A glass box assembly structure
Patent Information
- Application Number
- CN202211193463.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-09-28
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2042-09-28
AI Technical Summary
但玻璃属于易脆材料,使其很难作为数密机床和测量仪器的构件使用,只有在均匀抗压的情况下,其抗压能达到700-1000MPa
[0014] Compared with the prior art, the beneficial effects of the present invention are: by using the side plates and inclined plates to form a triangular support structure, and by wrapping fastening components around the triangular support structure, it is possible to eliminate the need for screws to fix the assembled plates, and the stress on each assembled plate is uniformly compressed. The deformation caused by the difference in thermal expansion coefficient between the corner positioning blocks and the assembled plates can be eliminated by the elastic tension of the tension spring in the fastening components.
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Figure CN117819023B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of glass equipment technology, and specifically relates to a glass box assembly structure. Background Technology
[0002] Precision machine tools and measuring instruments require many precision components. During precision manufacturing, a stable temperature environment is essential to maintain high machining accuracy. However, existing machining facilities often struggle to meet these temperature requirements. Furthermore, when ambient temperature changes, the components, typically made of steel, exhibit a coefficient of thermal expansion of 1.2 × 10⁻⁶. -5 Temperatures of certain temperatures can cause deformation due to temperature differences, thus affecting processing accuracy. Materials with lower coefficients of thermal expansion, such as glass (including quartz glass and microcrystalline glass), are more susceptible to deformation. For example, quartz glass has a coefficient of thermal expansion of only 5.4 × 10⁻⁶. -7 Even under large temperature differences, glass exhibits minimal deformation at a temperature of [temperature value missing] °C, making it suitable for manufacturing precision components. However, glass is a brittle material, making it unsuitable for use in CNC machine tools and measuring instruments. Its compressive strength reaches 700-1000 MPa only under uniform compressive stress. Therefore, glass needs to be assembled into a box for uniform compressive stress. Current boxes are typically fixed with screws, but the significant difference in expansion coefficients between the screws and the glass panels makes the glass box structure unstable, thus affecting processing accuracy. To address this, we provide a glass box assembly structure. Summary of the Invention
[0003] The purpose of this invention is to provide a glass box assembly structure that is stable, not only resistant to deformation due to temperature differences, but also able to withstand pressure evenly.
[0004] To achieve the above objectives, the present invention provides the following technical solution: A glass enclosure assembly structure includes an assembly plate made of glass. The assembly plate includes an inclined plate and at least one set of side plates. Each set of side plates includes a first plate and a second plate. The first plate and the second plate in the same set of side plates can be connected end to end with the inclined plate to form a triangular support structure. Corner positioning blocks for embedding the assembly plate are provided at the connection points to achieve connection. Fastening components for connecting the three corner positioning blocks and providing elastic tension are movably wound around the triangular support structure.
[0005] Preferably, the assembly plate is made of quartz glass or microcrystalline glass.
[0006] Preferably, the fastening assembly includes a steel wire rope for winding around the corner positioning block and a tension spring connected to the steel wire rope for providing elastic tension. Both ends of the steel wire rope are provided with pull rings, and both ends of the tension spring are connected with hooks, which are connected to the pull rings one by one.
[0007] Preferably, the side plates are in two sets, which are respectively disposed on both sides of the inclined plate and form a box. The inclined plate and one set of side plates form an upper triangular support structure, and the inclined plate and the other set of side plates form a lower triangular support structure. The fastening component wrapped around the upper triangular support structure is the upper fastening component; the fastening component wrapped around the lower triangular support structure is the lower fastening component.
[0008] Preferably, there are four corner positioning blocks. The four corner positioning blocks are divided into upper and lower angled corner positioning blocks distributed along the length of the inclined plate, and upper and lower corner positioning blocks respectively located on both sides of the inclined plate. The upper, lower, and upper angled corner positioning blocks are used to connect the upper triangular support structure; the lower corner positioning blocks are used to connect the lower triangular support structure.
[0009] Preferably, the upper angled positioning block is provided with a first through hole for winding the upper fastening component and a second through hole for winding the lower fastening component, the first and second through holes being arranged in a cross pattern; the lower angled positioning block is provided with a third through hole for winding the upper fastening component and a fourth through hole for winding the lower fastening component, the third and fourth through holes being arranged in a cross pattern; both the upper and lower corner positioning blocks are provided with through slots for winding the fastening components; the upper fastening component is wound around the outer surface of the upper triangular support structure through the first through hole, the third through hole, and the through slot on the upper corner positioning block; the lower fastening component is wound around the outer surface of the lower triangular support structure through the second through hole, the fourth through hole, and the through slot on the lower corner positioning block.
[0010] Preferably, the upper angled positioning block has a first upper winding member for winding the upper fastening component and a first lower winding member for winding the lower fastening component; the lower angled positioning block has a second upper winding member for winding the upper fastening component and a second lower winding member for winding the lower fastening component; both the upper and lower corner positioning blocks have grooves for winding the fastening components; the upper fastening component is wound around the inner surface of the upper triangular support structure through the first upper winding member, the second upper winding member, and the groove on the upper corner positioning block; the lower fastening component is wound around the inner surface of the lower triangular support structure through the first lower winding member, the second lower winding member, and the groove on the lower corner positioning block.
[0011] Preferably, both ends of the upper oblique angle positioning block, both ends of the lower oblique angle positioning block, both ends of the upper corner positioning block, and both ends of the lower corner positioning block are provided with a winding portion. The winding portion is provided with a first annular groove and a second annular groove at intervals. The upper fastening component is wound around the outside of the winding portion through the first annular groove on the upper oblique angle positioning block, the first annular groove on the lower oblique angle positioning block, and the first annular groove on the upper corner positioning block and fastens the upper triangular support structure. The lower fastening component is wound around the outside of the winding portion through the second annular groove on the upper oblique angle positioning block, the second annular groove on the lower oblique angle positioning block, and the second annular groove on the lower corner positioning block and fastens the lower triangular support structure.
