Laboratory wallboard structure used in enclosure structure and construction method of laboratory wallboard structure

By using a construction method that combines base grooves and notches with obliquely wedged interlocking panels, the problem of space occupation during the installation of color steel panels in cleanrooms was solved, achieving efficient and stable wall panel installation and improving the usable area and airtightness of cleanrooms.

CN121952291APending Publication Date: 2026-05-01CHINA CONSTR EIGHT ENG DIV CORP LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
CHINA CONSTR EIGHT ENG DIV CORP LTD
Filing Date
2026-03-25
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

When installing color steel panels in a cleanroom, space needs to be left for installation and operation, which reduces the usable area of ​​the laboratory.

Method used

The construction method employs a base groove and notch combination, with the interlocking panels being obliquely wedged in, combined with support bases, to achieve stable installation of the wall panels.

Benefits of technology

It saves installation space, increases the usable area of ​​the cleanroom, improves installation efficiency and airtightness, and enhances overall stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a laboratory wallboard structure used in an enclosure structure and a construction method thereof, the laboratory wallboard structure comprises a base, a sliding groove is formed in the base, a notch is formed in one side, back on to the enclosure structure, of the base, and the notch is communicated with the sliding groove; the unit plates are arranged in the sliding grooves in a sliding mode to be spliced to form a wallboard body, a notch is formed between the two ends of the wallboard body, the outer side of one end face of the wallboard body and the inner side of the other end face of the wallboard body extend to form protruding edges respectively, and inclined end faces are formed on the opposite sides of the two protruding edges. The crossed ring plate is embedded between the inclined end faces, the end faces of the two opposite ends of the crossed ring plate are tightly attached to the two inclined end faces respectively, flange plates are formed on the inner sides of the two end faces of the crossed ring plate, and the two flange plates of the crossed ring plate are in lap joint with the inner sides of the two ends of the wallboard body respectively. The problems that in a traditional installation mode that the wallboards in the purification laboratory adopt color steel plates, indoor assembly wallboard installation space needs to be reserved, and the use area of the purification laboratory is reduced are solved.
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Description

Laboratory wall panel structure and its construction method within the enclosure structure Technical Field

[0001] This invention relates to the field of cleanroom laboratory wall panel technology, specifically to a laboratory wall panel structure for use within an enclosure structure and its construction method. Background Technology

[0002] Currently, most cleanroom laboratory designs in my country use color steel panels as interior wall panels. When an enclosure structure is installed on one side (or the outside) of the interior wall panels, the installation process of the color steel panels necessitates leaving space for installation and operation, thus reducing the actual usable area of ​​the laboratory.

[0003] When a transparent enclosure structure exists outside the interior wall panels of a cleanroom, and color steel plates are used as interior wall panels in the laboratory area, the side of the interior wall panels closest to the enclosure structure is inconvenient to install due to the wall panel installation process. Moreover, space needs to be reserved for the installation of the interior wall panels, which reduces the usable area of ​​the cleanroom. Summary of the Invention

[0004] To overcome the shortcomings of existing technologies, a laboratory wall panel structure and its construction method for use within the enclosure structure are provided. This solves the problem that the traditional installation method of using color steel plates for wall panels in cleanrooms requires leaving space for indoor assembly of wall panels, thus reducing the usable area of ​​the cleanroom.

[0005] To achieve the above objectives, a laboratory wall panel structure for use within an enclosure structure is provided, comprising: a base installed on the laboratory floor, the base having a ring around its inner circumference along the enclosure structure, the base having a groove, and a notch formed on the side of the base facing away from the enclosure structure, the notch communicating with the groove; multiple unit panels, the bottoms of the multiple unit panels slidingly disposed in the groove, the multiple unit panels being spliced ​​together to form a wall panel body, a notch being formed between the two ends of the wall panel body, the position of the notch corresponding to the position of the gap, the wall panel body... One end face of the wall panel body extends from the outer side near the enclosure structure to the inner side away from the enclosure structure, forming protruding ribs. The opposite sides of the two protruding ribs form inclined end faces, and the inclination of the inclined end faces of the two protruding ribs is matched. A ring plate is embedded between the inclined end faces. The end faces of the opposite ends of the ring plate are tightly attached to the two inclined end faces. The inner sides of the two end faces of the ring plate away from the enclosure structure extend along the plate surface direction to form flange plates. The two flange plates of the ring plate overlap the inner sides of the two ends of the wall panel body.

