Working condition environment regulation and control bin for delivery detection of low-temperature valve

By designing the low-temperature valve working conditions environment control chamber for clamping rods, sleeves and switching drive devices, the problem that existing devices cannot simulate dynamic working conditions is solved, and the accurate simulation of the low-temperature valve during pressure and impact working conditions is achieved, which improves the accuracy of the detection results.

CN120404122AActive Publication Date: 2025-08-01浙江求是嘉禾信息技术有限公司
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Patent Information

Application Number
CN202510902175.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-01
Publication Date
2025-08-01
Estimated Expiration
2045-07-01

AI Technical Summary

Technical Problem

The existing low-temperature valve working conditions environment simulation devices cannot simulate dynamic working conditions such as compression and impact, resulting in inaccurate detection results.

Method used

A low-temperature valve factory inspection environment control chamber is designed, including a clamping rod, sleeve, impact simulation device and switching drive device. Through the coordination of the clamping rod and sleeve, the impact and continuous pressure of the low-temperature valve in the axial direction is simulated, and the switching drive device is used to realize the switching of the working mode.

Benefits of technology

It realizes accurate simulation of dynamic working conditions such as pressure and impact of low-temperature valves, which can simulate actual working conditions in low-temperature environments and improves the accuracy of detection results.

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Abstract

A working condition environment regulation and control bin for low-temperature valve delivery detection comprises a bin body, a base, an impact simulation device, a cam and a switching driving device. The bin body is fixedly mounted on the base; a sliding frame is slidably mounted on the base; a stopping block is fixedly arranged on the sliding frame, and a clamping rod capable of entering the bin body is fixedly installed on the stopping block. A sleeve is slidably mounted on the clamping rod, a shifting block is fixedly arranged on the sleeve, and a clamping ring is elastically mounted on the sleeve through a spring; the clamping ring is installed on the clamping rod in a sliding mode. A driving frame of the impact simulation device is installed on a sliding frame in a sliding mode, a poke rod is elastically installed on the driving frame in a sliding mode, a limiting frame is installed on the sliding frame in a sliding mode, a platform with a slope is fixedly arranged on the limiting frame, and the poke rod can move upwards to the platform along the slope of the limiting frame. The cam is rotationally mounted on the stop block and can push the clamping ring to move; the switching driving device is used for driving the driving frame to move or driving the cam to rotate; the device can simulate the working condition that the low-temperature valve suffers from impact or continuous pressure.
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Description

Technical Field

[0001] The present invention relates to the technical field of valve working condition simulation, and in particular to a working condition environment control chamber for factory inspection of low-temperature valves. Background Art

[0002] Cryogenic valves (such as those for LNG, liquid nitrogen, oxygen, and helium) are key components in the energy, chemical, and aerospace industries. Their sealing, material cryogenic resistance, and operational reliability directly impact system safety. Cryogenic valves must maintain performance in extreme operating conditions below -196°C, so they undergo rigorous testing in simulated, low-temperature environments before leaving the factory.

[0003] Currently, the industry generally uses liquid nitrogen immersion to simulate cryogenic environments, testing valves by immersing them in a liquid nitrogen dewar. Existing cryogenic valve operating environment simulators lack impact testing capabilities and can only perform static valve testing. They are unable to replicate the dynamic operating conditions, such as pressure and impact, that can occur during actual cryogenic valve operation, and cannot reflect the low-temperature + impact coupling effect. Simulating dynamic operating conditions such as pressure and impact requires additional testing on a vibration table, which disrupts the temperature environment and affects the final test results.

[0004] Therefore, it is necessary to invent an environmental control chamber for low-temperature valve factory inspection that can simulate dynamic working conditions such as pressure and impact. Summary of the Invention

