Highly damped anti-vibration pedestal for integrated circuits
By using a high-damping vibration-damping base design, the friction of the spherical rod and rubber sleeve is used to reduce vibration impact. Combined with the design of the conical block and clamping components, the problem of vibration resistance and heat dissipation of integrated circuit equipment during vibration is solved, realizing multi-directional vibration protection and all-round heat dissipation, and improving the vibration resistance and service life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JIANGSU RUIXIN INTEGRATED CIRCUIT EQUIP CO LTD
- Filing Date
- 2025-09-03
- Publication Date
- 2026-05-26
Smart Images

Figure CN121076015B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of integrated circuit equipment technology, specifically a high-damping vibration-damping base for integrated circuits. Background Technology
[0002] Integrated circuits, also known as microcircuits, microchips, or wafers / chips, are a method of miniaturizing circuits in electronics. They are often manufactured on the surface of semiconductor wafers. Analog integrated circuits include sensors, power control circuits, and operational amplifiers, which process analog signals and perform functions such as amplification, filtering, demodulation, and mixing. With the continuous development of technology, integrated circuits are widely used in people's daily lives; for example, computers, mobile phones, and most modern home appliances use integrated circuits.
[0003] The prior art document CN215171844U discloses a high-damping seismic-resistant base for integrated circuit equipment. This application discloses a high-damping seismic-resistant base for integrated circuit equipment, including a lower base, a positioning groove, and an upper base. The positioning groove is formed on the top surface of the lower base, and the upper base is embedded inside the positioning groove. A support foot is fixedly installed on the lower base, and an anti-slip pad is attached to the bottom surface of the support foot. This application overcomes the shortcomings of the prior art. The first and second spring positioning posts can not only greatly increase the damping effect when the upper base moves relative to the lower base, but also significantly reduce the vibration frequency when the upper base moves relative to the lower base, preventing damage to the integrated circuit equipment under vibration. It has excellent seismic resistance and strong protection. The heat dissipation mesh can dissipate the heat generated during the operation of the integrated circuit equipment, ensuring seismic resistance without affecting the heat dissipation performance of the equipment itself, and has high practicality.
[0004] Although the above-mentioned application can prevent integrated circuit equipment from being damaged by vibration, the upper base in the above-mentioned application is in a suspended state during operation. When the integrated circuit equipment vibrates in a suspended state, the direction of movement is irregular. The above-mentioned application can only resist vibration in the lateral direction. When the equipment generates tilting vibration, the upper base may come into contact with the lower base, affecting the vibration resistance of the integrated circuit equipment. Summary of the Invention
[0005] To address the issue of a relatively singular seismic resistance direction mentioned in the background art, this invention provides a high-damping vibration-damping base for integrated circuits.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a high-damping vibration-damping base for integrated circuits, comprising a lower base, wherein four fixed cylinders are fixedly connected to the inner wall of the lower base, and spring sliding columns are slidably connected to the inner wall of the fixed cylinders; and further comprising a high-damping vibration-damping mechanism, wherein the high-damping vibration-damping mechanism comprises four first blocks fixedly connected to the bottom of the inner wall of the lower base, a first spherical rod rotatably connected to the top of the first block, an elastic damper fixedly connected to the top of the first spherical rod, a second spherical rod fixedly connected to the top of the elastic damper, a second block rotatably connected to the top of the second spherical rod, and a protective component provided on the top of the second block for protecting the integrated circuit equipment.
[0007] Preferably, the protective assembly includes an upper base fixedly connected to the top of the second block, the upper base being arranged in a single configuration, and a rubber sleeve fixedly connected to the outer wall of the upper base, the outer wall of the rubber sleeve contacting one end of the spring sliding column.
[0008] Preferably, four conical blocks are fixedly connected to the bottom of the upper base, the bottom of the conical blocks contacts a square bladder, the bottom of the square bladder is fixedly connected to a connecting plate, four vertical rods are fixedly connected to the bottom of the connecting plate, and a lifting plate is fixedly connected to the bottom of the vertical rods.
[0009] Preferably, a square box is slidably connected to the outer wall of the lifting plate, the bottom of the square box is fixedly connected to the bottom of the inner wall of the lower base, and four first compression springs are fixedly connected to the bottom of the lifting plate, with the bottom of the first compression springs fixedly connected to the bottom of the inner wall of the square box.
