Thermal insulation wall of medical laboratory for green decoration construction

The rapid splicing of thermal insulation wall panels is achieved through mechanical structure, which solves the problems of low efficiency and odor dissipation in the existing technology, and provides an efficient splicing solution for green decoration construction.

CN223240889UActive Publication Date: 2025-08-19GUANGZHOU BISHENGBANG LAB TECH CO LTD
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Patent Information

Application Number
CN202422697923.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-05
Publication Date
2025-08-19
Estimated Expiration
2034-11-05

AI Technical Summary

Technical Problem

The existing insulation walls are inefficient and emit odor during installation, affecting the laboratory environment.

Method used

The thermal insulation wall panel is spliced using mechanical structure, and the coupling of the connecting plate and positioning components is achieved quickly, avoiding the use of glue.

Benefits of technology

It realizes rapid and odor-free wall splicing, improves construction efficiency, and protects the laboratory environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of thermal insulation wall bodies, and discloses a medical laboratory thermal insulation wall body for green decoration construction, which comprises a thermal insulation wall plate, and first mounting cavities are arranged on the front side and the rear side in the thermal insulation wall plate. According to the thermal insulation wall of the medical laboratory for green decoration construction, a first connecting plate at the bottom of the upper thermal insulation wall plate is inserted into a first connecting groove in the lower thermal insulation wall plate till the opposite sides of the two thermal insulation wall plates are attached to each other, and then vertical splicing of the two thermal insulation wall plates is completed; when two thermal insulation wallboards need to be spliced left and right, the two thermal insulation wallboards can be placed left and right, the opposite sides of the two thermal insulation wallboards are attached to each other, then left-right splicing of the two thermal insulation wallboards can be completed through matched connection between the connecting assembly and the second positioning assembly, similarly, the splicing speed is high, the efficiency is high, meanwhile, no peculiar smell is generated, and the production cost is reduced. Therefore, the use is convenient.
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Description

Technical Field

[0001] The utility model relates to the technical field of thermal insulation walls, in particular to a thermal insulation wall of a medical laboratory used for green decoration construction. Background Art

[0002] When a laboratory is under construction, in order to facilitate the conduct of experiments, it is necessary to ensure the thermal insulation performance of the wall, so thermal insulation walls are often used. The existing technology usually forms a complete wall by splicing many thermal insulation wall panels together. However, in the actual installation process of existing thermal insulation walls, most of the thermal insulation wall panels are spliced together by gluing. The solidification of the glue takes time, resulting in low splicing efficiency. Secondly, many glues will emit odors, which will pollute the laboratory environment and be unfavorable for use. Therefore, a thermal insulation wall for a medical laboratory used in green decoration construction is proposed. Utility Model Content

[0003] (1) Technical problems solved

[0004] In response to the deficiencies in the prior art, the utility model provides an insulation wall for a medical laboratory used in green decoration construction, which has the advantages of easy splicing, etc., and solves the problem that in the actual installation process of the existing insulation wall, most of the insulation wall panels are spliced together by gluing, and the solidification of the glue takes time, resulting in low splicing efficiency. Secondly, many glues will emit odors, which will pollute the laboratory environment and be unfavorable for use.

[0005] (2) Technical solution

[0006] In order to achieve the above-mentioned purpose of facilitating splicing, the present invention provides the following technical solutions: an insulation wall for a medical laboratory used for green decoration construction, comprising an insulation wall panel, wherein first installation cavities are provided on both the front and rear sides of the insulation wall panel, insulation cotton is provided inside the two first installation cavities, a first connecting groove located between the two first installation cavities is provided on the top of the insulation wall panel, a first connecting plate is provided on the bottom of the insulation wall panel, first positioning grooves are provided on the left and right sides of the first connecting plate, two second installation cavities are provided inside the insulation wall panel and are respectively located on the left and right sides of the first connecting groove, a first positioning assembly is provided between the upper and lower sides of the inner walls of the two second installation cavities, one end of which is respectively fixedly connected to the inner walls opposite to the two second installation cavities and the other end of which extends into the first connecting groove;

