Energy-saving control system for high-low temperature box
By adopting a bottom plate slide rail partitioning and independent loop control method in the high and low temperature chamber, the problem of high energy consumption of traditional high and low temperature chambers is solved, and energy-saving control and efficient testing are achieved.
Patent Information
- Application Number
- CN202423080476.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-12
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-12-12
AI Technical Summary
Traditional high and low temperature chamber testing equipment consumes a lot of energy, which increases research and development costs.
The base plate is used to accommodate the slide rails, which divide the space into four blocks. The temperature of each block is controlled by an independent loop. Combined with the protective cover, multiple sealed and insulated environments are formed, enabling independent temperature regulation and equipment transfer testing in different environments.
This reduces the energy consumption of simultaneous heating and cooling of the entire equipment, improves testing efficiency and the transfer efficiency of the equipment under different temperature environments, and reduces energy consumption.
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Figure CN223501338U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of testing equipment technology, and in particular to an energy-saving control system for high and low temperature chambers. Background Technology
[0002] The widespread application of new clean energy sources has brought about a large consumer market. More and more manufacturers are investing in the research and development and production of equipment for new clean energy applications. Since these devices mostly employ new technologies, extensive testing processes are required. Among these, testing these devices in high and low temperature environments is a crucial testing item in the industry. Traditional high and low temperature chamber testing equipment often consumes a lot of energy, significantly increasing research and development costs. Therefore, it is necessary to address the high energy consumption of traditional high and low temperature chambers by proposing an energy-saving control system for them. Utility Model Content
[0003] Therefore, it is necessary to propose an energy-saving control system for high and low temperature chambers to address the high energy consumption of traditional high and low temperature chambers.
[0004] This application relates to an energy-saving control system for a high and low temperature chamber, comprising:
[0005] The base plate is provided with a slide rail, which includes a first longitudinal rail, a second longitudinal rail, and a transverse rail. The first longitudinal rail, the second longitudinal rail, and the transverse rail are all attached to the top surface of the base plate. The first longitudinal rail and the second longitudinal rail are parallel to each other, and the transverse rail is perpendicular to the first longitudinal rail.
[0006] A protective cover, wherein the bottom edge of the protective cover is in contact with the top surface of the base plate;
[0007] The sliding plate includes a first sub-plate, a second sub-plate, and a third sub-plate. The first sub-plate is disposed between the protective cover and the first longitudinal rail, the second sub-plate is disposed between the protective cover and the second longitudinal rail, and the third sub-plate is disposed between the protective cover and the transverse rail.
[0008] A temperature regulator includes a regulator body, a first loop, a second loop, a third loop, and a fourth loop. The first loop, the second loop, the third loop, and the fourth loop are all connected to the regulator body. The first loop is disposed between the protective cover and the first sub-plate, the second loop is disposed between the first sub-plate and the second sub-plate, the third loop is disposed between the protective cover and the second sub-plate, and the fourth loop is disposed between the third sub-plate and the protective cover.
[0009] This application relates to an energy-saving control system for a high and low temperature chamber. A base plate houses slide rails, including a first longitudinal rail, a second longitudinal rail, and a transverse rail. These slide rails divide the base plate into four sections, each capable of housing different high and low temperature chambers. This reduces the energy consumption of the regulator body for simultaneously heating and cooling all areas of the base plate. Simply put, the base plate and protective cover are attached to each other to form a sealed, insulated environment. The first, second, and third partitions further divide this sealed environment into multiple insulated, sealed environments. The first, second, third, and fourth loops heat these sealed environments at different temperatures, ensuring each sealed environment has a different temperature. New clean energy application equipment can be tested in each sealed insulated environment, or it can be transferred and tested in different environments. Attached Figure Description
[0010] Figure 1 This is a schematic diagram of the base plate and protective cover of an energy-saving control system for a high and low temperature chamber, provided in one embodiment of this application.
[0011] Figure 2 This is a schematic diagram of the temperature regulator, slide rail, and receiving tank of an energy-saving control system for a high and low temperature chamber provided in an embodiment of this application.
