A thin-film enclosure system, its installation method, and a storage container
By adopting a composite structure of a secondary shielding film, a main shielding film, a secondary insulation layer, and a main insulation layer in the film enclosure system, and using elastic fastening units to achieve stable connections, the loosening problem caused by aging and shrinking of the insulation layer is solved, and the stability and thermal insulation performance of the system are improved.
Patent Information
- Application Number
- CN202510519770.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-24
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2045-04-24
AI Technical Summary
After long-term use of the existing film enclosure system, due to the aging and shrinking of the flexible porous material, the spacing between the main shield and the secondary shield is reduced, resulting in loosening and unstable connection problems.
A composite structure of a secondary shielding film, a main shielding film, a secondary insulation layer, and a main insulation layer is adopted, and it is fixed with the substrate layer through an elastic fastening unit, and a stable connection is achieved using components such as anchoring screws, fixing sleeves and buckle plates.
The shielding and thermal insulation properties of the substrate layer are improved, ensuring that the composite structure can maintain a stable connection with the substrate layer when the insulation layer ages and shrinks, and avoid loosening.
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Figure CN120043001B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of composite adiabatic structures enclosed by thin films, and specifically to a thin film enclosure system, its installation method, and a storage container. Background Art
[0002] The thin film enclosure system is mainly applied to liquefied natural gas storage tanks (vessels) and the construction field. Through the coordinated action of the main screen wall, the secondary screen wall, and the adiabatic layer, the adiabatic and isolation of liquefied natural gas are realized, ensuring the safety of its storage and transportation at ultra-low temperatures. The adiabatic layer is an adiabatic module, and the adiabatic module has both low-temperature adiabatic and heat-insulating properties and compressive properties.
[0003] When the adiabatic layer, the main shield, and the secondary shield are composite-installed on the base material, the thin film enclosure system is mainly installed by means of resin mortar and bolt anchoring. The installation method of bolt anchoring is a rigid fixed type. Since the materials of the adiabatic module (i.e., the adiabatic layer) include not only rigid composite materials but also flexible porous materials (such as polyurethane foam, etc.), the flexible porous materials will shrink and age after long-term use, which will microscopically reduce the distance between the main shield and the secondary shield. However, due to the fixed distance of bolt anchoring, loosening will also occur between the thin film enclosure system and the bolt anchoring. Summary of the Invention
[0004] The purpose of the present invention is to provide a thin film enclosure system, its installation method, and a storage container to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solution: A thin film enclosure system, comprising: a secondary shielding film, a primary shielding film, a secondary adiabatic layer, a primary adiabatic layer, and the four are stacked on the surface of the base material layer. The secondary shielding film and the primary shielding film play a role in preventing leakage, and the secondary adiabatic layer and the primary adiabatic layer play an adiabatic role. Connecting members are also provided between the secondary shielding film, the primary shielding film, the secondary adiabatic layer, and the primary adiabatic layer;
[0006] An elastic fastening unit for fixing the secondary shielding film, the primary shielding film, the secondary adiabatic layer, the primary adiabatic layer, and the base material layer.
[0007] Preferably, the secondary adiabatic layer is located on the side of the primary adiabatic layer close to the base material layer, the secondary shielding film is located between the secondary adiabatic layer and the primary adiabatic layer, and the primary shielding film is located on the side of the primary adiabatic layer away from the secondary shielding film. The connecting members include plywood fixed on both sides of the secondary adiabatic layer and the primary adiabatic layer. The plywood closest to the base material layer is connected to the base material layer through resin mortar. The secondary shielding film is clamped by two adjacent plywood, and the primary shielding film is located on the topmost layer.
