Sheet unit and sheet system
By using connecting parts such as pull rods, hanging parts and brackets in plate units and plate systems, the stress system of hanging super-large glass partitions is optimized, which solves the problem of excessive use of cross beam materials, and achieves the effect of reducing material use and improving support.
Patent Information
- Application Number
- CN202421536818.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-01
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2034-07-01
AI Technical Summary
In order to reduce the deflection of the beam, the hanging super-large glass partitions have increased the cross-section of the columns and beams, and the use of beam materials has been increased.
A plate unit and plate system are proposed. By arranging the tie rods and pendants and supporting parts between the upper and lower beams, the stress system is optimized, so that the upper and lower beams are connected to the embedded parts through these connecting parts, thereby reducing the span and cross-sectional area of the beam and reducing material use.
By optimizing the stress system of the plate system, the use of beam materials is reduced, and the purpose of optimizing the cross section of the beam is achieved, while improving support and stability are improved.
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Figure CN222923974U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of glass curtain walls, and particularly relates to a panel unit and a panel system. Background Technique
[0002] In today's construction field, the design of super-large glass grids has gradually become a major feature of modern architecture. To achieve this design, most super-large grid-type glass curtain walls tend to adopt the component type or the hanging type method. These two methods can not only effectively support large-area glass, but also improve the aesthetics and practicality of the building to a certain extent.
[0003] However, in order to reduce the deflection of the upper and lower cross beams in the hanging type super-large glass grid, the cross sections of the columns and the upper and lower cross beams are often made larger. The two ends of the cross beam are connected to the column by screws to support the large-area glass, resulting in a larger cross-sectional area of the cross beam, and thus increasing the use of cross beam materials. Summary of the Utility Model
[0004] The main purpose of the utility model is to propose a panel unit and a panel system, aiming to optimize the force system of the panel system, with the cross beam as the main force-bearing member and the column as the auxiliary force-bearing member, so as to reduce the use of cross beam materials.
[0005] To achieve the above object, the panel unit proposed by the utility model is applied to a building wall. The building wall is provided with a first embedded part and a second embedded part. The panel unit includes a support frame, and the support frame includes an upper cross beam and a lower cross beam arranged opposite to each other in a first direction;
[0006] A plurality of supporting members are arranged on the lower cross beam and are arranged at intervals along the extending direction of the lower cross beam. The supporting members are used to connect the first embedded part to support the lower cross beam;
[0007] A plurality of hanging members are arranged on the upper cross beam and are arranged at intervals along the extending direction of the upper cross beam. The hanging members are used to connect the second embedded part to support the upper cross beam; and
[0008] A tie rod is arranged at the mid-span position of the upper cross beam. The tie rod is used to connect the second embedded part to support the upper cross beam.
[0009] In an embodiment, the support frame further includes a plurality of columns arranged at intervals. An accommodating area for accommodating a glass plate is formed between two adjacent columns;
[0010] The upper crossbeam includes at least two first crossbeams arranged along its extending direction and third crossbeams located on both sides of the extending direction of the first crossbeams. The lower crossbeam includes at least two second crossbeams arranged along its extending direction and fourth crossbeams located on both sides of the extending direction of the second crossbeams. The first crossbeams and the second crossbeams are arranged opposite to each other, and the third crossbeams and the fourth crossbeams are arranged opposite to each other.
[0011] Any two adjacent first crossbeams are spliced by the columns. Any two adjacent second crossbeams are spliced by the columns. The first crossbeam is spliced with the third crossbeam by the column. The second crossbeam is spliced with the fourth crossbeam by the column.
[0012] The column is provided with the hanging parts at the splicing positions of the first crossbeams, and the tension rods are provided at the middle positions of each first crossbeam.
[0013] The supporting parts include the first supporting part and the second supporting part. The first supporting part is arranged at the splicing position of the column where the second crossbeam is located. The second supporting part is arranged at the middle position of each second crossbeam.
[0014] In an embodiment, the tension rod includes a first connecting part and a first connecting portion arranged on one side of the first connecting part. The first connecting portion is used for connecting the second embedded part, and the first connecting part connects the first crossbeam.