[0005] In response to the above problems, the present invention proposes a working environment control chamber for factory inspection of cryogenic valves, the technical solution used is: A working environment control chamber for factory inspection of cryogenic valves, comprising a chamber body, a base, a clamping rod, a sleeve, an impact simulation device, a cam, a switching drive device and an operating table; The bin body is fixedly mounted on the base; a sliding frame located on both sides of the bin body is slidably mounted on the base and is driven to slide by a sliding device; a blocking block is fixedly mounted on the sliding frame, and a clamping rod capable of entering the interior of the bin body is fixedly mounted on the blocking block; a sleeve is slidably mounted on the clamping rod, a toggle block is fixedly mounted on the sleeve, and a snap ring is elastically mounted on the sleeve via a spring; the snap ring is slidably mounted on the clamping rod, and the snap ring intermittently contacts the blocking block; The impact simulation device includes a driving frame, a toggle rod, a limiting frame, and an adjusting screw; the driving frame is slidably mounted on the sliding frame, and a toggle rod corresponding to the toggle block is slidably and elastically mounted on the driving frame; the limiting frame is slidably mounted on the sliding frame and is driven to move by the adjusting screw mounted on the sliding frame; a platform with a slope is fixed on the limiting frame, and the toggle rod can move upward along the slope of the limiting frame to the platform; The cam is rotatably mounted on the blocking block and is capable of pushing the snap ring to move when rotating; The switching drive device is used to drive the drive frame to move or drive the cam to rotate; The operating console is used to control the operation of the entire control chamber.

[0006] Furthermore, the sliding device includes a pushing cylinder, a sliding block and a connecting rod. The pushing cylinder body is fixedly installed on the outer wall of the warehouse body, and the telescopic end is fixedly connected to the sliding block; the sliding block is vertically slidably installed on the outer wall of the warehouse body; a connecting rod is provided between each sliding frame and the sliding block, and the two ends of the connecting rod are respectively rotatably installed on the sliding block and the corresponding sliding frame.

[0007] Furthermore, the impact simulation device further comprises a distance sensor, which is mounted on the sliding frame and is used to monitor the position of the limiting frame.

[0008] Furthermore, the switching drive device includes a switching frame, a switching cylinder, a sliding drive assembly, a driving rack, a driving gear 2 and a transmission assembly; the switching frame is slidably mounted on the blocking block; the switching cylinder body is fixedly mounted on the sliding frame, and the telescopic end is fixedly connected to the switching frame; the driving rack is slidably mounted on the switching frame, and a card block is fixedly mounted on the driving rack, and a card slot is provided for the corresponding card block on the driving frame; the sliding drive assembly is used to drive the driving rack to move; the driving gear 2 is rotatably mounted on the blocking block and intermittently engages with the driving rack; the driving gear 2 is synchronously connected to the cam through the transmission assembly.

[0009] Furthermore, the sliding drive assembly includes a drive motor and a drive gear 1; the drive motor is fixedly mounted on the switching frame, and its output end is coaxially fixedly connected to the drive gear; the drive gear 1 is engaged with the drive rack.

[0010] Furthermore, the transmission assembly includes an input gear, an output rack and a driven gear; the input gear is coaxially fixedly mounted on the driving gear 2; the output rack is slidably mounted on the blocking block and meshes with the input gear; the driven gear is coaxially fixedly mounted on the base circle center of the cam and meshes with the output rack.

[0011] Furthermore, a sealing cover is provided on the top of the warehouse body.

[0012] Furthermore, the middle portion of the clamping rod is hollow, and the hollow middle portion can be communicated with the low-temperature valve and connected to an external medium pipeline.

[0013] Furthermore, a through hole is provided on the warehouse body corresponding to the clamping rod, and the clamping rod can move with the sliding frame and pass through the corresponding through hole to squeeze the low-temperature valve in the warehouse body.

[0014] Furthermore, when the spring is in a relaxed state, the inner end of the sleeve presses against the inner end of the clamping rod.

[0015] Due to the adoption of the above technical solution in the present invention, compared with the prior art, the present invention has the following advantages: 1. Through the cooperative design of the clamping rod, the sleeve, the impact simulation device and the switching drive device, the switching drive device can drive the driving frame of the impact simulation device to move, so that the shifting rod of the impact simulation device pushes the sleeve to move. When the shifting block moves to the top of the slope of the limiting frame, the sleeve will disengage from the shifting rod and impact the clamping rod under the action of the spring rebound. The impact force is transmitted to the fixed cryogenic valve through the clamping rod, thereby simulating the working condition of the cryogenic valve being axially impacted in actual work.

[0016] 2. The impact simulation device of the present invention drives the limiting frame to move through the adjusting screw rod, adjusts the position of the limiting frame to adjust the magnitude of the simulated impact force, and real-time monitors the position of the limiting frame through the distance sensor, achieving the effect of accurately controlling the magnitude of the impact force.

[0017] 3. Through the cooperative design of the clamping rod, the sleeve, the cam and the switching drive device, the switching drive device can drive the cam to rotate. The rotation of the cam pushes the clamping ring on the sleeve to move, so that the spring between the clamping ring and the sleeve is compressed, generating a continuous pressure. The continuous pressure is transmitted to the fixed cryogenic valve through the sleeve and the clamping rod, thereby simulating the working condition of the cryogenic valve being axially subjected to continuous pressure in actual work, and adjusting the magnitude of the continuous pressure by adjusting the rotation angle of the cam.

