Conductive member mounting apparatus

By using the limiting and lifting structure of the conductive component installation equipment, the problems of low installation efficiency and misalignment of conductive film are solved, achieving efficient and reliable positioning of conductive components and improving the production efficiency and yield of electronic products.

CN224295184UActive Publication Date: 2026-05-29SHENZHEN XINWEI INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-15
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

In existing technologies, the installation efficiency of conductive films is low, and they are prone to misalignment, resulting in low yield.

Method used

The conductive component mounting device includes a support component, a limiting protrusion, and a lifting component. The limiting protrusion restricts the relative position of the conductive component and the pen tube, and the lifting component fits the conductive component against the inner wall of the pen tube, simplifying the operation process and improving positioning reliability.

Benefits of technology

It reduces the difficulty of operation, improves operational and production efficiency, ensures the reliability and consistency of the installation position of conductive components, and reduces the risk of misalignment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to electronic product assembly technical field discloses a kind of electrically-conductive parts mounting equipment, comprising: bearing, including insertion section and exposed section, insertion section is connected with exposed section and is equipped with via, bearing is equipped with cavity and bearing surface, bearing surface is at least partially located insertion section, for bearing electrically-conductive parts, via is through bearing surface, cavity is communicated with via and is through the surface of exposed section;Limit protrusion, be located at the outer circumferential surface of exposed section;Jacking part, insert in cavity, and from exposed section, jacking part has jacking protrusion, jacking protrusion is movably inserted in via.The electrically-conductive parts mounting equipment of the utility model has the advantages of simple operation, electrically-conductive parts is not easy to deviate, yield and production efficiency is high.
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Description

Technical Field

[0001] This utility model relates to the field of electronic product assembly technology, and specifically to a conductive component installation device. Background Technology

[0002] The electronic pens in related technologies usually have a conductive film inside the pen tube, such as copper foil foam. The conductive film is installed manually by holding the conductive film with tweezers, inserting the tweezers into the pen tube, observing the relative position of the conductive film and the pen tube, and then attaching the conductive film to the preset position on the inner wall of the pen tube. This method is not only difficult to operate and has low production efficiency, but it is also prone to misalignment, resulting in a low yield. Utility Model Content

[0003] In view of this, the present invention provides a conductive component installation device to solve the problems of low installation efficiency, easy misalignment and low yield of conductive film.

[0004] This utility model provides a conductive component installation device, comprising: a carrier, including an insertion section and an exposed section, the insertion section being connected to the exposed section and having a through hole, the carrier having a cavity and a bearing surface, the bearing surface being at least partially located in the insertion section for bearing a conductive component, the through hole penetrating the bearing surface, the cavity communicating with the through hole and penetrating the surface of the exposed section; a limiting protrusion located on the outer peripheral surface of the exposed section; and a lifting member inserted into the cavity and extending from the exposed section, the lifting member having a lifting protrusion movably inserted into the through hole.

[0005] Beneficial effects: The conductive component installation device of this utility model can limit the depth of the carrier component inserted into the pen tube by limiting the protrusion, thereby controlling the relative position between the conductive component and the pen tube. The lifting component can fit the conductive component into the pen tube. During the assembly process, there is no need to manually observe the relative position between the pen tube and the conductive component. The positioning is reliable and simple, thereby reducing the difficulty of operation and improving the efficiency of operation. Moreover, the installation position of the conductive component is more reliable and the fitting effect is highly consistent, which greatly improves the production efficiency.

[0006] In one alternative embodiment, the carrier is provided with a receiving groove for accommodating the conductive element, and the carrier surface is configured as the bottom surface of the receiving groove.

[0007] Beneficial effects: It can improve the positioning reliability between conductive components and conductive component installation equipment, prevent the conductive components from moving relative to the bearing surface, and thus improve the installation accuracy of conductive components.

[0008] In one optional embodiment, the outer peripheral surface of the insertion segment is provided with a positioning protrusion, and the positioning protrusion and the bearing surface are spaced apart along the circumferential direction of the insertion segment.

[0009] Beneficial effects: It can locate the relative positions of the insertion segment and the pen tube in the circumferential direction of the insertion segment, thereby locating the relative positions of the conductive component and the pen tube in the circumferential direction of the insertion segment, further improving the consistency of the bonding effect and reducing the risk of misalignment.

[0010] In one alternative embodiment, the lifting protrusion is configured in an arc shape on the side facing the bearing surface.