[0012] Preferably, the assembly plate is provided with a mounting assembly for connecting other components. The mounting assembly includes a first mounting plate and a second mounting plate that are sequentially bonded to the assembly plate. The surface of the second mounting plate has a receiving cavity that passes through the second mounting plate, the first mounting plate, and the assembly plate. The receiving cavity is provided with an insert that is adapted to the receiving cavity. The insert has a threaded hole for threaded connection.
[0013] Preferably, the inner wall of the receiving cavity is provided with a limiting groove, and the insert is provided with a limiting part that is adapted to the limiting groove, and the limiting part is integrally formed with the insert.
[0014] Compared with the prior art, the beneficial effects of the present invention are: by using the side plates and inclined plates to form a triangular support structure, and by wrapping fastening components around the triangular support structure, it is possible to eliminate the need for screws to fix the assembled plates, and the stress on each assembled plate is uniformly compressed. The deformation caused by the difference in thermal expansion coefficient between the corner positioning blocks and the assembled plates can be eliminated by the elastic tension of the tension spring in the fastening components. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the overall structure of Embodiment 1 of the present invention.
[0016] Figure 2 This is a schematic diagram of the overall structure of the upper oblique corner positioning block in Embodiment 1 of the present invention.
[0017] Figure 3 This is a schematic diagram of the structure of the first through hole in the upper oblique corner positioning block of Embodiment 1 of the present invention.
[0018] Figure 4 This is a schematic diagram of the structure of the second through hole in the upper oblique corner positioning block of Embodiment 1 of the present invention.
[0019] Figure 5 This is a schematic diagram of the overall structure of the lower oblique angle positioning block in Embodiment 1 of the present invention.
[0020] Figure 6 This is a schematic diagram of the third through hole in the lower oblique corner positioning block of Embodiment 1 of the present invention.
[0021] Figure 7 This is a schematic diagram of the fourth through hole in the lower oblique corner positioning block of Embodiment 1 of the present invention.
[0022] Figure 8 This is a schematic diagram of the overall structure of the lower corner positioning block in Embodiment 1 of the present invention.
[0023] Figure 9 This is a schematic diagram of the through groove in the lower corner positioning block of Embodiment 1 of the present invention.
[0024] Figure 10 This is a schematic diagram of the fastening component in this invention.
[0025] Figure 11 This is a schematic diagram of the installation components in this invention.
[0026] Figure 12 This is a schematic diagram of the overall structure of Embodiment 2 of the present invention.
[0027] Figure 13 This is a schematic diagram of the overall structure of the upper oblique corner positioning block in Embodiment 2 of the present invention.
[0028] Figure 14 This is a schematic diagram of the structure of the first upper winding member and the first lower winding member in Embodiment 2 of the present invention.
[0029] Figure 15 This is a schematic diagram of the overall structure of the lower oblique angle positioning block in Embodiment 2 of the present invention.
[0030] Figure 16 This is a schematic diagram of the overall structure of the upper corner positioning block in Embodiment 2 of the present invention.
[0031] Figure 17 This is a schematic diagram of the groove in the upper corner positioning block of Embodiment 2 of the present invention.
[0032] Figure 18 This is a schematic diagram of the overall structure of Embodiment 3 of the present invention.
[0033] Figure 19 This is a schematic diagram of the overall structure of the upper oblique corner positioning block in Embodiment 3 of the present invention.
[0034] Figure 20 This is a schematic diagram of the internal structure of the upper oblique corner positioning block in Embodiment 3 of the present invention.
[0035] Figure 21 This is a schematic diagram of the internal structure of the lower oblique angle positioning block in Embodiment 3 of the present invention.
[0036] Figure 22 This is a schematic diagram of the internal structure of the upper corner positioning block in Embodiment 3 of the present invention.
[0037] Figure 23 This is a schematic diagram of the overall structure of the lower corner positioning block in Embodiment 3 of the present invention.
[0038] Figure 24 This is a schematic diagram of the internal structure of the lower corner positioning block in Embodiment 3 of the present invention.
[0039] Figure 25 This is a schematic diagram of the overall structure of Embodiment 4 of the present invention.
[0040] Figure 26 This is a schematic diagram of the winding part in Embodiment 4 of the present invention.
[0041] Figure 27 This is a schematic diagram of the internal structure of the first corner positioning block in Embodiment 4 of the present invention.
[0042] Figure 28 This is a schematic diagram of the internal structure of the second corner positioning block in Embodiment 4 of the present invention.
[0043] Figure 29 This is a schematic diagram of the internal structure of the triangular positioning block in Embodiment 4 of the present invention.
