A silicon chip structure with strong impact resistance

Through the design of the protective shell structure and multi-stage impact protection structure, the problem of insufficient impact resistance during use of silicon chips is solved, multi-layer protection is achieved, and impact resistance and stability are enhanced.

CN114883276BActive Publication Date: 2025-08-12WUXI THUNDER MICROELECTRONICS CO LTD
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Patent Information

Application Number
CN202210542380.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-05-17
Publication Date
2025-08-12
Estimated Expiration
2042-05-17

AI Technical Summary

Technical Problem

The existing silicon chips have limited impact resistance during use and lack effective impact protection structures.

Method used

The design adopts a protective shell structure and a multi-stage impact-resistant protection structure, including a protective bottom shell, a reserved unloading loading hole, a through groove, a mounting step, a force-removing impact-resistant protection bracket module, a contact protective top cover, a heat sink, a first and second impact-resistant bumps and a protective plate, forming a multi-layer impact-resistant protection.

Benefits of technology

It significantly improves the impact resistance of the silicon chip, avoids damage to the chip by impact pressure, and ensures stability and protection effect.

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Abstract

The present invention discloses a silicon chip structure with strong impact resistance, which relates to the field of silicon chip technology. The present invention includes a carrying shell structure, a multi-segment impact protection structure and a silicon chip body. The inner side of the carrying shell structure is fixedly connected to the silicon chip body by screws, and the top of the carrying shell structure is fixedly connected to the multi-segment impact protection structure. The carrying shell structure includes a carrying protection bottom shell, a reserved force unloading carrying hole, a through groove and a fitting step. The present invention uses the coordinated design of the carrying shell structure and the multi-segment impact protection structure to facilitate the device to form impact protection for the silicon chip body after being assembled and fixed, thereby greatly improving the stability of the application. Moreover, through the coordinated design of the first impact-resistant convex beam, the second impact-resistant convex beam and the force unloading impact protection bracket module, the device facilitates the formation of multiple sections of different impact protection effects on the silicon chip body, thereby avoiding the impact pressure from causing impact damage to the silicon chip body.
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Description

Technical Field

[0001] The present invention relates to the technical field of silicon chips, in particular to a silicon chip structure with strong impact resistance. Background Art

[0002] Chips play a big role in our daily lives. The mobile phones, computers, and home appliances we use all contain chips. Silicon chips are chips made mainly of silicon. In order to protect the silicon chips, auxiliary mounting structures are often added to the outside of the silicon chips. However, the existing silicon chips have limited impact resistance during use, and lack corresponding impact-resistant silicon chips plus auxiliary mounting structures. Summary of the Invention

[0003] The purpose of the present invention is to provide a silicon chip structure with strong impact resistance to solve the existing problem: the existing silicon chip has limited impact resistance during use and lacks a corresponding impact-resistant silicon chip plus auxiliary mounting structure.

[0004] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a silicon chip structure with strong impact resistance, comprising a carrying shell structure, a multi-section anti-impact protection structure and a silicon chip body, the inner side of the carrying shell structure is fixedly connected to the silicon chip body by screws, and the top of the carrying shell structure is fixedly connected to the multi-section anti-impact protection structure.

[0005] Preferably, the carrying protective shell structure includes a carrying protective bottom shell, reserved force unloading carrying holes, a through slot and a mounting step. The inner sides of the four ends of the carrying protective bottom shell are provided with reserved force unloading carrying holes, the inner side of the carrying protective bottom shell is provided with a mounting step, the inner side of the mounting step is provided with a through slot, the mounting step is clamped with a multi-section anti-impact protective structure, and the bottom end of the multi-section anti-impact protective structure is connected to the circuit board through the through slot.

