Bearing device for quantum chip
Through the design of double crank rocker and multi-link drive mechanism, the quantum chip can be quickly pressed, positioned and released, which solves the problem of troublesome disassembly and assembly in the existing technology and improves disassembly and assembly efficiency and operation convenience.
Patent Information
- Application Number
- CN202511017954.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-23
- Publication Date
- 2025-10-17
AI Technical Summary
Existing quantum chip carriers are difficult to operate during assembly and disassembly, requiring multiple clamping and positioning mechanisms to be loosened and tightened step by step, resulting in low assembly and disassembly efficiency.
Using two sets of double-crank rocker mechanisms and a multi-link drive mechanism, the synchronous swinging of the L-shaped pressure blocks at four locations can be achieved through single-handed operation. Combined with the spring reverse thrust effect, the quantum chip can be quickly compressed, positioned and released.
The efficiency of disassembly and assembly of quantum chips is improved, the operation is convenient and labor-saving, the operation difficulty is reduced, and the accuracy and convenience of installation are improved.
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Figure CN120809689A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of chip mounting, in particular to a bearing device for a quantum chip. BACKGROUND
[0002] When the quantum chip is used on the mainboard of the device adapted thereto, it needs to be adapted and installed with the mainboard through the bearing device provided on the mainboard.
[0003] In the prior art, chip mounting technology has been widely studied, for example, the invention patent with the publication number CN114717082A discloses a chip mounting seat, which belongs to the field of PCR technology. The sliding limiting plate is slidably installed on the bottom plate and can abut against the edge of the PCR chip to lock the PCR chip in the chip mounting seat. The ejection assembly includes a first elastic member and a stop shaft. The first elastic member is installed on the bottom plate and abuts against the bottom plate and the stop shaft at both ends. The stop shaft is fixed to the sliding limiting plate. The stop shaft is provided with a buckle surface. The locking assembly includes a second elastic member and a locking shaft. The second elastic member abuts against the locking shaft and the bottom plate at both ends. The locking shaft is provided with a groove. The stop shaft is located in the groove. The elastic force of the second elastic member causes the groove edge to buckle with the buckle surface, so that the sliding limiting plate and the bottom plate are locked. The locking shaft moves along the axial direction under the action of external force to separate the groove edge from the buckle surface. The elastic force of the first elastic member causes the stop shaft to slide relative to the locking shaft, thereby driving the sliding limiting plate to slide relative to the bottom plate. The PCR chip is convenient to install or remove, and the operation is simple and will not damage the PCR chip.
[0004] The existing bearing device is configured with multiple mechanisms for pressing and positioning the quantum chip to ensure the stability of the bearing and installation of the quantum chip. However, the driving structure of these mechanisms is not reasonably optimized, which causes the multiple pressing and positioning mechanisms to be loosened and tightened in sequence when the quantum chip is disassembled and assembled, which is inconvenient to operate and indirectly reduces the disassembly and assembly efficiency of the quantum chip. SUMMARY
[0005] Therefore, the present application provides a bearing device for a quantum chip to solve the problem of low disassembly and assembly efficiency of the quantum chip.
[0006] The technical scheme provided by the present application is as follows: a bearing device for a quantum chip, specifically comprising a bottom disc, the bottom disc being integrally formed with a bearing mounting seat at the top end; The bearing mounting seat is used for mounting a quantum chip, and the quantum chip is composed of a chip main body and a chip base. The chip base is in abutting contact with the top end of the bearing mounting seat. Four U-shaped vertical support members are symmetrically fixed to the top end of the bearing mounting seat. Four L-shaped pressing blocks are symmetrically and rotatably installed in the top end portions of the four U-shaped vertical support members. The main body portions of the L-shaped pressing blocks are in abutting contact with the top end of the chip base. Two N-shaped sliding frames are symmetrically and slidably installed on the top end of the bearing mounting seat in the form of spring pushing. Four connecting rods are symmetrically and rotatably connected between the two N-shaped sliding frames and the four L-shaped pressing blocks. Two swing driving members are symmetrically and rotatably installed above the bottom plate. The swing driving members are integrally formed by a swing rod and a strip-shaped driving frame arranged at the first end of the strip-shaped driving frame. Two horizontally arranged sliding rods are symmetrically and slidably installed on the top end of the bottom plate. The first end portions of the horizontally arranged sliding rods are welded with transmission short shafts. The two transmission short shafts are slidably and movably matched with the transmission grooves in the interiors of the two strip-shaped driving frames. Two pull rods are symmetrically and rotatably connected between the two swing driving members and the two N-shaped sliding frames.