[0044] In the diagram: 1. Inclined plate; 2. First plate; 3. Second plate; 4. Upper fastening assembly; 5. Lower fastening assembly; 61. Steel wire rope; 62. Tension spring; 63. Pull ring; 64. Hook; 7. Upper triangular support structure; 8. Lower triangular support structure; 9. Upper angled corner positioning block; 10. Lower angled corner positioning block; 11. Upper corner positioning block; 12. Lower corner positioning block; 13. First positioning groove; 14. Second positioning groove; 15. Third positioning groove; 16. First through hole; 17. Second through hole; 18. Third through hole; 19. Fourth through hole; 2 0. Through groove; 21. First mounting plate; 22. Second mounting plate; 23. Receiving cavity; 24. Insert; 25. Limiting groove; 26. Limiting part; 27. Threaded hole; 28. First upper winding part; 29. First lower winding part; 30. Second upper winding part; 31. Second lower winding part; 32. Groove; 33. Fixing rod; 34. Groove; 35. Winding part; 36. First annular groove; 37. Second annular groove; 38. First corner positioning block; 39. Second corner positioning block; 40. Third corner positioning block; 41. Winding groove. Detailed Implementation
[0045] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention. Example 1
[0046] like Figure 1 As shown, this invention provides a glass enclosure assembly structure, including an assembly plate made of glass. Specifically, the assembly plate is made of quartz glass or microcrystalline glass. In this embodiment, the assembly plate is made of quartz glass. The assembly plate includes an inclined plate 1 and at least one set of side plates. Each set of side plates includes a first plate 2 and a second plate 3. In this embodiment, the first plate 2 and the second plate 3 are arranged perpendicularly to each other. The first plate 2 and the second plate 3 in the same set of side plates can connect end to end with the inclined plate 1 to form a triangular support structure. Corner positioning blocks are provided at the connection points to achieve the connection. The corner positioning blocks are made of non-glass materials. In this embodiment, the corner positioning blocks are made of steel. Figure 1 and Figure 10 As shown, a fastening assembly is movably wound around the triangular support structure, connecting the three corner positioning blocks and providing elastic tension. The fastening assembly includes a steel wire rope 61 wound around the corner positioning blocks and a tension spring 62 connected to the steel wire rope 61 and providing elastic tension. Specifically, each end of the steel wire rope 61 has a pull ring 63, and each end of the tension spring 62 has a hook 64 connected to it, with each hook 64 connected to a pull ring 63. The length of the steel wire rope 61 is limited according to specific circumstances, ensuring that the tension spring 62 is under tension when the fastening assembly is wound around the triangular support structure. The fastening assembly not only tightens the triangular support structure, improving its stability, but also utilizes the spring tension of the tension spring 62 to eliminate the effects of the difference in thermal expansion coefficients between the assembly plate and the corner positioning blocks.
[0047] like Figure 1 As shown, in this embodiment, there are two sets of side plates, which are respectively arranged on both sides of the inclined plate 1 to form a rectangular box. The inclined plate 1 and one set of side plates form an upper triangular support structure 7, and the inclined plate 1 and the other set of side plates form a lower triangular support structure 8. Fastening components are wound around both the upper triangular support structure 7 and the lower triangular support structure 8. The fastening component wound around the upper triangular support structure 7 is the upper fastening component 4, and the fastening component wound around the lower triangular support structure 8 is the lower fastening component 5. The upper fastening component 4 is used to tighten and fix the upper triangular support structure 7, and the lower fastening component 5 is used to tighten and fix the lower triangular support structure 8.
[0048] like Figure 1-9As shown, in this embodiment, there are four corner positioning blocks. Each of the four corner positioning blocks has a first positioning groove 13 for embedding the first plate 2 and a second positioning groove 14 for embedding the second plate 3. The first positioning groove 13 and the second positioning groove 14 have the same structure. To improve the connection strength, adhesive is provided at the embedding points of the first plate 2 and the first positioning groove 13, and at the embedding points of the second plate 3 and the second positioning groove 14. Specifically, the adhesive can be glue. It is worth noting that the four corner positioning blocks are divided into an upper oblique corner positioning block 9 and a lower oblique corner positioning block 10 distributed along the length direction of the inclined plate 1, and an upper corner positioning block 11 and a lower corner positioning block 12 respectively disposed on both sides of the inclined plate 1. The upper corner positioning block 11, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10 are used to connect the upper triangular support structure 7, and the lower corner positioning block 12, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10 are used to connect the lower triangular support structure 8. Both the upper angled positioning block 9 and the lower angled positioning block 10 are provided with a third positioning groove 15 for embedding the inclined plate 1. An adhesive for improving the connection strength is provided at the embedding points of the inclined plate 1 and the third positioning groove 15. Specifically, the adhesive is glue.
[0049] The upper fastening assembly 4 is movably wound around the upper corner positioning block 11, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10, while the lower fastening assembly 5 is movably wound around the lower corner positioning block 12, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10. The specific structure is as follows: Figure 2-4 As shown, the upper angled positioning block 9 is provided with a first through hole 16 for winding the upper fastening component 4 and a second through hole 17 for winding the lower fastening component 5. The first through hole 16 and the second through hole 17 are arranged in a cross pattern. Figure 5-7 As shown, the lower angled positioning block 10 is provided with a third through hole 18 for winding around the upper fastening component 4 and a fourth through hole 19 for winding around the lower fastening component 5. The third through hole 18 and the fourth through hole 19 are arranged in a crisscross pattern. In this embodiment, the upper corner positioning block 11 and the lower corner positioning block 12 have the same structure, as shown... Figure 8-9 As shown, both the upper corner positioning block 11 and the lower corner positioning block 12 are provided with through slots 20 for winding the fastening components. The through slot 20 on the upper corner positioning block 11 is used for winding the upper fastening component 4; the through slot 20 on the lower corner positioning block 12 is used for winding the lower fastening component 5. Taking the lower corner positioning block 12 as an example, its overall structure is as follows... Figure 8 As shown in the diagram, the internal structure of the through groove 20 is as follows: Figure 9 As shown. Furthermore, to facilitate the winding of the fastening components, the upper corner positioning block 11 and the lower corner positioning block 12 are positioned differently, as shown... Figure 1 As shown, the two vertical sides on the upper corner positioning block 11 are marked as a and b respectively. The positions of the two vertical sides a and b on the lower corner positioning block 12 are as follows: Figure 1 As shown. The upper fastening assembly 4 is wound around the outer surface of the upper triangular support structure 7 through the first through hole 16, the third through hole 18, and the through groove 20 on the upper corner positioning block 11. Specifically, one end of the steel wire rope 61 of the upper fastening assembly 4 passes through the through groove 20 on the upper corner positioning block 11, and then passes through the first through hole 16 on the upper angled positioning block 9 and the third through hole 18 on the lower angled positioning block 10 in sequence. At this time, both ends of the steel wire rope 61 are outside the first plate 2. The two ends of the steel wire rope 61 are connected by the tension spring 62. The tension spring 62 is in a stretched state to fasten the upper triangular support structure 7; the lower fastening assembly 4 is wound around the outer surface of the upper triangular support structure 7 through the first through hole 16, the third through hole 18, and the through groove 20 on the upper corner positioning block 11. The fastening component 5 is wound around the outer surface of the lower triangular support structure through the second through hole 17, the fourth through hole 19 and the through groove 20 on the lower corner positioning block 12. Specifically, one end of the steel wire rope 61 of the lower fastening component 5 passes through the through groove 20 of the lower corner positioning block 12, and then passes through the fourth through hole 19 on the lower oblique angle positioning block 10 and the second through hole 17 on the upper oblique angle positioning block 9 in sequence. At this time, the two ends of the steel wire rope 61 are outside another first plate 2. The two ends of the steel wire rope 61 are connected by the tension spring 62. The tension spring 62 is in a stretched state to fasten the lower triangular support structure 8.