[0015] In an embodiment, the plate unit further includes an adjusting assembly. The first supporting part includes a second connecting part, a third connecting part and a first supporting member. The second connecting part is connected to the third connecting part through the adjusting assembly, so that the distance between the third connecting part and the second connecting part in the first direction can be adjusted. The third connecting part is connected to the first supporting member through the adjusting assembly, so that the distance between the third connecting part and the first supporting member in the second direction can be adjusted. The first supporting member is used for connecting the first embedded part. The first direction and the second direction intersect.
[0016] In an embodiment, the adjusting assembly includes a locking member and an adjusting pin. The second connecting part, the third connecting part and the first supporting member are all provided with first through grooves. The adjusting pin passes through the first through grooves on the second connecting part and the third connecting part and is locked with the locking member; and / or the adjusting pin passes through the first through grooves on the third connecting part and the first supporting member and is locked with the locking member.
[0017] In one embodiment, a chute is provided at one end of the lower cross beam close to the second connecting member. A second connecting portion is provided on one side of the second connecting member away from the third connecting member. The second connecting member is connected to the chute through the second connecting portion.
[0018] In one embodiment, the second supporting member includes a fourth connecting member and a second supporting member connected to each other. A third connecting portion is provided on one side of the fourth connecting member close to the lower cross beam. The fourth connecting member is connected to the chute through the third connecting portion. The fourth connecting member is connected to the second supporting member through the adjusting assembly so that the distance between the fourth connecting member and the second supporting member in the extending direction of the second supporting member can be adjusted. The second supporting member is used to connect the first embedded part.
[0019] In one embodiment, the hanging member includes a connecting plate, a hook and a third supporting member. The hook connects the column. The third supporting member is connected to the connecting plate. The hook is hung on the connecting plate through an adjusting bolt so that the distance between the connecting plate and the hook in the first direction can be adjusted. The third supporting member is used to connect the second embedded part.
[0020] In one embodiment, the third supporting member is provided with second through grooves oppositely arranged in the second direction. The second through grooves extend in the extending direction of the third supporting member. The adjusting pin passes through the second through grooves on both sides and the connecting plate and is locked with the locking member so that the distance between the third supporting member and the connecting plate in the extending direction of the third supporting member can be adjusted.
[0021] The present utility model also proposes a plate system, including the plate unit as described in any one of the above embodiments.
[0022] The technical solution of the present utility model adopts a plurality of tie rods and a plurality of hanging members arranged at intervals on the upper cross beam, so that the upper cross beam is connected to the second embedded part through the tie rods and the hanging members, thereby supporting the upper cross beam through the tie rods and the hanging members, thereby reducing the span of the upper cross beam, thereby reducing the cross-sectional area of the upper cross beam, and further reducing the use of beam materials, so as to achieve the purpose of optimizing the cross-section of the upper cross beam; a plurality of supporting members are arranged at intervals on the lower cross beam, so that the lower cross beam is connected to the first embedded part through the supporting members, thereby supporting the lower cross beam through the supporting members, thereby reducing the span of the lower cross beam, thereby reducing the cross-sectional area of the lower cross beam, and further reducing the use of beam materials, so as to achieve the purpose of optimizing the cross-section of the lower cross beam. Description of the Drawings
[0023] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.
[0024] Figure 1 Structural schematic diagram of an embodiment of the plate unit provided by the present invention;
[0025] Figure 2 For Figure 1 Partial enlarged view at A in
[0026] Figure 3 For Figure 1 Partial enlarged view at B in
[0027] Figure 4 Structural schematic diagram of another embodiment of the plate unit provided by the present invention;
[0028] Figure 5 For Figure 4 Partial enlarged view at C in
[0029] Figure 6 For Figure 4 Partial enlarged view at D in
[0030] Figure 7 Structural schematic diagram of an embodiment of the first support in the plate unit provided by the present invention;
[0031] Figure 8 Structural schematic diagram of an embodiment of the hanging member in the plate unit provided by the present invention;
[0032] Figure 9 Structural schematic diagram of an embodiment in which the hanging member and the support in the plate unit are respectively assembled with the first embedded part and the second embedded part in the building wall.