[0011] Beneficial effects: The side of the lifting protrusion facing the bearing surface is adapted to the shape of the inner wall of the pen tube. When the lifting protrusion presses the conductive component against the inner wall of the pen tube, the conductive component can fully fit against the inner wall surface of the pen tube, thereby improving the reliability of the fit between the conductive component and the inner wall surface of the pen tube.

[0012] In one alternative embodiment, the lifting member includes: a force guide inserted into the cavity and extending from the exposed section; and a pressure head connected to the force guide and at least a portion of which is elastic, the lifting protrusion being formed on the elastic portion of the pressure head.

[0013] Beneficial effects: Operators can transmit driving force to the pressure head through the force guide, so that the lifting protrusion is formed on the elastic part of the pressure head, ensuring elastic contact between the lifting protrusion and the conductive part, and reducing the probability of the conductive part being damaged by pressure.

[0014] In one optional embodiment, the conductive component mounting device further includes: an operating component, having a first connecting end and a second connecting end, the first connecting end being connected to the exposed section, the second connecting end being connected to the portion of the force guide component exposed from the cavity, and the first connecting end and the second connecting end being movable relative to each other.

[0015] Beneficial effects: Operators can drive the lifting component and the bearing component to move relative to each other through the operating components, thereby moving the lifting protrusion within the through hole and increasing the convenience of operation.

[0016] In one optional embodiment, the operating element includes: a first rotating arm having a first rotating portion located between its two ends, and a first connecting end formed in the first rotating arm; and a second rotating arm having a second rotating portion located between its two ends, the first rotating portion and the first rotating portion being rotatably connected, and the second connecting end being formed in the second rotating arm.

[0017] Beneficial effects: The operator can hold the end of the first rotating arm away from the load-bearing component and the end of the second rotating arm away from the lifting component, which can act as a lever to amplify the operator's force. The operator can achieve the contact between the conductive component and the pen tube with less force.

[0018] In one optional embodiment, the limiting protrusion is provided with a limiting groove, and the first connecting end is inserted into the limiting groove.

[0019] Beneficial effects: It can achieve pre-positioning between the carrier and the first connecting end, which improves the installation accuracy between the carrier and the operating component on the one hand, and increases the contact area between the carrier and the operating component on the other hand, thereby improving the connection strength between the carrier and the operating component.

[0020] In one alternative embodiment, the limiting protrusion includes a partition located between the limiting groove and the bearing surface in the longitudinal direction of the bearing member.

[0021] Beneficial effects: It can separate the first rotating arm and the bearing surface, and limit the relative position of the first rotating arm and the bearing member in the length direction of the bearing member, thereby preventing the first rotating arm from contacting the conductive member and preventing the first rotating arm from damaging the conductive member.

[0022] In one optional embodiment, the force guide includes: a first connecting segment located outside the cavity and connected to the second connecting end; an intermediate segment connected to the intermediate segment and at least partially inserted into the cavity; and a second connecting segment connected to the intermediate segment and connected to the pressure head; wherein the width of the intermediate segment is smaller than the width of the first connecting end and larger than the width of the second connecting segment.

[0023] Beneficial effects: The wider first connecting section increases the contact area between the first connecting section and the second rotating arm, improving the connection reliability between the force guide and the second rotating arm. The narrower width of the middle section reduces the weight of the force guide, lowering costs, and also reduces the cross-sectional area of ​​the cavity, ensuring the structural strength of the load-bearing component. The narrower width of the second connecting section ensures the structural strength of the pressure head and prevents deformation under stress. Attached Figure Description

[0024] To more clearly illustrate the specific embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0025] Figure 1 This is a schematic diagram illustrating the cooperation between the conductive component mounting device and the pen tube in an embodiment of this utility model.

[0026] Figure 2 One of the cross-sectional views of the conductive component mounting device and pen tube according to an embodiment of the present utility model;

[0027] Figure 3This is a schematic diagram of the structure of the conductive component mounting device according to an embodiment of the present utility model;

[0028] Figure 4 This is a cross-sectional view of the conductive component mounting device according to an embodiment of the present utility model;

[0029] Figure 5 This is an exploded view of the conductive component mounting device according to an embodiment of the present utility model;

[0030] Figure 6 This is a second cross-sectional view of the conductive component mounting device and pen tube in an embodiment of the present utility model.