[0050] To facilitate the installation of fastening components, during the assembly of the enclosure, the lower triangular support structure 8 can be formed by first using the inclined plate 1 and a set of side plates. The lower triangular support structure 8 can then be tightened and fixed using the lower fastening component 5. The remaining set of side plates can then be assembled, and together with the inclined plate 1, they can form the upper triangular support structure 7. The two sets of side plates form a rectangular enclosure, and the upper triangular support structure 7 can be tightened and fixed using the upper fastening component 4.
[0051] like Figure 1 and Figure 11 As shown, to facilitate connection between the housing and other components, an mounting assembly is provided on the assembly plate. In this embodiment, the mounting assembly is located on the first plate 2; in other embodiments, the mounting assembly may also be located on the second plate 3. The mounting assembly includes a connecting plate bonded to the outer surface of the first plate 2. The connecting plate is divided into a first mounting plate 21 and a second mounting plate 22, which are sequentially bonded to the outer surface of the first plate 2. The coefficients of thermal expansion of both the first mounting plate 21 and the second mounting plate 22 are lower than those of metal. The first mounting plate 21 and the second mounting plate 22 are made of quartz glass or microcrystalline glass. In this embodiment, both the first mounting plate 21 and the second mounting plate 22 are made of quartz glass, with a coefficient of thermal expansion of 5.4 × 10⁻⁶. -7 / ℃. A receiving cavity 23 is formed on the outer surface of the second mounting plate 22, penetrating the second mounting plate 22, the first mounting plate 21, and the first plate 2. An insert 24 adapted to the receiving cavity 23 is disposed within the receiving cavity 23. An adhesive for bonding is disposed between the receiving cavity 23 and the insert 24; in this embodiment, the adhesive is glue. The insert 24 is made of metal, and a threaded hole 27 for threaded connection is formed on its end face. To increase the connection strength between the insert 24 and the receiving cavity 23, a limiting groove 25 is formed on the side wall of the receiving cavity 23. The limiting groove 25 is disposed on the first mounting plate 21, and a limiting part 26 adapted to the limiting groove 25 is provided on the insert 24. The limiting part 26 is integrally formed with the insert 24. The number of limiting grooves 25 is one or more, and the number of limiting parts 26 is correspondingly one or more. In this embodiment, the number of limiting grooves 25 is two, and the number of limiting parts 26 is also correspondingly two. In addition, an adhesive for bonding is provided between the limiting groove 25 and the limiting part 26. The adhesive is glue. The assembly principle of the mounting assembly is as follows: the first plate 2, the first mounting plate 21, and the second mounting plate 22 are stacked in sequence to open the receiving cavity 23 and the limiting groove 25; then the first mounting plate 21 is bonded to the first plate 2, and then the insert 24 is placed into the receiving cavity 23 and bonded with glue. Then the second mounting plate 22 is bonded to the first mounting plate 21, so that the insert 24 is located in the receiving cavity 23 on the first mounting plate 21 and bonded with glue. Example 2
[0052] like Figure 12As shown, the present invention provides a glass box assembly structure, including an assembly plate made of glass. Specifically, the assembly plate is made of quartz glass or microcrystalline glass. In this embodiment, the assembly plate is made of quartz glass. The assembly plate includes an inclined plate 1 and at least one set of side plates. Each set of side plates includes a first plate 2 and a second plate 3. In this embodiment, the first plate 2 and the second plate 3 are arranged perpendicularly to each other. The first plate 2 and the second plate 3 in the same set of side plates can be connected end to end with the inclined plate 1 to form a triangular support structure. Corner positioning blocks are provided at the connection points to realize the connection. The corner positioning blocks are made of non-glass material. In this embodiment, the corner positioning blocks are made of steel. A fastening assembly is movably wound around the triangular support structure, connecting the three corner positioning blocks and providing elastic tension. The fastening assembly includes a steel wire rope 61 wound around the corner positioning blocks and a tension spring 62 connected to the steel wire rope 61 to provide elastic tension. Specifically, each end of the steel wire rope 61 has a pull ring 63, and each end of the tension spring 62 has a hook 64 connected to a pull ring 63. The length of the steel wire rope 61 is limited according to specific circumstances, ensuring that the tension spring 62 is under tension when the fastening assembly is wound around the triangular support structure. The fastening assembly not only tightens the triangular support structure, improving its stability, but also utilizes the spring tension of the tension spring 62 to eliminate the effects of the difference in thermal expansion coefficients between the assembly plate and the corner positioning blocks.
[0053] In this embodiment, there are two sets of side plates, which are respectively disposed on both sides of the inclined plate 1 and form a rectangular box. The inclined plate 1 and one set of side plates form an upper triangular support structure 7, and the inclined plate 1 and the other set of side plates form a lower triangular support structure 8. Fastening components are wound around both the upper triangular support structure 7 and the lower triangular support structure 8. The fastening component wound around the upper triangular support structure 7 is the upper fastening component 4, and the fastening component wound around the lower triangular support structure 8 is the lower fastening component 5. The upper fastening component 4 is used to tighten and fix the upper triangular support structure 7, and the lower fastening component 5 is used to tighten and fix the lower triangular support structure 8.