[0033] Explanation of the reference numerals in the drawings:
[0034] 1. Building wall; 11. First embedded part; 12. Second embedded part; 2. Support frame; 21. Upper crossbeam; 211. First crossbeam; 212. Third crossbeam; 22. Lower crossbeam; 221. Second crossbeam; 2211. Slide groove; 222. Fourth crossbeam; 23. Column; 24. Accommodation area; 3. Support member; 31. First support member; 311. Second connecting member; 3111. Second connecting part; 312. Third connecting member; 313. First supporting member; 32. Second support member; 321. Fourth connecting member; 3211. Third connecting part; 322. Second supporting member; 4. Hanging member; 41. Connecting plate; 42. Hook; 43. Third supporting member; 431. Second through groove; 44. Adjusting bolt; 5. Tie rod; 51. First connecting member; 52. First connecting part; 6. Adjusting assembly; 61. Locking member; 62. Adjusting pin.
[0035] The realization, functional features and advantages of the purpose of the present utility model will be further described in conjunction with the embodiments with reference to the accompanying drawings. Specific embodiments
[0036] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.
[0037] It should be noted that if there are directional indications (such as up, down, left, right, front, back,...) involved in the embodiments of the present utility model, then the directional indications are only used to explain the relative position relationship and movement conditions between components in a certain specific posture. If the specific posture changes, the directional indications will also change accordingly.
[0038] In addition, if there are descriptions such as "first" and "second" involved in the embodiments of the present utility model, then the descriptions of "first" and "second" are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include at least one such feature. In addition, if "and / or" or "and / or" appears throughout the text, its meaning includes three parallel solutions. Taking "A and / or B" as an example, it includes solution A, or solution B, or the solution where A and B are satisfied simultaneously. In addition, the technical solutions between the embodiments can be combined with each other, but it must be based on the fact that those of ordinary skill in the art can implement them. When the combination of technical solutions results in contradictions or cannot be implemented, it should be considered that such a combination of technical solutions does not exist and is not within the protection scope required by the present utility model.
[0039] In today's construction field, the design of extra-large glass grids has gradually become a major feature of modern architecture. To achieve this design, most extra-large sectional glass curtain walls tend to adopt the member type or the hanging type methods. These two methods can not only effectively support a large area of glass, but also improve the aesthetics and practicality of the building to a certain extent.
[0040] However, for the hanging type of extra-large glass grids, in order to reduce the deflection of the upper and lower crossbeams, the cross-sections of the columns 23 and the upper and lower crossbeams 22 are often made larger. The two ends of the crossbeam are connected to the column 23 by screws to support a large area of glass, resulting in a relatively large cross-sectional area of the crossbeam, thereby increasing the use of crossbeam materials.
[0041] The present utility model provides a panel unit.
[0042] Please refer to Figure 1 、 Figure 4 and Figure 9 In an embodiment of the present utility model, the panel unit is applied to a building wall 1. The building wall 1 is provided with a first embedded part 11 and a second embedded part 12. The panel unit includes:
[0043] A support frame 2, the support frame 2 includes an upper crossbeam 21 and a lower crossbeam 22 arranged opposite to each other in a first direction;
[0044] A plurality of supporting members 3, the plurality of supporting members 3 are arranged on the lower crossbeam 22 and are spaced apart along the extending direction of the lower crossbeam 22. The supporting member 3 is used to connect the first embedded part 11 to support the lower crossbeam 22;
[0045] A plurality of hanging members 4, the plurality of hanging members 4 are arranged on the upper crossbeam 21 and are spaced apart along the extending direction of the upper crossbeam 21. The hanging member 4 is used to connect the second embedded part 12 to support the upper crossbeam 21; and
[0046] A tension rod 5, the tension rod 5 is arranged at the mid-span position of the upper crossbeam 21. The tension rod 5 is used to connect the second embedded part 12 to support the upper crossbeam 21;
[0047] The technical solution of the present utility model adopts a plurality of tension rods 5 and a plurality of hanging parts 4 arranged at intervals on the upper cross beam 21, so that the upper cross beam 21 is connected to the second embedded part 12 through the tension rods 5 and the hanging parts 4, thereby supporting the upper cross beam 21 through the tension rods 5 and the hanging parts 4, thereby reducing the span of the upper cross beam 21, thereby reducing the cross-sectional area of the upper cross beam 21, and further reducing the use of beam materials, so as to achieve the purpose of optimizing the cross-section of the upper cross beam 21; a plurality of supporting parts 3 are arranged at intervals on the lower cross beam 22, so that the lower cross beam 22 is connected to the first embedded part 11 through the supporting parts 3, thereby supporting the lower cross beam 22 through the supporting parts 3, thereby reducing the span of the lower cross beam 22, thereby reducing the cross-sectional area of the lower cross beam 22, and further reducing the use of beam materials, so as to achieve the purpose of optimizing the cross-section of the lower cross beam 22.
