Intelligent regulation and control portable climate simulation experiment box

By designing rotating positioning components and telescopic components on the climate simulation experimental chamber, the problem of lack of height adjustment during transportation was solved, and convenient carrying without the need for external support structures was achieved.

CN223980507UActive Publication Date: 2026-03-10LIAONING ECONOMIC CROP RES INST
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing small climate simulation test chambers lack height-adjustable support structures during transportation, requiring the use of external shelves, which is inconvenient.

Method used

Design a portable climate simulation experimental chamber with intelligent control. It adopts a rotating positioning component, a rotating assembly, and a telescopic assembly. The position of the rotating rod is restricted by a magnetic conductive assembly, and stable support is provided by the telescopic adjustment of the support rod.

Benefits of technology

The climate simulation test chamber eliminates the need for an external shelf during use, improving portability.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the technical field of climate simulation experiment boxes, in particular to an intelligent regulation and control portable climate simulation experiment box which comprises a climate simulation experiment box and a supporting structure, and the supporting structure is arranged on the outer side of the climate simulation experiment box. By moving a guide seat, the guide seat drives a connecting block to be separated from clamping blocks on the two sides, so that a rotating rod can rotate along the climate simulation experiment box, meanwhile, a positioning screw rod is rotated, and the positioning screw rod is connected with a corresponding positioning hole and a corresponding connecting hole, so that the rotating position of the rotating rod is limited, an inserting rod is pulled, and the inserting rod is separated from an inserting hole; then the supporting rods are moved by corresponding heights, the insertion rods are loosened to be matched with the insertion holes in the corresponding positions, so that the extension lengths of the supporting rods are adjusted, and in the same way, the supporting rods on the periphery of the climate simulation experiment box are pulled out to support the climate simulation experiment box; and a storage rack for placing the climate simulation experiment box does not need to be carried in the use process of the climate simulation experiment box.
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Description

Technical Field

[0001] This utility model relates to the field of climate simulation test chamber technology, specifically a convenient climate simulation test chamber with intelligent control. Background Technology

[0002] In many fields of scientific research and industrial production, studying the changes in the properties of substances and the growth and development of organisms under different climatic conditions is of great significance.

[0003] When using existing small climate simulation test chambers, they need to be set at a certain height for easy use when transporting them to the designated experimental location. However, existing small climate simulation test chambers lack height-adjustable support structures and usually require the use of external shelves or workbenches. This means that personnel need to carry the external shelves along with the test chambers during transport, which is inconvenient. Utility Model Content

[0004] The purpose of this invention is to solve the problem of the inconvenience of carrying existing climate simulation test chambers, and to propose a convenient climate simulation test chamber with intelligent control.

[0005] To achieve the above objectives, this utility model provides the following technical solution:

[0006] Design a portable climate simulation test chamber with intelligent control, including a climate simulation test chamber and a support structure. The support structure is provided on the outside of the climate simulation test chamber, and the support structure also includes a rotating positioning component, a rotating component and a telescopic component.

[0007] Multiple sets of the aforementioned rotating positioning components are provided on both sides of the climate simulation experimental chamber. A rotating component is provided on one side of the rotating positioning component, and a telescopic component is provided on one side of the rotating component.

[0008] Preferably, the rotating positioning component includes a positioning plate and a positioning screw;

[0009] The positioning plate has multiple positioning holes in the middle, and the multiple positioning holes are circumferentially distributed.

[0010] The positioning hole on one side of the positioning plate is threadedly connected to the positioning screw.

[0011] Preferably, the rotating assembly includes a rotating rod, a spring, a slide rod, a guide seat, and a locking block;

[0012] One side of each of the multiple rotating rods is hinged to a multiple climate simulation test chamber. A sliding rod is provided in the middle of the rotating rod. A spring is provided between the sliding rod and the rotating rod. A guide seat is provided at the end of the sliding rod away from the spring. Two locking blocks are provided on the side of the guide seat adjacent to the climate simulation test chamber. The locking blocks on both sides are mirror-distributed. The ends of the multiple locking blocks are fixedly connected to the climate simulation test chamber.

[0013] Preferably, a connecting hole is provided at the side end of the rotating rod, the inner diameter of the connecting hole is the same as the outer diameter of the positioning screw, and the connecting hole can be matched with the positioning screw;

[0014] The rotating rod has a sliding cavity inside, and a rectangular hole is provided on one side of the sliding cavity. The rectangular hole passes through the side of the rotating rod adjacent to the guide seat. The sliding cavity can match the side of the sliding rod adjacent to the first spring, and the rectangular hole can match the side of the sliding rod away from the first spring.