[0006] Preferably, the multi-stage anti-impact protection structure includes a force unloading anti-impact protection bracket module, a contact protection top cover, a heat dissipation groove, a first anti-impact convex beam and a second anti-impact convex beam. The inner side of the reserved force unloading mounting hole is fixedly connected with the force unloading anti-impact protection bracket module, the top of the force unloading anti-impact protection bracket module is fixedly connected with the contact protection top cover, the inner side of the contact protection top cover is provided with a plurality of heat dissipation grooves, the top of the contact protection top cover is fixedly connected with the first anti-impact convex beam and the second anti-impact convex beam, the first anti-impact convex beam and the second anti-impact convex beam are cross-fixed, and the heat dissipation groove is used to form airflow for protecting the multi-stage anti-impact protection structure while forming ventilation cooling.

[0007] Preferably, the first anti-impact convex beam and the second anti-impact convex beam are both bridge-type, and the inner sides of the first anti-impact convex beam and the inner sides of the second anti-impact convex beam are fixedly connected with protective plates, and the protective plates include carbon fiber plates, damping rubber plates, metal plates and honeycomb spring steel plates, and the bottom end of the carbon fiber plate is provided with a damping rubber plate, the bottom end of the damping rubber plate is provided with a metal plate, and the bottom end of the metal plate is provided with a honeycomb spring steel plate.

[0008] Preferably, the force unloading and anti-impact protection bracket module includes a matching base force unloading module and a branch force unloading module, and the top end of the matching base force unloading module is fixedly connected to the branch force unloading module.

[0009] Preferably, the fitting base force unloading module includes a fitting base body, a force-guiding slide rod, an auxiliary fitting platform, a first spring and a stabilizing support sleeve. The top of the fitting base body is welded with a force-guiding slide rod, the top of the force-guiding slide rod is fixedly connected to the auxiliary fitting platform, the top of the auxiliary fitting platform is fixedly connected to the stabilizing support sleeve, the bottom end of the auxiliary fitting platform is welded with a first spring, and the force-guiding slide rod is slidably connected to the inner side of the fitting base body.

[0010] Preferably, the sub-guide and unloading force module includes a carrying fitting column, a sub-guide and unloading force column, an extrusion guide block, a second spring, an auxiliary force transmission rod and a contact force platform. The top of the auxiliary fitting platform is fixedly connected with the carrying fitting column, the top of the carrying fitting column is fixedly connected with the sub-guide and unloading force column, the top of the carrying fitting column is welded with a second spring, the top of the second spring is welded with an auxiliary force transmission rod, the top of the auxiliary force transmission rod is welded with a contact force platform, and the peripheral side of the sub-guide and unloading force column is provided with an extrusion guide block.

[0011] Preferably, the sub-guide and unloading force module also includes a first sub-guide push block, a first flip pull rod, a force transmission pressure plate, a positioning carrying plate, a second flip pull rod and a third spring. The peripheral side surface of the auxiliary force transmission rod is welded with the first sub-guide push block, the outer side of the first sub-guide push block is rotatably connected to the first flip pull rod, the end of the first flip pull rod away from the first sub-guide push block is rotatably connected to the force transmission pressure plate, the peripheral side surface of the carrying mounting column is fixedly connected to the positioning carrying plate, the outer side of the positioning carrying plate is rotatably connected to the second flip pull rod, the end of the second flip pull rod away from the positioning carrying plate is slidably connected to the force transmission pressure plate, one end of the third spring is fixedly connected to the stabilizing support sleeve, and the other end of the third spring is welded to the force transmission pressure plate.

[0012] In the event of an impact that is not offset by the first and second anti-shock convex beams, the force is squeezed to the contact force-bearing platform through the contact protection top cover, so that the contact force-bearing platform derives the auxiliary force transmission rod to slide on the inner side of the sub-guide and unloading force column, so that the auxiliary force transmission rod drives the first sub-guide push block to descend, so that the first sub-guide push block slides on the inner side of the extrusion force guide block, and the descent of the first sub-guide push block drives the adjustment of the angle of the first flip pull rod to form a change, so that the first flip pull rod drives the force transmission pressure plate to derive displacement, and the cooperation of the second flip pull rod and the positioning carrier plate forms an auxiliary guide for the force transmission pressure plate, and the force is pressurized to the third spring;

[0013] The force that is not offset by the force distribution module is transmitted to the auxiliary assembly platform, so that the auxiliary assembly platform guides the force guide slide bar and the first spring to be pressed down synchronously, thereby forming a second impact protection, which greatly improves the overall impact resistance effect.