[0010] Preferably, the inner wall of the square box is provided with a clamping assembly, the clamping assembly including a condenser fixedly connected to the center of the bottom of the inner wall of the square box, and four flexible hoses are connected to the outer wall of the square box around its perimeter.
[0011] Preferably, the top end of the hose is connected to a vertical box, the bottom of the vertical box is fixedly connected to the bottom of the inner wall of the upper base, a sliding plate is slidably connected to the inner wall of the vertical box, one end of the sliding plate is fixedly connected to a second compression spring, and one end of the second compression spring is fixedly connected to one side of the inner wall of the vertical box.
[0012] Preferably, a connecting cylinder is fixedly connected to the inner wall of the sliding plate, a positioning box is fixedly connected to one end of the connecting cylinder, a first flexible square ring is fixedly connected to the outer wall of the positioning box, and multiple round holes are opened on the side of the positioning box near the first flexible square ring.
[0013] Preferably, the outer wall of the positioning box is provided with a heat dissipation assembly, which includes a fixed box fixedly connected to both ends of the outer wall of the positioning box, and a piston plate slidably connected to the inner wall of the fixed box.
[0014] Preferably, a positioning block is fixedly connected to one side of the piston plate, one end of the positioning block passes through the fixed box and extends to the outside of the fixed box, and a second flexible square ring is fixedly connected to one side of the outer wall of the fixed box.
[0015] Preferably, a round tube is fixedly connected to the inner wall of the connecting cylinder, one end of the round tube is connected to the inner wall of the positioning box, and both ends of the inner wall of the positioning box are connected to exhaust pipes, one end of the exhaust pipes extending into the interior of the fixed box.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0017] This invention employs a high-damping vibration damping mechanism. The integrated circuit device is placed inside an upper base and positioned by four first flexible square rings in the clamping assembly. During operation, when the integrated circuit device is subjected to vibration, the upper base vibrates. The force on the upper base is transmitted to the second block, second spherical rod, elastic damper, first spherical rod, and first block. This causes the elastic damper to extend and retract, mitigating the impact of vibration. Because multiple second and first spherical rods can rotate around the second and first blocks, the mechanism can mitigate the impact of irregular vibrations in multiple directions, reducing the vibration frequency of the upper base relative to the lower base and effectively minimizing the impact of vibration on the device. This not only protects the integrated circuit device from vibration damage but also extends its lifespan and improves its reliability. When the upper base vibrates irregularly, the upper base drives the rubber sleeve to move. During the movement of the rubber sleeve, it will come into contact with one end of the spring sliding column, causing the spring sliding column to slide inside the fixed cylinder, further reducing the impact force generated when the upper base moves. In addition, since the rubber sleeve is made of rubber, when the rubber sleeve comes into contact with the spring sliding column, the friction between the two increases, which indirectly reduces the amplitude of the vibration of the upper base.
[0018] This invention employs a high-damping vibration-damping mechanism. When the upper base vibrates irregularly, it causes the conical blocks to tilt and sway irregularly. The four conical blocks, regardless of their direction of movement, press down on the square chamber. The square chamber lowers the connecting plate and vertical rod, which in turn compresses the airflow inside the chamber via a lifting plate. Due to the condenser, the airflow inside the chamber is converted into cold air. This cold air then enters a flexible hose through the chamber, then a circular tube through the hose and vertical box, and finally a positioning box. The cold air is then discharged through a circular hole in the positioning box, thus cooling the integrated circuit equipment during operation. The square chamber also prevents direct contact between the conical blocks and the connecting plate, ensuring that the vibration force generated by the upper base is not transmitted to the lower base, preventing damage to the equipment caused by vibration transmission.
