top cover 400 is achieved through the interaction between the elastic member and the top cover 400, and the top projection 111 is pressed down and retracted by the gravity of the top cover 400. Exemplarily, the top projection structure 110 further includes a fixing member 112 and an elastic member (not shown in the figure). The fixing member 112 is connected to the base 100. The fixing member 112 is provided with a first through hole 114. The top projection 111 is provided with an outer extension edge 113. The outer extension edge 113 is located between the fixing member 112 and the base 100. A part of the top projection 111 passes through the fixing member 112 through the first through hole 114. The outer extension edge 113 blocks the top projection 111 from completely passing through the first through hole 114. The elastic member is disposed between the top projection 111 and the base 100. When the tool holder 200 does not cover the top cover 400, the top projection 111 extends under the action of the elastic member. When the tool storage module 300 rotates to the upper part of the top projection 111, the top projection 111 lifts one end of the tool storage module 300. When the tool storage container is not in use, the top cover 400 covers the tool holder 200. At this time, the elastic member is compressed under the pressing action of the gravity of the top cover 400. At this time, the top projection 111 moves in a direction away from the tool holder 200, that is, retracts, thereby causing the lifted tool storage module 300 to reset, so that the top cover 400 can tightly cover the tool holder 200. The cooperation between the top cover 400 and the elastic member realizes the expansion and contraction of the top projection 111, so that the top projection 111 extends when the tool holder 200 does not cover the top cover 400, and retracts when the tool holder 200 covers the top cover 400. That is to say, the top cover 400 not only plays a role in covering the tool holder 200, but also plays a role in controlling the expansion and contraction of the top projection 111.

[0050] Exemplarily, the elastic member is a spring.

[0051] In order to make the top cover 400 fit more closely with the tool holder 200, and to ensure that the top convex part 111 and the elastic part can always stably cooperate to lift the tool storage module 300, the top cover 400 is provided with a first closing part (not shown in the figure), and the tool holder 200 is provided with a second closing part (not shown in the figure). The top cover 400 and the tool holder 200 are tightly closed through the mutual cooperation of the first closing part and the second closing part. The mutual cooperation of the first closing part and the second closing part makes the top cover 400 tightly cover on the tool holder 200. This setting ensures that even under the gravity of the cover body, the elastic part is not compressed to reset the tool storage module 300. The mutual cooperation of the first closing part and the second closing part can further compress the elastic part, so that the tool storage module 300 is reset to avoid interference with the top cover 400. This setting enables the tool storage container to use an elastic part with a relatively large elasticity, avoiding the elastic decay of the elastic part, so that the elastic part can lift the tool storage module 300 well at the initial stage of using the tool storage container. During continuous use, the elasticity of the spring weakens, resulting in the situation that after using the tool storage container for a period of time, the elastic part cannot cooperate well with the top convex part 111 to lift the tool storage module 300. The setting of the first closing part and the second closing part makes the top cover 400 fit more closely with the tool holder 200, and promotes the stable cooperation between the top convex part 111 and the elastic part to lift the tool storage module 300. That is to say, the functions of the first closing part and the second closing part are not only to tightly close the top cover 400 and the tool holder 200 in the usual way, but also to compress the elastic part of the top convex structure 110, so that the elastic part is compressed and the top convex part 111 retracts to avoid interfering with the closing of the top cover 400. The cooperation of the top cover 400, the first closing part, the second closing part and the elastic part realizes the expansion and contraction of the top convex part 111, so that the top convex part 111 extends when the tool holder 200 does not cover the top cover 400, and retracts when the tool holder 200 covers the top cover 400. That is to say, the top cover 400 not only plays the role of covering the tool holder 200, but also plays the role of controlling the expansion and contraction of the top convex part 111.

[0052] Exemplarily, both the first closing part and the second closing part are magnetic attraction parts. The top cover 400 and the tool holder 200 are tightly closed through the magnetic attraction cooperation of the first closing part and the second closing part. This closing method is simple and easy for the top cover 400 to cover the tool holder 200.

[0053] Exemplarily, in some other embodiments of the present application, the retraction mode of the top cover 400 is controlled by a lifting control structure. That is to say, the top convex structure 110 further includes a lifting control structure for controlling the lifting of the top convex member 111. When the top cover 400 is covered on the tool holder 200, the lifting control structure controls the top convex member 111 to retract. When the top cover 400 is covered on the tool holder 200, the lifting control structure controls the top convex to descend to the lowest position. At this time, the top convex does not act on the tool storage module 300. Even if the tool storage module 300 is located above it, there is a gap or just contact between the top convex member 111 and the tool storage module 300. When the tool storage container is in use, the lifting control structure controls the top convex member 111 to rise to the highest position. At this time, the tool storage module 300 moved to the upper part of the top convex member 111 will be lifted by the top convex member 111.