[0006] Furthermore, it also includes a support base, which is installed on the ground and supports the inner side of the wall panel body and the interlocking plate.

[0007] Furthermore, another abutment is provided on the outer side of the wall panel body, and the other abutment is supported on the outer side of the wall panel body.

[0008] Furthermore, the unit panels and the interlocking panels are made of color steel plates.

[0009] Furthermore, the tilt angle is 30°~45°.

[0010] This invention provides a construction method for a laboratory wall panel structure within an enclosure structure, comprising the following steps: installing a base on the laboratory floor, the base being arranged in a ring along the inner circumferential direction of the enclosure structure; pushing the bottom of multiple unit panels into the grooves of the base through notches, so that the multiple unit panels are spliced ​​together to form a wall panel body, a notch is formed between the two ends of the wall panel body, the position of the notch corresponding to the position of the notch; pushing the interlocking panels obliquely into the notch through the notch, so that the interlocking panels are embedded between the oblique end faces, the end faces of the opposite ends of the interlocking panels are respectively tightly attached to the two oblique end faces, and the two flange plates of the interlocking panels are respectively overlapped on the inner sides of the two ends of the wall panel body.

[0011] The beneficial effects of this invention are that the laboratory wall panel structure for use within the enclosure structure saves installation space and increases the usable area of ​​the cleanroom laboratory. Through the cooperation of the base groove and notch, and the oblique wedging of the interlocking panels, the laboratory wall panel structure for use within the enclosure structure eliminates the need for additional operating space on one side of the enclosure structure during installation, thereby maximizing the actual usable area of ​​the laboratory.

[0012] The laboratory wall panel structure of the present invention is convenient to construct and has high installation efficiency within the enclosure structure. The unit panels of the laboratory wall panel structure of the present invention are pushed in along the sliding groove, and finally the enclosure is completed by the oblique embedding of the interlocking panels. This avoids the cumbersome operations of complex positioning and horizontal movement of the end wall panels in traditional processes, simplifying the construction process and reducing installation difficulty.

[0013] The laboratory wall panel structure of the present invention, used within the enclosure structure, is structurally stable and has good airtightness. The interlocking panels of the laboratory wall panel structure of the present invention are provided with flange plates at both ends, which overlap with the inner side of the wall panel body. Combined with the beveled end faces of the protruding ribs, they fit tightly together to form a reliable self-locking structure, effectively improving the airtightness at the joints of the wall panels and meeting the stringent sealing requirements of cleanroom laboratories.

[0014] The laboratory wall panel structure of the present invention provides reliable support and strong overall stability within the enclosure structure. By providing supports on both the inner and outer sides of the wall panel body, the laboratory wall panel structure of the present invention effectively supports the wall panel, preventing displacement or deformation during use, and further enhancing the overall stability and safety of the inner wall panels of the enclosure structure. Attached Figure Description

[0015] Other features, objects, and advantages of this application will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings: Figures 1 and 2 are schematic diagrams of the steps of a construction method for a laboratory wall panel structure within an enclosure structure according to an embodiment of the present invention.

[0016] Figure 3 is a cross-sectional view of section AA in Figure 2.

[0017] Figure 4 is a cross-sectional view of section BB in Figure 2.

[0018] Reference numerals: 1. Base; 2. Wall panel body; 2. Notch; 20. Protruding rib; 21. Inclined end face; 3. Interlocking plate; 31. Flange plate; 4. Support seat; 5. Ground; 6. Enclosure structure. Detailed Implementation

[0019] The present application will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the invention and not intended to limit it. Furthermore, it should be noted that, for ease of description, only the parts relevant to the invention are shown in the accompanying drawings.

[0020] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.

[0021] Referring to Figures 1 to 4, the present invention provides a laboratory wall panel structure for use in an enclosure structure, comprising: a base 1, unit panels, and interlocking panels 3.

[0022] The base is located inside the enclosure structure. The enclosure structure forms a closed loop along the outer contour of the laboratory. The base 1 is installed on the floor 5 of the laboratory. The base 1 is arranged in a ring along the inner circumference of the enclosure structure 6. The base 1 has a groove. The groove is arranged along the length of the base. A notch is formed on the side of the base 1 facing away from the enclosure structure. The notch connects to the groove. When the unit panels are installed to form the wall panel structure, this notch is the final junction of the wall panel structure.