[0031] Figure 7 This is the third cross-sectional view of the conductive component mounting device and pen tube in an embodiment of this utility model.

[0032] Explanation of reference numerals in the attached figures:

[0033] 1. Conductive component installation equipment; 100. Bearing component; 110. Insertion section; 111. Through hole; 112. Bearing surface; 1410. Receiving groove; 113. Cavity; 114. Positioning protrusion; 120. Exposed section; 200. Lifting component; 210. Force guiding component; 211. First connecting section; 212. Intermediate section; 213. Second connecting section; 220. Pressure head; 221. Lifting protrusion; 222. Connecting groove; 300. Operating component; 310. First rotating arm; 311. First connecting end; 312. First rotating part; 320. Second rotating arm; 321. Second connecting end; 322. Second rotating part; 400. Limiting protrusion; 410. Limiting groove; 420. Partition plate;

[0034] 2. Conductive components; 21. Conductive film; 22. Protective film;

[0035] 3. Pen tube; 31. Groove. Detailed Implementation

[0036] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.

[0037] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are 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 are not intended to 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.

[0038] In the description of this utility model, "a plurality of" means two or more. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0039] In the description of this utility model, it should 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; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0040] The following is combined with Figures 1 to 5 The following describes embodiments of the present invention.

[0041] According to an embodiment of the present invention, a conductive component mounting device 1 is provided, which includes a support member 100, a limiting protrusion 400, and a lifting member 200.

[0042] like Figure 4 and Figure 5 As shown, the carrier 100 includes an insertion section 110 and an exposed section 120. The insertion section 110 is connected to the exposed section 120 and has a through hole 111. The carrier 100 has a cavity 113 and a bearing surface 112. The bearing surface 112 is at least partially located in the insertion section 110 and is used to support the conductive component 2. The through hole 111 penetrates the bearing surface 112. The cavity 113 communicates with the through hole 111 and penetrates the surface of the exposed section 120. A limiting protrusion 400 is provided on the outer peripheral surface of the exposed section 120. A lifting member 200 is inserted into the cavity 113 and extends from the exposed section 120. The lifting member 200 has a lifting protrusion 221, which is movably inserted into the through hole 111.

[0043] The conductive component mounting device 1 of this utility model can be applied to the assembly of electronic pens, specifically to the step of mounting the conductive component 2 of the electronic pen to the inner wall of the pen tube 3. The conductive component 2 includes a conductive film 21 and a protective film 22. The conductive film 21 can be made of copper foil or other conductive materials, and the protective film 22 can be release paper. One side of the conductive film 21 in the thickness direction is bonded to the protective film 22, and the other side of the conductive film 21 in the thickness direction is provided with conductive adhesive, which is bonded to the inner wall of the pen tube 3.

[0044] After the conductive film 21 is bonded to the pen tube 3, the protective film 22 is peeled off from the conductive film 21. To facilitate the removal of the protective film 22, the adhesive strength between the protective film 22 and the conductive film 21 is less than the adhesive strength between the conductive film 21 and the pen tube 3. Furthermore, the conductive film 21 can be 5mm × 5mm in size, and the protective film 22 can be 30mm × 5mm in size. By setting the size of the protective film 22 to be larger than that of the conductive film 21, it is not only easier to place the conductive component 2 on the bearing surface 112, but also the contact area between the conductive component 2 and the bearing surface 112 is increased, resulting in a more stable relative position between the conductive component 2 and the bearing surface 112.

[0045] For example, the steps of the conductive component mounting device 1 to mount the conductive component 2 onto the pen tube 3 are as follows:

[0046] First, insert the insertion section 110 into the pen tube 3 until the limiting protrusion 400 abuts against the pen tube 3, and the conductive component installation device 1 can no longer extend into the pen tube 3.

[0047] Then, by controlling the movement of the lifting protrusion 221 through the part of the lifting member 200 located outside the cavity 113, the lifting protrusion 221 lifts the conductive member 2 and attaches the conductive member 2 to the inner wall of the pen tube 3.

[0048] Finally, the insertion section 110 is removed from the pen tube 3, and the protective film 22 is peeled off the conductive film 21, thus completing the connection between the conductive component 2 and the pen tube 3.