[0054] As Figure 1 and Figure 3 shown, a through hole 250 is provided at the rotation center of the tool holder 200. The tool storage container further includes a connecting member 500. The first end of the connecting member 500 is detachably connected to the base 100. The second end of the connecting member 500 is provided with an outward extension limiting edge 510, and the outward extension limiting edge 510 abuts against the circumferential edge of the through hole 250. The connecting member 500 serves as the rotating shaft of the tool holder 200. That is to say, the tool holder 200 is connected to the base 100 through the connecting member 500. One end of the connecting member 500 is connected to the base 100, and one end blocks the tool holder 200 from moving in the direction away from the base 100. In addition, the axis of the connecting member 500 is the first axis. The connecting member 500 passes through the through hole 250, and the connecting member 500 cooperates with the side wall of the through hole 250 to enable the tool holder 200 to rotate around the connecting member 500. That is to say, in this embodiment, the connecting member 500 not only plays the role of connecting the tool holder 200 and the base 100, but also plays the role of a rotating shaft. The tool holder 200 can be rotatably connected to the base 100 through one component of the connecting member 500.

[0055] As Figure 1 and Figure 4As shown, the connector 500 is provided with an insertion hole 520, which is configured to insert a screwdriver 700. That is, in this embodiment, the bit storage area for placing the bit 600 is arranged around the connector 500, and the connector 500 is provided with an insertion area for inserting the screwdriver 700. The screwdriver 700 is stored in an insertion manner, which facilitates the removal and placement of the screwdriver 700. The bit 600 used in conjunction with the screwdriver 700 is arranged around the connector 500, which facilitates the removal and placement of the bit 600 used in conjunction with the screwdriver 700. In addition, the insertion hole 520 is set on the connecting member 500. When the tool holder 200 rotates around the connecting member 500, the connecting member 500 is fixed and the tool holder 200 rotates around the connecting member 500. The insertion hole 520 is set on the connecting member 500, so that the screwdriver 700 inserted in the insertion hole 520 can remain stationary when the tool holder 200 rotates, thereby avoiding the screwdriver 700 interfering with the rotation of the tool holder 200. This setting allows the tool holder 200 to rotate smoothly.

[0056] like Figure 1 and Figure 5 As shown, in some embodiments, the circumferential edge of the through-hole 250 protrudes upward to form a raised ring 270. The extended limiting edge 510 of the connector 500 abuts against the end of the raised ring 270 facing away from the tool holder 200. The top cover 400 is provided with a second through-hole 410. The top cover 400 is inserted into the raised ring 270 through the second through-hole 410 and covers the tool holder 200. The provision of the raised ring 270 increases the height of the connector 500, thereby deepening the insertion hole 520. This ensures that the screwdriver 700 inserted into the insertion hole 520 is more securely placed and reduces the possibility of it tipping over. Furthermore, the top cover 400 is sleeved onto the raised ring 270 through the second through hole 410. The raised ring 270 restricts the horizontal position of the top cover 400, so that the top cover 400 can only be lifted and removed upwards. This also reduces horizontal movement of the top cover 400, allowing the top cover 400 to be more securely attached to the tool holder 200. In other words, the provision of the raised ring 270 not only deepens the insertion hole 520, increasing the stability of the screwdriver 700, but also restricts the position of the top cover 400 and reduces horizontal movement of the top cover 400.

[0057] like Figure 3 and Figure 6As shown, in some embodiments of the present application, a storage cavity 160 is provided on one side of the base 100 facing away from the tool holder 200. The storage cavity 160 is configured to be able to store at least a screwdriver 700. When the screwdriver 700 is in use, it is vertically inserted for easy use. However, during storage and transportation, it is more convenient to store it horizontally. In this embodiment, a storage cavity 160 capable of storing the screwdriver 700 is provided on one side of the base 100 facing away from the tool holder 200. In the storage and transportation state of the tool storage container, the screwdriver 700 is stored in the storage cavity 160. In the use state of the tool storage container, the screwdriver 700 is inserted into the insertion hole 520. This design is convenient for both the storage and use of the screwdriver 700.

[0058] In some embodiments, as Figure 3 shown, a screwdriver storage position 161 for storing the screwdriver 700 is provided in the storage cavity 160. The base 100 is provided with a mounting hole 170, and the mounting hole 170 communicates with the screwdriver storage position 161. The connecting member 500 is detachably connected to the mounting hole 170, and the insertion hole 520 communicates with the screwdriver storage position 161 through the mounting hole 170. The setting of the screwdriver storage position 161 can better engage the screwdriver 700 and prevent the screwdriver 700 from shaking and shifting in the storage cavity 160. The insertion hole 520 communicates with the screwdriver storage position 161, so that when the screwdriver 700 is inserted into the insertion hole 520, the lower end of the screwdriver 700 can extend into the screwdriver storage position 161. This deepens the depth of the screwdriver 700 inserted into the insertion hole 520, making the screwdriver 700 more stable when inserted into the tool storage container and reducing the risk of the screwdriver 700 tipping over. And based on the fact that both the insertion hole 520 and the screwdriver storage position 161 are used for storing the screwdriver 700, there is no interference in the use of the insertion hole 520 and the screwdriver storage position 161. When the screwdriver 700 is inserted into the insertion hole 520, the screwdriver storage position 161 is in an idle state, and the screwdriver 700 can pass through the insertion hole 520 and extend into the screwdriver storage position 161. When the screwdriver 700 is stored in the screwdriver storage position 161, the insertion hole 520 is in an idle state, and the screwdriver 700 can be placed horizontally in the screwdriver storage position 161 without hindrance. This setting cleverly and fully utilizes the space of the tool storage container, so that the screwdriver storage position 161 is used for horizontally storing the screwdriver 700 and also cooperates with the insertion hole 520 for vertically inserting the screwdriver 700.

