Paster structure for semiconductor inductor

By designing clamping anti-shake and top limiting mechanisms, the problem of inductor patch damage due to shaking during transportation was solved, achieving stable fixing and limiting of inductor patch and improving equipment stability.

CN223884241UActive Publication Date: 2026-02-06HUIZHOU WANCI ELECTRONICS
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202520709327.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2026-02-06
Estimated Expiration
2035-04-15

AI Technical Summary

Technical Problem

Existing semiconductor inductor pads are easily damaged during transportation due to bumpy roads, affecting equipment stability.

Method used

A semiconductor inductor patch structure is designed, including a clamping anti-shake mechanism and a top limiting mechanism. Through the cooperation of components such as connecting shaft, rotating shaft, threaded cylinder, threaded sleeve, and clamping plate, the inductor patch is fixed and limited to prevent shaking.

Benefits of technology

This effectively prevents the inductor patch from being damaged by shaking during transportation, thus improving the stability and reliability of the equipment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223884241U_ABST
    Figure CN223884241U_ABST
Patent Text Reader

Abstract

The utility model relates to the field of chip mounting for inductors, and provides a chip mounting structure for semiconductor inductors, which comprises a placement box, a protection plate is hinged to the top of the placement box, a clamping anti-shaking mechanism is arranged in the protection plate, the clamping anti-shaking mechanism comprises a connecting shaft, the connecting shaft penetrates through the side surface of the placement box, and the clamping anti-shaking mechanism is arranged on the side surface of the placement box. The circumferential surface of the connecting shaft is fixedly connected with a rotating shaft, and the circumferential surface of the rotating shaft is fixedly connected with a threaded cylinder. The rotating force of the connecting shaft drives the rotating shaft, the threaded cylinder, the threaded sleeve, the connecting block, the clamping plate, the handle and other assemblies to be matched with one another, the handle fixed to the circumferential face of the connecting shaft is rotated, and therefore the connecting shaft is driven to rotate and drives the rotating shaft fixed to the circumferential face to rotate; the rotating shaft rotates to drive the threaded cylinder fixed to the circumferential face to rotate, shaking is prevented in the conveying process of the inductor patches, and the inductor patches are prevented from being damaged.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The utility model relates to the field of inductance patch, specifically, relates to a semiconductor inductance patch structure. BACKGROUND

[0002] Under the trend of modern electronic equipment constantly miniaturization, high performance, semiconductor inductance as an important electronic component, plays an indispensable role. It is widely used in such as smart mobile phone, tablet computer, wearable device and various wireless communication modules and other products, bears the energy storage, filtering, signal conversion and other key functions, directly influences the overall performance and stability of electronic equipment.

[0003] But the prior art in the process of running inductance patch, when encountering bumpy section, inductance patch is prone to shaking, thereby leading to inductance patch is damaged, and it is to be improved, therefore we put forward a kind of semiconductor inductance patch structure. UTILITY MODEL CONTENT

[0004] The utility model provides a semiconductor inductance patch structure.

[0005] The technical scheme of the utility model is as follows: a semiconductor inductance patch structure, including the placement box, the top of the placement box is hinged with the protection plate, the inside of the protection plate is provided with clamping anti-shaking mechanism;

[0006] The clamping anti-shaking mechanism includes connecting shaft, the connecting shaft is penetrated in the side of placement box, the circumferential surface of connecting shaft is fixedly connected with the rotating shaft, the circumferential surface of rotating shaft is fixedly connected with the threaded barrel, the circumferential surface of threaded barrel is threadedly connected with the threaded sleeve, the circumferential surface of threaded sleeve is fixedly connected with the connecting block, the positive side of connecting block is fixedly connected with the clamping plate.

[0007] The circumferential surface of connecting shaft is fixedly connected with the handle, and the inner wall bottom of placement box is fixedly connected with the limiting plate, the design of handle is favorable for the operation of staff.

[0008] The clamping plate is slidably connected to the inner wall bottom of the placement box, the clamping anti-shaking mechanism is provided as a plurality of, and is linearly arrayed in the inside of the placement box, and the clamping plate is slidably connected to the inner wall bottom of the placement box, and the design of threaded sleeve is favorable for making linear motion.

[0009] The connecting shaft is penetrated in the side of placement box, and is rotationally connected with the placement box, and the above design is favorable for enhancing the stability of rotating shaft.

[0010] The top of the clamping plate is provided with a top limiting mechanism, the top limiting mechanism comprises a fixed plate, the fixed plate is fixedly connected to the top of the clamping plate, a sliding groove is formed in the top of the fixed plate, a bidirectional rack is slidably connected to the inner wall of the sliding groove, and a contact plate is fixedly connected to the bottom of the bidirectional rack.

[0011] A groove is formed in the top of the fixed plate, a spring is fixedly connected to the inner side wall of the groove, and a limiting block is fixedly connected to the end, away from the groove, of the spring.

[0012] The side section of the limiting block is in an arc shape, and the bidirectional rack is located on the movement track of the limiting block, so that the height of the contact plate can be conveniently adjusted by the staff.