[0007] A second connecting groove located between the two first mounting cavities is provided on the right side of the thermal insulation wall panel, and two third mounting cavities are provided inside the thermal insulation wall panel and are respectively located on the upper and lower sides of the second connecting groove. A second positioning assembly is provided between the left and right sides of the inner walls of the two third mounting cavities, one end of which is fixedly connected to the inner walls on the opposite sides of the two third mounting cavities and the other end of which extends into the interior of the second connecting groove;

[0008] The left side of the thermal insulation wall panel is provided with a mounting groove located between the two first mounting cavities, and a connecting component adapted to be connected to the second positioning component is provided in the mounting groove.

[0009] Preferably, the connection assembly includes:

[0010] Two slide grooves are respectively provided on the insulation wall panel and located on the upper and lower sides of the inner wall of the installation groove;

[0011] A moving block located between the two chutes;

[0012] a second connecting plate, located on the left side of the moving block and inside the mounting slot;

[0013] The two second positioning grooves are respectively located on the upper and lower sides of the second connecting plate, and are adapted to be connected with the second positioning assembly;

[0014] a threaded rod, located between the upper and lower sides of the inner wall of the mounting slot and on the right side of the moving block;

[0015] Two third sliding blocks are respectively located at the upper and lower ends of the outer side of the threaded rod, and one end of the third sliding block is movably connected to the right side of the inner wall of the installation groove;

[0016] a connecting rod, located on the left side of the two third sliding blocks, one end of which is movably connected to the right side of the moving block;

[0017] Grooves are provided on the front side of the thermal insulation wall panel and the front side of the threaded rod;

[0018] a cylinder, disposed on the rear side of the inner wall of the groove, with one end thereof extending into the interior of the mounting groove;

[0019] A transmission assembly is disposed inside the cylinder, one end of which extends into the groove and the other end of which extends into the mounting slot and is fixedly connected to the outside of the threaded rod;

[0020] The rotating assembly is arranged on the front side of the transmission assembly, and one end of the rotating assembly extends to the front side of the thermal insulation wall panel.

[0021] Preferably, the first positioning assembly includes a first slider, a first elastic member and a first positioning wedge block, the first slider is movably installed between the upper and lower sides of the inner walls of the two second mounting cavities, the first elastic member is fixedly installed on the opposite sides of the two first sliders, one end of the first elastic member is fixedly connected to the opposite inner walls of the two second mounting cavities, the first positioning wedge block is fixedly installed on the opposite sides of the two first sliders, and one end of the first positioning wedge block extends to the inside of the first connecting groove.

[0022] Preferably, the first elastic member is a spring structure.

[0023] Preferably, the second positioning assembly includes a second slider, a second elastic member and a second positioning wedge block, the second slider is movably installed between the left and right sides of the inner walls of the two third mounting cavities, the second elastic member is fixedly installed on the opposite sides of the two second sliders, one end of the second elastic member is fixedly connected to the opposite inner walls of the two third mounting cavities, the second positioning wedge block is fixedly installed on the opposite sides of the two second sliders, and one end of the second positioning wedge block extends to the inside of the second connecting groove.

[0024] Preferably, the second elastic member is a spring structure.

[0025] Preferably, the transmission assembly includes a transmission shaft, a driving bevel gear and a driven bevel gear. The interior of the cylinder is rotatably connected to the transmission shaft, one end of the transmission shaft extends into the interior of the groove and the other end extends into the interior of the mounting groove, the driving bevel gear is fixedly installed on the rear side of the transmission shaft, and the driven bevel gear is fixedly installed on the outer side of the threaded rod. The driven bevel gear is located between two third sliders and one end is engaged with the driving bevel gear.

[0026] Preferably, the rotating assembly includes a rectangular block, a connecting frame and an operating part. The rectangular block is fixedly installed on the front side of the transmission shaft, and the rectangular block is located inside the groove. The connecting frame is movably installed on the outside of the rectangular block. The operating part is fixedly installed on the front side of the connecting frame, and the operating part is located on the front side of the insulation wall panel.