[0048] In this embodiment, the support frame 2 has a large-area first accommodation area and a small-area second accommodation area. The first accommodation area and the second accommodation area are used to install glass plates of different sizes. The first accommodation area can be set to two, and the two first accommodation areas can be spliced with each other and arranged at the middle position of the support frame 2. The second accommodation areas are respectively arranged on both sides of the two first accommodation areas away from the splicing position. The two first accommodation areas can be arranged at an angle, so that the hanging parts 4 and the tension rods 5 on the upper cross beam 21 can be stressed better, and the supporting parts 3 on the lower cross beam 22 can be stressed better, so that the hanging parts 4 and the tension rods 5 can support the upper cross beam 21 more stably, and the supporting parts 3 can support the lower cross beam 22 more stably. The support frame 2 includes an upper cross beam 21 and a lower cross beam 22 arranged oppositely along the first direction, and the upper cross beam 21 is provided with a plurality of hanging parts 4. A tension rod 5 is arranged at the middle position of the part of the upper cross beam 21 located on the first accommodation area. According to the area of the first accommodation area, a plurality of tension rods 5 can be set, and the tension rods 5 are connected one-to-one to a plurality of second embedded parts 12 embedded in the building wall 1, thereby improving the supporting force for the large-area glass plate in the first accommodation area. The other parts of the upper cross beam 21 are connected one-to-one to a plurality of second embedded parts 12 embedded in the building wall 1 through a plurality of hanging parts 4. The hanging parts 4 cooperate with the tension rods 5 to jointly support the upper cross beam 21, so that the upper cross beam 21 does not need to use a cross beam with a larger cross-sectional area as the main supporting cross beam, and further reduces the amount of materials used for manufacturing the upper cross beam 21. The lower cross beam 22 can be provided with a plurality of supporting parts 3 at intervals along its extending direction. The supporting parts 3 are connected one-to-one to a plurality of first embedded parts 11 embedded in the building wall 1. The plurality of supporting parts 3 cooperate with each other to jointly support the lower cross beam 22, thereby improving the supporting force of the supporting parts 3 for the lower cross beam 22, so that the lower cross beam 22 does not need to be made into a cross beam with a larger cross-sectional area as the main supporting cross beam, and further reduces the amount of materials used for manufacturing the lower cross beam 22.
[0049] Such as Figure 1 And Figure 4As shown, in this embodiment, the support frame 2 further includes a plurality of upright columns 23 arranged at intervals, and an accommodation area 24 for accommodating a glass plate is formed between two adjacent upright columns 23;
[0050] The upper crossbeam 21 includes at least two first crossbeams 211 arranged along its extending direction and third crossbeams 212 located on both sides of the extending direction of the first crossbeams 211. The lower crossbeam 22 includes at least two second crossbeams 221 arranged along its extending direction and fourth crossbeams 222 located on both sides of the extending direction of the second crossbeams 221. The first crossbeams 211 and the second crossbeams 221 are arranged opposite to each other, and the third crossbeams 212 and the fourth crossbeams 222 are arranged opposite to each other;
[0051] Any two adjacent first crossbeams 211 are spliced by the upright columns 23, any two adjacent second crossbeams 221 are spliced by the upright columns 23, the first crossbeams 211 are spliced with the third crossbeams 212 by the upright columns 23, and the second crossbeams 221 are spliced with the fourth crossbeams 222 by the upright columns 23;
[0052] The hanging members 4 are provided at the splicing positions of the upright columns 23 where the first crossbeams 211 are located, and the pull rods 5 are provided at the middle positions of each first crossbeam 211;
[0053] The supporting members 3 include the first supporting member 31 and the second supporting member 32. The first supporting member 31 is arranged at the splicing position of the upright column 23 where the second crossbeam 221 is located, and the second supporting member 32 is arranged at the middle position of each second crossbeam 221.