[0054] like Figure 12-17As shown, in this embodiment, there are four corner positioning blocks. Each of the four corner positioning blocks has a first positioning groove 13 for embedding the first plate 2 and a second positioning groove 14 for embedding the second plate 3. The first positioning groove 13 and the second positioning groove 14 have the same structure. To improve the connection strength, adhesive is provided at the embedding points of the first plate 2 and the first positioning groove 13, and at the embedding points of the second plate 3 and the second positioning groove 14. Specifically, the adhesive can be glue. It is worth noting that the four corner positioning blocks are divided into an upper oblique corner positioning block 9 and a lower oblique corner positioning block 10 distributed along the length direction of the inclined plate 1, and an upper corner positioning block 11 and a lower corner positioning block 12 respectively disposed on both sides of the inclined plate 1. The upper corner positioning block 11, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10 are used to connect the upper triangular support structure 7, and the lower corner positioning block 12, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10 are used to connect the lower triangular support structure 8. Both the upper angled positioning block 9 and the lower angled positioning block 10 are provided with a third positioning groove 15 for embedding the inclined plate 1. An adhesive for improving the connection strength is provided at the embedding points of the inclined plate 1 and the third positioning groove 15. Specifically, the adhesive is glue.
[0055] The upper fastening assembly 4 is movably wound around the upper corner positioning block 11, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10, while the lower fastening assembly 5 is movably wound around the lower corner positioning block 12, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10. The specific structure is as follows: Figure 13-14 As shown, the upper angled positioning block 9 is provided with a first upper winding member 28 for winding the upper fastening component 4 and a first lower winding member 29 for winding the lower fastening component 5. The first upper winding member 28 and the first lower winding member 29 are respectively disposed on both sides of the third positioning groove 15 of the upper angled positioning block 9; as Figure 15 As shown, the lower angled positioning block 10 has a second upper winding member 30 for winding the upper fastening component 4 and a second lower winding member 31 for winding the lower fastening component 5. The second upper winding member 30 and the second lower winding member 31 are respectively located on both sides of the third positioning groove 15 of the lower angled positioning block 10. The structures of the first upper winding member 28, the first lower winding member 29, the second upper winding member 30, and the second lower winding member 31 are all the same. Taking the first upper winding member 28 as an example, it includes a groove 32 opened on the upper angled positioning block 9, and the inner wall of the groove 32 is connected to a fixing rod 33 for winding the steel wire rope 61. In this embodiment, the structures of the upper corner positioning block 11 and the lower corner positioning block 12 are the same, such as Figure 16-17 As shown, both the upper corner positioning block 11 and the lower corner positioning block 12 have grooves 34 for mounting fastening components. The groove 34 on the upper corner positioning block 11 is used to mount the upper fastening component 4, and the groove 34 on the lower corner positioning block 12 is used to mount the lower fastening component 5. Taking the upper corner positioning block 11 as an example, the overall structure of the upper corner positioning block 11 is as follows: Figure 16 As shown, the structure of trench 34 is as follows Figure 17 As shown. Furthermore, to facilitate the winding of the fastening components, the upper corner positioning block 11 and the lower corner positioning block 12 are positioned differently, as shown... Figure 12 As shown, the two vertical edges on the upper corner positioning block 11 are marked as c and d respectively. The positions of the two vertical edges c and d on the lower corner positioning block 12 are as follows: Figure 12 As shown. The upper fastening assembly 4 is wound around the inner surface of the upper triangular support structure 7 via the fixing rod 33 of the first upper winding member 28, the fixing rod 33 of the second upper winding member 30, and the groove 34 on the upper corner positioning block 11. Specifically, one end of the steel wire rope 61 of the upper fastening assembly 4 passes through the groove 34 on the upper corner positioning block 11 and is wound around the fixing rod 33 of the first upper winding member 28 and the fixing rod 33 of the second upper winding member 30 in sequence. At this time, both ends of the steel wire rope 61 are inside the first plate 2. The two ends of the steel wire rope 61 are connected by the tension spring 62, which is in a stretched state to fasten the upper triangular support structure 7; the lower fastening... The fastening assembly 5 is wound around the inner surface of the lower triangular support structure 8 via the fixing rod 33 of the first lower winding member 29, the fixing rod 33 of the second lower winding member 31, and the groove 34 on the lower corner positioning block 12. Specifically, one end of the steel wire rope 61 of the lower fastening assembly 5 passes through the groove 34 on the lower corner positioning block 12 and is wound around the fixing rod 33 of the first lower winding member 29 and the fixing rod 33 of the second lower winding member 31 in sequence. At this time, the two ends of the steel wire rope 61 are inside another first plate 2. The two ends of the steel wire rope 61 are connected by the tension spring 62, which is in a stretched state to fasten the lower triangular support structure 8.
[0056] To facilitate the installation of fastening components, during the assembly of the enclosure, the lower triangular support structure 8 can be formed by first using the inclined plate 1 and a set of side plates. The lower triangular support structure 8 can then be tightened and fixed using the lower fastening component 5. The remaining set of side plates can then be assembled, and together with the inclined plate 1, they can form the upper triangular support structure 7. The two sets of side plates form a rectangular enclosure, and the upper triangular support structure 7 can be tightened and fixed using the upper fastening component 4.