[0014] Compared with the prior art, the present invention has the following beneficial effects:

[0015] 1. The present invention adopts a protective shell structure and a multi-stage anti-impact protection structure, which makes it easy to assemble and fix the silicon chip body to form anti-impact protection, thereby greatly improving the stability of the application.

[0016] 2. The present invention adopts the coordinated design of the first anti-impact convex beam, the second anti-impact convex beam and the force-unloading anti-impact protection bracket module, so that the device can easily form multiple sections of different anti-impact protection effects on the silicon chip body, thereby avoiding impact damage to the silicon chip body caused by impact pressure. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0018] Figure 1 It is a schematic structural diagram of the present invention as a whole;

[0019] Figure 2 A side view of the present invention as a whole;

[0020] Figure 3 This is a schematic diagram of the partial structure of the present invention equipped with a protective shell structure and a multi-stage anti-impact protection structure;

[0021] Figure 4 This is a partial structural diagram of the force unloading and impact resistant protection bracket module of the present invention;

[0022] Figure 5This is a partial structural diagram of the base unloading module equipped with the present invention;

[0023] Figure 6 This is a partial structural diagram of the force distribution module of the present invention;

[0024] Figure 7 This is a structural cross-sectional view of the impact-resistant convex beam of the present invention.

[0025] In the figure: 1. Mounting shell structure; 2. Multi-stage impact protection structure; 3. Silicon chip body; 4. Mounting protection bottom shell; 5. Reserved force unloading mounting hole; 6. Through slot; 7. Mounting step; 8. Force unloading and impact protection bracket module; 9. Contact protection top cover; 10. Heat dissipation slot; 11. First impact-resistant convex beam; 12. Second impact-resistant convex beam; 13. Mounting base force unloading module; 14. Sub-guided unloading module; 15. Mounting base body; 16. Force guide slide bar; 17. Auxiliary mounting platform ; 18. First spring; 19. Stabilizing support sleeve; 20. Mounting column; 21. Sub-guide and unloading force column; 22. Extrusion guide block; 23. Second spring; 24. Auxiliary force transmission rod; 25. Contact force platform; 26. First sub-guide block; 27. First flip pull rod; 28. Force transmission pressure plate; 29. Positioning mounting plate; 30. Second flip pull rod; 31. Third spring; 32. Carbon fiber plate; 33. Damping rubber plate; 34. Metal plate; 35. Honeycomb spring steel plate. DETAILED DESCRIPTION

[0026] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0027] See also Figure 1-7 A silicon chip structure with strong impact resistance includes a carrying shell structure 1, a multi-segment anti-impact protection structure 2 and a silicon chip body 3. The inner side of the carrying shell structure 1 is fixedly connected to the silicon chip body 3 by screws, and the top of the carrying shell structure 1 is fixedly connected to the multi-segment anti-impact protection structure 2.

[0028] The carrying shell structure 1 includes a carrying protective bottom shell 4, a reserved unloading carrying hole 5, a through slot 6 and a mounting step 7. The inner side of the four ends of the carrying protective bottom shell 4 is provided with a reserved unloading carrying hole 5, the inner side of the carrying protective bottom shell 4 is provided with a mounting step 7, and the inner side of the mounting step 7 is provided with a through slot 6. The mounting step 7 is clamped with the multi-stage anti-impact protective structure 2, and the bottom end of the multi-stage anti-impact protective structure 2 is connected to the circuit board through the through slot 6;

[0029] During use, the multi-segment anti-shock protection structure 2 is placed at the assembly stage 7, so that the multi-segment anti-shock protection structure 2 is connected to the circuit board through the through slot 6, so that the multi-segment anti-shock protection structure 2 can provide adequate anti-shock protection without affecting the use effect of the multi-segment anti-shock protection structure 2;