[0007] Further, two horizontally arranged sliding shafts are symmetrically welded at the opening end of the N-shaped sliding frame. The two horizontally arranged sliding shafts are slidably and movably matched with the two horizontally arranged side rods of the other N-shaped sliding frame. A spring for pushing the N-shaped sliding frame is sleeved on the horizontally arranged sliding shaft and is compressed and clamped between the two N-shaped sliding frames.
[0008] Further, the first end of the pull rod is rotatably connected with the middle segment of the vertically arranged side rod of the N-shaped sliding frame, and the tail end of the pull rod is rotatably connected with the swing rod near the tail end segment. The top end portions of the two pull rods are rotatably matched with the top end portions of the two vertically arranged centering shafts.
[0009] Further, the first end of the connecting rod is rotatably connected with the first end of the L-shaped pressing block, and the tail end of the connecting rod is rotatably connected with the vertically arranged side rod of the N-shaped sliding frame.
[0010] Further, four N-shaped rod sleeves are symmetrically and fixedly connected at the other two side positions of the top end of the bearing mounting seat. The four horizontally arranged side rods of the two N-shaped sliding frames are slidably and movably matched with the four N-shaped rod sleeves.
[0011] Further, the top end portions of the other side of the bottom plate are symmetrically and fixedly connected with two N-shaped positioning frames. The two horizontally arranged sliding rods are slidably and movably matched with the two N-shaped positioning frames.
[0012] Further, the transmission short shaft is integrally formed with a baffle disc and a baffle ring in the form of being spaced apart in the up-down direction. The baffle disc and the baffle ring are respectively in contact with the upper and lower sides of the strip-shaped driving frame.
[0013] Further, the top end of each of the two horizontally arranged sliding rods is welded with a finger pushing plate. When the two horizontally arranged sliding rods slide in the opposite direction, the two finger pushing plates are respectively in abutting contact with the two N-shaped rod sleeves.
[0014] Further, two ear blocks are symmetrically welded at the top end of the base plate near the horizontal slide bar, and a U-shaped insertion frame is slidingly installed on the two ear blocks, and two vertically arranged insertion shafts of the U-shaped insertion frame are slidingly matched with the two ear blocks; A positioning ring is sleeved on the two vertically arranged insertion shafts, and springs are sleeved on the shaft segments between the positioning ring and the ear blocks, and positioning insertion holes are formed in the two horizontally arranged slide bars, and the first end portions of the two vertically arranged insertion shafts are inserted into the two positioning insertion holes, and the positioning ring is in abutting contact with the horizontal slide bar.
[0015] The bearing device for the quantum chip has the following advantages: One, two fingers of one hand can pinch and drive the two horizontal slide bars to slide synchronously towards each other through the two finger push plates, control the two U-shaped slide frames to slide towards each other, drive the four L-shaped pressing blocks to swing downwards, and conveniently and efficiently complete the pressing and positioning of the quantum chip. In the above process, the springs on the two horizontal slide shafts are compressed when the two U-shaped slide frames slide towards each other; when the fingers are released from the two finger push plates, the two horizontal slide bars are released, and the above two springs lose the compression holding force indirectly applied by the two horizontal slide bars, and can automatically push back to drive the two U-shaped slide frames to slide away from each other, and drive the four L-shaped pressing blocks to swing upwards synchronously, and one-time unlock the quantum chip. Through the power transmission of the two sets of double-crank rocker mechanisms and the multi-link driving mechanism, and in cooperation with the back-pushing effect of the springs on the two horizontal slide shafts and the two finger push plates, the staff can drive the four L-shaped pressing blocks (the L-shaped pressing blocks are the mechanisms for pressing and positioning the quantum chip) to swing upwards and downwards synchronously with one hand, and one-time complete the pressing and positioning of the quantum chip, which can save the trouble of sequentially swinging upwards and downwards the four L-shaped pressing blocks to press and position the quantum chip, and is convenient to operate and use, and is helpful to indirectly improve the operation efficiency of the quantum chip disassembly and assembly.
[0016] Two, the two swing driving members are components for driving the four L-shaped pressing blocks to swing, and specifically, the rod segment on the swing lever between the pull rod and the first end of the swing lever and the strip-shaped driving frame jointly form a force arm for driving the L-shaped pressing block, the force arm is relatively long and has a considerable labor-saving effect, which can make the swinging operation of the four L-shaped pressing blocks more labor-saving, and is helpful to reduce the operation difficulty of the operation.