[0059] Exemplarily, the base 100 includes a bottom cover 180, and the bottom cover 180 is configured to cover or open the storage cavity 160.

[0060] In some embodiments of the present application, as Figure 2 、 Figure 3 and Figure 6As shown, the screwdriver storage position 161 is configured to store the electric screwdriver 700. The bit 600 storage container further includes a charging female part 800, which is detachably installed in the insertion hole 520 from the screwdriver storage position 161, and part of the charging female part 800 is exposed at the screwdriver storage position 161. The charging female part 800 is configured to be able to connect to a power source. Exemplarily, the charging female part 800 can be connected to the power source by directly plugging a charging cable into a socket to achieve power-on. Thus, when the charging end of the electric screwdriver 700 contacts the charging female part 800, the charging female part 800 can charge the electric screwdriver 700; the charging female part 800 can also be connected to a battery provided in the tool storage container. When the charging end of the electric screwdriver 700 contacts the charging female part 800, the charging female part 800 can charge the electric screwdriver 700.

[0061] In this embodiment, the charging female part 800 is stored in the storage cavity 160 when the tool storage container is in the storage and transportation state, and is installed in the insertion hole 520 when the tool storage container is in the use state. The charging female part 800 contacts the electric screwdriver 700 inserted in the insertion hole 520 and charges the electric screwdriver 700. That is to say, in this embodiment, the electric screwdriver 700 can be inserted into the insertion hole 520 for charging, or can be stored in the storage cavity 160 for storage and transportation. In order to make full use of the space of the tool storage container, so that the tool storage container can store more parts and tools in a limited space, the charging female part 800 is set in a detachable form. When the tool storage container is in the use state, the electric screwdriver 700 is inserted into the insertion hole 520. At this time, the screwdriver storage position 161 is idle. The present application makes full use of the space when the screwdriver storage position 161 is idle, installs the charging female part 800 from the screwdriver storage position 161 into the insertion hole 520, and part of it is exposed at the screwdriver storage position 161. The exposed setting of the charging female part 800 facilitates the disassembly and assembly of the charging female part 800. When the tool storage container is in the storage and transportation state, the charging female part 800 is disassembled and stored in the storage cavity 160. At this time, the charging female part 800 does not interfere with the storage of the electric screwdriver 700 in the screwdriver storage position 161. Thus, the electric screwdriver 700 can be stored in the screwdriver storage position 161, which is convenient for the storage of the screwdriver 700. And the charging female part 800 is stored in the storage cavity 160, which is convenient for the storage of the charging female part 800 and avoids its loss. This structural setting is simple but makes full use of the space.

[0062] Exemplarily, in some embodiments, the charging female part 800 is a magnetic connector, and the charging end of the electric screwdriver 700 is provided with a contact magnetic interface.

[0063] Exemplarily, the insertion hole 520 is provided with internal threads, and the charging female member 800 is provided with external threads. The charging female member 800 is detachably connected to the insertion hole 520 by a threaded connection. This setting is convenient for disassembly and assembly, easy to operate, and has a firm connection. The charging female member 800 can better support the electric screwdriver 700 inserted into the insertion hole 520.

[0064] Exemplarily, a blocking convex edge is provided in the middle of the charging female member 800, and the external threads are provided on one side of the blocking convex edge. When the charging female member 800 is installed in the insertion hole 520, the blocking convex edge abuts against the edge of the insertion hole 520. The blocking convex edge plays a role of limiting, enabling the charging female member 800 to be quickly installed in place.

[0065] Exemplarily, as Figure 3 and Figure 6 shown, the tool storage container is of a cylindrical structure, and the screwdriver storage position 161 extends in the radial direction of the tool storage container. Based on the fact that the screwdriver 700 is a slender tool, setting the screwdriver storage position 161 in the radial direction of the tool storage container can minimize the size of the tool storage container, making the tool storage container more compact.

[0066] As Figure 2 shown, in some embodiments of the present application, the tool holder 200 includes a support 230 and a cover plate 240 detachably connected to the support 230. The support 230 is provided with a relief hole 210, and the cover plate 240 is provided with a through port 241 corresponding to each relief hole 210. The tool storage module 300 is rotatably clamped between the support 230 and the cover plate 240, and each tool storage module 300 is exposed through the through port 241. That is to say, the tool storage module 300 is placed between the support 230 and the cover plate 240, and the cover plate 240 and the support 230 clamp the tool storage module 300, realizing the detachable and rotatable installation of the tool storage module 300. When installing or replacing the tool storage module 300, disassemble the cover plate 240 from the support 230, place the tool storage module 300 on the support 230, or place the tool storage module 300 on the cover plate 240, and then connect the cover plate 240 to the support 230, and the tool storage module 300 can be installed on the tool holder 200. The disassembly and assembly method of the tool storage module 300 is convenient for the installation and replacement of the tool storage module 300, can significantly improve the assembly efficiency of the tool storage module 300, enable the tool storage module 300 to be quickly assembled onto the tool holder 200, and the assembly method is simple and labor-saving.