[0019] This invention employs a high-damping vibration-damping mechanism. During operation, the integrated circuit device is tightly clamped by multiple first flexible square rings. While cold air dissipates heat through the circular holes, it cannot pass through the blockage of the first flexible square rings to cool other areas of the device. Instead, the cold air enters the exhaust pipe and the interior of the fixed box through the positioning box. The cold air pushes the piston plate inside the fixed box, causing it to slide. The piston plate drives the positioning block to press and position the integrated circuit device. The reaction force from the integrated circuit device causes the fixed box to move closer to the vertical box. The positioning box then drives the connecting cylinder and sliding plate to slide inside the vertical box. Simultaneously, the positioning box causes the first flexible square rings to gradually move away from the integrated circuit device, no longer tightly fitted. At this point, the cold air is no longer blocked, and the diffused cold air can comprehensively dissipate heat from the outer wall of the integrated circuit device, ensuring comprehensive heat dissipation. When the internal temperature of the integrated circuit device is too high, other components within the device may vibrate due to thermal expansion. At this point, the temperature inside the integrated circuit device is reduced, which in turn reduces the vibration generated by the integrated circuit device. The cold air no longer circulates and is elastically compressed by the second compression spring, causing the sliding plate to move inside the vertical box. This indirectly causes the first flexible square ring in the clamping assembly to clamp and position the integrated circuit device again, and then the above work is repeated in sequence. Attached Figure Description
[0020] Figure 1 This is a top view of the overall structure of the present invention;
[0021] Figure 2 This is a schematic cross-sectional view of the lower base structure of the present invention;
[0022] Figure 3 This is a schematic cross-sectional view of the base structure of the present invention;
[0023] Figure 4 This is a schematic diagram of the side structure of the conical block of the present invention;
[0024] Figure 5 For the present invention Figure 4 Enlarged view of A in the middle;
[0025] Figure 6 This is a top view schematic diagram of the first flexible square ring structure of the present invention;
[0026] Figure 7 This is a schematic cross-sectional view of the vertical box structure of the present invention;
[0027] Figure 8 For the present invention Figure 7 A magnified view of B in the middle.
[0028] In the diagram: 1. Lower base; 2. Fixed cylinder; 3. Spring sliding column; 4. High-damping vibration damping mechanism; 41. First block; 42. Elastic damper; 43. Second block; 44. Protective assembly; 45. Clamping assembly; 46. Heat dissipation assembly; 47. First spherical rod; 48. Second spherical rod; 441. Upper base; 442. Rubber sleeve; 443. Conical block; 444. Square bladder; 445. Connecting plate; 446. Vertical rod; 4 47. Lifting plate; 448. Square box; 449. First compression spring; 451. Condenser; 452. Hose; 453. Vertical box; 454. Sliding plate; 455. Second compression spring; 456. Connecting cylinder; 457. Positioning box; 458. First flexible square ring; 459. Round hole; 461. Fixed box; 462. Piston plate; 463. Positioning block; 464. Second flexible square ring; 465. Round pipe; 466. Exhaust pipe. Detailed Implementation
[0029] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0030] like Figures 1 to 8 As shown, the present invention provides a high-damping vibration-damping base for integrated circuits, including a lower base 1, four fixed cylinders 2 are fixedly connected to the inner wall of the lower base 1, and spring sliding columns 3 are slidably connected to the inner wall of the fixed cylinders 2.
[0031] The high-damping vibration damping mechanism 4 includes four first blocks 41 fixedly connected to the bottom of the inner wall of the lower base 1. The top of the first block 41 is rotatably connected to a first spherical rod 47. The top of the first spherical rod 47 is fixedly connected to an elastic damper 42. The top of the elastic damper 42 is fixedly connected to a second spherical rod 48. The top of the second spherical rod 48 is rotatably connected to a second block 43. The top of the second block 43 is provided with a protective component 44 for protecting the integrated circuit equipment.
[0032] The protective component 44 includes an upper base 441 fixedly connected to the top of the second block 43. The upper base 441 is arranged in a single position, and a rubber sleeve 442 is fixedly connected to the outer wall of the upper base 441. The outer wall of the rubber sleeve 442 contacts one end of the spring sliding column 3.
[0033] The above solution works as follows: when the upper base 441 vibrates irregularly, it causes the rubber sleeve 442 to move accordingly. During this movement, the rubber sleeve 442 contacts one end of the spring sliding column 3, causing the spring sliding column 3 to slide within the fixed cylinder 2, thereby further reducing the impact force generated when the upper base 441 vibrates. Because the rubber sleeve 442 is made of rubber, the frictional force increases when it contacts the spring sliding column 3, thus reducing the vibration amplitude.