[0057] like Figure 12 As shown, to facilitate the connection between the housing and other components, an installation assembly is provided on the assembly plate. In this embodiment, the installation assembly is located on the first plate 2. In other embodiments, the installation assembly may also be located on the second plate 3. The structure of the installation assembly is the same as that of the installation assembly in Embodiment 1. Example 3
[0058] like Figure 18As shown, the present invention provides a glass box assembly structure, including an assembly plate made of glass. Specifically, the assembly plate is made of quartz glass or microcrystalline glass. In this embodiment, the assembly plate is made of quartz glass. The assembly plate includes an inclined plate 1 and at least one set of side plates. Each set of side plates includes a first plate 2 and a second plate 3. In this embodiment, the first plate 2 and the second plate 3 are arranged perpendicularly to each other. The first plate 2 and the second plate 3 in the same set of side plates can be connected end to end with the inclined plate 1 to form a triangular support structure. Corner positioning blocks are provided at the connection points to realize the connection. The corner positioning blocks are made of non-glass material. In this embodiment, the corner positioning blocks are made of steel. A fastening assembly is movably wound around the triangular support structure, connecting the three corner positioning blocks and providing elastic tension. The fastening assembly includes a steel wire rope 61 wound around the corner positioning blocks and a tension spring 62 connected to the steel wire rope 61 to provide elastic tension. Specifically, each end of the steel wire rope 61 has a pull ring 63, and each end of the tension spring 62 has a hook 64 connected to a pull ring 63. The length of the steel wire rope 61 is limited according to specific circumstances, ensuring that the tension spring 62 is under tension when the fastening assembly is wound around the triangular support structure. The fastening assembly not only tightens the triangular support structure, improving its stability, but also utilizes the spring tension of the tension spring 62 to eliminate the effects of the difference in thermal expansion coefficients between the assembly plate and the corner positioning blocks.
[0059] In this embodiment, there are two sets of side plates, which are respectively disposed on both sides of the inclined plate 1 and form a rectangular box. The inclined plate 1 and one set of side plates form an upper triangular support structure 7, and the inclined plate 1 and the other set of side plates form a lower triangular support structure 8. Fastening components are wound around both the upper triangular support structure 7 and the lower triangular support structure 8. The fastening component wound around the upper triangular support structure 7 is the upper fastening component 4, and the fastening component wound around the lower triangular support structure 8 is the lower fastening component 5. The upper fastening component 4 is used to tighten and fix the upper triangular support structure 7, and the lower fastening component 5 is used to tighten and fix the lower triangular support structure 8.
[0060] like Figure 18-24As shown, in this embodiment, there are four corner positioning blocks. Each of the four corner positioning blocks has a first positioning groove 13 for embedding the first plate 2 and a second positioning groove 14 for embedding the second plate 3. The structures of the first positioning groove 13 and the second positioning groove 14 are identical. To improve the connection strength, adhesive is provided at the embedding points of the first plate 2 and the first positioning groove 13, and at the embedding points of the second plate 3 and the second positioning groove 14. Specifically, the adhesive can be glue. It is worth noting that the four corner positioning blocks are divided into an upper oblique corner positioning block 9 and a lower oblique corner positioning block 10 distributed along the length direction of the inclined plate 1, and an upper corner positioning block 11 and a lower corner positioning block 12 respectively disposed on both sides of the inclined plate 1. The upper corner positioning block 11, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10 are used to connect the upper triangular support structure 7, and the lower corner positioning block 12, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10 are used to connect the lower triangular support structure 8. Both the upper angled positioning block 9 and the lower angled positioning block 10 are provided with a third positioning groove 15 for embedding the inclined plate 1. An adhesive for improving the connection strength is provided at the embedding points of the inclined plate 1 and the third positioning groove 15. Specifically, the adhesive is glue.
[0061] The upper fastening assembly 4 is movably wound around the upper corner positioning block 11, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10, while the lower fastening assembly 5 is movably wound around the lower corner positioning block 12, the upper oblique corner positioning block 9, and the lower oblique corner positioning block 10. The specific structure is as follows: Figure 18 As shown, both ends of the upper angled positioning block 9, both ends of the lower angled positioning block 10, both ends of the upper corner positioning block 11, and both ends of the lower corner positioning block 12 are provided with a winding portion 35, and a fastening component is wound around the winding portion 35. Specifically, as shown... Figure 19 and Figure 23As shown, the winding portion 35 is provided with a first annular groove 36 and a second annular groove 37 at intervals. The upper fastening assembly 4 is wound around the outside of the winding portion 35 through the first annular groove 36 on the upper oblique angle positioning block 9, the first annular groove 36 on the lower oblique angle positioning block 10, and the first annular groove 36 on the upper corner positioning block 11, and fastens the upper triangular support structure 7. At this time, the tension spring 62 on the upper fastening assembly 4 is in a stretched state. The lower fastening assembly 5 is wound around the outside of the winding portion 35 through the second annular groove 37 on the upper oblique angle positioning block 9, the second annular groove 37 on the lower oblique angle positioning block 10, and the second annular groove 37 on the lower corner positioning block 12, and fastens the lower triangular support structure 8. At this time, the tension spring 62 on the lower fastening assembly 5 is in a stretched state. It is worth noting that there are two upper fastening assemblies 4, which are respectively wound around the two front and rear through end faces of the box; there are two lower fastening assemblies 5, which are respectively wound around the two front and rear through end faces of the box. In other embodiments, the upper fastening component 4 may be wound around the second annular groove 37, and the lower fastening component 5 may be wound around the first annular groove 36, without limitation.
[0062] To facilitate the installation of fastening components, during the assembly of the enclosure, the lower triangular support structure 8 can be formed by first using the inclined plate 1 and a set of side plates. The lower triangular support structure 8 can then be tightened and fixed using the lower fastening component 5. The remaining set of side plates can then be assembled, and together with the inclined plate 1, they can form the upper triangular support structure 7. The two sets of side plates form a rectangular enclosure, and the upper triangular support structure 7 can be tightened and fixed using the upper fastening component 4.