[0008] Preferably, at least one installation cavity hole is provided inside both the secondary heat-insulating layer and the primary heat-insulating layer. The elastic fastening unit includes an anchoring screw located inside the installation cavity hole, and the anchoring screw slidably penetrates through the secondary shielding film and the plywood. An anchoring point is provided at one end of the anchoring screw away from the primary shielding film, and the end of the anchoring screw is fixed inside the anchoring point. The anchoring point and the anchoring screw are coaxially distributed, and the anchoring screw is fixed inside the anchoring point. A fixed sleeve is also distributed inside the installation cavity hole, and the fixed sleeve is located on the side of the anchoring screw away from the base material layer. A clamping disc is fixedly sleeved on the outer surface of the fixed sleeve, and the clamping disc is slidably attached to the end face of the primary shielding film. One end of the fixed sleeve away from the base material layer slidably penetrates through the primary shielding film and the plywood. An elastic sleeving component is provided between the fixed sleeve and the anchoring screw.
[0009] Preferably, the anchoring point is fixed on the surface of the plywood close to the base material layer, and the anchoring point is located on the side of the plywood close to the primary shielding film.
[0010] Preferably, the anchoring point is fixed on the surface of the base material layer, and the anchoring point is located on the side of the base material layer close to the primary shielding film.
[0011] Preferably, the elastic sleeving component includes a threaded collar located at one end of the fixed sleeve close to the base material layer. The threaded collar is threadedly assembled with the anchoring screw. The inside of the fixed sleeve is hollow, and a through hole is provided at the bottom of the fixed sleeve. The inner diameter of the through hole is larger than the outer diameter of the anchoring screw. A connecting sliding disc is slidably arranged inside the fixed sleeve, and a first tension spring is fixedly arranged between one end of the connecting sliding disc away from the threaded collar and the fixed sleeve. At least two positioning rods are fixedly arranged at one end of the connecting sliding disc away from the first tension spring. The positioning rods all slidably penetrate through the fixed sleeve and are fixed to the threaded collar. The positioning rods are distributed around the through hole.
[0012] Preferably, a filling material is added inside the installation cavity hole, and the filling material fills the space between the anchoring screw or the fixed sleeve and the installation cavity hole.
[0013] Preferably, a wrench notch is provided on the upper end face of the fixed sleeve, and the wrench notch is an internal hexagonal notch.
[0014] Preferably, an anti-rotation component is further arranged between the clamping disc and the main shielding film. The anti-rotation component is used to prevent the fixed sleeve from rotating. The anti-rotation component includes a limiting disc embedded in the end face of the main shielding film away from the secondary shielding film, and the limiting disc is flush with the end face of the main shielding film away from the secondary shielding film. At least one limiting cavity is formed inside the clamping disc, and a sliding block is slidably assembled inside the limiting cavity. A positioning pin shaft is fixedly arranged on the end face of the sliding block close to the secondary shielding film, and the positioning pin shaft extends out of the limiting cavity. A second tension spring is fixedly arranged between the end face of the sliding block close to the secondary shielding film and the limiting cavity. A plurality of limiting straight grooves are formed on the end face of the limiting disc away from the secondary shielding film and are distributed at equal intervals in a circumferential manner, and the positioning pin shaft is movably embedded inside the limiting straight grooves. The limiting straight grooves are rectangular, and a chamfering portion is arranged on one end face of the limiting straight grooves.
[0015] Preferably, the clamping disc is made of hard plastic material, and the sliding block is made of magnetic material. By magnetically attracting the sliding block with a magnet, the second tension spring can be stretched, and the positioning pin shaft can be withdrawn from the limiting straight groove.
[0016] Preferably, the number of the limiting straight grooves is a multiple of the number of the positioning pin shafts. If the number of the positioning pin shafts is two or more, and the plurality of positioning pin shafts are distributed at equal intervals in a circumferential manner.
[0017] An installation method of a film enclosure system, the method comprising the following steps:
[0018] S1. Stacking stage: Plywood is bonded to both pairs of side faces of the secondary insulation layer and the main insulation layer. The secondary shielding film is placed between the secondary insulation layer and the main insulation layer, and the secondary shielding film is separated from the secondary insulation layer and the main insulation layer by plywood, and the main shielding film is also separated from the main insulation layer by plywood.