[0067] As Figure 7As shown, the cover plate 240 is provided with a through hole 242. The first axis passes through the center of the through hole 242. Each through port 241 is arranged around the through hole 242, and the first end of each through port 241 communicates with the through hole 242. That is to say, the through ports 241 are arranged around the through hole 242 in a radial shape. In this embodiment, the closer to the first axis, the smaller the distance between two adjacent through ports 241. The through ports 241 communicate with the through hole 242, which can reduce the area with a smaller distance between two adjacent through ports 241, reduce the processing difficulty of the cover plate 240, and reduce the possibility of deformation and damage of the cover plate 240.

[0068] As Figure 8 and Figure 9 As shown, in order to facilitate the quick installation of the tool storage module 300, the support 230 is provided with an installation groove 232 corresponding to each tool storage module 300. The first positioning grooves 231 are arranged on both sides of the installation groove 232. The cover plate 240 is provided with second positioning grooves corresponding to each first positioning groove 231. The installation groove 232 is configured to place the tool storage module 300. The tool storage module 300 is provided with an extension shaft 320, and the extension shaft 320 is installed in the first positioning groove 231 and the second relief groove corresponding to the first positioning groove 231. The relief hole 210 is arranged at the bottom of the installation groove 232. That is to say, during assembly, the tool storage module 300 is placed in the installation groove 232, the extension shaft 320 is placed in the first positioning groove 231, the cover plate 240 is covered and connected to the support 230, and then the tool storage module 300 is assembled. This setting facilitates the user to quickly place the tool storage module 300 and significantly improves the assembly efficiency of the tool storage module 300.

[0069] In some embodiments of the present application, the tool storage position 310 is configured to store the bit 600. To facilitate the identification of the bits 600 stored on the tool storage module 300, multiple tool storage modules 300 are divided into multiple groups (including two groups), and the colors of different groups of tool storage modules 300 are different. Since the bits 600 commonly used by each user are different, by dividing the tool storage modules 300 into multiple groups of different colors, the user can divide the bits 600 into different groups according to their own usage habits. The bits 600 of different groups are placed on the tool storage modules 300 of different colors, that is, the colors of the tool storage modules 300 corresponding to the bits 600 of different groups are different. Thus, a tool storage container unique to each user can be formed, enabling each user to have a customized tool storage container of their own. The user arranges the bits 600 according to their own usage habits and the usage frequency of the bits 600. By the different colors of the tool storage modules 300, different groups of bits 600 are distinguished, enabling the user to quickly identify and retrieve the required type of bit 600 when using the bit 600, which is convenient for retrieval. In addition, the top convex structure 110 can lift the tool storage module 300, thereby making the color of the tool storage module 300 easier to identify. When retrieving the bit 600, the user can quickly lock the area where the bit 600 is located by rotating the tool holder 200, and the retrieval is fast.

[0070] Exemplarily, the user can divide the bits 600 into a frequently used bit 600 group, an occasionally used bit 600 group, and an infrequently used bit 600 group according to their own usage habits. The tool storage modules 300 are divided into three color groups, and one bit 600 group corresponds to a tool storage module 300 of one color. Exemplarily, the tool storage modules 300 of the three color groups are red, yellow, and black respectively. The user places the bits 600 of different groups on the tool storage modules 300 of the corresponding color groups. Exemplarily, the bits 600 of the frequently used bit 600 group are stored on the red tool storage module 300, the bits 600 of the occasionally used bit 600 group are stored on the yellow tool storage module 300, and the bits 600 of the infrequently used bit 600 group are stored on the black tool storage module 300. Thus, each user can obtain a customized tool storage container of their own, and can quickly identify and retrieve the required type of bit 600 when using the bit 600, which is convenient for retrieval.

[0071] Exemplarily, the tool storage module 300 based on the embodiments of the present application is detachably clamped between the cover plate 240 and the support 230. Multiple tool storage modules 300 of each color can be configured. Users can select the color of the tool storage module 300 according to their own preferences and select the number of tool storage modules 300 in each group according to their needs, thus fully giving users the space to choose and enhancing the user experience. In addition, when the user wants to change the style, the tool storage module 300 can be directly replaced, and the replacement cost is low.