[0027] Preferably, the operating part is a handwheel structure.

[0028] Preferably, bearings located on the right side of the moving block are fixedly installed on the upper and lower sides of the inner wall of the installation groove, and the threaded rod is rotatably connected to the inner wall of the installation groove through the bearings. Two sections of thread are provided on the outer side of the threaded rod, and the two sections of thread are equal in length and opposite in direction.

[0029] (3) Beneficial effects

[0030] Compared with the prior art, the present invention provides a thermal insulation wall for a medical laboratory used in green decoration construction, which has the following beneficial effects:

[0031] The insulation wall of the medical laboratory used in the green decoration construction is constructed by placing two insulation wall panels that need to be spliced up and down, and then inserting the first connecting plate at the bottom of the upper insulation wall panel into the first connecting groove of the lower insulation wall panel. During the downward movement, the upper first connecting plate will cooperate and connect with the first positioning component at the bottom to complete the upper and lower splicing of the two insulation wall panels. Compared with the existing technology that uses glue to bond, the present application uses a mechanical mechanism to achieve the splicing of the upper and lower insulation walls, with fast splicing speed and high efficiency, and no odor is generated, which is convenient for use.

[0032] More specifically, the insulation wall of the medical laboratory used for green renovation construction can be compressed by the first connecting plate during the downward movement of the first positioning wedge blocks, thereby driving the two lower first positioning wedge blocks to move away from each other until the opposite sides of the two insulation wall panels are in contact with each other. At this time, the two lower first positioning wedge blocks are exactly located on the opposite sides of the two upper first positioning grooves. Under the elastic force of the two lower first elastic members, the two lower first positioning wedge blocks are driven to move relative to each other and move into the interior of the two upper first positioning grooves, thereby fixing the two insulation wall panels together, thus completing the upper and lower splicing of the two insulation wall panels. The entire splicing process is simple and fast, and can be completed through the coordination of the mechanical structure.

[0033] Similarly, when two insulation wall panels need to be spliced left and right, the two insulation wall panels can be placed left and right, and the opposite sides of the two insulation wall panels can be fit together. Then, the left and right splicing of the two insulation wall panels can be completed by using the matching connection between the connecting component and the second positioning component. Similarly, the splicing speed is fast and the efficiency is high, and there is no odor, which makes it convenient to use.

[0034] More specifically, the insulation wall of the medical laboratory used for green decoration construction can be driven to rotate by turning the handwheel on the right insulation wall panel, thereby driving the right connecting frame to rotate, and then driving the right transmission shaft and the right driving bevel gear to rotate through the right rectangular block, and then the right driven bevel gear drives the right threaded rod to rotate. During the rotation of the right threaded rod, the two third sliders on the right are driven to move relative to each other, and then the right moving block and the right second connecting plate are driven to move leftward through the two connecting rods on the right, so that the right second connecting plate is inserted into the inside of the left second connecting groove. Similarly, when the right second connecting plate moves to the left, it will also squeeze the two second positioning wedge blocks on the left, thereby driving the two second positioning wedge blocks on the left to move back to each other until the right moving block moves to the left to the extreme position. At this time, the two second positioning wedge blocks on the left are exactly located on the opposite sides of the two second positioning grooves on the right. Under the elastic force of the two second elastic members on the left, the two second positioning wedge blocks on the left will move relative to each other and move to the inside of the two second positioning grooves on the right, respectively, completing the left and right splicing of the two insulation wall panels. Likewise, the entire splicing process is simple and quick and can be completed through the coordination of the mechanical structure. BRIEF DESCRIPTION OF THE DRAWINGS

[0035] Figure 1 This is a schematic diagram of the structure of the utility model;

[0036] Figure 2 This is a partial schematic diagram of a left-side sectional view of a threaded rod of the present invention;

[0037] Figure 3 For this utility model Figure 1 Enlarged view of point A in the middle;

[0038] Figure 4 For this utility model Figure 1 Enlarged view of point B in the middle;

[0039] Figure 5 For this utility model Figure 1 Enlarged view of point C in the middle;

[0040] Figure 6 For this utility model Figure 2 Enlarged view of point D in the middle;

[0041] Figure 7 This is a structural schematic diagram of the utility model in which four thermal insulation wall panels are spliced together.