[0054] In this embodiment, the support frame 2 further includes a plurality of columns 23. The plurality of columns 23 are arranged at intervals along the extending direction of the upper cross beam 21 and the lower cross beam 22. An accommodating area 24 for accommodating the glass plate is formed between two adjacent columns 23. The accommodating area 24 includes a large-area first accommodating area and a small-area second accommodating area. Any two adjacent first cross beams 211, any two adjacent second cross beams 221, the other side of the first cross beam 211 and the third cross beam 212, and the other side of the second cross beam 221 and the fourth cross beam 222 are spliced through the columns 23, thereby improving the splicing stability between the two first cross beams 211, between the first cross beam 211 and the third cross beam 212, between the two second cross beams 221, and between the second cross beam 221 and the fourth cross beam 222. A hanging member 4 is provided at the splicing position of the column 23 where the first cross beam 211 is located, and a tension rod 5 is provided at the middle position of each first cross beam 211. The hanging member 4 and the tension rod 5 cooperate with each other to provide a more uniform supporting force for the upper cross beam 21, so that the hanging member 4 and the tension rod 5 can support the upper cross beam 21 more stably. The first supporting member 31 is provided at the splicing position of the column 23 where the second cross beam 221 is located, and the second supporting member 32 is provided at the middle position of each second cross beam 221. The first supporting member 31 and the second supporting member 32 cooperate with each other to provide a more uniform supporting force for the lower cross beam 22, so that the first supporting member 31 and the second supporting member 32 can support the lower cross beam 22 more stably.
[0055] As Figure 1 and Figure 3 shown, in this embodiment, the tension rod 5 includes a first connecting member 51 and a first connecting portion 52 provided on one side of the first connecting member 51. The first connecting portion 52 is used to connect the second embedded part 12, and the first connecting member 51 connects the first cross beam 211.
[0056] In this embodiment, the first connecting portion 52 can be a connecting plate 41. The first connecting portion 52 is welded to the second embedded part 12, and the first connecting member 51 is connected to the first cross beam 211 by bolts, so that the tension rod 5 and the hanging members 4 at both ends of the first cross beam 211 form at least three support points to jointly support the first cross beam 211, thereby enabling the tension rod 5 and the hanging members 4 to support the first cross beam 211 more stably.
[0057] As Figure 5 and Figure 7As shown, in this embodiment, the plate unit further includes an adjustment assembly 6. The first support 31 includes a second connecting member 311, a third connecting member 312, and a first support member 313. The second connecting member 311 is connected to the third connecting member 312 through the adjustment assembly 6, so that the distance between the third connecting member 312 and the second connecting member 311 in the first direction can be adjusted. The third connecting member 312 is connected to the first support member 313 through the adjustment assembly 6, so that the distance between the third connecting member 312 and the first support member 313 in the second direction can be adjusted. The first support member 313 is used to connect the first embedded part 11, and the first direction and the second direction intersect.
[0058] In this embodiment, the second connecting member 311 is connected to the third connecting member 312 through the adjustment assembly 6, and the third connecting member 312 is connected to the first support member 313 through the adjustment assembly 6, so that the distance between the third connecting member 312 and the second connecting member 311 in the first direction can be adjusted, and the distance between the third connecting member 312 and the first support member 313 in the length extension direction of the first support member 313 can be adjusted, so that the first support 31 can achieve adjustable distances in multiple directions, reducing the deviation of factory assembly or on-site installation.
[0059] As Figure 5 , Figure 7 and Figure 8 As shown, in this embodiment, the adjustment assembly 6 includes a locking member 61 and an adjustment pin 62. The second connecting member 311 and the third connecting member 312 are both provided with a first through groove. The adjustment pin 62 passes through the first through grooves on the second connecting member 311 and the third connecting member 312 and is locked with the locking member 61; and / or, the adjustment pin 62 passes through the first through grooves on the third connecting member 312 and the first support member 313 and is locked with the locking member 61.