[0018] 4. The switching drive device of the present invention can freely switch between two modes of impact simulation and continuous pressure simulation, thereby simulating various impact and compression situations in actual working conditions. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0020] Figure 2 It is a schematic diagram of the structure of the present invention with the cover of the bin removed.

[0021] Figure 3 It is a schematic diagram of the structure of the present invention with the bin removed.

[0022] Figure 4 It is a schematic diagram of the assembly structure of the sliding frame, the clamping rod, the sleeve, the impact simulation device, the cam and the switching drive device of the present invention.

[0023] Figure 5 It is a schematic diagram of the structure of the sliding frame of the present invention.

[0024] Figure 6 It is a schematic diagram of the assembly structure of the sliding frame, the clamping rod and the sleeve of the present invention.

[0025] Figure 7It is a schematic diagram of the exploded structure of the clamping rod and sleeve of the present invention.

[0026] Figure 8 It is a front side schematic diagram of the assembly structure of the sliding frame, clamping rod, sleeve, impact simulation device and switching drive device part of the present invention.

[0027] Figure 9 It is a rear side schematic diagram of the assembly structure of the sliding frame, clamping rod, sleeve, impact simulation device and switching drive device part of the present invention.

[0028] Figure 10 It is a schematic diagram of the assembly structure of the clamping rod, sleeve, impact simulation device and switching drive device of the present invention.

[0029] Figure 11 Schematic diagram of the structure of the impact simulation device of the present invention.

[0030] Figure 12 This is a schematic diagram of the assembly structure of the sliding frame, clamping rod, sleeve, cam and switching drive device of the present invention.

[0031] Figure 13 This is a schematic diagram of the assembly structure of the clamping rod, sleeve, cam and switching drive device of the present invention.

[0032] Figure 14 It is a schematic diagram of the assembly structure of the cam and the switching drive device of the present invention.

[0033] Figure Number: 1-warehouse body; 2-base; 201-sliding frame; 2011-blocking block; 202-sliding device; 2021-pushing cylinder; 2022-sliding block; 2023-connecting rod; 3-clamping rod; 4-sleeve; 401-toggle block; 402-spring; 403-retaining ring; 5-impact simulation device; 501-driving frame; 5011-slot; 502-toggle rod; 503-limiting frame; 504-adjusting screw; 505-distance sensor; 6-cam; 7-switching drive device; 701-switching frame; 702-switching cylinder; 703-driving motor; 704-driving gear 1; 705-driving rack; 7051-block; 706-driving gear 2; 707-input gear; 708-output rack; 709-driven gear; 8-operating table. DETAILED DESCRIPTION

[0034] The technical solution of the present invention will be further specifically described below through embodiments in conjunction with the accompanying drawings. In the following description, many specific details are set forth in order to fully understand the present invention. However, the present invention can be implemented in many other ways different from those described herein. Those skilled in the art can make similar improvements without departing from the connotation of the present invention. Therefore, the present invention is not limited by the specific embodiments disclosed below.

[0035] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "upper", "lower", "inlet", "outlet", "front", "rear", etc. is based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship in which the product of the present invention is habitually placed during use. It is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present invention.

[0036] Embodiment: This embodiment provides a working condition environment regulation bin for the ex-factory inspection of cryogenic valves, as Figures 1 - 3 shown, which includes a bin body 1, a base 2, a clamping rod 3, a sleeve 4, an impact simulation device 5, a cam 6, a switching drive device 7, and an operating platform 8.

[0037] The bin body 1 is fixedly installed on the base 2. On the base 2, sliding frames 201 are horizontally slidably installed on both sides of the bin body 1; the two sliding frames 201 are driven by a sliding device 202 to move towards each other; the sliding device 202 includes a pushing cylinder 2021, a sliding block 2022, and a connecting rod 2023. The pushing cylinder 202 uses a servo cylinder, the cylinder body is fixedly installed on the outer side wall of the bin body 1, and the telescopic end is fixedly connected to the sliding block 2022. The sliding block 2022 is vertically slidably installed on the outer side wall of the bin body 1. A connecting rod 2023 is provided between each sliding frame 201 and the sliding block 2022. Both ends of the connecting rod 2023 are rotatably installed on the sliding block 2022 and the corresponding sliding frame 201; a cover is provided at the top of the bin body 1. When simulating the working condition, the cryogenic valve is placed into the bin body 1.