[0023] The wall panel consists of multiple units. Each unit is rectangular, i.e., cuboid in shape. The bottoms of these units slide within grooves. The width of the grooves is adapted to the thickness of the unit panels. These unit panels are joined together to form a wall panel body 2. A notch 20 is formed between the two ends of the wall panel body 2. The position of the notch 20 corresponds to the position of the gap. A rib 21 extends from the outer side of one end face of the wall panel body 2, closer to the enclosure structure, and from the inner side of the other end face, further away from the enclosure structure. An inclined end face 210 is formed on the opposite sides of the two ribs 21. The inclination angles of the inclined end faces 210 of the two ribs 21 are matched. This inclination angle is the angle between the inclined end face and the surface of the unit panel.

[0024] As a preferred implementation method, the tilt angle is 30°~45°.

[0025] In this embodiment, the notch shown in Figure 1 has a parallelogram-shaped cross-section. Correspondingly, the shape and size of the cross-section of the interlocking plate are adapted to match the shape and size of the cross-section of the notch. The interlocking plate 3 is embedded between the inclined end faces 210.

[0026] Referring to Figure 2, the end faces of the two opposite ends of the interlocking plate 3 are tightly fitted to the two inclined end faces 210. Flange plates 31 extend along the plate surface direction of the interlocking plate 3 from the inner side of the two end faces away from the enclosure structure. The two flange plates 31 of the interlocking plate 3 overlap the inner sides of both ends of the wall panel body 2.

[0027] In this embodiment, the laboratory wall panel structure for use within an enclosure structure of the present invention further includes a support 4. The support 4 is installed on the ground. The support 4 is supported on the inner side of the wall panel body 2 and the interlocking plate 3.

[0028] The support seat provides support to the wall panel body from the bottom.

[0029] In a preferred embodiment, another abutment 4 is provided on the outer side of the wall panel body 2. The other abutment 4 is supported on the outer side of the wall panel body 2.

[0030] In this embodiment, the unit panels and the interlocking panels 3 are made of color steel sheets. The interlocking panels are irregularly shaped color steel sheets. The ends of one unit panel at each end of the wall panel body are irregularly shaped.

[0031] The present invention provides a construction method for a laboratory wall panel structure within an enclosure structure, comprising the following steps: S1, installing a base 1 on the laboratory floor, wherein the base 1 is arranged in a ring along the inner circumferential direction of the enclosure structure.

[0032] S2. Push the bottom of multiple unit panels into the groove of the base 1 through the notch of the base 1, so that the multiple unit panels are spliced ​​together to form a wall panel body 2. A notch 20 is formed between the two ends of the wall panel body 2, and the position of the notch 20 corresponds to the position of the gap.

[0033] S3. The interlocking plate 3 is pushed obliquely into the notch 20 through the notch, so that the interlocking plate 3 is embedded between the oblique end faces 210. The end faces of the opposite ends of the interlocking plate 3 are tightly attached to the two oblique end faces 210 respectively, and the two flange plates 31 of the interlocking plate 3 are respectively attached to the inner sides of the two ends of the wall panel body 2.

[0034] During the installation process of the laboratory wall panel structure for the enclosure structure of the present invention, the installation method of the last installed interlocking plate is changed from horizontal sliding installation in the groove of the base to oblique wedging into the notch (i.e., the pre-set space) of the already installed wall panel body. This ensures that the end of the installed wall panel body can move inward or outward.

[0035] To ensure the smooth installation of the final interlocking panels via an oblique wedging method, the interlocking panels and the ground fixing method are adjusted simultaneously. The combination of notches formed at the corresponding points of the base grooves and steel supports further ensures the wall panels are firmly installed and do not move.

[0036] The two ends of the interlocking panels extend to form flanges. After the interlocking panels are fitted into the notch, the flanges overlap with the inner sides of both ends of the wall panel body to ensure airtightness at the joints of the wall panels.

[0037] The laboratory wall panel structure for use within the enclosure of this invention saves installation space and increases the usable area of ​​the cleanroom laboratory. Through the cooperation of the base groove and notch, and the oblique wedging of the interlocking panels, the installation of the wall panels does not require additional operating space on one side of the enclosure structure, thereby maximizing the actual usable area of ​​the laboratory.