[0063] like Figure 18 As shown, to facilitate the connection between the housing and other components, an installation assembly is provided on the assembly plate. In this embodiment, the installation assembly is located on the first plate 2. In other embodiments, the installation assembly may also be located on the second plate 3. The structure of the installation assembly is the same as that of the installation assembly in Embodiment 1. Example 4
[0064] like Figure 25As shown, the present invention provides a glass box assembly structure, including an assembly plate made of glass. Specifically, the assembly plate is made of quartz glass or microcrystalline glass. In this embodiment, the assembly plate is made of quartz glass. The assembly plate includes an inclined plate 1 and a set of side plates. The set of side plates includes a first plate 2 and a second plate 3. In this embodiment, the first plate 2 and the second plate 3 are arranged perpendicularly to each other. In other embodiments, the first plate 2 and the second plate 3 may also be arranged at an acute angle or an obtuse angle. The first plate 2 and the second plate 3 in the set of side plates can be connected end to end with the inclined plate 1 to form a triangular support structure. Corner positioning blocks for connecting are provided at the connection points. The corner positioning blocks are made of non-glass materials. In this embodiment, the corner positioning blocks are made of steel. A fastening assembly is movably wound around the triangular support structure, connecting the three corner positioning blocks and providing elastic tension. The fastening assembly includes a steel wire rope 61 around the corner positioning blocks and a tension spring 62 connected to the steel wire rope 61 to provide elastic tension. Specifically, each end of the steel wire rope 61 is provided with a pull ring 63, and each end of the tension spring 62 is connected with a hook 64, which is connected to the pull ring 63. The fastening assembly not only tightens the triangular support structure, improving its stability, but also utilizes the spring tension of the tension spring 62 to eliminate the effects of the difference in thermal expansion coefficients between the assembly plate and the corner positioning blocks.
[0065] like Figure 25 As shown, in this embodiment, there are three corner positioning blocks: a first corner positioning block 38, a second corner positioning block 39, and a third corner positioning block 40. The first corner positioning block 38 connects the first plate 2 and the inclined plate 1; the second corner positioning block 39 connects the first plate 2 and the second plate 3; and the third corner positioning block 40 connects the second plate 3 and the inclined plate 1. Specifically, as... Figure 27 As shown, the first corner positioning block 38 has a first positioning groove 13 for embedding the first plate 2 and a third positioning groove 15 for embedding the inclined plate 1, and both embedding points are provided with adhesive to improve the connection strength; Figure 28 As shown, the second corner positioning block 39 has a first positioning groove 13 for embedding the first plate 2 and a second positioning groove 14 for embedding the second plate 3, and an adhesive for improving the connection strength is provided at the embedding point; as Figure 29 As shown, the third corner positioning block 40 is provided with a second positioning groove 14 for embedding the second plate 3 and a third positioning groove 15 for embedding the inclined plate 1, and the embedding parts are provided with adhesive to improve the connection strength. In this embodiment, the adhesive is glue.
[0066] The fastening assembly surrounds the first corner positioning block 38, the second corner positioning block 39, and the third corner positioning block 40, with the following specific structure: Figure 25 and Figure 26 As shown, both ends of the first corner positioning block 38, both ends of the second corner positioning block 39, and both ends of the third corner positioning block 40 are provided with winding portions 35. The winding portions 35 have winding grooves 41 for winding fastening components. The fastening components are wound around the outside of the winding portions 35 through the winding grooves 41 on the first corner positioning block 38, the second corner positioning block 39, and the third corner positioning block 40 to fasten the triangular support structure. At this time, the tension spring 62 on the fastening components is in a stretched state. There are two fastening components, located on the two end faces of the triangular support structure.
[0067] like Figure 25 As shown, to facilitate the connection between the housing and other components, an installation assembly is provided on the assembly plate. In this embodiment, the installation assembly is located on the first plate 2. In other embodiments, the installation assembly may also be located on the second plate 3. The structure of the installation assembly is the same as that of the installation assembly in Embodiment 1.
[0068] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A glass box assembly structure, characterized in that: The assembly includes a glass panel, which comprises an inclined plate (1) and at least one set of side plates. Each set of side plates includes a first plate (2) and a second plate (3). The first plate (2) and the second plate (3) in the same set of side plates can be connected end to end with the inclined plate (1) to form a triangular support structure. Corner positioning blocks for embedding the assembly plate are provided at the connection points to achieve connection. Fastening components for connecting the three corner positioning blocks and providing elastic tension are movably wound around the triangular support structure. There are two sets of side plates, which are respectively located on both sides of the inclined plate (1) and form a box. The inclined plate (1) and the set of side plates form an upper triangular support. Structure (7), the inclined plate (1) and another set of side plates form a lower triangular support structure (8), the fastening component wrapped around the upper triangular support structure (7) is the upper fastening component (4); the fastening component wrapped around the lower triangular support structure (8) is the lower fastening component (5); the number of corner positioning blocks is 4, the 4 corner positioning blocks are divided into upper inclined corner positioning block (9) and lower inclined corner positioning block (10) distributed along the length direction of the inclined plate (1), and upper corner positioning block (11) and lower corner positioning block (12) respectively disposed on both sides of the inclined plate (1), the upper corner positioning block (11), the upper inclined corner positioning block (9) and the lower inclined corner positioning block (10) are respectively disposed on both sides of the inclined plate (1). The positioning block (10) is used to connect the upper triangular support structure (7); the lower corner positioning block (12), the upper oblique angle positioning block (9), and the lower oblique angle positioning block (10) are used to connect the lower triangular support structure (8); the upper oblique angle positioning block (9) is provided with a first through hole (16) for winding around the upper fastening component (4) and a second through hole (17) for winding around the lower fastening component (5), the first through hole (16) and the second through hole (17) are arranged in a cross pattern; the lower oblique angle positioning block (10) is provided with a third through hole (18) for winding around the upper fastening component (4) and a fourth through hole (18) for winding around the lower fastening component (5). Through holes (19), third through holes (18) and fourth through holes (19) are arranged in a cross pattern; both the upper corner positioning block (11) and the lower corner positioning block (12) are provided with through slots (20) for winding fastening components; the upper fastening component (4) is wound around the outer surface of the upper triangular support structure (7) by passing through the first through hole (16), the third through hole (18) and the through slot (20) on the upper corner positioning block (11); the lower fastening component (5) is wound around the outer surface of the lower triangular support structure (8) by passing through the second through hole (17), the fourth through hole (19) and the through slot (20) on the lower corner positioning block (12).