[0042] In the figure: 1 insulation wall panel, 2 first installation cavity, 3 insulation cotton, 4 first connecting groove, 5 first connecting plate, 6 first positioning groove, 7 second installation cavity, 8 first positioning assembly, 81 first slider, 82 first elastic member, 83 first positioning wedge block, 9 second connecting groove, 10 third installation cavity, 11 second positioning assembly, 111 second slider, 112 second elastic member, 113 second positioning wedge block, 12 installation groove, 13 slide groove, 14 moving block, 15 second connecting plate, 16 second positioning groove, 17 threaded rod, 18 third slider, 19 connecting rod, 20 groove, 21 cylinder, 22 transmission assembly, 221 transmission shaft, 222 driving bevel gear, 223 driven bevel gear, 23 rotating assembly, 231 rectangular block, 232 connecting frame, 233 operating part. DETAILED DESCRIPTION

[0043] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0044] See also Figure 1-7 The utility model provides a technical solution: an insulation wall of a medical laboratory for green decoration construction, comprising an insulation wall panel 1, a first installation cavity 2 is opened on the front and rear sides of the insulation wall panel 1, the interiors of the two first installation cavities 2 are filled with insulation cotton 3, a first connecting groove 4 is opened on the top of the insulation wall panel 1 and located between the two first installation cavities 2, a first connecting plate 5 is fixedly installed on the bottom of the insulation wall panel 1, and first positioning grooves 6 are opened on the left and right sides of the first connecting plate 5.

[0045] The interior of the thermal insulation wall panel 1 is provided with two second mounting cavities 7, one located on the left and right sides of the first connecting groove 4. A first positioning assembly 8 is movably installed between the upper and lower sides of the inner walls of the two second mounting cavities 7, one end of which is fixedly connected to the inner walls on the opposite sides of the two second mounting cavities 7 and the other end of which extends into the interior of the first connecting groove 4.

[0046] The first positioning assembly 8 includes a first slider 81, a first elastic member 82 and a first positioning wedge block 83. The first slider 81 is movably installed between the upper and lower sides of the inner walls of the two second mounting cavities 7. The first elastic member 82 is fixedly installed on the opposite sides of the two first sliders 81. One end of the first elastic member 82 is fixedly connected to the opposite inner walls of the two second mounting cavities 7. The first positioning wedge block 83 is fixedly installed on the opposite sides of the two first sliders 81. One end of the first positioning wedge block 83 extends to the inside of the first connecting groove 4.

[0047] A second connecting groove 9 is provided on the right side of the thermal insulation wall panel 1 and is located between the two first mounting cavities 2. Two third mounting cavities 10 are provided inside the thermal insulation wall panel 1 and are located on the upper and lower sides of the second connecting groove 9, respectively. Second positioning components 11 are movably installed between the left and right sides of the inner walls of the two third mounting cavities 10, one end of which is fixedly connected to the inner walls on the opposite sides of the two third mounting cavities 10 and the other end of which extends into the second connecting groove 9.

[0048] The second positioning assembly 11 includes a second slider 111, a second elastic member 112 and a second positioning wedge block 113. The second slider 111 is movably installed between the left and right sides of the inner wall of the two third installation cavities 10. The second elastic member 112 is fixedly installed on the opposite sides of the two second sliders 111. One end of the second elastic member 112 is fixedly connected to the opposite inner walls of the two third installation cavities 10. The second positioning wedge block 113 is fixedly installed on the opposite sides of the two second sliders 111. One end of the second positioning wedge block 113 extends to the inside of the second connecting groove 9.

[0049] In a specific implementation process, both the first elastic member 82 and the second elastic member 112 can be implemented by springs.

[0050] A mounting groove 12 located between the two first mounting cavities 2 is provided on the left side of the thermal insulation wall panel 1 , and a connecting component adapted to be connected to the second positioning component 11 is provided in the mounting groove 12 .