[0072] As Figure 3 and Figure 14 shown, in some embodiments of the present application, the base 100 is provided with an annular mounting edge 190, and the tool holder 200 is rotatably sleeved on the annular mounting edge 190. Multiple convex teeth 260 are provided at intervals on one of the outer side wall of the annular mounting edge 190 and the inner side wall of the tool holder 200, and a convex point 181 is provided on the other. When the tool holder 200 rotates around the annular mounting edge 190, the convex point 181 collides with the convex teeth 260 to generate a sound. Exemplarily, multiple convex teeth 260 are provided at intervals on the inner side wall of the tool holder 200, and a convex point 181 is provided on the outer side wall of the annular mounting edge 190. The convex point 181 is installed in the convex point installation groove 182. This setting makes the tool holder 200 generate a sound when rotating, increasing the fun of using the tool storage container.

[0073] This embodiment also provides a set of bit heads 600, which includes bit heads 600 and the tool storage container of any of the above solutions. At least some of the tool storage positions 310 in the tool storage container are configured to store bit heads 600. Embodiment Two

[0074] The structure of the tool storage container provided in this embodiment is basically the same as that of the tool storage container in Embodiment One, except that: As Figure 10 and Figure 11 shown, the top surface 220 of the tool holder 200 is inclined relative to the bottom surface 120 of the base 100, and the top surface 220 is the side of the tool holder 200 facing away from the bottom surface 120 of the base 100. The top surface 220 of the tool holder 200 is inclined, so that when the tool storage container is in use, the top surface 220 of the tool holder 200 can be inclined towards the user, enabling the user to more clearly identify the tools stored on the top surface 220 of the tool holder 200 and also making it more convenient to pick up.

[0075] In some embodiments, the top convex structure 110 is disposed at the position of the base 100 corresponding to the lowest area of the tool holder 200, and the top convex structure 110 jacks up the tool storage module 300 rotated to the lowest area of the tool holder 200. When the top surface 220 of the tool holder 200 is inclined towards the user, the lowest area of the tool holder 200 is closest to the user and is most convenient for observation. The top convex structure 110 disposed at the position of the base 100 corresponding to the lowest area of the tool holder 200 can better enable the user to clearly and quickly identify the model of the tool stored on the tool storage module 300, and the top convex structure 110 can jack up the tool storage module 300. This setting, combined with the inclination of the tool holder 200, enables the user to clearly identify the tool type and model without approaching and looking down.

[0076] This embodiment also provides a set of bit heads 600, which includes bit heads 600 and the tool storage container of any of the above solutions, and at least some of the tool storage positions 310 in the tool storage container are configured to store bit heads 600. Embodiment III

[0077] The structure of the tool storage container provided in this embodiment is basically the same as that of the tool storage container in Embodiment I, except that: as Figure 10 and Figure 12 shown, the tool holder 200 has an inclined state (as Figure 10 shown) and a flat state (as Figure 12 shown), where Figure 10The state is a position state where the tool holder 200 is position - adjustable, namely the inclined state. When the tool holder 200 is in the inclined state, the top surface 220 of the tool holder 200 is inclined relative to the bottom surface 120 of the base 100, and the top convex structure 110 lifts the tool storage module 300. When the tool holder 200 is in the flat state, the top surface 220 of the tool holder 200 is substantially parallel to the bottom surface 120 of the base 100, and the top convex structure 110 does not act on the tool storage module 300. That is to say, when the tool holder 200 is in the inclined state, the top convex structure 110 acts on the tool storage module 300 and can lift the tool storage module 300. When the tool holder 200 is in the flat state, the top convex structure 110 does not act on the tool storage module 300, and the top convex structure 110 is spaced from or in contact with the tool storage module 300. On the one hand, this setting facilitates the user to use the tool storage module. When the user uses the tool storage module, the user adjusts the tool holder 200 to the inclined state, and the top surface 220 of the tool holder 200 faces the user. The user can more clearly identify the tools stored on the top surface 220 of the tool holder 200 and it is also more convenient to take. Moreover, the top convex structure 110 can lift the tool storage module 300. This setting, combined with the inclination of the tool holder 200, enables the user to clearly identify the tool type and model without approaching and looking down. On the other hand, it facilitates the storage and transportation of the tool storage container. When the tool holder 200 is in the flat state, the shape of the tool storage container is more regular, which is convenient for the packaging and transportation of the tool storage container and avoids damage during transportation. On the other hand, when the tool holder 200 is in use, it is adjusted to the inclined state, and when not in use, it can be adjusted to the flat state. When the tool holder 200 is in the flat state, the top convex structure 110 does not act on the tool storage module 300. Therefore, when the top cover 400 is covered on the tool holder 200, the top cover 400 will not act on the elastic member of the top convex structure 110 either, thereby protecting the elastic member and increasing its service life. In addition, the setting of the elastic member of the top convex structure 110 enables the user to directly cover the top cover 400 without adjusting the state of the tool holder 200 when temporarily not in use, making the use of this tool storage container more flexible.

[0078] In some embodiments, as Figure 13 and Figure 14 shown, the base 100 includes a seat body 130 and an adjustment frame 140 connected to the seat body 130. The adjustment frame 140 can be adjusted between a first position and a second position relative to the seat body 130. The tool holder 200 is rotatably mounted on the adjustment frame 140. When the adjustment frame 140 is in the first position, the tool holder 200 is in the flat state. When the adjustment frame 140 is in the second position, the tool holder 200 is in the inclined state. That is to say, the tool holder 200 realizes the conversion between the inclined state and the flat state through the position adjustment of the adjustment frame 140.