[0012] Figure 3 This is a schematic diagram of the structure of a sliding plate in an energy-saving control system for a high and low temperature chamber, provided as an embodiment of this application.
[0013] Figure 4 This is a schematic diagram of the third sub-board and the base plate of an energy-saving control system for a high and low temperature chamber provided in an embodiment of this application.
[0014] Figure label:
[0015] 100 - Base plate; 110 - Slide rail; 111 - First longitudinal rail; 112 - Second longitudinal rail; 113 - Transverse rail;
[0016] 114 - First rail; 115 - Second rail; 120 - Receiving groove; 130 - Supporting groove; 200 - Protective cover;
[0017] 210 - First sidewall; 220 - Second sidewall; 230 - Third sidewall; 240 - Fourth sidewall; 250 - Top wall;
[0018] 300 - Sliding plate; 310 - First partition plate; 311 - First moving page; 312 - Second moving page;
[0019] 313 - First fixing page; 314 - Second fixing page; 315 - First sealing strip; 316 - Second sealing strip;
[0020] 317 - Third sealing strip; 320 - Second partition plate; 330 - Third partition plate; 331 - First sliding flap;
[0021] 332 - Second slide; 333 - Third slide; 400 - Temperature regulator; 410 - Regulator body;
[0022] 420 - First Ring Road; 430 - Second Ring Road; 440 - Third Ring Road; 450 - Fourth Ring Road. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.
[0024] This application provides an energy-saving control system for a high and low temperature chamber.
[0025] like Figure 1 and Figure 2 As shown in one embodiment of this application, a high and low temperature chamber energy-saving control system includes a base plate 100, a protective cover 200, a sliding plate 300, and a temperature regulator 400.
[0026] The base plate 100 is provided with a slide rail 110, which includes a first longitudinal rail 111, a second longitudinal rail 112 and a transverse rail 113. The first longitudinal rail 111, the second longitudinal rail 112 and the transverse rail 113 are all attached to the top surface of the base plate 100. The first longitudinal rail 111 and the second longitudinal rail 112 are parallel to each other, and the transverse rail 113 is perpendicular to the first longitudinal rail 111.
[0027] The bottom edge of the protective cover 200 is in contact with the top surface of the base plate 100.
[0028] The sliding plate 300 includes a first partition plate 310, a second partition plate 320, and a third partition plate 330. The first partition plate 310 is disposed between the protective cover 200 and the first longitudinal rail 111, the second partition plate 320 is disposed between the protective cover 200 and the second longitudinal rail 112, and the third partition plate 330 is disposed between the protective cover 200 and the transverse rail 113.
[0029] The temperature regulator 400 includes a regulator body 410, a first loop 420, a second loop 430, a third loop 440, and a fourth loop 450. The first loop 420, the second loop 430, the third loop 440, and the fourth loop 450 are all connected to the regulator body 410. The first loop 420 is disposed between the protective cover 200 and the first partition plate 310, the second loop 430 is disposed between the first partition plate 310 and the second partition plate 320, the third loop 440 is disposed between the protective cover 200 and the second partition plate 320, and the fourth loop 450 is disposed between the third partition plate 330 and the protective cover 200.
[0030] This embodiment relates to an energy-saving control system for a high and low temperature chamber. A base plate 100 houses a slide rail 110, which includes a first longitudinal rail 111, a second longitudinal rail 112, and a transverse rail 113. The slide rail 110 divides the base plate 100 into four sections, each capable of housing different high and low temperature chambers. This reduces the energy consumption of the regulator body 410 in simultaneously heating and cooling all areas of the base plate 100. Simply put, the base plate 100 and the protective cover 200 are attached to each other, forming a sealed, insulated environment. A first partition plate 310, a second partition plate 320, and a third partition plate 330 divide this sealed environment into multiple insulated sealed environments. A first loop 420, a second loop 430, a third loop 440, and a fourth loop 450 heat these sealed environments at different temperatures, achieving different temperatures for each sealed environment. The application equipment for testing new clean energy can be tested in every sealed, insulated environment, or it can be transferred and tested in different environments.