[0017] Three, the four positioning shafts can be inserted into the four positioning shaft holes to calibrate and align the quantum chip and the bearing mounting seat, avoid misalignment of the quantum chip when being loaded on the bearing mounting seat, and help to improve the accuracy and convenience of the quantum chip installation. BRIEF DESCRIPTION OF DRAWINGS
[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings of the embodiments will be briefly introduced below.
[0019] The drawings described in the following description merely relate to some embodiments of the present application and do not limit the present application.
[0020] In the drawings: Figure 1 A structural schematic diagram of the present application as a whole is shown; Figure 2 An enlarged structural schematic diagram of part A in the present application is shown; Figure 1 Figure 3 An installation position schematic diagram of the U-shaped sliding frame in the present application is shown; Figure 4 A disassembled state schematic diagram of the quantum chip in the present application is shown; Figure 5 A disassembled state schematic diagram of the U-shaped sliding frame in the present application is shown; Figure 6 A disassembled state schematic diagram of the swing driving member and the pull rod in the present application is shown; Figure 7 A structural schematic diagram of the transversely placed sliding rod in the present application is shown; Figure 8 A bottom side view schematic diagram of the swing driving member in the present application is shown; Figure 9 A structural schematic diagram of the L-shaped pressing block in the present application is shown.
[0021] List of reference signs: 1, base plate; 101, bearing mounting seat; 1011, positioning shaft; 102, U-shaped vertical support member; 1021, L-shaped pressing block; 103, U-shaped positioning frame; 104, U-shaped rod sleeve; 105, vertical centering shaft; 106, U-shaped insertion frame; 1061, positioning ring; 107, ear block; 2, quantum chip; 201, chip base; 202, chip main body; 2011, positioning shaft hole; 3, U-shaped sliding frame; 301, transversely placed sliding shaft; 302, connecting rod; 4, transversely placed sliding rod; 401, finger push plate; 402, transmission short shaft; 4021, baffle disc; 4022, baffle ring; 403, positioning insertion hole; 5, swing driving member; 501, swing rod; 502, strip-shaped driving frame; 5021, transmission groove; 503, pull rod. DETAILED DESCRIPTION
[0022] In order to make the objects, technical solutions and advantages of the present application clearer, the technical solutions will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the described embodiments of the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort belong to the scope of the present application.
[0023] Please refer to Figures 1 to 9 Embodiment one: The embodiment provides a bearing device for a quantum chip, which comprises a base plate 1, and an integrated bearing mounting seat 101 is arranged at the top end of the base plate 1. The bearing mounting seat 101 is used for mounting a quantum chip 2, and the quantum chip 2 is composed of a chip main body 202 and a chip base 201, and the chip base 201 is in abutting contact with the top end of the bearing mounting seat 101; four U-shaped vertical support members 102 are symmetrically fixed at the top end of the bearing mounting seat 101, four L-shaped pressing blocks 1021 are symmetrically and rotatably arranged at the top end portions of the four U-shaped vertical support members 102, the main body portions of the L-shaped pressing blocks 1021 are in abutting contact with the top end of the chip base 201, and two U-shaped sliding frames 3 are symmetrically and slidably arranged at the top end of the bearing mounting seat 101 in the form of spring pushing, four connecting rods 302 are symmetrically and rotatably connected between the two U-shaped sliding frames 3 and the four L-shaped pressing blocks 1021; two swing driving members 5 are symmetrically and rotatably arranged above the base plate 1, and the swing driving members 5 are integrally formed by a swing rod 501 and a strip-shaped driving frame 502 arranged at the first end of the strip-shaped driving frame 502; two horizontally arranged sliding rods 4 are symmetrically and slidably arranged at the top end of the base plate 1, transmission short shafts 402 are welded to the first end portions of the horizontally arranged sliding rods 4, and the two transmission short shafts 402 are slidably and penetratingly matched with transmission grooves 5021 in the interiors of the two strip-shaped driving frames 502; two pull rods 503 are symmetrically and rotatably connected between the two swing driving members 5 and the two U-shaped sliding frames 3.
[0024] Preferably, two horizontally arranged sliding shafts 301 are symmetrically welded to the opening end of one U-shaped sliding frame 3, the two horizontally arranged sliding shafts 301 are slidably and insertingly matched with the two horizontally arranged side rods of another U-shaped sliding frame 3, springs for pushing the U-shaped sliding frame 3 are sleeved on the horizontally arranged sliding shafts 301 and are compressed and clamped between the two U-shaped sliding frames 3.