[0049] When the conductive component 2 is installed on the bearing surface 112, the protective film 22 is in contact with the bearing surface 112, and the conductive film 21 is located on the side of the protective film 22 facing away from the bearing surface 112. The lifting protrusion 221 abuts against the part where the protective film 22 and the conductive film 21 are connected, and the conductive film 21 is pressed onto the inner wall of the pen tube 3 by the protective film 22. Furthermore, the bearing surface 112 can be a plane to prevent the conductive component 2 from sliding on the bearing surface 112, and the position of the conductive component 2 is more stable.

[0050] The conductive component installation device 1 of this utility model can limit the depth of the carrier 100 inserted into the pen tube 3 by limiting the protrusion 400, thereby controlling the relative position between the conductive component 2 and the pen tube 3. The lifting component 200 can fit the conductive component 2 into the pen tube 3. During the assembly process, there is no need to manually visually inspect the relative position between the pen tube 3 and the conductive component 2. The positioning is reliable and simple, thereby reducing the difficulty of operation and improving the efficiency of operation. Moreover, the installation position of the conductive component 2 is more reliable and the fitting effect is highly consistent, which greatly improves the production efficiency.

[0051] Specifically, the bearing surface 112 can extend to the exposed section 120. When the conductive element 2 is attached to the pen tube 3, a portion of the protective film 22 can be located outside the pen tube 3. The operator can apply a pulling force to the portion of the protective film 22 located outside the pen tube 3 to separate the protective film 22 and the conductive film 21.

[0052] The cavity 113 extends along the length of the carrier 100 and penetrates the end face of the exposed section 120 away from the insertion section 110.

[0053] Furthermore, such as Figure 6 and Figure 7 As shown, the outer peripheral surface of the insertion section 110 is designed to fit the inner wall of the pen tube 3. That is, the outer peripheral surface of the insertion section 110 is roughly arc-shaped and has no sharp edges. Compared with the prior art, which uses tweezers to install the conductive film 21, the conductive component installation device 1 of this utility model is less likely to scratch the pen tube 3, reduces the risk of scratching the pen tube 3, and helps to ensure the aesthetic appearance.

[0054] like Figures 3-5 As shown, in some embodiments, the carrier 100 is provided with a receiving groove 1410 for accommodating the conductive element 2, and the bearing surface 112 is configured as the bottom surface of the receiving groove 1410. This improves the positioning reliability between the conductive element 2 and the conductive element mounting device 1, prevents the conductive element 2 from moving relative to the bearing surface 112, and thus improves the installation accuracy of the conductive element 2.

[0055] like Figure 3 , Figures 5-7 As shown, in some embodiments, the outer peripheral surface of the insertion segment 110 is provided with a positioning protrusion 114, which is spaced apart from the bearing surface 112 along the insertion segment 110. The pen tube 3 is provided with a groove 31 that mates with the positioning protrusion 114. Through the engagement of the positioning protrusion 114 and the groove 31, the relative positions of the insertion segment 110 and the pen tube 3 in the circumferential direction of the insertion segment 110 can be positioned, thereby positioning the relative positions of the conductive component 2 and the pen tube 3 in the circumferential direction of the insertion segment 110, further improving the consistency of the bonding effect and reducing the risk of misalignment.

[0056] Furthermore, such as Figure 6As shown, there can be two positioning protrusions 114. The two positioning protrusions 114 are symmetrically arranged on opposite sides of the insertion section 110. The distance between the two positioning protrusions 114 and the bearing surface 112 is the same, which increases the positioning reliability.

[0057] Alternatively, the outer peripheral surface of the positioning protrusion 114 can be constructed as an arc shape, and the groove 31 can be adapted to the shape of the positioning protrusion 114, thereby ensuring that the thickness of the area of ​​the pen tube 3 with the groove 31 is uniform and avoiding local areas being too thin.

[0058] like Figure 4 and Figure 5 As shown, in some embodiments, the lifting member 200 includes a force guide 210 and a pressure head 220. The force guide 210 is inserted into the cavity 113 and extends from the exposed section 120. The pressure head 220 is connected to the force guide 210 and at least a portion of it is elastic. A lifting protrusion 221 is formed on the elastic portion of the pressure head 220.

[0059] By setting the force guide 210, which can be a rigid structure, the operator can transmit driving force to the pressure head 220 through the force guide 210, ensuring the effective transmission of driving force and reliably controlling the movement of the lifting protrusion 221 within the through hole 111. By setting the pressure head 220 and forming the lifting protrusion 221 on the elastic part of the pressure head 220, elastic contact between the lifting protrusion 221 and the conductive element 2 is ensured, reducing the probability of the conductive element 2 being damaged by pressure.