[0038] The laboratory wall panel structure of the present invention is convenient to construct and has high installation efficiency within the enclosure structure. The unit panels of the laboratory wall panel structure of the present invention are pushed in along the sliding groove, and finally the enclosure is completed by the oblique embedding of the interlocking panels. This avoids the cumbersome operations of complex positioning and horizontal movement of the end wall panels in traditional processes, simplifying the construction process and reducing installation difficulty.

[0039] The laboratory wall panel structure of the present invention, used within the enclosure structure, is structurally stable and has good airtightness. The interlocking panels of the laboratory wall panel structure of the present invention are provided with flange plates at both ends, which overlap with the inner side of the wall panel body. Combined with the beveled end faces of the protruding ribs, they fit tightly together to form a reliable self-locking structure, effectively improving the airtightness at the joints of the wall panels and meeting the stringent sealing requirements of cleanroom laboratories.

[0040] The laboratory wall panel structure of the present invention provides reliable support and strong overall stability within the enclosure structure. By providing supports on both the inner and outer sides of the wall panel body, the laboratory wall panel structure of the present invention effectively supports the wall panel, preventing displacement or deformation during use, and further enhancing the overall stability and safety of the inner wall panels of the enclosure structure.

[0041] The laboratory wall panel structure of the present invention, used in the enclosure structure, significantly improves space utilization and construction convenience while ensuring the airtightness and stability of the cleanroom laboratory wall panel structure, and has good practical and promotional value.

[0042] The above description is merely a preferred embodiment of this application and an explanation of the technical principles employed. Those skilled in the art should understand that the scope of the invention involved in this application is not limited to technical solutions formed by specific combinations of the above-described technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-described technical features or their equivalents without departing from the inventive concept. For example, technical solutions formed by substituting the above features with (but not limited to) technical features with similar functions disclosed in this application.

Claims

1. A laboratory wall panel structure for use within an enclosure, characterized in that, include: A base, installed on the laboratory floor, is arranged in a ring along the inner circumference of the enclosure structure. The base has a groove, and a notch is formed on the side of the base facing away from the enclosure structure, connecting to the groove. Multiple unit panels slide in the groove at their bottoms and are joined to form a wall panel body. A notch is formed between the two ends of the wall panel body, the position of which corresponds to the position of the notch. One end of the wall panel body is closer to the enclosure structure. The outer side and the inner side of the other end face of the wall panel body away from the enclosure structure are respectively extended to form protrusions, and the opposite sides of the two protrusions are formed with inclined end faces, and the inclination of the inclined end faces of the two protrusions is matched; the interlocking plate is embedded between the inclined end faces, and the end faces of the opposite ends of the interlocking plate are respectively tightly attached to the two inclined end faces. The inner sides of the two end faces of the interlocking plate away from the enclosure structure extend along the plate surface direction of the interlocking plate to form flange plates, and the two flange plates of the interlocking plate respectively overlap the inner sides of the two ends of the wall panel body.

2. The laboratory wall panel structure for use within an enclosure structure according to claim 1, characterized in that, It also includes a support base, which is installed on the ground and supports the inner side of the wall panel body and the interlocking plate.

3. The laboratory wall panel structure for use within an enclosure structure according to claim 1, characterized in that, Another abutment is provided on the outer side of the wall panel body, and the other abutment is supported on the outer side of the wall panel body.

4. The laboratory wall panel structure for use within an enclosure structure according to claim 1, characterized in that, The unit panels and the interlocking panels are made of color steel plates.

5. The laboratory wall panel structure for use within an enclosure structure according to claim 1, characterized in that, The inclination angle is 30°~45°.

6. A construction method for a laboratory wall panel structure within an enclosure structure as described in any one of claims 1 to 5, characterized in that, Includes the following steps: A base is installed on the floor of the laboratory, with a ring of bases arranged along the inner circumference of the enclosure structure. The bottom of multiple unit panels is pushed into the grooves of the base through notches, so that the multiple unit panels are spliced ​​together to form a wall panel body. A notch is formed between the two ends of the wall panel body, and the position of the notch corresponds to the position of the gap. A ring panel is obliquely pushed into the notch through the gap, so that the ring panel is embedded between the oblique end faces. The end faces of the opposite ends of the ring panel are tightly attached to the two oblique end faces, and the two flanges of the ring panel are respectively attached to the inner sides of the two ends of the wall panel body.