[0019] S2. Installation stage: Fix the anchor screw to the anchor point, and make the anchor screw pass through the installation cavity holes in the secondary insulation layer and the main insulation layer. Threadedly assemble the threaded collar at the end of the fixed sleeve with the anchor screw, and rotate the fixed sleeve to stretch the first tension spring, so as to complete the elastic limit fixation of the secondary shielding film, the main shielding film, a plurality of plywoods, the secondary insulation layer and the main insulation layer.
[0020] S3. Preventing the fixed sleeve from rotating and loosening stage: During the rotation and assembly process of the fixed sleeve, the rotation of the clamping disc can be avoided by the restriction of the positioning pin shaft by the limiting straight groove.
[0021] A storage container, and a film enclosure system is applied in the storage container.
[0022] Compared with the prior art, the beneficial effects of the present invention are:
[0023] Through the composite structure of the secondary shielding film, the main shielding film, the main heat insulation layer, and the secondary heat insulation layer, the present invention can improve the shielding performance and heat insulation performance of the substrate layer. Moreover, under the action of the elastic fastening unit, even if the main heat insulation layer and the secondary heat insulation layer show aging shrinkage in the later stage, the elastic fastening unit can ensure the stability of the connection between the composite structure and the substrate layer. Brief Description of the Drawings
[0024] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0025] Figure 2 It is a schematic diagram of the installation cavity hole structure of the present invention;
[0026] Figure 3 It is a schematic diagram of the internal structure of the fixing sleeve of the present invention;
[0027] Figure 4 It is a schematic diagram of the position distribution of the anchor points of the present invention installed on the plywood;
[0028] Figure 5 It is a schematic diagram of the structure of the clamping disc and the limiting disc of the present invention;
[0029] Figure 6 It is a schematic diagram of the structure of the limiting straight groove and the chamfered part of the present invention;
[0030] Figure 7 For the present invention Figure 6 Enlarged view at position A;
[0031] Figure 8 It is a schematic diagram of the position distribution of the anchor points of the present invention installed on the substrate layer;
[0032] Figure 9 It is a schematic diagram of the structure in which the plywood and the substrate layer are fixed by bolts of the present invention.
[0033] In the figure: 1. Secondary shielding film; 2. Main shielding film; 3. Plywood; 4. Secondary heat insulation layer; 5. Main heat insulation layer; 6. Installation cavity hole; 7. Anchor screw; 8. Fixing sleeve; 9. Threaded collar; 10. Connecting sliding disc; 11. Positioning rod; 12. First tension spring; 13. Hexagonal socket; 14. Clamping disc; 15. Limiting disc; 16. Limiting straight groove; 17. Chamfered part; 18. Limiting cavity; 19. Sliding block; 20. Positioning pin; 21. Second tension spring; 22. Substrate layer; 23. Anchor point; 24. Resin mortar; 25. Filling material. Detailed Description of the Invention
[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0035] Embodiment 1: Please refer to Figures 1 - 5 and Figure 9 , a thin-film enclosure system shown in the figure, including: a secondary shielding film 1, a primary shielding film 2, a secondary heat-insulating layer 4, a primary heat-insulating layer 5, and the four are stacked on the surface of the substrate layer 22. The secondary shielding film 1 and the primary shielding film 2 play a role in preventing leakage, and the secondary heat-insulating layer 4 and the primary heat-insulating layer 5 play a role in heat insulation. Connecting members are also provided between the secondary shielding film 1, the primary shielding film 2, the secondary heat-insulating layer 4, and the primary heat-insulating layer 5;
[0036] An elastic fastening unit for fixing the secondary shielding film 1, the primary shielding film 2, the secondary heat-insulating layer 4, the primary heat-insulating layer 5 and the substrate layer 22.