[0034] Four conical blocks 443 are fixedly connected to the bottom of the upper base 441. The bottom of the conical blocks 443 contacts a square bladder 444. A connecting plate 445 is fixedly connected to the bottom of the square bladder 444. Four vertical rods 446 are fixedly connected to the bottom of the connecting plate 445. A lifting plate 447 is fixedly connected to the bottom of the vertical rods 446.
[0035] By adopting the above solution, the square bladder 444 effectively avoids direct contact between the conical block 443 and the connecting plate 445, thereby ensuring that the vibration force generated by the upper base 441 will not be transmitted to the lower base 1, effectively preventing damage to the equipment caused by vibration.
[0036] A square box 448 is slidably connected to the outer wall of the lifting plate 447. The bottom of the square box 448 is fixedly connected to the bottom of the inner wall of the lower base 1. Four first compression springs 449 are fixedly connected to the bottom of the lifting plate 447. The bottom of the first compression springs 449 is fixedly connected to the bottom of the inner wall of the square box 448.
[0037] The above solution works as follows: when the upper base 441 vibrates irregularly, it causes the conical blocks 443 to tilt and sway. With four conical blocks 443 in place, pressure can be applied to the square bladder 444 regardless of the direction of movement, thereby causing the connecting plate 445 and the vertical rod 446 to press down. The vertical rod 446 pushes the lifting plate 447, compressing the airflow inside the square box 448.
[0038] like Figures 1 to 8As shown, the inner wall of the box 448 is provided with a clamping assembly 45, which includes a condenser 451 fixedly connected to the center of the bottom of the inner wall of the box 448, and four hoses 452 are connected to the outer wall of the box 448.
[0039] The top end of the hose 452 is connected to the vertical box 453. The bottom of the vertical box 453 is fixedly connected to the bottom of the inner wall of the upper base 441. The inner wall of the vertical box 453 is slidably connected to the sliding plate 454. One end of the sliding plate 454 is fixedly connected to the second compression spring 455. One end of the second compression spring 455 is fixedly connected to one side of the inner wall of the vertical box 453.
[0040] A connecting cylinder 456 is fixedly connected to the inner wall of the sliding plate 454. A positioning box 457 is fixedly connected to one end of the connecting cylinder 456. A first flexible square ring 458 is fixedly connected to the outer wall of the positioning box 457. Multiple round holes 459 are opened on the side of the positioning box 457 near the first flexible square ring 458.
[0041] The above scheme involves placing the integrated circuit device within the upper base 441 and centering it using four first flexible square rings 458 in the clamping assembly 45. During operation, if the device is subjected to vibration, the upper base 441 will vibrate, and the force will be transmitted to the second block 43, the second spherical rod 48, the elastic damper 42, the first spherical rod 47, and the first block 41. At this time, the elastic damper 42 mitigates the impact force generated by the vibration through its extension and retraction. Multiple second spherical rods 48 and first spherical rods 47 move in a circular motion around the second block 43 and the first block 41, thereby effectively mitigating the impact force caused by multi-directional vibration of the integrated circuit device, reducing the vibration frequency, and minimizing the impact of vibration on the device.
[0042] The outer wall of the positioning box 457 is provided with a heat dissipation assembly 46, which includes a fixed box 461 fixedly connected to both ends of the outer wall of the positioning box 457, and a piston plate 462 slidably connected to the inner wall of the fixed box 461.
[0043] A positioning block 463 is fixedly connected to one side of the piston plate 462. One end of the positioning block 463 passes through the fixed box 461 and extends to the outside of the fixed box 461. A second flexible square ring 464 is fixedly connected to one side of the outer wall of the fixed box 461.
[0044] A round tube 465 is fixedly connected to the inner wall of the connecting cylinder 456. One end of the round tube 465 is connected to the inner wall of the positioning box 457. Both ends of the inner wall of the positioning box 457 are connected to exhaust pipes 466. One end of the exhaust pipe 466 extends into the interior of the fixed box 461.
[0045] The above solution involves the integrated circuit device being tightly clamped by multiple first flexible square rings 458. Cold air enters through the round holes 459, preventing direct heat dissipation. The cold air enters the positioning box 457 and pushes the piston plate 462 inside the fixed box 461. The piston plate 462 drives the positioning block 463 to press and position the integrated circuit device. The reaction force of the device causes the fixed box 461 to move the positioning box 457 closer to the vertical box 453, which in turn causes the connecting cylinder 456 and the sliding plate 454 to slide within the vertical box 453, gradually moving away from the integrated circuit device and releasing the cold air blockage. The cold air is then fully distributed to the outer wall of the integrated circuit device, ensuring effective heat dissipation.