[0015] The spring is disposed inside the sliding cavity, and both ends of the spring are fixedly connected to the sliding rod and the sliding cavity, respectively.

[0016] The guide seat has a sliding hole on the side away from the locking block, and a connecting block is provided on the side of the guide seat adjacent to the locking block. The two sides of the connecting block can be engaged with the locking blocks on both sides respectively.

[0017] Preferably, the telescopic assembly includes a plug rod, a second spring, and a support rod;

[0018] A second spring is sleeved on the outer wall of the insertion rod, and one end of the second spring is fixedly connected to the insertion rod.

[0019] The outer diameter of the insertion rod is the same as the inner diameter of the sliding hole, and the insertion rod can match the sliding hole;

[0020] The second spring is disposed between the insert rod and the guide seat, and the other end of the second spring is fixedly connected to the guide seat;

[0021] The support rod has multiple insertion holes on one side, and the spacing between the insertion holes on any two adjacent sides is the same.

[0022] The inner diameter of the insertion hole is the same as the outer diameter of the insertion rod, and the side of the insertion rod away from the second spring can match the insertion hole;

[0023] The outer wall of the support rod is fitted with a guide seat, and the guide seat is clearance-fitted with the outer wall of the support rod.

[0024] This invention proposes a convenient climate simulation test chamber with intelligent control. The advantages are as follows: By moving the guide seat, the guide seat causes the connecting block to disengage from the locking blocks on both sides, allowing the rotating rod to rotate along the climate simulation test chamber. Simultaneously, rotating the positioning screw connects the positioning screw to the corresponding positioning hole and connecting hole, thereby restricting the rotation position of the rotating rod. Pulling the insertion rod separates it from the insertion hole. Then, moving the support rod to the corresponding height and releasing the insertion rod allows for matching with the corresponding insertion hole, thus adjusting the extension length of the support rod. Similarly, the support rods around the climate simulation test chamber can be pulled out to support it. This eliminates the need for a shelf to hold the climate simulation test chamber during use, making it more convenient to carry. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the structure of this utility model;

[0026] Figure 2 This is an exploded view of the structure of this utility model;

[0027] Figure 3 This is a cross-sectional view of the rotating component in this utility model;

[0028] Figure 4 This is a schematic diagram of the structure of the guide seat, slide rod and connecting block in this utility model;

[0029] Figure 5 This is a schematic diagram of the structure of the rotating rod, the insert rod, and the guide seat in this utility model.

[0030] In the diagram: 1. Climate simulation experimental chamber; 2. Rotating positioning component; 201. Positioning plate; 2011. Positioning hole; 202. Positioning screw; 3. Rotating assembly; 301. Rotating rod; 3011. Connecting hole; 3012. Sliding cavity; 3013. Rectangular hole; 302. Spring one; 303. Sliding rod; 304. Guide seat; 3041. Sliding hole; 3042. Connecting block; 305. Locking block; 4. Telescopic assembly; 401. Insert rod; 402. Spring two; 403. Support rod; 4031. Insertion hole. Detailed Implementation

[0031] The present invention will be further described below with reference to the accompanying drawings:

[0032] This embodiment proposes a portable climate simulation experimental chamber with intelligent control, such as... Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, the climate simulation experimental chamber 1 and the support structure are provided on the outside of the climate simulation experimental chamber 1. The support structure also includes a rotating positioning component 2, a rotating component 3 and a telescopic component 4. Multiple sets of rotating positioning components 2 are provided on both sides of the climate simulation experimental chamber 1. A rotating component 3 is provided on one side of the rotating positioning component 2 and a telescopic component 4 is provided on one side of the rotating component 3.

[0033] The rotating positioning component 2 includes a positioning plate 201 and a positioning screw 202. The positioning plate 201 has multiple positioning holes 2011 in the middle, and the multiple positioning holes 2011 are circumferentially distributed. The positioning hole 2011 on one side of the positioning plate 201 is threadedly connected to the positioning screw 202. The positioning screw 202 is connected to the corresponding positioning hole 2011, and the position of the rotating rod 301 is restricted by connecting the connecting hole 3011 of the rotating rod 301.