[0025] Preferably, the first end of the pull rod 503 is rotatably connected with the middle segment of the vertically arranged side rod of the U-shaped sliding frame 3, the tail end of the pull rod 503 is rotatably connected with the half segment close to the tail end of the swing rod 501, and the top end portions of two vertical centering shafts 105 are symmetrically and fixedly connected to one long side of the base plate 1, and the tail ends of the two pull rods 503 are rotatably matched with the top end portions of the two vertical centering shafts 105.
[0026] Preferably, the first end of the connecting rod 302 is rotatably connected with the first end of the L-shaped pressing block 1021, and the tail end is rotatably connected with the vertically arranged side rod of the U-shaped sliding frame 3.
[0027] Preferably, four U-shaped rod sleeves 104 are symmetrically and fixedly connected to the top end of the chassis 1 at positions opposite to the other two sides of the bearing mounting seat 101, and the four horizontally arranged side rods of the two U-shaped sliding frames 3 are correspondingly and slidably matched with the four U-shaped rod sleeves 104.
[0028] Preferably, two U-shaped positioning frames 103 are symmetrically and fixedly connected to the top end of the other long side portion of the chassis 1, and the two horizontally arranged sliding rods 4 are correspondingly and slidably matched with the two U-shaped positioning frames 103.
[0029] Preferably, the driving short shaft 402 is integrally formed with a baffle disc 4021 and a baffle ring 4022 in a spaced-apart manner, and the baffle disc 4021 and the baffle ring 4022 are respectively in contact with the upper and lower sides of the strip-shaped driving frame 502.
[0030] In the second implementation, the second implementation is based on the first implementation, and the second implementation further includes the following: The two horizontally arranged sliding rods 4 are each welded with a finger pushing plate 401, and when the two horizontally arranged sliding rods 4 slide in the opposite direction, the two finger pushing plates 401 are respectively in abutting contact with the two U-shaped positioning frames 103. Two ear blocks 107 are symmetrically welded to the top end of the chassis 1 near the horizontally arranged sliding rods 4, a U-shaped insertion frame 106 is slidably installed on the two ear blocks 107, and two vertically arranged insertion shafts of the U-shaped insertion frame 106 are correspondingly and slidably matched with the two ear blocks 107. A positioning ring 1061 is welded to each of the two vertically arranged insertion shafts of the U-shaped insertion frame 106, a spring is compressed and sleeved on the shaft section of each of the two vertically arranged insertion shafts between the positioning ring 1061 and the ear block 107, a positioning insertion hole 403 is formed in each of the two horizontally arranged sliding rods 4, the first end portion of each of the two vertically arranged insertion shafts is correspondingly and insertionally matched with the two positioning insertion holes 403, and the positioning ring 1061 is in abutting contact with the horizontally arranged sliding rod 4.
[0031] Preferably, four positioning shafts 1011 are symmetrically and fixedly connected to the top end of the bearing mounting seat 101, and four positioning shaft holes 2011 are symmetrically and penetratively formed in the four corner portions of the chip base 201. The four positioning shafts 1011 are correspondingly and insertionally matched with the four positioning shaft holes 2011, and the four positioning shafts 1011 can calibrate and align the quantum chip 2 and the bearing mounting seat 101 through the insertion matching with the four positioning shaft holes 2011.