[0046] Working principle and usage process of this invention:
[0047] The integrated circuit device is placed inside the upper base 441 and positioned by the four first flexible square rings 458 in the clamping assembly 45. During operation, when the integrated circuit device is subjected to vibration, the upper base 441 vibrates. The force on the upper base 441 is transmitted to the second block 43, the second spherical rod 48, the elastic damper 42, the first spherical rod 47, and the first block 41. This causes the elastic damper 42 to extend and retract, mitigating the impact force generated during vibration. Since the multiple second spherical rods 48 and the first spherical rod 47 can rotate around the second block 43 and the first block 41, the device can mitigate the impact force in multiple directions when the integrated circuit device experiences irregular vibrations. This reduces the vibration frequency of the upper base 441 relative to the lower base 1, effectively reducing the impact of vibration on the device. This not only protects the integrated circuit device from vibration damage but also extends its service life and improves its reliability. When the upper base 441 vibrates irregularly, it drives the rubber sleeve 442 to move. During the movement of the rubber sleeve 442, it will come into contact with one end of the spring sliding column 3, causing the spring sliding column 3 to slide inside the fixed cylinder 2, further reducing the impact force generated when the upper base 441 moves. When the rubber sleeve 442 contacts the spring sliding column 3, the friction between the two increases, which indirectly reduces the amplitude generated when the upper base 441 vibrates.
[0048] When the upper base 441 vibrates irregularly, it causes the conical block 443 to tilt and sway irregularly. Through the four conical blocks 443, the square bladder 444 can be pressed down in any direction when the conical blocks 443 move. The square bladder 444 causes the connecting plate 445 and the vertical rod 446 to descend. The vertical rod 446 causes the lifting plate 447 to compress the airflow inside the square box 448. Due to the condenser 451, the airflow inside the square box 448 is converted into cold air. The cold air enters the inside of the hose 452 through the square box 448. The cold air enters the inside of the round tube 465 through the hose 452 and the vertical box 453. The cold air enters the inside of the positioning box 457 through the round tube 465. The cold air is discharged outward through the round hole 459 opened in the positioning box 457, thereby dissipating heat from the integrated circuit equipment in operation. The square bladder 444 prevents the conical block 443 from directly contacting the connecting plate 445, ensuring that the vibration force generated by the upper base 441 is not transmitted to the lower base 1, thus avoiding damage to the equipment caused by the transmission of vibration.
[0049] When the integrated circuit device is operating, it is tightly clamped by multiple first flexible square rings 458. At this time, while the cold air dissipates heat from the integrated circuit device through the circular hole 459, it cannot pass through the blockage of the first flexible square rings 458 to dissipate heat to other areas of the integrated circuit device. Instead, the cold air enters the exhaust pipe 466 and the interior of the fixed box 461 through the positioning box 457. The cold air pushes the piston plate 462 inside the fixed box 461, causing the piston plate 462 to slide inside the fixed box 461. The piston plate 462 drives the positioning block 463 to press against the integrated circuit... The circuit equipment is squeezed and positioned. The reaction force from the integrated circuit equipment causes the fixed box 461 to move the positioning box 457 closer to the vertical box 453. The positioning box 457 then moves the connecting cylinder 456 and the sliding plate 454 inside the vertical box 453. Simultaneously, the positioning box 457 moves the first flexible square ring 458 away from the integrated circuit equipment, no longer tightly fitted. At this point, the cold air is no longer blocked, and the diffused cold air can comprehensively dissipate heat from the outer wall of the integrated circuit equipment, ensuring comprehensive heat dissipation. When the internal temperature of the integrated circuit equipment is too high, other components within the integrated circuit equipment may vibrate due to thermal expansion. When the internal temperature of the integrated circuit equipment is lowered, the vibration is reduced. The cold air, no longer circulating, is elastically compressed by the second compression spring 455, causing the sliding plate 454 to move inside the vertical box 453. This indirectly causes the first flexible square ring 458 in the clamping assembly 45 to clamp and position the integrated circuit equipment again. This process is then repeated sequentially.