[0031] like Figure 1 As shown, in one embodiment of this application, the protective cover 200 includes a first sidewall 210, a second sidewall 220, a third sidewall 230, and a fourth sidewall 240. The first sidewall 210 and the second sidewall 220 are parallel to each other. The first sidewall 210 is perpendicular to the base plate 100. The third sidewall 230 and the fourth sidewall 240 are parallel to each other. The third sidewall 230 is perpendicular to the base plate 100. The first sidewall 210 and the third sidewall 230 are perpendicular to each other.
[0032] Specifically, the protective cover 200 includes a first side wall 210, a second side wall 220, a third side wall 230 and a fourth side wall 240. The first side wall 210, the second side wall 220, the third side wall 230 and the fourth side wall 240 serve as the side walls of the enclosed space, which can enclose the top space of the bottom plate 100.
[0033] In one embodiment of this application, the protective cover 200 further includes a top wall 250. The first side wall 210, the third side wall 230, the second side wall 220, and the fourth side wall 240 are sequentially fixedly connected. The bottom edges of the first side wall 210, the third side wall 230, the second side wall 220, and the fourth side wall 240 are all in contact with the top surface of the base plate 100. The top edges of the first side wall 210, the third side wall 230, the second side wall 220, and the fourth side wall 240 are all in contact with the top wall 250.
[0034] Specifically, in the direction perpendicular to the base plate 100, the slide rail 110 is provided with a sealing rubber strip in the projection area of the top wall 250.
[0035] The first sidewall 210, the second sidewall 220, the third sidewall 230 and the fourth sidewall 240 between the top wall 250 and the bottom plate 100 are fixedly connected in sequence.
[0036] The first side wall 210, the second side wall 220, the third side wall 230, the fourth side wall 240, the top wall 250, and the bottom plate 100 form a sealed space. This space serves as the temperature testing environment for the high and low temperature chamber.
[0037] like Figure 3 As shown, in one embodiment of this application, the structure of the first partition plate 310 is the same as that of the second partition plate 320. The first partition plate 310 includes a first movable page 311, a second movable page 312, a first fixed page 313, and a second fixed page 314. The first fixed page 313 and the second fixed page 314 are on the same plane. The first movable page 311 and the second movable page 312 are on the same plane.
[0038] Specifically, a sealing rubber strip is provided on the top wall 250, and a first dividing plate 310 is provided between the sealing rubber strip and the first longitudinal rail 111.
[0039] In one embodiment of this application, the first movable page 311 is disposed inside the first longitudinal rail 111. The second movable page 312 is disposed inside the first longitudinal rail 111. The first fixed page 313 is perpendicular to the third sidewall 230. The first fixed page 313 is fixedly connected to the third sidewall 230. The second fixed page 314 is perpendicular to the third partition plate 330. The second fixed page 314 is fixedly connected to the third partition plate 330. The first movable page 311 is attached to the first fixed page 313. The second movable page 312 is attached to the second fixed page 314.
[0040] Specifically, the first partition 310 includes a first movable page 311, a second movable page 312, a first fixed page 313, and a second fixed page 314, with the first movable page 311 and the second movable page 312 disposed inside the first longitudinal rail 111.
[0041] When the first moving page 311 slides inside the first longitudinal rail 111, the sealing rubber strip provided on the top wall 250 can play a role in collapse sealing.
[0042] The first movable page 311 is attached to the first fixed page 313, and the first movable page 311 and the first fixed page 313 can form a seal.
[0043] When the second moving page 312 slides inside the first longitudinal rail 111, the sealing rubber strip provided on the top wall 250 can play a role in collapse sealing.
[0044] The second movable page 312 is attached to the second fixed page 314, and the second movable page 312 and the second fixed page 314 can form a seal.