[0060] In this embodiment, the outer side walls of the second connecting member 311 and the third connecting member 312 on the side where the first through groove is provided are provided with a first tooth surface, and one side of the locking member 61 is provided with a second tooth surface. The first through groove on the second connecting member 311 can be extended in the first direction. The adjustment pin 62 first passes through the first through groove on the second connecting member 311 and the third connecting member 312. By adjusting the positional relationship between the adjustment pin 62 and the first through groove, the positional relationship between the second connecting member 311 and the third connecting member 312 can be adjusted. After adjustment, the second tooth surface on the locking member 61 is cooperatively connected with the first tooth surface on the second connecting member 311, so as to lock the second connecting member 311 and the third connecting member 312.
[0061] In this embodiment, the first through slot on the third connecting member 312 can be arranged to extend along the length direction of the first support member 313. The adjusting pin 62 first passes through the first through slot on the third connecting member 312 and the first support member 313. By adjusting the positional relationship between the adjusting pin 62 and the first through slot, the positional relationship between the third connecting member 312 and the first support member 313 is further adjusted. After adjustment, the second tooth surface on the locking member 61 is connected in cooperation with the first tooth surface on the third connecting member 312, so as to lock the first support member 313 and the third connecting member 312. The first supporting member 31 can achieve multi-directional adjustment, reduce the deviation in factory assembly or on-site installation, and thus facilitate the assembly connection between the first supporting member 31 and the first embedded part 11.
[0062] As Figure 1 and Figure 5 shown, in this embodiment, a chute 2211 is provided at one end of the lower cross beam 22 close to the second connecting member 311. A second connecting portion 3111 is provided on a side of the second connecting member 311 away from the third connecting member 312. The second connecting member 311 is connected to the chute 2211 through the second connecting portion 3111.
[0063] In this embodiment, by setting that the second connecting member 311 is connected to the chute 2211 through the second connecting portion 3111, during assembly, the assembler manually drives the second connecting portion 3111 to move on the chute 2211, so that the assembler can finely adjust the positional relationship between the first supporting member 31 and the lower cross beam 22, so as to avoid the deviation in factory assembly from affecting the connection and cooperation between the first supporting member 31 and the first embedded part 11, thereby facilitating the connection and cooperation between the first supporting member 31 and the first embedded part 11. It should be noted that the positional relationship between the first supporting member 31 and the lower cross beam 22 after adjustment is that the first supporting member 31 is arranged at the splicing position of the column 23 where the second cross beam 221 is located.
[0064] As Figure 1 and Figure 6 shown, in this embodiment, the second supporting member 32 includes a fourth connecting member 321 and a second support member 322 that are connected to each other. A third connecting portion 3211 is provided on a side of the fourth connecting member 321 close to the lower cross beam 22. The fourth connecting member 321 is connected to the chute 2211 through the third connecting portion 3211; the fourth connecting member 321 is connected to the second support member 322 through the adjusting assembly 6, so that the distance between the fourth connecting member 321 and the second support member 322 can be adjusted along the extending direction of the second support member 322 relative to the second support member 322, and the second support member 322 is used to connect the first embedded part 11.
[0065] In this embodiment, by setting that the fourth connecting member 321 is connected to the sliding groove 2211 through the third connecting portion 3211, during assembly, the assembler manually drives the third connecting portion 3211 to move on the sliding groove 2211, so that the assembler can finely adjust the positional relationship between the second supporting member 32 and the lower cross beam 22, to avoid the deviation in factory assembly from affecting the connection and cooperation between the second supporting member 32 and the first embedded part 11, thereby facilitating the connection and cooperation between the second supporting member 32 and the first embedded part 11. It should be noted that the positional relationship between the second supporting member 32 and the lower cross beam 22 after adjustment is that the second supporting member 32 is arranged at the middle position of each second cross beam 221. The connection structure between the adjusting assembly 6 and the fourth connecting member 321 is the same as the connection structure between the second connecting member 311 and the adjusting assembly 6, which will not be elaborated here. The second supporting member 32 can achieve multi-directional adjustment, reduce the deviation in factory assembly or on-site installation, and thus facilitate the assembly connection between the second supporting member 32 and the first embedded part 11.