[0037] The secondary heat-insulating layer 4 is located on the side of the primary heat-insulating layer 5 close to the substrate layer 22. The secondary shielding film 1 is located between the secondary heat-insulating layer 4 and the primary heat-insulating layer 5, and the primary shielding film 2 is located on the side of the primary heat-insulating layer 5 away from the secondary shielding film 1. Plywood 3 is fixedly provided on both sides of the secondary heat-insulating layer 4 and the primary heat-insulating layer 5. The plywood 3 closest to the substrate layer 22 is connected to the substrate layer 22 through resin mortar 24. The secondary shielding film 1 is clamped by two plywood 3 approaching each other. The primary shielding film 2 is located on the outermost layer. The secondary shielding film 1 and the primary shielding film 2 form a double shielding layer. The superposition of the secondary heat-insulating layer 4 and the primary heat-insulating layer 5 plays a better heat-insulating effect.
[0038] At least one installation cavity hole 6 is provided inside the secondary heat-insulating layer 4 and the primary heat-insulating layer 5. The elastic fastening unit includes an anchor screw 7 located inside the installation cavity hole 6, and the anchor screw 7 slidably penetrates through the secondary shielding film 1 and the plywood 3. An anchor point 23 is provided at one end of the anchor screw 7 away from the primary shielding film 2. The end of the anchor screw 7 is fixed inside the anchor point 23. The anchor point 23 and the anchor screw 7 are coaxially distributed. The anchor screw 7 is fixed inside the anchor point 23. Fixing sleeves 8 are also distributed inside the installation cavity hole 6, and the fixing sleeves 8 are located on the side of the anchor screw 7 away from the substrate layer 22. A clamping disc 14 is fixedly sleeved on the outer surface of the fixing sleeve 8, and the clamping disc 14 is slidably attached to the end face of the primary shielding film 2. One end of the fixing sleeve 8 away from the substrate layer 22 slidably penetrates through the primary shielding film 2 and the plywood 3. An elastic sleeving member is provided between the fixing sleeve 8 and the anchor screw 7. The anchor screw 7 and the fixing sleeve 8 fix the secondary shielding film 1, the primary shielding film 2, the secondary heat-insulating layer 4, the primary heat-insulating layer 5 and the substrate layer 22 through the elastic sleeving member.
[0039] The anchoring point 23 is fixed on the surface of the plywood 3 close to the base material layer 22, and the anchoring point 23 is located on the side of the plywood 3 close to the main shielding film 2.
[0040] The elastic sleeving component includes a threaded collar 9 at one end of the fixed sleeve 8 close to the base material layer 22. The threaded collar 9 is threadedly assembled with the anchoring screw 7. The inside of the fixed sleeve 8 is hollow, and a through hole is provided at the bottom of the fixed sleeve 8. The inner diameter of the through hole is larger than the outer diameter of the anchoring screw 7. A connecting sliding disk 10 is slidably arranged inside the fixed sleeve 8, and a first tension spring 12 is fixedly arranged between one end of the connecting sliding disk 10 away from the threaded collar 9 and the fixed sleeve 8. At least two positioning rods 11 are fixedly arranged at one end of the connecting sliding disk 10 away from the first tension spring 12. The positioning rods 11 all slidably penetrate through the fixed sleeve 8 and are fixed to the threaded collar 9. The positioning rods 11 are distributed around the through hole. The fixed sleeve 8 drives the threaded collar 9 to rotate through the positioning rods 11. Since the anchoring screw 7 is fixed, the threaded collar 9 can move towards the base material layer 22, and the first tension spring 12 is stretched through the connecting sliding disk 10. The reaction elastic force generated by the stretching can be applied to the surface of the main shielding film 2 through the clamping disk 14, so as to complete the fixation of the secondary shielding film 1, the main shielding film 2, the secondary heat insulation layer 4, the main heat insulation layer 5 and the base material layer 22.