[0045] In one embodiment of this application, a first sealing strip 315 is provided between the first movable page 311 and the first fixed page 313. The first sealing strip 315 is fixedly connected to the surface of the first fixed page 313. A second sealing strip 316 is provided between the second movable page 312 and the second fixed page 314. The second sealing strip 316 is fixedly connected to the surface of the second fixed page 314. A third sealing strip 317 is provided between the first movable page 311 and the second movable page 312. The third sealing strip 317 is fixedly connected to the side of the first movable page 311.
[0046] Specifically, a first sealing strip 315 is provided between the first moving page 311 and the first fixed page 313, which can achieve sealing of the areas of the first side wall 210, the third side wall 230, the third partition plate 330 and the first partition plate 310 between the bottom plate 100 and the top wall 250.
[0047] like Figure 2 As shown, in one embodiment of this application, the base plate 100 is disposed in a receiving groove 120. The first longitudinal rail 111 is disposed inside the receiving groove 120. The height of the top surface of the first longitudinal rail 111 is equal to the height of the top surface of the base plate 100.
[0048] Specifically, the receiving groove 120 is used to receive the first longitudinal rail 111. This makes the height of the top surface of the first longitudinal rail 111 equal to the height of the top surface of the base plate 100. When the new clean energy application equipment is transferred from one sealed area to another, the new clean energy application equipment can be transferred smoothly.
[0049] Simply put, new clean energy application equipment can be tested for temperature in a sealed area without requiring temperature changes to the air inside the entire protective enclosure 200.
[0050] At the same time, different sealing areas have different temperatures, which can enhance the efficiency of testing new clean energy application equipment across temperature zones.
[0051] like Figure 4 As shown, in one embodiment of this application, the third partition 330 includes a first slide 331, a second slide 332, and a third slide 333. The width of the first slide 331 is greater than the vertical distance between the first sidewall 210 and the first partition 310. The width of the second slide 332 is greater than the vertical distance between the first partition 310 and the second partition 320. The width of the third slide 333 is greater than the vertical distance between the second partition 320 and the second sidewall 220.
[0052] In one embodiment of this application, the horizontal rail 113 includes a first sub-rail 114 and a second sub-rail 115. The first slide 331 is disposed inside the first sub-rail 114. The third slide 333 is disposed inside the first sub-rail 114. The second slide 332 is disposed inside the second sub-rail 115.
[0053] Specifically, when the first slide 331 slides, the space between the first sidewall 210 and the first partition 310, and the space between the third sidewall 230 and the third partition 330 are connected.
[0054] When the second slide 332 slides, the space between the first partition 310 and the second partition 320, and the space between the third sidewall 230 and the third partition 330 are connected.
[0055] When the third slide 333 slides, the space between the second side wall 220 and the second partition 320, and the space between the third side wall 230 and the third partition 330 are connected.
[0056] like Figure 2 As shown, in one embodiment of this application, the base plate 100 is provided with a support groove 130. The first guide rail 114 and the second guide rail 115 are both disposed inside the support groove 130. The first guide rail 114 and the second guide rail 115 are parallel to each other.
[0057] Specifically, both the first guide rail 114 and the second guide rail 115 are located inside the receiving groove 130, enabling a smooth transition for the new clean energy application equipment from the space between the first side wall 210 and the first partition plate 310 to the space between the third side wall 230 and the third partition plate 330. Similarly, a smooth transition is achieved from the space between the first partition plate 310 and the second partition plate 320 to the space between the third side wall 230 and the third partition plate 330. Finally, a smooth transition is also achieved from the space between the second side wall 220 and the second partition plate 320 to the space between the third side wall 230 and the third partition plate 330.
[0058] The technical features of the above embodiments can be combined arbitrarily, and the execution order of the method steps is not restricted. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0059] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of this patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this application should be determined by the appended claims.