[0038] As Figures 4 - 7 shown, a blocking block 2011 is fixedly provided on each sliding frame 201, and a clamping rod 3 is fixedly installed on the blocking block 2011. The clamping rods 3 on the two sliding frames 201 are respectively located on both sides of the bin body 1. Through holes corresponding to the clamping rods 3 are provided on the bin body 1. The clamping rod 3 can move with the sliding frame 201 and pass through the corresponding through holes to squeeze the cryogenic valve in the bin body 1. Under the combined action of the two clamping rods 3, the cryogenic valve is fixed; the middle part of the clamping rod 3 is hollow. When simulating the working condition, the middle hollow is communicated with the cryogenic valve and connected to an external medium pipeline to simulate the working state of the cryogenic valve; A sleeve 4 is slidably mounted on the clamping rod 3, and a toggle block 401 is fixedly mounted on the sleeve 4 (two toggle blocks 401 are provided in this embodiment), and a snap ring 403 is elastically mounted on the outer end of the sleeve 4 through a spring 402, and the spring 403 is a compression spring; the snap ring 403 is slidably mounted on the clamping rod 3, and the snap ring 403 intermittently contacts the blocking block 2011; when the spring 402 is relaxed, the inner end of the sleeve 4 presses against the inner end of the clamping rod 3.

[0039] like Figures 8 - 11 As shown, the impact simulation device 5 includes a driving frame 501, a toggle rod 502, a limiting frame 503, an adjusting screw 504 and a distance sensor 505; the driving frame 501 is horizontally slidably mounted on the sliding frame 201, and its sliding direction is parallel to the sliding direction of the sleeve 4; the driving frame 501 slides vertically and is elastically mounted with a toggle rod 502 provided with a corresponding toggle block 401 through a compression spring; the limiting frame 503 is horizontally slidably mounted on the sliding frame 201, and its sliding direction is parallel to the sliding direction of the sleeve 4, and is driven to move by the adjusting screw 504; the adjusting screw 504 adopts a servo screw and is mounted on the sliding frame 201, and its screw is connected to the corresponding limiting frame 503; the distance sensor 505 is mounted on the sliding frame 201 for monitoring the position of the limiting frame 503; A platform with a slope is fixed on the limit frame 503, and the toggle rod 502 can move upward along the slope of the limit frame 503 to the platform; when the spring 402 is relaxed, when the toggle rod 502 is at the bottom of the slope, the toggle rod 502 is located at the inner end of the toggle block 401 and can push the toggle block 401 to move; when the toggle rod 502 moves upward along the slope to the platform, the toggle rod 502 disengages from the inner end of the toggle block 401 and no longer pushes the toggle block 401 to move.

[0040] like Figures 12 - 13 As shown, the cam 6 is rotatably mounted on the blocking block 2011 of the sliding frame 201. When the cam 6 rotates, it can push the retaining ring 403 to move, and the spring 402 compresses and squeezes the sleeve 4, which transmits continuous pressure to the clamping rod 3, thereby applying continuous pressure to the low-temperature valve fixed by the clamping rod 3; in this embodiment, two cams 6 are provided.

[0041] like Figures 8 - 14As shown in the figure, the switching drive device 7 includes a switching frame 701, a switching cylinder 702, a drive motor 703, a first drive gear 704, a drive rack 705, a second drive gear 706, an input gear 707, an output rack 708, and a driven gear 709; the switching frame 701 is slidably mounted on the blocking block 2011 of the sliding frame 201, and its sliding direction is perpendicular to the sliding direction of the sleeve 4; the switching cylinder 702 is a servo cylinder, the cylinder body is fixedly mounted on the sliding frame 201, and the telescopic end is fixedly connected to the switching frame 701; each cam 6 corresponds to a set of the first drive gear 704, the drive rack 705, the second drive gear 706, the input gear 707, the output rack 708, and the driven gear 709; The drive motor 703 is a servo motor and is fixedly mounted on the switching frame 701, and its output end is coaxially and fixedly connected to the first drive gear 704; the drive rack 705 is horizontally slidably mounted on the switching frame 701 and meshes with the first drive gear 704 of the same group, and the sliding direction of the drive rack 705 is parallel to the sliding direction of the drive frame 501; a clamping block 7051 is fixedly mounted on the drive rack 705, and a clamping groove 5011 is provided on the drive frame 501 corresponding to the clamping block 7051. When the clamping block 7051 is embedded in the clamping groove 5011, the drive frame 501 and the drive rack 705 are relatively fixed, and the drive rack 705 can drive the drive frame 501 to move; The second drive gear 706 is rotatably mounted on the blocking block 2011 and intermittently meshes with the drive rack 705 of the same group; the input gear 707 is coaxially and fixedly mounted on the second drive gear 706 of the same group; the output rack 708 is horizontally slidably mounted on the blocking block 2011, and the output rack 708 is a double-sided rack, and one side thereof meshes with the input gear 707 of the same group; the driven gear 709 is coaxially and fixedly mounted on the center of the base circle of the cam 6 and meshes with the other side of the output rack 708 of the same group; when the clamping block 7051 is embedded in the clamping groove 5011, the second drive gear 706 is disengaged from the drive rack 705. After the switching cylinder 702 drives the switching frame 701 to move, the clamping block 7051 is disengaged from the clamping groove 5011, and the second drive gear 706 meshes with the drive rack 705.