[0051] The connecting assembly includes a slide groove 13 , a moving block 14 , a second connecting plate 15 , a second positioning groove 16 , a threaded rod 17 , a third slider 18 , a connecting rod 19 , a groove 20 , a cylinder 21 , a transmission assembly 22 , and a rotating assembly 23 .

[0052] The upper and lower sides of the inner wall of the installation groove 12 are connected to the slide groove 13, and the slide groove 13 is opened on the insulation wall panel 1. The movable block 14 is movably installed between the two slide grooves 13, and the second connecting plate 15 is fixedly installed on the left side of the movable block 14. The second connecting plate 15 is located inside the installation groove 12, and the second positioning groove 16 is opened on the upper and lower sides of the second connecting plate 15. The threaded rod 17 is movably installed between the upper and lower sides of the inner wall of the mounting groove 12, and the threaded rod 17 is located on the right side of the moving block 14. The upper and lower sides of the inner wall of the mounting groove 12 are fixedly installed with bearings located on the right side of the moving block 14. The threaded rod 17 is rotatably connected to the inner wall of the mounting groove 12 through the bearing, and the outer side of the threaded rod 17 is provided with two sections of thread, and the two sections of thread are equal in length and opposite in direction; the upper and lower ends of the outer side of the threaded rod 17 are threadedly connected to the third slider 18, one end of the third slider 18 is movably connected to the right side of the inner wall of the mounting groove 12, and the interior of the two third sliders 18 are provided with threaded holes adapted to the threaded rod 17, and the left sides of the two third sliders 18 are movably installed with the connecting rod 19, one end of the connecting rod 19 is movably connected to the right side of the moving block 14, and the left sides of the two third sliders 18 and the upper and lower ends of the right side of the moving block 14 are fixedly installed with rotating blocks, and the connecting rod 19 is movably connected to the third slider 18 and the moving block 14 respectively through the rotating block.

[0053] The groove 20 is opened on the front side of the thermal insulation wall panel 1, and the groove 20 is located on the front side of the threaded rod 17. The cylinder 21 is fixedly installed on the rear side of the inner wall of the groove 20, and one end of the cylinder 21 extends into the interior of the mounting groove 12. The transmission assembly 22 is movably installed inside the cylinder 21, and one end of the transmission assembly 22 extends into the interior of the groove 20 and the other end extends into the interior of the mounting groove 12 and is fixedly connected to the outside of the threaded rod 17, wherein the transmission assembly 22 includes a transmission shaft 221, a driving bevel gear 222 and a driven bevel gear 223, and the interior of the cylinder 21 is rotatably connected to the transmission shaft 221, and one end of the transmission shaft 221 extends into the interior of the groove 20 and the other end extends into the interior of the mounting groove 12. The driving bevel gear 222 is fixedly installed on the rear side of the transmission shaft 221, and the driven bevel gear 223 is fixedly installed on the outside of the threaded rod 17. The driven bevel gear 223 is located between the two third sliders 18 and one end is meshed with the driving bevel gear 222.

[0054] The rotating assembly 23 is fixedly installed on the front side of the transmission assembly 22, and one end of the rotating assembly 23 extends to the front side of the insulation wall panel 1. The rotating assembly 23 includes a rectangular block 231, a connecting frame 232 and an operating part 233. The rectangular block 231 is fixedly installed on the front side of the transmission shaft 221, and the rectangular block 231 is located inside the groove 20. The connecting frame 232 is movably installed on the outer side of the rectangular block 231. The operating part 233 is fixedly installed on the front side of the connecting frame 232, and the operating part 233 is located on the front side of the insulation wall panel 1; wherein the operating part 233 can be implemented by a handwheel structure.

[0055] After the installation is completed, the operating part 233 and the connecting frame 232 can be disassembled as a whole to rotate other rectangular blocks 231 for reuse, thereby eliminating the need to install the connecting frame 232 and the operating part 233 on each rectangular block 231.