[0060] For example, one part of the pressure head 220 is made of elastic material, and another part of the pressure head 220 is made of rigid material. The rigid part of the pressure head 220 is in contact with the force guide 210 and is welded by laser spot welding. The elastic part of the pressure head 220 can be made of rubber or silicone material, and the rigid part of the pressure head 220 can be made of metal or rigid plastic. The elastic part and the rigid part of the pressure head 220 can be injection molded into an integral structure.

[0061] like Figure 6 and Figure 7 As shown, in some embodiments, the side of the lifting protrusion 221 facing the bearing surface 112 is constructed in an arc shape. In this way, the side of the lifting protrusion 221 facing the bearing surface 112 is adapted to the shape of the inner wall of the pen tube 3. When the lifting protrusion 221 presses the conductive element 2 against the inner wall of the pen tube 3, the conductive element 2 can fully fit against the inner wall surface of the pen tube 3, thereby improving the reliability of the fit between the conductive element 2 and the inner wall surface of the pen tube 3.

[0062] like Figures 1-5As shown, in some embodiments, the conductive component mounting device 1 further includes an operating component 300, which has a first connecting end 311 and a second connecting end 321. The first connecting end 311 is connected to the exposed section 120, and the second connecting end 321 is connected to the portion of the lifting component 200 exposed from the cavity 113. The first connecting end 311 and the second connecting end 321 are movable relative to each other.

[0063] For example, the first connecting end 311 and the exposed section 120 can be welded into a single structure, and the second connecting end 321 and the lifting member 200 can be welded into a single structure to increase the structural stability of the conductive component mounting device 1.

[0064] In this way, the operator can drive the lifting member 200 and the bearing member 100 to move relative to each other through the operating component 300, thereby causing the lifting protrusion 221 to move within the through hole 111, increasing the convenience of operation.

[0065] Specifically, the operating member 300 includes a first rotating arm 310 and a second rotating arm 320. The first rotating arm 310 has a first rotating portion 312 located between its two ends, and a first connecting end 311 is formed on the first rotating arm 310. The second rotating arm 320 has a second rotating portion 322 located between its two ends. The first rotating portion 312 and the second rotating portion 322 are rotatably connected, and a second connecting end 321 is formed on the second rotating arm 320.

[0066] In this way, the operating component 300 forms an "X"-shaped structure, allowing the operator to hold the end of the first rotating arm 310 away from the bearing component 100 and the end of the second rotating arm 320 away from the lifting component 200. This can act as a lever, amplifying the operator's force. The operator can achieve the contact between the conductive component 2 and the pen tube 3 with less force, and the structure of the operating component 300 is relatively simple.

[0067] like Figure 5 As shown, in some embodiments, the limiting protrusion 400 is provided with a limiting groove 410, and the first connecting end 311 is inserted into the limiting groove 410, that is, the first rotating arm 310 is inserted into the limiting groove 410. In this way, pre-positioning between the carrier 100 and the first connecting end 311 can be achieved, which on the one hand improves the installation accuracy between the carrier 100 and the operating member 300, and on the other hand increases the contact area between the carrier 100 and the operating member 300, thereby improving the connection strength between the carrier 100 and the operating member 300.

[0068] Furthermore, the limiting protrusion 400 includes a partition 420, which is located between the limiting groove 410 and the bearing surface 112 in the length direction of the bearing member 100. Thus, the partition 420 separates the first rotating arm 310 from the bearing surface 112, defining the relative positions of the first rotating arm 310 and the bearing member 100 in the length direction of the bearing member 100, thereby preventing the first rotating arm 310 from contacting the conductive member 2 and preventing damage to the conductive member 2 by the first rotating arm 310.

[0069] like Figure 5 As shown, in some embodiments, the force guide 210 includes a first connecting segment 211, an intermediate segment 212, and a second connecting segment 213. The first connecting segment 211 is located outside the cavity 113 and connected to the second connecting end 321, i.e., the first connecting segment 211 is connected to the second rotating arm 320. The intermediate segment 212 is connected to the first connecting segment 211 and is at least partially inserted into the cavity 113. The second connecting segment 213 is connected to the intermediate segment 212 and the pressure head 220, i.e., the first connecting segment 211, the intermediate segment 212, and the second connecting segment 213 are connected sequentially along the length direction of the force guide 210. The width of the intermediate segment 212 is greater than the width of the second connecting segment 213, and the width of the intermediate segment 212 is less than the width of the first connecting end 311.