[0030] The multi-stage anti-impact protection structure 2 includes a force unloading anti-impact protection bracket module 8, a contact protection top cover 9, a heat dissipation groove 10, a first anti-impact convex beam 11 and a second anti-impact convex beam 12. The inner side of the reserved force unloading mounting hole 5 is fixedly connected with the force unloading anti-impact protection bracket module 8, the top of the force unloading anti-impact protection bracket module 8 is fixedly connected with the contact protection top cover 9, a plurality of heat dissipation grooves 10 are opened on the inner side of the contact protection top cover 9, the top of the contact protection top cover 9 is fixedly connected with the first anti-impact convex beam 11 and the second anti-impact convex beam 12, the first anti-impact convex beam 11 and the second anti-impact convex beam 12 are cross-fixed, and the heat dissipation groove 10 is used to form airflow for protecting the multi-stage anti-impact protection structure 2 while forming ventilation and cooling;

[0031] The first anti-shock convex beam 11 and the second anti-shock convex beam 12 are both bridge-shaped. The inner side of the first anti-shock convex beam 11 and the inner side of the second anti-shock convex beam 12 are fixedly connected with a protective plate. The protective plate includes a carbon fiber plate 32, a damping rubber plate 33, a metal plate 34 and a honeycomb spring steel plate 35. The damping rubber plate 33 is provided at the bottom end of the carbon fiber plate 32, the metal plate 34 is provided at the bottom end of the damping rubber plate 33, and the honeycomb spring steel plate 35 is provided at the bottom end of the metal plate 34.

[0032] During use, the force-unloading anti-impact protection bracket module 8 forms an elastic support for the contact protection top cover 9, and the first anti-impact convex beam 11 and the second anti-impact convex beam 12 cooperate to form auxiliary impact protection for the multi-section anti-impact protection structure 2;

[0033] When the top transmits an impact, the impact force points are on the first anti-impact convex beam 11 and the second anti-impact convex beam 12. When the impact reaches the first anti-impact convex beam 11 and the second anti-impact convex beam 12, the carbon fiber plate 32 is used to form a protective bearing for the force. In order to avoid excessive force, the force is transmitted to the damping rubber plate 33. The flexible material of the damping rubber plate 33 is used to form a preliminary damping elastic support to avoid force shaking. The damping rubber plate 33 is used to pressurize the secondary force to the metal plate 34. The metal plate 34 and the honeycomb spring steel plate 35 are used to form a secondary coordinated force unloading for the force. The layered unloading design of a hard layer and a soft layer greatly improves the overall application impact resistance effect.

[0034] The force unloading and anti-impact protection bracket module 8 includes a mounting base force unloading module 13 and a branch force unloading module 14. The top of the mounting base force unloading module 13 is fixedly connected to the branch force unloading module 14.

[0035] The mounting base force unloading module 13 includes a mounting base body 15, a force-guiding slide 16, an auxiliary mounting platform 17, a first spring 18, and a stabilizing support sleeve 19. The top of the mounting base body 15 is welded with the force-guiding slide 16, the top of the force-guiding slide 16 is fixedly connected to the auxiliary mounting platform 17, the top of the auxiliary mounting platform 17 is fixedly connected to the stabilizing support sleeve 19, the bottom of the auxiliary mounting platform 17 is welded with the first spring 18, and the force-guiding slide 16 is slidably connected to the inner side of the mounting base body 15.

[0036] The sub-unloading force module 14 includes a carrying fitting column 20, a sub-unloading force column 21, an extrusion force guide block 22, a second spring 23, an auxiliary force transmission rod 24 and a contact force platform 25. The top of the auxiliary fitting platform 17 is fixedly connected to the carrying fitting column 20, the top of the carrying fitting column 20 is fixedly connected to the sub-unloading force column 21, the top of the carrying fitting column 20 is welded to the second spring 23, the top of the second spring 23 is welded to the auxiliary force transmission rod 24, the top of the auxiliary force transmission rod 24 is welded to the contact force platform 25, and the side surface of the sub-unloading force column 21 is provided with an extrusion force guide block 22.