[0056] Working principle: When two insulation wall panels 1 need to be spliced up and down, the two insulation wall panels 1 can be placed up and down, and then the first connecting plate 5 at the bottom of the upper insulation wall panel 1 is inserted into the first connecting groove 4 on the lower insulation wall panel 1. During the downward movement, the upper first connecting plate 5 will squeeze the two lower first positioning wedge blocks 83, thereby driving the two lower first positioning wedge blocks 83 to move back to back until the opposite sides of the two insulation wall panels 1 are fitted with each other. At this time, the two lower first positioning wedge blocks 83 are located on the opposite sides of the two upper first positioning grooves 6 respectively. Under the elastic force of the two lower first elastic members 82, the two lower first positioning wedge blocks 83 will be driven to move relative to each other and move to the inside of the two upper first positioning grooves 6 respectively, thereby fixing the two insulation wall panels 1 together, and completing the upper and lower splicing of the two insulation wall panels 1.

[0057] When the two insulation wall panels 1 need to be spliced left and right, the two insulation wall panels 1 can be placed left and right, and the opposite sides of the two insulation wall panels 1 can be fitted together. Then the hand wheel on the right insulation wall panel 1 can be turned to drive the right connecting frame 232 to rotate, and then the right rectangular block 231 is used to drive the right transmission shaft 221 and the right driving bevel gear 222 to rotate, and then the right driven bevel gear 223 is used to drive the right threaded rod 17 to rotate. During the rotation of the right threaded rod 17, the two third sliders 18 on the right are driven to move relative to each other, and then the right moving block 14 and the right second connecting plate 15 are driven to move leftward through the two connecting rods 19 on the right, so that the right second connecting plate 15 is inserted into the inside of the left second connecting groove 9. Similarly, when the right second connecting plate 15 moves left, The two second positioning wedge blocks 113 on the left will also be squeezed, thereby driving the two second positioning wedge blocks 113 on the left to move away from each other until the right moving block 14 moves to the left to the extreme position. At this time, the two second positioning wedge blocks 113 on the left are just located on the opposite sides of the two second positioning grooves 16 on the right. Under the elastic force of the two second elastic members 112 on the left, the two second positioning wedge blocks 113 on the left will move relative to each other and move to the inside of the two second positioning grooves 16 on the right, completing the left and right splicing of the two insulation wall panels 1. By adopting a fixed structure for clamping and fixing, the splicing speed is fast and the efficiency is high. At the same time, no odor is generated, which makes it convenient to use. If the first connecting plate 5 protrudes and gets in the way, the first connecting plate 5 can be sawed off to ensure the normal installation of the wall panel.

[0058] In summary, the insulation wall of the medical laboratory for green decoration construction is made by placing the two insulation wall panels 1 that need to be spliced up and down, and then inserting the first connecting plate 5 at the bottom of the upper insulation wall panel 1 into the first connecting groove 4 on the lower insulation wall panel 1. The upper first connecting plate 5 will squeeze the two first positioning wedge blocks 83 at the bottom during the downward movement, thereby driving the two first positioning wedge blocks 83 at the bottom to move back to each other until the opposite sides of the two insulation wall panels 1 fit together. At this time, the two first positioning wedge blocks 83 at the bottom are located at the opposite sides of the two first positioning grooves 6 at the top, and under the elastic force of the two first elastic members 82 at the bottom, they will The two first positioning wedge blocks 83 at the bottom are driven to move relative to each other and move to the inside of the two first positioning grooves 6 at the top, thereby fixing the two insulation wall panels 1 together, that is, completing the upper and lower splicing of the two insulation wall panels 1. When the two insulation wall panels 1 need to be spliced left and right, the two insulation wall panels 1 can be placed left and right, and the opposite sides of the two insulation wall panels 1 can be fitted together. Then, the operating part 233 on the right insulation wall panel 1 can be screwed to drive the right connecting frame 232 to rotate, and then the right rectangular block 231 drives the right transmission shaft 221 and the right driving bevel gear 222 to rotate, and then the right driven bevel gear 223 drives the right threaded rod 17 to rotate. When the right threaded rod 17 rotates, it drives the two right third sliding blocks 18 to move relative to each other, and then drives the right moving block 14 and the right second connecting plate 15 to move leftward through the two right connecting rods 19, so that the right second connecting plate 15 is inserted into the inside of the left second connecting groove 9. Similarly, when the right second connecting plate 15 moves to the left, it will also squeeze the two left second positioning wedge blocks 113, thereby driving the left two second positioning wedge blocks 113 to move back to back, until the right moving block 14 moves to the left to the extreme position. At this time, the left two second positioning wedge blocks 113 are located at the opposite sides of the two right second positioning grooves 16 respectively. Under the elastic force of the second elastic member 112, the two second positioning wedge blocks 113 on the left side will move relative to each other and move to the inside of the two second positioning grooves 16 on the right side, thus completing the left and right splicing of the two insulation wall panels 1. By adopting a fixed structure for clamping and fixing, the splicing speed is fast and efficient, and no odor is generated, which makes it convenient to use. It solves the problem that in the actual installation process of the existing insulation wall, most of the insulation wall panels are spliced together by gluing, and the solidification of the glue takes time, resulting in low splicing efficiency. Secondly, many glues will emit odors, which will pollute the laboratory environment and be unfavorable for use.