2. A glass box assembly structure, characterized in that: The assembly includes a glass panel, which comprises an inclined plate (1) and at least one set of side panels. Each set of side panels includes a first plate (2) and a second plate (3). The first plate (2) and the second plate (3) in the same set of side panels can be connected end to end with the inclined plate (1) to form a triangular support structure. Corner positioning blocks for embedding the assembly panel are provided at the connection points to achieve connection. Fastening components for connecting the three corner positioning blocks and providing elastic tension are movably wound around the triangular support structure. There are two sets of side panels, which are respectively located on both sides of the inclined plate (1) to form a box. The inclined plate (1) and a The side plates form an upper triangular support structure (7), and the inclined plate (1) and another set of side plates form a lower triangular support structure (8). The fastening component wrapped around the upper triangular support structure (7) is the upper fastening component (4); the fastening component wrapped around the lower triangular support structure (8) is the lower fastening component (5); the number of corner positioning blocks is 4. The 4 corner positioning blocks are divided into an upper oblique corner positioning block (9) and a lower oblique corner positioning block (10) distributed along the length direction of the inclined plate (1), and an upper corner positioning block (11) and a lower corner positioning block (12) respectively disposed on both sides of the inclined plate (1). The upper corner positioning block (11) The upper angled corner positioning block (9) and the lower angled corner positioning block (10) are used to connect the upper triangular support structure (7); the lower corner positioning block (12) and the upper angled corner positioning block (9) and the lower angled corner positioning block (10) are used to connect the lower triangular support structure (8); the upper angled corner positioning block (9) is provided with a first upper winding member (28) for winding the upper fastening component (4) and a first lower winding member (29) for winding the lower fastening component (5); the lower angled corner positioning block (10) is provided with a second upper winding member (30) for winding the upper fastening component (4) and a second upper winding member (30) for winding the lower fastening component (5). The second lower winding member (31) of component (5); grooves (34) for winding fastening components are provided on both the upper corner positioning block (11) and the lower corner positioning block (12); the upper fastening component (4) is wound on the inner surface of the upper triangular support structure (7) through the first upper winding member (28), the second upper winding member (30) and the groove (34) on the upper corner positioning block (11); the lower fastening component (5) is wound on the inner surface of the lower triangular support structure (8) through the first lower winding member (29), the second lower winding member (31) and the groove (34) on the lower corner positioning block (12).
3. A glass box assembly structure, characterized in that: The assembly includes a glass panel, which comprises an inclined plate (1) and at least one set of side panels. Each set of side panels includes a first plate (2) and a second plate (3). The first plate (2) and the second plate (3) in the same set of side panels can be connected end to end with the inclined plate (1) to form a triangular support structure. Corner positioning blocks for embedding the assembly panel are provided at the connection points to achieve connection. Fastening components for connecting the three corner positioning blocks and providing elastic tension are movably wound around the triangular support structure. There are two sets of side panels, which are respectively located on both sides of the inclined plate (1) to form a box. The inclined plate (1) and a set of side panels The plates form an upper triangular support structure (7), and the inclined plate (1) and another set of side plates form a lower triangular support structure (8). The fastening component wrapped around the upper triangular support structure (7) is the upper fastening component (4); the fastening component wrapped around the lower triangular support structure (8) is the lower fastening component (5); the number of corner positioning blocks is 4. The 4 corner positioning blocks are divided into an upper inclined corner positioning block (9) and a lower inclined corner positioning block (10) distributed along the length direction of the inclined plate (1), and an upper corner positioning block (11) and a lower corner positioning block (12) respectively disposed on both sides of the inclined plate (1). The upper corner positioning block (11), the upper... The oblique angle positioning block (9) and the lower oblique angle positioning block (10) are used to connect the upper triangular support structure (7); the lower corner positioning block (12) and the upper oblique angle positioning block (9) and the lower oblique angle positioning block (10) are used to connect the lower triangular support structure (8); both ends of the upper oblique angle positioning block (9), both ends of the lower oblique angle positioning block (10), both ends of the upper corner positioning block (11), and both ends of the lower corner positioning block (12) are provided with a winding part (35), and the winding part (35) is provided with a first annular groove (36) and a second annular groove (37) at intervals, and the upper fastening component (4) is connected through The first annular groove (36) on the upper oblique angle positioning block (9), the first annular groove (36) on the lower oblique angle positioning block (10), and the first annular groove (36) on the upper corner positioning block (11) are wrapped around the outside of the winding part (35) and fasten the upper triangular support structure (7); the lower fastening assembly (5) is wrapped around the outside of the winding part (35) through the second annular groove (37) on the upper oblique angle positioning block (9), the second annular groove (37) on the lower oblique angle positioning block (10), and the second annular groove (37) on the lower corner positioning block (12) and fasten the lower triangular support structure (8).
4. A glass box assembly structure according to any one of claims 1-3, characterized in that: The assembly plate is made of quartz glass or microcrystalline glass.
5. A glass box assembly structure according to any one of claims 1-3, characterized in that: The fastening assembly includes a steel wire rope (61) for winding around the corner positioning block and a tension spring (62) connected to the steel wire rope (61) and used to provide elastic tension. Both ends of the steel wire rope (61) are provided with pull rings (63), and both ends of the tension spring (62) are connected with hooks (64). The hooks (64) are connected to the pull rings (63) one by one.
6. A glass box assembly structure according to any one of claims 1-3, characterized in that: The assembly plate is provided with a mounting assembly for connecting other components. The mounting assembly includes a first mounting plate (21) and a second mounting plate (22) that are sequentially bonded to the assembly plate. The surface of the second mounting plate (22) is provided with a receiving cavity (23) that passes through the second mounting plate (22), the first mounting plate (21), and the assembly plate. The receiving cavity (23) is provided with an insert (24) that is adapted to the receiving cavity (23). The insert (24) is provided with a threaded hole (27) for threaded connection.
7. The glass box assembly structure according to claim 6, characterized in that: The inner wall of the receiving cavity (23) is provided with a limiting groove (25), and the insert (24) is provided with a limiting part (26) that is adapted to the limiting groove (25). The limiting part (26) and the insert (24) are integrally formed.
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