[0041] A filling material 25 is added inside the installation cavity hole 6. The filling material 25 fills the space between the anchoring screw 7 or the fixed sleeve 8 and the installation cavity hole 6. The filling material 25 is an insulating material.
[0042] A wrench slot is provided on the upper end surface of the fixed sleeve 8. The wrench slot is an internal hexagonal slot 13. By fitting a hexagonal wrench with the internal hexagonal slot 13, the fixed sleeve 8 can be rotated.
[0043] Embodiment Two: Please refer to Figure 8 , this embodiment is a further description of the above Embodiment One. The anchoring point 23 is fixed on the surface of the base material layer 22, and the anchoring point 23 is located on the side of the base material layer 22 close to the main shielding film 2.
[0044] Embodiment Three: Please refer to Figures 5 - 7, This embodiment is a further illustration of the above-mentioned Embodiment 1. An anti-rotation component is also provided between the clamping disc 14 and the main shielding film 2. The anti-rotation component is used to prevent the fixed sleeve 8 from rotating. The anti-rotation component includes a limit disc 15 embedded in the end face of the main shielding film 2 away from the secondary shielding film 1, and the limit disc 15 is flush with the end face of the main shielding film 2 away from the secondary shielding film 1. At least one limit cavity 18 is formed inside the clamping disc 14, and a sliding block 19 is slidably assembled inside the limit cavity 18. A positioning pin shaft 20 is fixedly arranged on the end face of the sliding block 19 close to the secondary shielding film 1, and the positioning pin shaft 20 extends out of the limit cavity 18. A second tension spring 21 is fixedly arranged between the end face of the sliding block 19 close to the secondary shielding film 1 and the limit cavity 18. A plurality of limit straight grooves 16 are formed on the end face of the limit disc 15 away from the secondary shielding film 1 and are evenly distributed in a circumferential manner at equal intervals, and the positioning pin shaft 20 is movably embedded inside the limit straight grooves 16. The limit straight grooves 16 are rectangular, and a chamfering portion 17 is arranged on one end face of the limit straight grooves 16. When the clamping disc 14 drives the sliding block 19 and the positioning pin shaft 20 to rotate following the fixed sleeve 8, the positioning pin shaft 20 can be moved out of the limit straight grooves 16 under the action of the chamfering portion 17, and during the movement, due to the elastic pressure of the second tension spring 21, the positioning pin shaft 20 is embedded inside another limit straight groove 16.
[0045] The clamping disc 14 is made of hard plastic material, and the sliding block 19 is made of magnetic material. By magnetically attracting the sliding block 19 with a magnet, the second tension spring 21 can be stretched, and the positioning pin shaft 20 can be withdrawn from the limit straight grooves 16.
[0046] The number of the limit straight grooves 16 is a multiple of the number of the positioning pin shafts 20. If the number of the positioning pin shafts 20 is two or more, and the multiple positioning pin shafts 20 are evenly distributed in a circumferential manner at equal intervals, through the engagement of the multiple positioning pin shafts 20 and the limit straight grooves 16, the situation that the clamping disc 14 does not rotate can be further avoided.