[0013] The limiting block is slidably connected to the inner side wall of the groove, and the side section of the fixed plate is in an L shape, so that the stability of the sliding of the bidirectional rack is improved.

[0014] The working principle and beneficial effects of the utility model are as follows:

[0015] 1. The rotating force of the connecting shaft drives the rotation of the connecting shaft, the rotation of the rotating shaft fixed on the circumference of the connecting shaft, and the rotation of the threaded cylinder fixed on the circumference of the rotating shaft, so that the inductance patch is prevented from shaking during transportation and is prevented from being damaged.

[0016] 2. The sliding force of the bidirectional rack drives the cooperation of the fixed plate, the sliding groove, the groove, the limiting block, the spring and the contact plate, so that the fixed plate is moved when the clamping plate moves, the fixed plate on the top is moved when the clamping plate is clamped, the bidirectional rack on the inner side wall of the sliding groove is pressed downward by the staff, the bidirectional rack slides downward on the inner side wall of the sliding groove, and the top of the inductance patch is limited during clamping of the two sides of the inductance patch.

[0017] Of course, any product implementing the utility model does not necessarily need to achieve all the advantages described above. BRIEF DESCRIPTION OF DRAWINGS

[0018] The utility model will be further described in detail in combination with the drawings and specific embodiments.

[0019] Fig. 1 It is a structure schematic view of the first perspective three-dimensional appearance of the utility model;

[0020] Fig. 2 It is the structure schematic view of the first perspective three-dimensional placement box of the utility model;

[0021] Fig. 3 It is the structure schematic view of the three-dimensional structure at the three-dimensional rotating shaft of the first perspective of the utility model;

[0022] Fig. 4 It is the structure schematic view of the three-dimensional structure at the bidirectional rack of the utility model;

[0023] Fig. 5 It is the structure schematic view of the three-dimensional enlarged structure of the utility model Fig. 4 A.

[0024] In the figure: 1, placement box; 2, protective plate; 3, clamping anti-shaking mechanism; 31, connecting shaft; 32, rotating shaft; 33, threaded cylinder; 34, threaded sleeve; 35, connecting block; 36, clamping plate; 37, handle; 38, limiting plate; 4, top limiting mechanism; 41, fixed plate; 42, sliding groove; 43, groove; 44, spring; 45, limiting block; 46, bidirectional rack; 47, contact plate. DETAILED DESCRIPTION

[0025] The technical solutions in the embodiments of the utility model will be clearly and completely described below, obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by the ordinary skilled in the art without creative labor are involved in the scope of the utility model protection.

[0026] Embodiment 1

[0027] As Figs. 1-5 shown, the embodiment provides a patch structure for semiconductor inductance, which comprises a placement box 1, the top of the placement box 1 is hingedly connected with a protective plate 2, and the inside of the protective plate 2 is provided with a clamping anti-shaking mechanism 3.

[0028] The clamping anti-shaking mechanism 3 comprises a connecting shaft 31, the connecting shaft 31 penetrates through the side surface of the placement box 1, the circumferential surface of the connecting shaft 31 is fixedly connected with a rotating shaft 32, the circumferential surface of the rotating shaft 32 is fixedly connected with a threaded cylinder 33, the circumferential surface of the threaded cylinder 33 is threadedly connected with a threaded sleeve 34, the circumferential surface of the threaded sleeve 34 is fixedly connected with a connecting block 35, and the front side surface of the connecting block 35 is fixedly connected with a clamping plate 36.

[0029] The circumferential surface of the connecting shaft 31 is fixedly connected with a handle 37, and the inner wall bottom of the placement box 1 is fixedly connected with a limiting plate 38; the handle 37 is beneficial to facilitate the operation of the staff.

[0030] The clamping plate 36 is slidably connected to the bottom of the inner wall of the placement box 1. Multiple clamping anti-shaking mechanisms 3 are arranged in a linear array inside the placement box 1. The design of the clamping plate 36 being slidably connected to the bottom of the inner wall of the placement box 1 is conducive to the linear movement of the threaded sleeve 34.

[0031] The connecting shaft 31 runs through the side of the placement box 1 and is rotatably connected to the placement box 1. This design helps to enhance the stability of the rotating shaft 32.

[0032] In this embodiment, when the operator needs to clamp the transported inductor patch, the operator places the inductor patch inside the placement box 1, so that the inductor patch contacts the side of the limiting plate 38. At the same time, the operator rotates the handle 37 fixed on the circumferential surface of the connecting shaft 31, thereby driving the connecting shaft 31 to rotate. The rotation of the connecting shaft 31 drives the rotating shaft 32 fixed on the circumferential surface to rotate. The rotation of the rotating shaft 32 drives the threaded cylinder 33 fixed on the circumferential surface to rotate. When the threaded cylinder 33 rotates, it drives the two threaded sleeves 34 threadedly connected on the circumferential surface to move relative to each other. At this time, the clamping plate 36 sliding on the bottom of the inner wall of the placement box 1 slides, thereby causing the threaded sleeves 34 to move linearly closer to each other. When the two threaded sleeves 34 approach each other, they drive the connecting block 35 fixed on the circumferential surface to move. The movement of the connecting block 35 drives the clamping plate 36 fixed on the front side to move, contacting the side of the inductor patch, thereby clamping it.