[0037] The force-unloading module 14 further includes a first sub-guide push block 26, a first flip pull rod 27, a force transmission pressure plate 28, a positioning carrying plate 29, a second flip pull rod 30 and a third spring 31. The first sub-guide push block 26 is welded to the peripheral side surface of the auxiliary force transmission rod 24. The outer side of the first sub-guide push block 26 is rotatably connected to the first flip pull rod 27. The end of the first flip pull rod 27 away from the first sub-guide push block 26 is rotatably connected to the force transmission pressure plate 28. The peripheral side surface of the mounting column 20 is fixedly connected to the positioning carrying plate 29. The outer side of the positioning carrying plate 29 is rotatably connected to the second flip pull rod 30. The end of the second flip pull rod 30 away from the positioning carrying plate 29 is slidably connected to the force transmission pressure plate 28. One end of the third spring 31 is fixedly connected to the stabilizing support sleeve 19, and the other end of the third spring 31 is welded to the force transmission pressure plate 28.

[0038] In the event of an impact that is not offset by the first anti-shock convex beam 11 and the second anti-shock convex beam 12, the force is squeezed to the contact force-bearing platform 25 through the contact protection top cover 9, so that the contact force-bearing platform 25 induces the auxiliary force transmission rod 24 to slide inside the sub-guide and unloading force column 21, so that the auxiliary force transmission rod 24 drives the first sub-guide push block 26 to descend, so that the first sub-guide push block 26 slides inside the extrusion force guide block 22, and the angle of the first flip pull rod 27 is adjusted by the descent of the first sub-guide push block 26 to change, so that the first flip pull rod 27 drives the force transmission pressure plate 28 to deduce the displacement, and the cooperation of the second flip pull rod 30 and the positioning carrier plate 29 forms an auxiliary guide for the force transmission pressure plate 28, so that the force is pressurized to the third spring 31;

[0039] The force that is not offset by the force distribution module 14 is transmitted to the auxiliary mounting platform 17, so that the auxiliary mounting platform 17 guides the force guide slide rod 16 and the first spring 18 to be pressed down synchronously, thereby forming a second anti-impact protection, which greatly improves the overall impact resistance effect.

[0040] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

Claims

1. A silicon chip structure with strong impact resistance, characterized by: The invention comprises a carrying shell structure (1), a multi-segment anti-impact protection structure (2) and a silicon chip body (3), wherein the inner side of the carrying shell structure (1) is fixedly connected to the silicon chip body (3) by screws, and the top of the carrying shell structure (1) is fixedly connected to the multi-segment anti-impact protection structure (2); The carrying protective shell structure (1) comprises a carrying protective bottom shell (4), a reserved unloading carrying hole (5), a through slot (6) and a mounting step (7), the inner sides of the four ends of the carrying protective bottom shell (4) are provided with reserved unloading carrying holes (5), the inner side of the carrying protective bottom shell (4) is provided with a mounting step (7), the inner side of the mounting step (7) is provided with a through slot (6), the mounting step (7) is clamped with the multi-stage anti-impact protective structure (2), and the bottom end of the multi-stage anti-impact protective structure (2) is connected to the circuit board through the through slot (6); The multi-segment anti-impact protection structure (2) comprises a force unloading anti-impact protection bracket module (8), a contact protection top cover (9), a heat dissipation groove (10), a first anti-impact convex beam (11) and a second anti-impact convex beam (12); the inner side of the reserved force unloading mounting hole (5) is fixedly connected to the force unloading anti-impact protection bracket module (8); the top of the force unloading anti-impact protection bracket module (8) is fixedly connected to the contact protection top cover (9); a plurality of heat dissipation grooves (10) are provided on the inner side of the contact protection top cover (9); the top of the contact protection top cover (9) is fixedly connected to the first anti-impact convex beam (11) and the second anti-impact convex beam (12); the first anti-impact convex beam (11) and the second anti-impact convex beam (12) are cross-fixed; the heat dissipation groove (10) is used to form airflow, and is used to protect the multi-segment anti-impact protection structure (2) while forming ventilation cooling.