[0079] Exemplarily, the adjustment frame 140 is mounted on the base 130 so that the adjustment frame 140 and the base can rotate about a second axis. The protruding structure 110 is provided on the base 130. One of the adjustment frame 140 or the base 130 is provided with a first limiting structure 131, and the other is provided with a second limiting structure and a third limiting structure. The second limiting structure and the third limiting structure cooperate with the first limiting structure 131 to limit the position of the adjustment frame 140, allowing it to rotate between the first position and the second position. The provision of the limiting structures facilitates the operation of changing the position of the tool holder 200, allowing it to maintain the adjusted position after being adjusted into place.

[0080] Exemplarily, the adjustment frame 140 is rotatably mounted on the base body 130 via the first rotating shaft 150. The adjustment frame 140 is configured to press the first side of the tool holder 200, rotate to the second position, press the second side of the tool holder 200, and rotate to the first position. The first side and the second side of the tool holder 200 are located on both sides of the tool holder 200 in the first direction. The first direction is perpendicular to the second axis, and the second axis is the axis of the first rotating shaft 150. In this embodiment, the tool storage container has a front and a back. When the adjustment frame 140 is in the second position and the inclined top surface of the tool holder 200 faces the user, the side close to the user is the front side. The first side of the tool holder 200 is the front side of the tool holder 200, and the second side of the tool holder 200 is the back side of the tool holder 200. This setting facilitates the position change of the adjustment frame 140. When adjusting the adjustment frame 140, press the front part of the tool holder 200, and the adjustment frame 140 rotates to the second position under the action of the pressing force. Press the back part of the tool holder 200, and the adjustment frame 140 is adjusted to the first position under the action of the pressing force.

[0081] Exemplarily, the first rotating shaft 150 is two shaft protrusions, and the two shaft protrusions are located on both sides of the adjustment frame 140 in the direction of the second axis.

[0082] For example, the first limiting structure 131 includes a ball bearing that can be mounted on the base body 130 in an in-situ rolling manner. The second limiting structure and the third limiting structure are spaced apart limiting slots. When the ball bearing is located in the second limiting structure, the adjustment frame 140 is located in the first position. When the ball bearing is located in the third limiting structure, the adjustment frame 140 is located in the second position. The provision of the rolling ball bearing allows the adjustment frame 140 to change positions more smoothly.

[0083] In some embodiments, as Figure 13 As shown, the adjustment frame 140 has a clearance notch 141 on one side near the top protrusion 110. When the adjustment frame 140 is in the second position, the edge of the clearance notch 141 substantially coincides with the lower edge of the base 130. This arrangement allows the adjustment frame 140 to be switched between the first and second positions and enhances the aesthetics of the tool storage container.

[0084] The present application also provides a set of bit 600, which includes the bit 600 and the tool storage container of any of the above solutions. At least some of the tool storage positions 310 in the tool storage container are configured to store the bit 600. Embodiment 4

[0085] The tool storage container provided in this embodiment includes a base 100, a tool holder 200, and a plurality of tool storage modules 300. Each tool storage module 300 is rotatably mounted on the tool holder 200. The tool storage module 300 is provided with a tool storage position 310, and the tool storage position 310 is configured to lay the tool flat. The tool holder 200 is movably mounted on the base 100. The tool holder 200 is provided with a relief hole 210 corresponding to each tool storage module 300. In the corresponding relief hole 210 and the tool storage module 300, part of the tool storage modules 300 pass through the relief hole 210 and extend to the side of the tool holder 200 facing the base 100. The base 100 is provided with a top convex structure 110, and the top convex structure 110 is configured to push the tool storage module 300 when the tool storage module 300 rotates to the upper part of the top convex structure 110, so that one end of the tool storage module 300 is tilted up. By providing the top convex structure 110 and the rotatable tool storage module 300 in the embodiment of the present application, when the tool storage module 300 moves with the tool holder 200 to the upper part of the top convex structure 110, the top convex structure 110 lifts the tool storage module 300, so that one end of the tool storage module 300 is tilted up. After one end of the tool storage module 300 storing the tool is tilted up, the user can directly identify the type and model of the tool through direct vision without approaching and looking down. This setting is more convenient for the user to observe and identify the type and model of the tool, and it is also convenient for the user to pick up and place the tool after the tool is tilted up with the tool storage module 300.

[0086] In this embodiment, the top convex structure 110 is the same as the top convex structure 110 in Embodiment 1. The tool storage modules 300 can also be divided into multiple groups of different colors. The top surface 220 of the tool holder 200 is set to be in an inclined state or the conversion between the inclined state and the flat state is also the same as the structures in Embodiment 3 and Embodiment 4, which will not be elaborated here.

[0087] The present application also provides a set of bit 600, which includes the bit 600 and the tool storage container of any of the above solutions. At least some of the tool storage positions 310 in the tool storage container are configured to store the bit 600.