[0047] Working principle: Arrange the secondary shielding film 1, the main shielding film 2, the plywood 3, the secondary heat insulation layer 4 and the main heat insulation layer 5 in accordance with Figure 4In the middle method, it is compoundly stacked on the surface of the substrate layer 22. It should be noted that for the plywood 3 closely attached to the substrate layer 22, the two are adhesively fixed through the resin mastic 24. Later, the plywood 3 and the substrate layer 22 can also be fixed by through bolts. During the stacking process, the anchor screw 7 is passed through the installation cavity hole 6, and the threaded collar 9 at the end of the fixed sleeve 8 can contact the end of the anchor screw 7. At this time, by fitting a wrench with the internal hexagonal notch 13, the fixed sleeve 8 is rotated. Through the threaded assembly of the threaded collar 9 and the anchor screw 7, the fixed sleeve 8 is gradually brought closer to the surface of the main shielding film 2 with the clamping disc 14. After the clamping disc 14 is fitted with the main shielding film 2, the fixed sleeve 8 is still rotated at this time. Since the position of the fixed sleeve 8 cannot change, the threaded collar 9 will pull the connecting sliding disc 10 through the positioning rod 11, stretching the first tension spring 12. The reaction elastic force generated by the stretching of the first tension spring 12 will be applied between the anchor screw 7 and the fixed sleeve 8, so as to perform elastic limit treatment on the composite formed film enclosure system. Through this elastic fixing method, it can adapt to the aging shrinkage of the current heat insulation layer 4 and the main heat insulation layer 5, and still ensure the stability of the connection between the film enclosure system and the substrate layer 22 without loosening.
[0048] In this solution, when the clamping disc 14 is rotated in contact with the main shielding film 2, the positioning pin 20 can be embedded inside the limit straight groove 16 under the action of the second tension spring 21, and will switch to enter other limit straight grooves 16 under the guidance of the chamfered portion 17. However, precisely because of the engagement between the positioning pin 20 and the limit straight groove 16, the situation of the positioning pin 20 rotating back can be avoided, that is, the situation of the clamping disc 14 and the fixed sleeve 8 rotating back can be ensured, thus ensuring the stability of the connection between the fixed sleeve 8 and the anchor screw 7, and it can also play an anti-rotation-back and anti-theft effect.
[0049] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device.
[0050] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A thin film enclosure system, characterized in that, Including: a secondary shielding film (1), a main shielding film (2), a secondary heat-insulating layer (4), and a main heat-insulating layer (5), and the four are stacked on the surface of a substrate layer (22). The secondary shielding film (1) and the main shielding film (2) play a role in preventing leakage, and the secondary heat-insulating layer (4) and the main heat-insulating layer (5) play a role in heat insulation. A connecting member is also provided between the secondary shielding film (1), the main shielding film (2), the secondary heat-insulating layer (4), and the main heat-insulating layer (5); an elastic fastening unit for fixing the secondary shielding film (1), the main shielding film (2), the secondary heat-insulating layer (4), and the main heat-insulating layer (5) to the substrate layer (22); the secondary heat-insulating layer (4) is located on the side of the main heat-insulating layer (5) close to the substrate layer (22), the secondary shielding film (1) is located between the secondary heat-insulating layer (4) and the main heat-insulating layer (5), and the main shielding film (2) is located on the side of the main heat-insulating layer (5) away from the secondary shielding film (1). The connecting member includes plywood boards (3) fixed on both sides of the secondary heat-insulating layer (4) and the main heat-insulating layer (5), and the plywood board (3) closest to the substrate layer (22) is connected to the substrate layer (22) through a resin mortar (24); at least one installation cavity hole (6) is formed inside both the secondary heat-insulating layer (4) and the main heat-insulating layer (5). The elastic fastening unit includes an anchor screw (7) located inside the installation cavity hole (6), and the anchor screw (7) slidably penetrates through the secondary shielding film (1) and the plywood board (3). An anchor point (23) is provided at one end of the anchor screw (7) away from the main shielding film (2), and the end of the anchor screw (7) is fixed inside the anchor point (23). Fixed sleeves (8) are also distributed inside the installation cavity hole (6). A clamping disc (14) is fixedly sleeved on the outer surface of the fixed sleeve (8), and the clamping disc (14) is slidably attached to the end face of the main shielding film (2). The fixed sleeve (8) slidably penetrates through the main shielding film (2) and the plywood board (3), and an elastic sleeving member is provided between the fixed sleeve (8) and the anchor screw (7); The elastic sleeve component includes a threaded collar (9) located at one end of the fixed sleeve (8) close to the base material layer (22). The threaded collar (9) is threadedly assembled with the anchor screw (7). The interior of the fixed sleeve (8) is hollow, and a through hole is formed at the bottom of the fixed sleeve (8). The inner diameter of the through hole is larger than the outer diameter of the anchor screw (7). A connecting sliding disk (10) is slidably arranged inside the fixed sleeve (8), and a first tension spring (12) is fixedly arranged between one end of the connecting sliding disk (10) away from the threaded collar (9) and the fixed sleeve (8). At least two positioning rods (11) are fixedly arranged at one end of the connecting sliding disk (10) away from the first tension spring (12). The positioning rods (11) all slidably penetrate through the fixed sleeve (8), and the positioning rods (11) are fixed to the threaded collar (9).