[0070] In this way, the width of the first connecting segment 211 is relatively large, which increases the contact area between the first connecting segment 211 and the second rotating arm 320, thereby improving the connection reliability between the force guide 210 and the second rotating arm 320. Setting the width of the intermediate segment 212 to be smaller than the width of the first connecting segment 211 can reduce the weight of the force guide 210 and reduce costs, and can also reduce the cross-sectional area of ​​the cavity 113 to ensure the structural strength of the load-bearing component 100.

[0071] The pressure head 220 is provided with a connecting groove 222, and the second connecting section 213 is inserted into the connecting groove 222. Since the width of the second connecting section 213 is smaller than the width of the middle section 212, the size of the connecting groove 222 can also be smaller, which ensures the structural strength of the pressure head 220 and avoids the pressure head 220 from deforming under force.

[0072] Although embodiments of the present invention have been described in conjunction with the accompanying drawings, those skilled in the art can make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations all fall within the scope defined by the appended claims.

Claims

1. A conductive component mounting device, characterized in that, include: The carrier (100) includes an insertion section (110) and an exposed section (120). The insertion section (110) is connected to the exposed section (120) and is provided with a through hole (111). The carrier (100) is provided with a cavity (113) and a bearing surface (112). The bearing surface (112) is at least partially provided in the insertion section (110) for bearing a conductive element (2). The through hole (111) penetrates the bearing surface (112). The cavity (113) communicates with the through hole (111) and penetrates the surface of the exposed section (120). A limiting protrusion (400) is provided on the outer peripheral surface of the exposed section (120); A lifting member (200) is inserted into the cavity (113) and extends from the exposed section (120). The lifting member (200) has a lifting protrusion (221) that is movably inserted into the through hole (111).

2. The conductive component mounting device according to claim 1, characterized in that, The support member (100) is provided with a receiving groove (1410) for accommodating the conductive member (2), and the support surface (112) is configured as the bottom surface of the receiving groove (1410).

3. The conductive component mounting device according to claim 1, characterized in that, The outer peripheral surface of the insertion section (110) is provided with a positioning protrusion (114), and the positioning protrusion (114) and the bearing surface (112) are spaced apart along the circumferential direction of the insertion section (110).

4. The conductive component mounting device according to claim 1, characterized in that, The lifting protrusion (221) facing the bearing surface (112) is arc-shaped.

5. The conductive component mounting device according to any one of claims 1-4, characterized in that, The lifting component (200) includes: A force guide (210) is inserted into the cavity (113) and extends from the exposed section (120); The pressure head (220) is connected to the force guide (210) and at least a portion of it is elastic, and the lifting protrusion (221) is formed on the elastic portion of the pressure head (220).

6. The conductive component mounting device according to claim 5, characterized in that, Also includes: The operating component (300) is provided with a first connecting end (311) and a second connecting end (321). The first connecting end (311) is connected to the exposed section (120), and the second connecting end (321) is connected to the portion of the force guide (210) exposed from the cavity (113). The first connecting end (311) and the second connecting end (321) are movable relative to each other.

7. The conductive component mounting device according to claim 6, characterized in that, The operating element (300) includes: The first rotating arm (310) is provided with a first rotating part (312) located between its two ends, and the first connecting end (311) is formed in the first rotating arm (310); The second rotating arm (320) has a second rotating part (322) located between its two ends, the first rotating part (312) and the first rotating part (312) are rotatably connected, and the second connecting end (321) is formed in the second rotating arm (320).

8. The conductive component mounting device according to claim 6, characterized in that, The limiting protrusion (400) is provided with a limiting groove (410), and the first connecting end (311) is inserted into the limiting groove (410).

9. The conductive component mounting device according to claim 8, characterized in that, The limiting protrusion (400) includes a partition (420) located axially between the limiting groove (410) and the bearing surface (112) of the bearing member (100).

10. The conductive component mounting device according to claim 6, characterized in that, The force guiding element (210) includes: The first connecting segment (211) is located outside the cavity (113) and connected to the second connecting end (321); Intermediate section (212), connected to the intermediate section (212) and at least partially inserted into the cavity (113); The second connecting section (213) is connected to the intermediate section (212) and to the pressure head (220); The width of the middle segment (212) is smaller than the width of the first connecting end (311) and larger than the width of the second connecting segment (213).