[0059] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply the existence of any such actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article, or device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of other identical elements in the process, method, article, or device comprising the element.

[0060] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A heat-insulating wall for a medical laboratory used in green decoration construction, comprising a heat-insulating wall panel (1), wherein first installation cavities (2) are provided on both the front and rear sides of the heat-insulating wall panel (1), and heat-insulating cotton (3) is provided inside the two first installation cavities (2), characterized in that: The top of the thermal insulation wall panel (1) is provided with a first connecting groove (4) located between the two first installation cavities (2); the bottom of the thermal insulation wall panel (1) is provided with a first connecting plate (5); the left and right sides of the first connecting plate (5) are both provided with first positioning grooves (6); the interior of the thermal insulation wall panel (1) is provided with two second installation cavities (7) located on the left and right sides of the first connecting groove (4); and the inner walls of the two second installation cavities (7) are provided with first positioning components (8) with one end fixedly connected to the inner walls of the opposite sides of the two second installation cavities (7) and the other end extending into the interior of the first connecting groove (4); The right side of the thermal insulation wall panel (1) is provided with a second connecting groove (9) located between the two first installation cavities (2); the interior of the thermal insulation wall panel (1) is provided with two third installation cavities (10) located on the upper and lower sides of the second connecting groove (9); and a second positioning component (11) is provided between the left and right sides of the inner walls of the two third installation cavities (10), one end of which is fixedly connected to the inner walls on the opposite sides of the two third installation cavities (10) and the other end of which extends into the interior of the second connecting groove (9); The left side of the thermal insulation wall panel (1) is provided with a mounting groove (12) located between the two first mounting cavities (2), and a connecting component adapted to be connected to the second positioning component (11) is provided in the mounting groove (12).

2. The thermal insulation wall of a medical laboratory for green decoration construction according to claim 1 is characterized by: The connection component includes: Two slide grooves (13) are respectively provided on the thermal insulation wallboard (1) and are located on the upper and lower sides of the inner wall of the installation groove (12); A moving block (14) is located between the two chutes (13); a second connecting plate (15) located on the left side of the moving block (14) and inside the mounting groove (12); Two second positioning grooves (16) are respectively located on the upper and lower sides of the second connecting plate (15), and are adaptively connected to the second positioning assembly (11); A threaded rod (17) is located between the upper and lower sides of the inner wall of the mounting groove (12) and is located on the right side of the moving block (14); Two third sliders (18) are respectively located at the upper and lower ends of the outer side of the threaded rod (17), and one end of the third slider (18) is movably connected to the right side of the inner wall of the installation groove (12); A connecting rod (19) is located on the left side of the two third sliding blocks (18), one end of which is movably connected to the right side of the moving block (14); A groove (20) is provided on the front side of the thermal insulation wallboard (1) and the front side of the threaded rod (17); A cylinder (21) is provided on the rear side of the inner wall of the groove (20), one end of which extends into the interior of the mounting groove (12); A transmission assembly (22) is disposed inside the cylinder (21), one end of which extends into the interior of the groove (20) and the other end of which extends into the interior of the mounting groove (12) and is fixedly connected to the outside of the threaded rod (17); The rotating assembly (23) is arranged on the front side of the transmission assembly (22), and one end of the rotating assembly (23) extends to the front side of the thermal insulation wall panel (1).