2. The silicon chip structure with strong impact resistance according to claim 1, characterized in that: The first anti-impact convex beam (11) and the second anti-impact convex beam (12) are both bridge-shaped, and the inner side of the first anti-impact convex beam (11) and the inner side of the second anti-impact convex beam (12) are both fixedly connected with a protective plate, and the protective plate includes a carbon fiber plate (32), a damping rubber plate (33), a metal plate (34) and a honeycomb spring steel plate (35), the bottom end of the carbon fiber plate (32) is provided with a damping rubber plate (33), the bottom end of the damping rubber plate (33) is provided with a metal plate (34), and the bottom end of the metal plate (34) is provided with a honeycomb spring steel plate (35).

3. The silicon chip structure with strong impact resistance according to claim 2, characterized in that: The force unloading and impact-resistant protective bracket module (8) comprises a mounting base force unloading module (13) and a branch force unloading module (14), and the top end of the mounting base force unloading module (13) is fixedly connected to the branch force unloading module (14).

4. The silicon chip structure with strong impact resistance according to claim 3, characterized in that: The mounting base force unloading module (13) comprises a mounting base body (15), a force-guiding slide bar (16), an auxiliary mounting platform (17), a first spring (18) and a stabilizing support sleeve (19), wherein the top end of the mounting base body (15) is welded with a force-guiding slide bar (16), the top end of the force-guiding slide bar (16) is fixedly connected to the auxiliary mounting platform (17), the top end of the auxiliary mounting platform (17) is fixedly connected to the stabilizing support sleeve (19), the bottom end of the auxiliary mounting platform (17) is welded with a first spring (18), and the force-guiding slide bar (16) is slidably connected to the inner side of the mounting base body (15).

5. The silicon chip structure with strong impact resistance according to claim 4, characterized in that: The sub-unloading force module (14) comprises a mounting column (20), a sub-unloading force column (21), an extrusion force guide block (22), a second spring (23), an auxiliary force transmission rod (24) and a contact force receiving platform (25), wherein the top end of the auxiliary force transmission rod (17) is fixedly connected to the mounting column (20), the top end of the mounting column (20) is fixedly connected to the sub-unloading force column (21), the top end of the mounting column (20) is welded to the second spring (23), the top end of the second spring (23) is welded to the auxiliary force transmission rod (24), the top end of the auxiliary force transmission rod (24) is welded to the contact force receiving platform (25), and the peripheral side of the sub-unloading force column (21) is provided with an extrusion force guide block (22).

6. The silicon chip structure with strong impact resistance according to claim 5, characterized in that: The sub-guide unloading module (14) further comprises a first sub-guide push block (26), a first flip pull rod (27), a force transmission pressure plate (28), a positioning mounting plate (29), a second flip pull rod (30) and a third spring (31). The peripheral side surface of the auxiliary force transmission rod (24) is welded with the first sub-guide push block (26). The outer side of the first sub-guide push block (26) is rotatably connected to the first flip pull rod (27). The end of the first flip pull rod (27) away from the first sub-guide push block (26) is rotatably connected to the first flip pull rod (27). There is a force transmission pressure plate (28), the peripheral side surface of the mounting column (20) is fixedly connected to a positioning mounting plate (29), the outer side of the positioning mounting plate (29) is rotatably connected to a second flip pull rod (30), one end of the second flip pull rod (30) away from the positioning mounting plate (29) is slidably connected to the force transmission pressure plate (28), one end of the third spring (31) is fixedly connected to the stabilizing support sleeve (19), and the other end of the third spring (31) is welded to the force transmission pressure plate (28).

Citation Information

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