[0033] Example 2

[0034] like Figs. 1-5 As shown, based on the same concept as Embodiment 1 above, this embodiment also proposes that a top limiting mechanism 4 is provided on the top of the clamping plate 36. The top limiting mechanism 4 includes a fixing plate 41, which is fixedly connected to the top of the clamping plate 36. A sliding groove 42 is provided on the top of the fixing plate 41. A bidirectional rack 46 is slidably connected to the inner wall of the sliding groove 42. A contact plate 47 is fixedly connected to the bottom of the bidirectional rack 46. The above design is beneficial for limiting the top of the inductor patch.

[0035] The top of the fixing plate 41 has a groove 43, and a spring 44 is fixedly connected to the inner side wall of the groove 43. A limit block 45 is fixedly connected to the end of the spring 44 away from the groove 43. The design of the limit block 45 is conducive to limiting the bidirectional rack 46 and preventing displacement.

[0036] The side section of the limiting block 45 is set to be arc-shaped, and the bidirectional rack 46 is located on the movement trajectory of the limiting block 45. The above design is conducive to the staff adjusting the height of the contact plate 47.

[0037] The limiting block 45 is slidably connected to the inner wall of the groove 43, and the side section of the fixing plate 41 is set to L-shape. The above design is beneficial to enhance the stability of the sliding of the bidirectional rack 46.

[0038] In the embodiment, finally when the clamping plate 36 moves to drive the fixed plate 41 fixed on the top to move, when the clamping plate 36 completes clamping, at this time, the staff presses the bidirectional rack 46 sliding on the inner side wall of the sliding groove 42 downward, so that the bidirectional rack 46 slides downward on the inner side wall of the sliding groove 42, when the bidirectional rack 46 slides downward, the limiting block 45 fixed on the other end of the spring 44 is extruded, so that the spring 44 is in a tense state, and the limiting block 45 slides to the inside of the recess 43, when the bidirectional rack 46 slides downward, the contact plate 47 fixed on the bottom is driven to move to limit the top of the inductance patch, when the limiting is completed, the bidirectional rack 46 does not extrude the limiting block 45, at this time, the spring 44 is reset according to the elasticity of the spring 44, so as to drive the limiting block 45 to reset, and the limiting of the bidirectional rack 46 is completed, so that the displacement of the defined bidirectional rack 46 is prevented.

[0039] The above is only a preferred embodiment of the utility model, and is not used to limit the utility model, and any modification, equivalent replacement, improvement and the like within the spirit and principle of the utility model should be included in the protection scope of the utility model.

Claims

1. A patch structure for semiconductor inductors, characterized in that, Including the placement box (1), the top of the placement box (1) is hinged with a protective plate (2), and the inside of the protective plate (2) is provided with a clamping anti-shaking mechanism (3); The clamping anti-shaking mechanism (3) includes a connecting shaft (31) penetrating through the side of the placement box (1), a rotating shaft (32) fixedly connected to the circumference of the connecting shaft (31), a threaded cylinder (33) fixedly connected to the circumference of the rotating shaft (32), a threaded sleeve (34) threadedly connected to the circumference of the threaded cylinder (33), a connecting block (35) fixedly connected to the circumference of the threaded sleeve (34), and a clamping plate (36) fixedly connected to the front side of the connecting block (35).

2. The semiconductor inductor patch structure according to claim 1, wherein The circumference of the connecting shaft (31) is fixedly connected with a handle (37), and the inner wall bottom of the placement box (1) is fixedly connected with a limiting plate (38).

3. The semiconductor inductor patch structure according to claim 2, wherein The clamping plate (36) is slidingly connected to the inner wall bottom of the placement box (1), the clamping anti-shaking mechanism (3) is provided in plurality and arranged in linear array inside the placement box (1).

4. The semiconductor inductor patch structure according to claim 3, wherein The connecting shaft (31) penetrates through the side of the placement box (1) and is rotatably connected with the placement box (1).

5. The semiconductor inductor patch structure according to claim 4, wherein The top of the clamping plate (36) is provided with a top limiting mechanism (4), the top limiting mechanism (4) includes a fixed plate (41) fixedly connected to the top of the clamping plate (36), a sliding groove (42) formed in the top of the fixed plate (41), a bidirectional rack (46) slidingly connected to the inner wall of the sliding groove (42), and a contact plate (47) fixedly connected to the bottom of the bidirectional rack (46).

6. The semiconductor inductor patch structure according to claim 5, wherein The top of the fixed plate (41) is provided with a recess (43), the inner side wall of the recess (43) is fixedly connected with a spring (44), and the end of the spring (44) away from the recess (43) is fixedly connected with a limiting block (45).

7. A semiconductor inductor patch structure according to claim 6, wherein The side section of the limiting block (45) is arc-shaped, and the bidirectional rack (46) is located on the movement track of the limiting block (45).

8. The semiconductor inductor patch structure according to claim 7, wherein The limiting block (45) is slidingly connected to the inner side wall of the recess (43), and the side section of the fixed plate (41) is L-shaped.