Claims
1. An energy-saving control system for a high and low temperature chamber, characterized in that, include: The base plate is provided with a slide rail, which includes a first longitudinal rail, a second longitudinal rail, and a transverse rail. The first longitudinal rail, the second longitudinal rail, and the transverse rail are all attached to the top surface of the base plate. The first longitudinal rail and the second longitudinal rail are parallel to each other, and the transverse rail is perpendicular to the first longitudinal rail. A protective cover, wherein the bottom edge of the protective cover is in contact with the top surface of the base plate; The sliding plate includes a first sub-plate, a second sub-plate, and a third sub-plate. The first sub-plate is disposed between the protective cover and the first longitudinal rail, the second sub-plate is disposed between the protective cover and the second longitudinal rail, and the third sub-plate is disposed between the protective cover and the transverse rail. A temperature regulator includes a regulator body, a first loop, a second loop, a third loop, and a fourth loop. The first loop, the second loop, the third loop, and the fourth loop are all connected to the regulator body. The first loop is disposed between the protective cover and the first sub-plate, the second loop is disposed between the first sub-plate and the second sub-plate, the third loop is disposed between the protective cover and the second sub-plate, and the fourth loop is disposed between the third sub-plate and the protective cover.
2. The high and low temperature chamber energy-saving control system according to claim 1, characterized in that, The protective cover includes a first sidewall, a second sidewall, a third sidewall, and a fourth sidewall; The first sidewall and the second sidewall are parallel to each other; The first sidewall is perpendicular to the bottom plate; The third sidewall is parallel to the fourth sidewall; The third sidewall is perpendicular to the bottom plate; The first sidewall is perpendicular to the third sidewall.
3. The high and low temperature chamber energy-saving control system according to claim 2, characterized in that, The protective cover also includes a top wall; The first sidewall, the third sidewall, the second sidewall, and the fourth sidewall are fixedly connected in sequence; The bottom edges of the first sidewall, the third sidewall, the second sidewall, and the fourth sidewall are all in contact with the top surface of the base plate. The top edges of the first sidewall, the third sidewall, the second sidewall, and the fourth sidewall are all in contact with the top wall.
4. The high and low temperature chamber energy-saving control system according to claim 3, characterized in that, The structure of the first sub-plate is the same as that of the second sub-plate; The first partition includes a first movable page, a second movable page, a first fixed page, and a second fixed page; The first fixed page and the second fixed page are on the same plane; The first moving page and the second moving page are on the same plane.
5. The high and low temperature chamber energy-saving control system according to claim 4, characterized in that, The first movable page is disposed inside the first longitudinal rail; The second movable page is disposed inside the first longitudinal rail; The first fixed page is perpendicular to the third sidewall; The first fixed page is fixedly connected to the third sidewall; The second fixed page is perpendicular to the third partition plate; The second fixed page and the third partition are fixedly connected to each other; The first moving page is attached to the first fixed page; The second moving page is attached to the second fixed page.
6. The high and low temperature chamber energy-saving control system according to claim 5, characterized in that, The base plate is provided with a receiving groove; The first longitudinal rail is disposed inside the receiving groove; The height of the top surface of the first longitudinal rail is equal to the height of the top surface of the base plate.
7. The high and low temperature chamber energy-saving control system according to claim 6, characterized in that, A first sealing strip is provided between the first moving page and the first fixed page; The first sealing strip is fixedly connected to the surface of the first fixed page; A second sealing strip is provided between the second moving page and the second fixed page; The second sealing strip is fixedly connected to the surface of the second fixed page; A third sealing strip is provided between the first movable page and the second movable page; The third sealing strip is fixedly connected to the side of the first moving page.
8. The high and low temperature chamber energy-saving control system according to claim 7, characterized in that, The third slide includes a first slide, a second slide, and a third slide; The width of the first sliding page is greater than the vertical distance between the first sidewall and the first partition plate; The width of the second slide is greater than the vertical distance between the first partition and the second partition; The width of the third slide is greater than the vertical distance between the second partition and the second sidewall.
9. The high and low temperature chamber energy-saving control system according to claim 8, characterized in that, The horizontal rail includes a first section rail and a second section rail; The first sliding page is located inside the first dividing track; The third sliding page is disposed inside the first dividing track; The second slide is located inside the second slide rail.
10. The high and low temperature chamber energy-saving control system according to claim 9, characterized in that, The base plate is provided with a support groove; Both the first and second rails are disposed inside the receiving groove; The first and second tracks are parallel to each other.