[0042] In this embodiment, the operation console 8 is electrically connected to each electrical component and is used to control the operation of the entire regulation bin.

[0043] The working principle of this embodiment is as follows: Preparation work: Place the cryogenic valve to be detected into the chamber 1. The cryogenic valve is located between two clamping rods 3. Start the push cylinder 2021. The sliding block 2022 slides, and the connecting rod 2023 drives the two sliding frames to approach each other, and the two clamping rods 3 fix the cryogenic valve. The hollow middle part of the clamping rod 3 communicates with the cryogenic valve and is connected to an external medium pipeline, preparing to input the medium to the cryogenic valve under simulated working conditions. Inject liquid nitrogen into the chamber 1 to make the environment inside the chamber 1 reach a low temperature.

[0044] In the initial state, the toggle lever 502 is located on the platform at the top of the slope of the limit frame 503. The clamping block 7051 is embedded in the clamping groove 5011. The spring 402 is relaxed, and the inner end of the sleeve 4 abuts against the inner end of the clamping rod 3.

[0045] Simulate the impact working condition: Start the adjusting lead screw 504 to drive the limit frame 503 to move. By adjusting the position of the limit frame 503 (monitored in real time by the distance sensor 505), the impact force of the sleeve 4 is adjusted. After the position of the limit frame 503 is adjusted, start the drive motor 703. The drive gear 704 rotates, driving the drive rack 705 to move. The drive rack 705 drives the drive frame 501 to move, causing the toggle lever 502 to move downward along the slope of the limit frame 503 towards the bottom of the slope. The toggle lever 502 moves to the inner end of the toggle block 401. Subsequently, the drive rack 705 drives the drive frame 501 to move in the reverse direction. The toggle lever 502 pushes the toggle block 401 to move, and the sleeve 4 moves outward. The spring 402 is compressed. When the toggle lever 502 moves upward along the slope of the limit frame 503 to the platform at the top of the slope, the toggle lever 502 disengages from the toggle block 401. The sleeve 4 impacts the clamping rod 3 under the rebound action of the spring 402, and the impact force is transmitted from the clamping rod 3 to the fixed cryogenic valve. Driven by the drive rack 705, the toggle lever 502 reciprocates along the slope of the limit frame 503, enabling multiple impacts.

[0046] Simulate the continuous pressure working condition: Start the switching cylinder 702 to drive the switching frame 701 to move, and the drive rack 705 moves accordingly. The clamping block 7051 disengages from the clamping groove 5011. At the same time, the drive rack 705 meshes with the drive gear 706. Start the drive motor 703. The drive gear 704 rotates to drive the drive rack 705 to move. The drive rack 705 moves to drive the drive gear 706 to rotate. The input gear 707 rotates with the drive gear 706 and drives the output rack 708 to move. The output rack 708 moves to drive the driven gear 709 to rotate. The driven gear 709 rotates to drive the cam 6 to rotate. The rotation of the cam 6 will push the snap ring 403, compressing the spring 402. The generated continuous pressure is transmitted to the fixed cryogenic valve through the sleeve 4 and the clamping rod 3. By adjusting the rotation angle of the cam 6, the moving distance of the snap ring 403 is adjusted, thereby adjusting the magnitude of the generated continuous pressure.