[0034] The rotating assembly 3 includes a rotating rod 301, a spring 302, a slide rod 303, a guide seat 304, and a locking block 305. The rotating rod 301 can move circumferentially along the climate simulation experimental chamber 1. The rotating rod 301 can drive the guide seat 304 to move circumferentially through the slide rod 303. The guide seat 304 drives the support rod 403 to move circumferentially. One side of the multiple rotating rods 301 is hinged to multiple climate simulation experimental chambers 1. By moving the guide seat 304, the guide seat 304 can drive the slide rod 303 to move along the sliding cavity 3012 and the rectangular hole 3013 of the rotating rod 301. At the same time, the guide seat 304 drives the connecting block 3042 to move away from the rotating rod 301, so that the connecting block 3042 disengages from the locking blocks 305 on both sides. When the slide bar 303 drives the spring 302 to stretch, the rotating rod 301 can rotate along the climate simulation test chamber 1. When the connecting block 3042 is connected to the locking block 305, the elastic force of the spring 302 can restrict the movement of the slide bar 303. The rotation of the rotating rod 301 is prevented by the restriction of the locking block 305 and the connecting block 3042. The slide bar 303 is provided in the middle of the rotating rod 301. The spring 302 is provided between the slide bar 303 and the rotating rod 301. The guide seat 304 is provided at the end of the slide bar 303 away from the spring 302. Two locking blocks 305 are provided on the side of the guide seat 304 adjacent to the climate simulation test chamber 1. The locking blocks 305 on both sides are mirror-distributed. The ends of the multiple locking blocks 305 are fixedly connected to the climate simulation test chamber 1.

[0035] A connecting hole 3011 is provided on the side end of the rotating rod 301. The inner diameter of the connecting hole 3011 is the same as the outer diameter of the positioning screw 202, and the connecting hole 3011 can match the positioning screw 202. A sliding cavity 3012 is provided inside the rotating rod 301. A rectangular hole 3013 is provided on one side of the sliding cavity 3012, and the rectangular hole 3013 penetrates the side of the rotating rod 301 near the guide seat 304. The sliding cavity 3012 can be connected to the side of the slide rod 303 near the spring 302. The rectangular hole 3013 can match the side of the slide rod 303 away from the spring 302. The spring 302 is set inside the slide cavity 3012, and the two ends of the spring 302 are fixedly connected to the slide rod 303 and the slide cavity 3012 respectively. The guide seat 304 is provided with a sliding hole 3041 on the side away from the locking block 305, and a connecting block 3042 is provided on the side of the guide seat 304 adjacent to the locking block 305. The two sides of the connecting block 3042 can be engaged with the two sides of the locking block 305 respectively.

[0036] The telescopic assembly 4 includes a plug rod 401, a second spring 402, and a support rod 403. The second spring 402 is sleeved on the outer wall of the plug rod 401, and one end of the second spring 402 is fixedly connected to the plug rod 401. The outer diameter of the plug rod 401 is the same as the inner diameter of the sliding hole 3041, allowing the plug rod 401 to match the sliding hole 3041. By pulling the plug rod 401, the plug rod 401 causes the second spring 402 to stretch, causing the plug rod 401 to slide along the sliding hole 3041 and separate from the insertion hole 4031. Subsequently, the support rod 403 is moved, sliding along the guide seat 304. By matching with the corresponding insertion hole 4031, the extension length of the support rod 403 is increased. Similarly, the support rods 403 around the climate simulation test chamber 1 are pulled out to support the climate simulation test chamber 1. Spring 402 is set between the insertion rod 401 and the guide seat 304, and the other end of the spring 402 is fixedly connected to the guide seat 304. Multiple insertion holes 4031 are provided on one side of the support rod 403, and the spacing between any two adjacent insertion holes 4031 is the same. The inner diameter of the insertion hole 4031 is the same as the outer diameter of the insertion rod 401. The side of the insertion rod 401 away from the spring 402 can match the insertion hole 4031. The guide seat 304 is sleeved on the outer wall of the support rod 403, and the guide seat 304 and the outer wall of the support rod 403 are fitted with a clearance.