[0050] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0051] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A high-damping vibration-damping base for an integrated circuit, comprising a lower base (1), wherein four fixed cylinders (2) are fixedly connected to the inner wall of the lower base (1) on all four sides, and spring sliding columns (3) are slidably connected to the inner wall of the fixed cylinders (2), characterized in that: It also includes a high-damping vibration damping mechanism (4), which includes four first blocks (41) fixedly connected to the bottom of the inner wall of the lower base (1). The top of the first block (41) is rotatably connected to a first spherical rod (47). The top of the first spherical rod (47) is fixedly connected to an elastic damper (42). The top of the elastic damper (42) is fixedly connected to a second spherical rod (48). The top of the second spherical rod (48) is rotatably connected to a second block (43). The top of the second block (43) is provided with a protective component (44) for protecting the integrated circuit equipment. The protective assembly (44) includes an upper base (441) fixedly connected to the top of the second block (43). The upper base (441) is arranged in a single configuration. A rubber sleeve (442) is fixedly connected to the outer wall of the upper base (441). The outer wall of the rubber sleeve (442) contacts one end of the spring sliding column (3). Four conical blocks (443) are fixedly connected to the bottom of the upper base (441). The bottom of the conical blocks (443) contacts a square bladder (444). A connecting plate (445) is fixedly connected to the bottom of the square bladder (444). Four vertical rods (446) are fixedly connected to the bottom of the connecting plate (445). A lifting plate (447) is fixedly connected to the bottom of the vertical rods (446).
2. The high-damping vibration-damping base for integrated circuits according to claim 1, characterized in that: The outer wall of the lifting plate (447) is slidably connected to a square box (448), the bottom of the square box (448) is fixedly connected to the bottom of the inner wall of the lower base (1), and four first compression springs (449) are fixedly connected around the bottom of the lifting plate (447), the bottom of the first compression springs (449) is fixedly connected to the bottom of the inner wall of the square box (448).
3. The high-damping vibration-damping base for integrated circuits according to claim 2, characterized in that: The inner wall of the box (448) is provided with a clamping assembly (45), the clamping assembly (45) includes a condenser (451) fixedly connected to the center of the bottom of the inner wall of the box (448), and four flexible hoses (452) are connected to the outer wall of the box (448) around its perimeter.
4. The high-damping vibration-damping base for integrated circuits according to claim 3, characterized in that: The top end of the hose (452) is connected to a vertical box (453), the bottom of the vertical box (453) is fixedly connected to the bottom of the inner wall of the upper base (441), a sliding plate (454) is slidably connected to the inner wall of the vertical box (453), a second compression spring (455) is fixedly connected to one end of the sliding plate (454), and one end of the second compression spring (455) is fixedly connected to one side of the inner wall of the vertical box (453).
5. The high-damping vibration-damping base for integrated circuits according to claim 4, characterized in that: The inner wall of the sliding plate (454) is fixedly connected to a connecting cylinder (456), one end of the connecting cylinder (456) is fixedly connected to a positioning box (457), the outer wall of the positioning box (457) is fixedly connected to a first flexible square ring (458), and the positioning box (457) has multiple round holes (459) on the side near the first flexible square ring (458).
6. The high-damping vibration-damping base for integrated circuits according to claim 5, characterized in that: The outer wall of the positioning box (457) is provided with a heat dissipation assembly (46), the heat dissipation assembly (46) includes a fixed box (461) fixedly connected to both ends of the outer wall of the positioning box (457), and a piston plate (462) is slidably connected to the inner wall of the fixed box (461).
7. The high-damping vibration-damping base for integrated circuits according to claim 6, characterized in that: A positioning block (463) is fixedly connected to one side of the piston plate (462). One end of the positioning block (463) passes through the fixed box (461) and extends to the outside of the fixed box (461). A second flexible square ring (464) is fixedly connected to one side of the outer wall of the fixed box (461).
8. The high-damping vibration-damping base for integrated circuits according to claim 7, characterized in that: The inner wall of the connecting cylinder (456) is fixedly connected to a round tube (465), one end of which is connected to the inner wall of the positioning box (457). Both ends of the inner wall of the positioning box (457) are connected to an exhaust pipe (466), one end of which extends into the interior of the fixed box (461).