[0088] Those skilled in the art will readily conceive of other embodiments of the present application after considering the specification and practicing the invention disclosed herein. The present application is intended to cover any variations, uses, or adaptations of the present application, which follow the general principles of the present application and include well-known common general knowledge or conventional technical means in the technical field not disclosed in the present application. The specification and examples are only regarded as exemplary, and the true scope and spirit of the present application are pointed out by the following claims.

[0089] It should be understood that the present application is not limited to the exact structures described above and shown in the drawings, and various modifications and changes can be made without departing from its scope. The scope of the present application is only limited by the appended claims.

Claims

1. A tool storage container, characterized in that, It includes a base, a tool holder, and multiple tool storage modules; Each of the tool storage modules is rotatably installed on the tool holder. The tool storage module is provided with a tool storage position configured to place tools flat; The tool holder is movably or rotatably installed about a first axis on the base. The tool holder is provided with relief holes corresponding to each of the tool storage modules. Among the corresponding relief holes and the tool storage modules, some of the tool storage modules pass through the relief holes and extend to the side of the tool holder facing the base; The base is provided with a top convex structure configured to push the tool storage module when the tool storage module moves or rotates with the tool holder to the upper part of the top convex structure, so that one end of the tool storage module is tilted up.

2. The tool storage container according to claim 1, wherein, The top surface of the tool holder is inclined relative to the bottom surface of the base, and the top surface is the surface of the tool holder facing away from the bottom surface of the base.

3. The tool storage container according to claim 2, characterized in that The tool holder is rotatably installed on the base; The top convex structure is provided at the position of the base corresponding to the lowest area of the tool holder, and the top convex structure lifts up the tool storage module that rotates to the lowest area of the tool holder.

4. The tool storage container according to claim 3, characterized in that, The tool holder has an inclined state and a flat state; When the tool holder is in the inclined state, the top surface of the tool holder is inclined relative to the bottom surface of the base, and the top convex structure lifts up the tool storage module; When the tool holder is in the flat state, the top surface of the tool holder is substantially parallel to the bottom surface of the base, and the top convex structure does not act on the tool storage module.

5. The tool storage container according to claim 4, wherein, The base includes a seat body and an adjustment frame connected to the seat body. The adjustment frame can be adjusted between a first position and a second position relative to the seat body; the tool holder is rotatably installed on the adjustment frame; When the adjustment frame is in the first position, the tool holder is in the flat state; When the adjustment frame is in the second position, the tool holder is in the inclined state.

6. The tool storage container according to claim 5, wherein, The adjustment frame covers the seat body. The adjustment frame is rotatably installed on the seat body about a second axis, and the top convex structure is provided on the seat body; One of the adjustment frame or the seat body is provided with a first limiting structure, and the other is provided with a second limiting structure and a third limiting structure. The second limiting structure and the third limiting structure cooperate with the first limiting structure to limit the position of the adjustment frame so that it rotates between the first position and the second position.

7. The tool storage container according to claim 5, wherein, The adjustment frame is provided with a relief notch on the side close to the top convex structure. When the adjustment frame is in the second position, the edge of the relief notch substantially coincides with the lower edge of the seat body.

8. The tool storage container according to claim 6, wherein, The first limiting structure includes a ball, and the ball is rotatably installed in place on the seat body; The second limiting structure and the third limiting structure are spaced limiting slot holes; When the ball is located in the second limiting structure, the adjustment frame is in the first position; When the ball is located in the third limiting structure, the adjustment frame is in the second position.

9. The tool storage container according to claim 6, characterized in that, The adjustment frame is rotatably mounted on the base body through a first rotating shaft. The adjustment frame is configured to press on a first side of the tool holder. When the adjustment frame rotates to the second position, it presses on a second side of the tool holder. When the adjustment frame rotates to the first position, the first side and the second side of the tool holder are located on two sides of the tool holder in a first direction, and the first direction is perpendicular to the second axis, where the second axis is the axis of the first rotating shaft.

10. The tool storage container according to claim 1, characterized in that, The tool holder includes a support and a cover plate detachably connected to the support. The support is provided with the relief holes, and the cover plate is provided with through openings corresponding to each of the relief holes. The tool storage module is rotatably clamped between the support and the cover plate, and each of the tool storage modules is exposed through the through openings.

11. The tool storage container according to claim 10, wherein, The cover plate is provided with a through hole. The tool holder is rotatably mounted on the base; the first axis passes through the center of the through hole. Each of the through openings is arranged around the through hole, and a first end of each of the through openings communicates with the through hole.

12. The tool storage container according to claim 10, wherein, The support is provided with mounting grooves corresponding to each of the tool storage modules. First positioning grooves are provided on both sides of the mounting groove, and second positioning grooves corresponding to each of the first positioning grooves are provided on the cover plate. The mounting groove is configured to place the tool storage module; the tool storage module is provided with an extension shaft, and the extension shaft is mounted in the first positioning groove and a second relief groove corresponding to the first positioning groove. The relief holes are provided at the bottom of the mounting groove.