[0037] Specifically, when the climate simulation test chamber 1 is in use, by moving the guide seat 304, the guide seat 304 can drive the slide rod 303 to move along the sliding cavity 3012 and rectangular hole 3013 of the rotating rod 301. At the same time, the guide seat 304 drives the connecting block 3042 to move away from the rotating rod 301, so that the connecting block 3042 disengages from the two side locking blocks 305. Simultaneously, the slide rod 303 drives the spring 302 to stretch, so that the rotating rod 301 can rotate along the climate simulation test chamber 1 and rotate the positioning screw 202. The positioning screw 202 is connected to the corresponding positioning hole 2011 and connecting hole 3011, thereby restricting the rotation position of the rotating rod 301. Pulling the insertion rod 401, the insertion rod 401 drives the spring 302 to rotate. When spring 402 is stretched, the insertion rod 401 slides along the sliding hole 3041 and separates from the insertion hole 4031. Then, the support rod 403 is moved to the corresponding height and slides along the guide seat 304. By matching with the insertion hole 4031 at the corresponding position, the extension length of the support rod 403 can be adjusted. Similarly, the support rods 403 around the climate simulation test box 1 can be pulled out to support the climate simulation test box 1. After use, the support rods 403 are reset, and then the connecting block 3042 is connected to the locking block to recycle the support structure. This avoids the need to carry the workbench used to place the climate simulation test box 1 during use, making the climate simulation test box 1 more convenient to carry.

[0038] Although the present invention has been illustrated and described with reference to preferred embodiments, those skilled in the art should understand that various changes in form and detail are possible within the scope of the claims.

Claims

1. A portable climate simulation chamber with intelligent regulation, characterized in that: The climate simulation experiment box and the supporting structure, the outer side of the climate simulation experiment box is provided with the supporting structure, wherein the supporting structure further comprises rotating positioning members, rotating assemblies and telescopic assemblies; A plurality of rotating positioning members are arranged on both sides of the climate simulation experiment box, one side of the rotating positioning member is provided with a rotating assembly, one side of the rotating assembly is provided with a telescopic assembly, The rotating positioning member comprises a positioning plate and a positioning screw rod; A plurality of positioning holes are arranged in the middle of the positioning plate, and the positioning holes are distributed in a circumferential direction; One side of the positioning hole of the positioning plate is threadedly connected with the positioning screw rod, The rotating assembly comprises a rotating rod, a spring one, a sliding rod, a guide seat and a clamping block; A plurality of rotating rods are hingedly connected with a plurality of climate simulation experiment boxes, a sliding rod is arranged in the middle of the rotating rod, a spring one is arranged between the sliding rod and the rotating rod, a guide seat is arranged at the end of the sliding rod away from the spring one, two clamping blocks are arranged on one side of the guide seat adjacent to the climate simulation experiment box, the clamping blocks are mirror-symmetrically distributed on both sides, and the end of the clamping block is fixedly connected with the climate simulation experiment box.

2. The portable climate simulation test chamber of claim 1, wherein: The side end of the rotating rod is provided with a connecting hole, the inner diameter of the connecting hole is the same as the outer diameter of the positioning screw rod, and the connecting hole can match the positioning screw rod; The inside of the rotating rod is provided with a sliding cavity, one side of the sliding cavity is provided with a rectangular hole, the rectangular hole penetrates through one side of the rotating rod adjacent to the guide seat, the sliding cavity can match one side of the sliding rod adjacent to the spring one, and the rectangular hole can match one side of the sliding rod away from the spring one; The spring one is arranged in the sliding cavity, and the two ends of the spring one are fixedly connected with the sliding rod and the sliding cavity, respectively; One side of the guide seat away from the clamping block is provided with a sliding hole, one side of the guide seat adjacent to the clamping block is provided with a connecting block, and the connecting block can be clamped with the clamping blocks on both sides.

3. The portable climate simulation chamber of claim 1, wherein: The telescopic assembly comprises an insertion rod, a spring two and a supporting rod; The outer wall of the insertion rod is sleeved with the spring two, and one end of the spring two is fixedly connected with the insertion rod; The outer diameter of the insertion rod is the same as the inner diameter of the sliding hole, and the insertion rod can match the sliding hole; The spring two is arranged between the insertion rod and the guide seat, and the other end of the spring two is fixedly connected with the guide seat; One side of the supporting rod is provided with a plurality of insertion holes, and the distance between any two adjacent insertion holes is the same; The inner diameter of the insertion hole is the same as the outer diameter of the insertion rod, and the side of the insertion rod away from the spring two can match the insertion hole; The outer wall of the supporting rod is sleeved with the guide seat, and the guide seat is gap-fitted with the outer wall of the supporting rod.