Claims

1. A working condition environment regulation bin for the factory inspection of cryogenic valves, characterized in that, It includes a bin body, a base, a clamping rod, a sleeve, an impact simulation device, a cam, a switching drive device and an operating table; The bin body is fixedly mounted on the base; a sliding frame located on both sides of the bin body is slidably mounted on the base and is driven to slide by a sliding device; a blocking block is fixedly mounted on the sliding frame, and a clamping rod capable of entering the interior of the bin body is fixedly mounted on the blocking block; a sleeve is slidably mounted on the clamping rod, a toggle block is fixedly mounted on the sleeve, and a snap ring is elastically mounted on the sleeve via a spring; the snap ring is slidably mounted on the clamping rod, and the snap ring intermittently contacts the blocking block; The impact simulation device includes a driving frame, a toggle rod, a limiting frame, and an adjusting screw; the driving frame is slidably mounted on the sliding frame, and a toggle rod corresponding to the toggle block is slidably and elastically mounted on the driving frame; the limiting frame is slidably mounted on the sliding frame and is driven to move by the adjusting screw mounted on the sliding frame; a platform with a slope is fixed on the limiting frame, and the toggle rod can move upward along the slope of the limiting frame to the platform; The cam is rotatably mounted on the blocking block and is capable of pushing the snap ring to move when rotating; The switching drive device is used to drive the drive frame to move or drive the cam to rotate; The operating console is used to control the operation of the entire control chamber.

2. The working condition environment regulation bin for the ex-factory inspection of the low-temperature valve according to claim 1, characterized in that, The sliding device includes a pushing cylinder, a sliding block and a connecting rod. The pushing cylinder body is fixedly installed on the outer wall of the warehouse body, and the telescopic end is fixedly connected to the sliding block; the sliding block is vertically slidably installed on the outer wall of the warehouse body; a connecting rod is provided between each sliding frame and the sliding block, and the two ends of the connecting rod are respectively rotatably installed on the sliding block and the corresponding sliding frame.

3. The working condition environment regulation bin for the factory inspection of low-temperature valves according to claim 1, wherein The impact simulation device further comprises a distance sensor, which is mounted on the sliding frame and is used to monitor the position of the limiting frame.

4. The working condition environment regulation bin for the ex-factory inspection of a cryogenic valve according to claim 1, wherein The switching drive device includes a switching frame, a switching cylinder, a sliding drive assembly, a driving rack, a second driving gear and a transmission assembly; the switching frame is slidably mounted on the blocking block; the switching cylinder body is fixedly mounted on the sliding frame, and the telescopic end is fixedly connected to the switching frame; the driving rack is slidably mounted on the switching frame, and a card block is fixedly mounted on the driving rack, and a card slot is provided on the corresponding card block on the driving frame; the sliding drive assembly is used to drive the driving rack to move; the driving gear second is rotatably mounted on the blocking block and intermittently meshes with the driving rack; the driving gear second is synchronously connected to the cam through the transmission assembly.

5. The working condition environment regulation bin for the ex-factory inspection of a cryogenic valve according to claim 4, characterized in that, The sliding drive assembly includes a drive motor and a drive gear 1; the drive motor is fixedly installed on the switching frame, and its output end is coaxially fixedly connected to the drive gear; the drive gear 1 is engaged with the drive rack.

6. The working condition environment regulation bin for the ex-factory inspection of a cryogenic valve according to claim 4, characterized in that, The transmission assembly includes an input gear, an output rack and a driven gear; the input gear is coaxially fixedly mounted on the driving gear 2; the output rack is slidably mounted on the blocking block and meshes with the input gear; the driven gear is coaxially fixedly mounted on the base circle center of the cam and meshes with the output rack.

7. The working condition environment regulation bin for the ex-factory inspection of a cryogenic valve according to claim 1, characterized in that, A sealing cover is provided on the top of the warehouse body.

8. The working condition environment regulation bin for the ex-factory inspection of cryogenic valves according to claim 1, characterized in that The middle part of the clamping rod is hollow, and the hollow middle part can be communicated with the low-temperature valve and connected to the external medium pipeline.

9. The working condition environment regulation bin for the ex-factory inspection of a cryogenic valve according to claim 1, characterized in that, A through hole is provided on the bin body corresponding to the clamping rod, and the clamping rod can move with the sliding frame and pass through the corresponding through hole to squeeze the cryogenic valve in the bin body.

10. The working condition environment regulation bin for the ex-factory inspection of a cryogenic valve according to claim 1, characterized in that, In the relaxed state of the spring, the inner end of the sleeve abuts against the inner end of the clamping rod.

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