3. The thermal insulation wall of a medical laboratory for green decoration construction according to claim 1 is characterized by: The first positioning assembly (8) includes a first slider (81), a first elastic member (82) and a first positioning wedge block (83); the first slider (81) is movably installed between the upper and lower sides of the inner walls of the two second mounting cavities (7); the first elastic member (82) is fixedly installed on the opposite sides of the two first sliders (81); one end of the first elastic member (82) is fixedly connected to the opposite inner walls of the two second mounting cavities (7); the first positioning wedge block (83) is fixedly installed on the opposite sides of the two first sliders (81); one end of the first positioning wedge block (83) extends to the inside of the first connecting groove (4).

4. The thermal insulation wall of a medical laboratory for green decoration construction according to claim 3 is characterized by: The first elastic member (82) is a spring structure.

5. The thermal insulation wall of a medical laboratory for green decoration construction according to claim 1 is characterized by: The second positioning assembly (11) includes a second slider (111), a second elastic member (112) and a second positioning wedge block (113). The second slider (111) is movably installed between the left and right sides of the inner walls of the two third installation cavities (10). The second elastic member (112) is fixedly installed on the opposite sides of the two second sliders (111). One end of the second elastic member (112) is fixedly connected to the opposite inner walls of the two third installation cavities (10). The second positioning wedge block (113) is fixedly installed on the opposite sides of the two second sliders (111). One end of the second positioning wedge block (113) extends to the inside of the second connecting groove (9).

6. The thermal insulation wall of a medical laboratory for green decoration construction according to claim 4 is characterized by: The second elastic member (112) is a spring structure.

7. The thermal insulation wall of a medical laboratory for green decoration construction according to claim 2 is characterized by: The transmission assembly (22) comprises a transmission shaft (221), a driving bevel gear (222) and a driven bevel gear (223); the interior of the cylinder (21) is rotatably connected to the transmission shaft (221); one end of the transmission shaft (221) extends into the interior of the groove (20) and the other end extends into the interior of the mounting groove (12); the driving bevel gear (222) is fixedly mounted on the rear side of the transmission shaft (221); the driven bevel gear (223) is fixedly mounted on the outer side of the threaded rod (17); the driven bevel gear (223) is located between the two third sliders (18) and one end of the driven bevel gear (223) is meshed with the driving bevel gear (222).

8. The thermal insulation wall of a medical laboratory for green decoration construction according to claim 7 is characterized by: The rotating assembly (23) comprises a rectangular block (231), a connecting frame (232) and an operating portion (233); the rectangular block (231) is fixedly mounted on the front side of the transmission shaft (221), and the rectangular block (231) is located inside the groove (20); the connecting frame (232) is movably mounted on the outer side of the rectangular block (231); the operating portion (233) is fixedly mounted on the front side of the connecting frame (232), and the operating portion (233) is located on the front side of the thermal insulation wall panel (1).

9. The thermal insulation wall of a medical laboratory for green decoration construction according to claim 8 is characterized by: The operating portion (233) is a hand wheel structure.

10. The thermal insulation wall of a medical laboratory for green decoration construction according to any one of claims 2, 7-9, characterized in that: The inner wall of the installation groove (12) is fixedly mounted with bearings located on the right side of the moving block (14) on both upper and lower sides. The threaded rod (17) is rotatably connected to the inner wall of the installation groove (12) through the bearings. The outer side of the threaded rod (17) is provided with two sections of thread, and the two sections of thread are equal in length and opposite in direction.