[0032] The working principle, specific details, implementation steps, functions and mutual relationships of the features, and the role played in the implementation of the technical solution of the above-mentioned content are described and explained in detail as follows: The four-way connecting rod 302, the two-way U-shaped sliding frame 3, and the four-way L-shaped pressing block 1021 are jointly connected to form two sets of double-crank rocker mechanisms. Through the two sets of mechanisms, the two-way U-shaped sliding frame 3 can be slid towards or away from each other, which can drive the four-way L-shaped pressing block 1021 to synchronously swing up and down. When the four-way L-shaped pressing block 1021 slides downward, the main body part thereof is in contact with the outer edge part of the chip base 201, which can press and fix the quantum chip 2 on the top end of the bearing mounting seat 101. When the four-way L-shaped pressing block 1021 swings upward, the main body part thereof is in a vertical support state and separated from the chip base 201, which can loosen the quantum chip 2 for maintenance or replacement. When the main body part of the four-way L-shaped pressing block 1021 swings upward to the vertical state, the space above the chip base 201 is emptied, which facilitates the lifting, disassembly, and replacement of the quantum chip 2. The two-way swinging driving member 5, the two-way pull rod 503, and the two-way U-shaped sliding frame 3 are jointly connected to form two sets of multi-link driving mechanisms. Through the two sets of mechanisms, the two-way swinging driving member 5 can be swung towards or away from each other, which can drive the two-way U-shaped sliding frame 3 to slide towards or away from each other. Through the sliding transmission of the two-way transmission short shaft 402 and the two-way transmission groove 5021, the horizontal sliding rod 4 can be slid towards or away from each other, which can drive the two-way swinging driving member 5 to swing towards or away from each other. Through the two-way finger push plate 401, two fingers of one hand can pinch and drive the two-way horizontal sliding rod 4 to synchronously slide towards each other, which can control the two-way U-shaped sliding frame 3 to slide towards each other and drive the four-way L-shaped pressing block 1021 to swing downward. This can conveniently and efficiently complete the pressing and positioning of the quantum chip 2. In the above process, when the two-way U-shaped sliding frame 3 slides towards each other, the springs on the two-way horizontal sliding shaft 301 are compressed. When the fingers are released from the two-way finger push plate 401, the two-way horizontal sliding rod 4 is released, the above two springs lose the compression and holding force indirectly applied thereon by the two-way horizontal sliding rod 4, which can automatically push back to drive the two-way U-shaped sliding frame 3 to slide away from each other and drive the four-way L-shaped pressing block 1021 to synchronously swing upward, which can loosen and unlock the quantum chip 2 at one time. Through the power transmission of the two sets of double-crank rocker mechanisms and multi-link driving mechanisms, and in cooperation with the two-way horizontal sliding shaft 301, the spring pushback effect, and the two-way finger push plate 401, the staff can use one hand to drive the four-way L-shaped pressing block 1021 (the L-shaped pressing block 1021 is a mechanism for pressing and positioning the quantum chip 2) to synchronously swing up and down, which can loosen and tighten the quantum chip 2 at one time. This can save the trouble of sequentially swinging up and down the four-way L-shaped pressing block 1021 to loosen and tighten the quantum chip 2, which is convenient to operate and use, and helps to indirectly improve the disassembly and assembly efficiency of the quantum chip 2.
[0033] The two swing driving members 5 are components for driving the four L-shaped pressing blocks 1021 to swing and loosen, specifically, the rod segment on the swing rod 501 between the pull rod 503 and the first end of the body and the strip-shaped driving frame 502 jointly form a force arm for driving the L-shaped pressing block 1021, the force arm is long and has considerable labor-saving effect, which can make the swing and loosening operation of the four L-shaped pressing blocks 1021 more labor-saving and help to reduce the operation difficulty.
[0034] When the first end portions of the two longitudinal sliding shafts are inserted and matched with the two positioning insertion holes 403, the two horizontal sliding rods 4 are inserted and fixed in the state of sliding and docking together in opposite directions, the two swing driving members 5 are kept in the state of swinging and approaching each other in opposite directions, and then the four L-shaped pressing blocks 1021 are positioned in the use state of swinging and loosening; when the two finger push plates 401 abut against the two U-shaped positioning frames 103, the two horizontal sliding rods 4 are blocked and fixed in the state of sliding away from each other, the two swing driving members 5 are kept in the state of swinging away from each other, and then the four L-shaped pressing blocks 1021 are positioned in the use state of swinging and loosening; in the initial state, the two horizontal sliding rods 4 are away from each other, and the U-shaped insertion frame 106 is in the state of sliding away from the horizontal sliding rod 4 and compressing the spring thereon; when the two horizontal sliding rods 4 slide towards each other to drive the four L-shaped pressing blocks 1021 to press and position the quantum chip 2, when the two longitudinal insertion shafts are aligned with the two positioning insertion holes 403, the two longitudinal insertion shafts are automatically inserted and matched with the two positioning insertion holes 403 under the repulsion of the spring thereon.
[0035] It is worth noting that the chassis 1 is fixedly installed on the mainboard matched with the quantum chip 2; the swing driving member 5 and the L-shaped pressing block 1021 both have a certain elasticity.
[0036] In this paper, the following points need attention: 1. The drawings of the embodiments of the present application only involve the structures involved in the embodiments of the present application, and other structures can refer to the general design.