13. The tool storage container according to any one of claims 1-12, characterized in that, The tool holder is rotatably mounted on the base. At least part of the tool storage modules are bit storage modules. The tool storage positions provided on the bit storage modules are bit storage positions, and the bit storage positions are configured to lay the bits flat. The bit storage positions are arranged at intervals around the first axis, and the heads of the bits mounted on the bit storage module point to the first axis. When the top convex structure pushes the bit storage module, one end of the bit storage module corresponding to the head of the bit tilts up.

14. The tool storage container according to any one of claims 1 to 12, characterized in that The top convex structure includes a top convex member, and the top convex member is telescopically mounted on the base. The tool storage container further includes a top cover, and the top cover covers the tool holder to cover each of the tool storage modules. When the top cover covers the tool holder, the top convex member acting on the tool storage module retracts, and the lifted tool storage module resets.

15. The tool storage container according to claim 14, characterized in that, The top convex structure further includes a fixing member and an elastic member. The fixing member is connected to the base, and the fixing member is provided with a first through hole. The top convex member is provided with an extension edge, and the extension edge is located between the fixing member and the base. Part of the top convex member passes through the fixing member through the first through hole, and the extension edge blocks the top convex member from completely passing through the first through hole. The elastic member is arranged between the top convex member and the base.

16. The tool storage container according to claim 15, characterized in that, The top cover is provided with a first closing member, and the tool holder is provided with a second closing member. The top cover and the tool holder are tightly closed through the mutual cooperation of the first closing member and the second closing member.

17. The tool storage container according to claim 16, wherein The first covering member and the second covering member are both magnetic members, and the top cover and the tool holder are tightly covered by the magnetic cooperation of the first covering member and the second covering member.

18. The tool storage container according to claim 14, characterized in that, The top protrusion structure further includes a lifting control structure for controlling the lifting of the top protrusion. When the top cover is covered on the tool seat, the lifting control structure controls the retraction of the top protrusion.

19. The tool storage container according to any one of claims 1 to 12, characterized in that, The tool holder is rotatably mounted on the base; A through hole is provided at the rotation center of the tool seat; The tool storage container also includes a connecting piece, the first end of which is detachably connected to the base, the second end of which is provided with an outward limiting edge, the outward limiting edge abuts against the circumferential edge of the through hole, and the connecting piece serves as a rotating shaft of the tool holder.

20. The tool storage container according to claim 19, wherein, At least some of the tool storage modules are bit storage modules, the tool storage positions provided on the bit storage modules are bit storage positions, the bit storage positions are configured to store bit flatly, and each of the bit storage modules is arranged around the connecting piece; The connecting piece is provided with an insertion hole, and the insertion hole is configured to insert a screwdriver.

21. The tool storage container according to claim 20, characterized in that, A storage cavity is provided on a side of the base facing away from the tool holder, and the storage cavity is configured to store at least a screwdriver.

22. The tool storage container according to claim 19, wherein A screwdriver storage position for storing screwdrivers is provided in the storage cavity; The base is provided with a mounting hole, and the mounting hole is connected to the screwdriver storage position; The connecting piece is detachably connected to the mounting hole, and the insertion hole is connected to the screwdriver storage position through the mounting hole.

23. The tool storage container according to claim 22, characterized in that, The screwdriver storage position is configured to store an electric screwdriver; The tool storage container further includes a charging mother component, which is detachably mounted on the insertion hole from the screwdriver storage position, with a portion of the charging mother component exposed outside the screwdriver storage position, and the charging mother component is configured to be connected to a power source; The charging mother component is stored in the storage cavity when the tool storage container is in a storage and transportation state, and is installed in the insertion hole when the tool storage container is in use. The charging mother component contacts the electric screwdriver inserted in the insertion hole and charges the electric screwdriver.

24. The tool storage container according to claim 20, wherein, The circumferential edge of the through hole protrudes upward to form a protruding ring; The extended limiting edge abuts against an end of the raised ring facing away from the tool seat; The tool storage container further includes a top cover, which is provided with a second through hole. The top cover is sleeved on the raised ring through the second through hole and covers the tool seat to cover each of the tool storage modules.

25. The tool storage container according to claim 21, characterized in that, The base includes a bottom cover configured to cover or open the storage cavity.

26. The tool storage container according to any one of claims 1-12, characterized in that, The tool holder is rotatably mounted on the base; The base is provided with an annular mounting edge; The tool seat is rotatably sleeved on the annular mounting edge; One of the outer side wall of the annular mounting edge and the inner side wall of the tool seat is provided with a plurality of spaced-apart convex teeth, and the other is provided with convex points. When the tool seat rotates around the annular mounting edge, the convex points collide with the convex teeth to produce a sound.

27. The tool storage container according to any one of claims 1-12, characterized in that The tool storage position is configured to store a tool bit; The plurality of tool storage modules are divided into a plurality of groups, and the tool storage modules in different groups have different colors.

28. A bit set, characterized in that, including a bit head and the tool storage container according to any one of claims 1-27, at least some of the tool storage positions in the tool storage container being configured to store the bit head.