2. The thin-film enclosure system according to claim 1, wherein: The anchoring point (23) is fixed on the surface of the plywood (3) close to the base material layer (22), and the anchoring point (23) is located on one side of the plywood (3) close to the main shielding film (2).
3. The thin-film enclosure system according to claim 1, wherein: The anchoring point (23) is fixed on the surface of the base material layer (22), and the anchoring point (23) is located on one side of the base material layer (22) close to the main shielding film (2).
4. A thin film enclosure system according to claim 1, characterized in that: An anti-rotation component is further arranged between the clamping disk (14) and the main shielding film (2). The anti-rotation component includes a limiting disk (15) embedded in the end face of the main shielding film (2) away from the secondary shielding film (1). At least one limiting cavity (18) is formed inside the clamping disk (14), and a sliding block (19) is slidably assembled inside the limiting cavity (18). A positioning pin shaft (20) is fixedly arranged on one end face of the sliding block (19) close to the secondary shielding film (1), and the positioning pin shaft (20) extends out of the limiting cavity (18). A second tension spring (21) is fixedly arranged between one end face of the sliding block (19) close to the secondary shielding film (1) and the limiting cavity (18). A plurality of limiting straight grooves (16) evenly distributed in a circumferential manner are formed on one end face of the limiting disk (15) away from the secondary shielding film (1), and the positioning pin shaft (20) is movably embedded inside the limiting straight grooves (16). A chamfering portion (17) is arranged on one end face of the limiting straight grooves (16), and the number of the limiting straight grooves (16) is a multiple of the number of the positioning pin shafts (20).
5. A thin film enclosure system according to claim 4, characterized in that: The clamping disk (14) is made of hard plastic material, and the sliding block (19) is made of magnetic material.
6. The installation method of a thin-film enclosure system according to any one of claims 1-5, characterized in that: The method includes the following steps: S1. Stacking stage: Plywood (3) is bonded to both pairs of side faces of the secondary insulating layer (4) and the main insulating layer (5). The secondary shielding film (1) is placed between the secondary insulating layer (4) and the main insulating layer (5), and the secondary shielding film (1) is separated from the secondary insulating layer (4) and the main insulating layer (5) by the plywood (3). The main shielding film (2) is also separated from the main insulating layer (5) by the plywood (3). S2. Installation stage: Fix the anchor screw (7) to the anchor point (23), and pass the anchor screw (7) through the installation cavity hole (6) in the secondary insulation layer (4) and the primary insulation layer (5). Threadedly assemble the threaded collar (9) at the end of the fixing sleeve (8) with the anchor screw (7), and rotate the fixing sleeve (8) to stretch the first tension spring (12), thereby completing the elastic limit fixation of the secondary shielding film (1), the primary shielding film (2), several plywood boards (3), the secondary insulation layer (4), and the primary insulation layer (5). S3. Preventing the fixing sleeve (8) from rotating and loosening stage: During the rotational assembly process of the fixing sleeve (8), the positioning pin shaft (20) is restricted by the limiting straight groove (16), which can prevent the buckling disc (14) from rotating back.
7. A storage container, characterized in that: A thin film enclosure system according to any one of claims 1 - 5 is applied in the storage container.
Citation Information
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