[0037] 2. In the case of no conflict, the embodiments of the present application and the features in the embodiments can be combined to obtain new embodiments.
[0038] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto, any person skilled in the art can easily think of changes or replacements within the technical range disclosed by the present application, which should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A quantum chip carrier device comprising a chassis with a carrier mounting seat integrally formed on the top of the chassis; It is characterized by: The carrier mount is used to mount the quantum chip, which consists of a chip body and a chip base. The chip base is in contact with the top of the carrier mount; four U-shaped vertical supports are symmetrically fixed to the top of the carrier mount, and four L-shaped pressing blocks are symmetrically rotated and installed in the top parts of the four U-shaped vertical supports. The main parts of the L-shaped pressing blocks are in contact with the top of the chip base; two U-shaped sliding frames are symmetrically installed on the top of the carrier mount in a spring-pushing manner. The two U-shaped sliding frames are in contact with the four U-shaped vertical supports. There are four connecting rods symmetrically rotating between the L-shaped pressure blocks; two swing driving parts are symmetrically installed on the top of the chassis, and the swing driving part is formed as one piece by a swing rod and a strip driving frame arranged at the head end of the strip driving frame; two horizontal sliding rods are symmetrically installed on the top of the chassis for sliding, and the head end of the horizontal sliding rod is welded with a transmission short shaft, and the two transmission short shafts are corresponding to the transmission grooves inside the two strip driving frames and slide through them; two pull rods are symmetrically connected to the two swing driving parts and the two U-shaped sliding frames.
2. A quantum chip carrier according to claim 1, characterized in that: Two transverse sliding shafts are symmetrically welded to the open end of one of the C-shaped sliding frames. The two transverse sliding shafts are slidably plugged into the two transverse side rods of the other C-shaped sliding frame. The spring for pushing the C-shaped sliding frame is sleeved on the transverse sliding shaft and is compressed and clamped between the two C-shaped sliding frames.
3. A quantum chip carrier according to claim 1, characterized in that: The head end of the pull rod is rotatably connected to the middle section of the longitudinal side rod of the U-shaped sliding frame, and the tail end of the pull rod is rotatably connected to the half section of the swing rod close to the tail end; Two vertical centering shafts are symmetrically fixed to the top of a long side portion of the chassis, and the tail ends of the two pull rods are rotatably matched with the top portions of the two vertical centering shafts.
4. A quantum chip carrier according to claim 1, characterized in that: The head end of the connecting rod is rotatably connected to the head end of the L-shaped pressing block, and the tail end of the connecting rod is rotatably connected to the longitudinal side rod of the U-shaped sliding frame.
5. A quantum chip carrier according to claim 1, characterized in that: The top of the chassis is symmetrically fixed with four U-shaped rod sleeves at the other two sides of the bearing mounting seat, and the four transverse side rods of the two U-shaped sliding frames are correspondingly penetrated and slidably matched with the four U-shaped rod sleeves.
6. A quantum chip carrier according to claim 1, characterized in that: Two U-shaped positioning frames are symmetrically fixed to the top of the other long side portion of the chassis, and two transverse sliding rods are correspondingly penetrated and slidably matched with the two U-shaped positioning frames.
7. A quantum chip carrier according to claim 1, characterized in that: A baffle plate and a baffle ring are integrally formed on the transmission short shaft in an upper and lower spaced manner, and the baffle plate and the baffle ring are respectively in contact with the upper and lower sides of the bar-shaped driving frame.
8. A quantum chip carrier according to claim 5, characterized in that: Finger push plates are welded to the top ends of the two transverse slide bars. When the two transverse slide bars slide back to back, the two finger push plates respectively come into contact with the two U-shaped rod sleeves.
9. A quantum chip carrier according to claim 1, characterized in that: Two ear blocks are symmetrically welded at the top of the chassis near the horizontal slide bar, and a U-shaped insertion frame is slidably mounted on the two ear blocks. Two longitudinal insertion shafts of the U-shaped insertion frame are correspondingly inserted and slidably engaged with the two ear blocks. Positioning rings are welded on the two longitudinal plug-in shafts of the U-shaped plug-in frame, and the shaft sections between the positioning rings and the ear blocks on the two longitudinal plug-in shafts are compressed and fitted with springs. Positioning holes are provided on the two transverse slide rods, and the head ends of the two longitudinal plug-in shafts are correspondingly plugged into the two positioning holes, and the positioning rings are in contact with the transverse slide rods.
Citation Information
Patent Citations
Chip mounting seat
CN114717082A