[0066] As Figure 2 and Figure 8 shown, in this embodiment, the hanging member 4 includes a connecting plate 41, a hook 42 and a third supporting member 43. The hook 42 is connected to the column 23. The third supporting member 43 is connected to the connecting plate 41. The hook 42 is hung on the connecting plate 41 through an adjusting bolt 44, so that the distance between the connecting plate 41 and the hook 42 in the first direction can be adjusted. The third supporting member 43 is used to connect the second embedded part 12.
[0067] In this embodiment, the column 23 includes a first column and a second column. The first cross beam 211 and the third cross beam 212 can be spliced with each other through the first column and the second column, or any two adjacent first cross beams 211 can be spliced with each other through the first column and the second column. The second cross beam 221 and the fourth cross beam 222 can be spliced with each other through the first column and the second column, or any two adjacent second cross beams 221 can be spliced with each other through the first column and the second column. Two hooks 42 can be provided, and the two hooks 42 are respectively connected to the opposite sides of the first column and the second column. The hook 42 is hung on the connecting plate 41 through the adjusting bolt 44, and the connecting plate 41 is connected to the third supporting member 43, so that the first column is spliced with the second column, thereby avoiding the opening of the splicing seam between the first column and the second column. By rotating the adjusting bolt 44 to adjust the distance between the third supporting member 43 and the hook 42 in the first direction, the deviation in on-site installation can be reduced, and thus it is more convenient for the assembler to weld the third supporting member 43 to the second embedded part 12.
[0068] As Figure 2 and Figure 8As shown, in this embodiment, the third support member 43 is provided with second through slots 431 oppositely arranged along the second direction. The second through slots 431 extend along the extending direction of the third support member 43. The adjusting pin 62 passes through the second through slots 431 on both sides and the connecting plate 41 and is locked with the locking member 61, so that the distance between the third support member 43 and the connecting plate 41 along the extending direction of the third support member 43 can be adjusted.
[0069] In this embodiment, the second through slots 431 on the third support member 43 can extend along the length direction of the third support member 43. The adjusting pin 62 first passes through the first through slots on the third support member 43 and the connecting plate 41. By adjusting the positional relationship between the adjusting pin 62 and the second through slots 431, the positional relationship between the third support member 43 and the hook 42 is further adjusted. After adjustment, the third support member 43 and the connecting plate 41 are locked by locking the locking member 61 with the adjusting pin 62. The hanging member 4 can achieve multi-directional adjustment, thereby reducing the deviation in factory assembly or on-site installation, and further facilitating the assembly connection between the hanging member 4 and the second embedded part 12.
[0070] The present invention also proposes a plate system, which includes a plurality of plate units. The specific structure of the plate unit refers to the above embodiments. Since this plate system adopts all the technical solutions of the above embodiments, it at least has all the beneficial effects brought by the technical solutions of the above embodiments, which will not be elaborated here one by one. Among them, a plurality of plate units are spliced with each other to form a plate system.
[0071] In this embodiment, splicing cross beams can be provided on the opposite sides of the support frame 2 along the first direction, and splicing cross beams can be provided on the opposite sides of the support frame 2 along the second direction. Two adjacent plate units are spliced with each other through the splicing cross beams to form a plate system, and the two splicing cross beams can be spliced by screws. It should be noted that the splicing cross beams are not marked in the accompanying drawings of the specification.
[0072] The above is only an exemplary embodiment of the present invention, and does not limit the patent scope of the present invention. Any equivalent structural transformation made under the technical concept of the present invention by using the content of the specification and drawings of the present invention, or directly / indirectly applied in other related technical fields, is included in the patent protection scope of the present invention.
Claims
1. A plate unit, applied to a building wall, wherein the building wall is provided with a first embedded part and a second embedded part, characterized in that: The plate unit comprises: A support frame, the support frame comprising an upper crossbeam and a lower crossbeam arranged opposite to each other along a first direction; A plurality of supporting members, wherein the plurality of supporting members are provided on the lower cross beam and are arranged at intervals along the extension direction of the lower cross beam, and the supporting members are used to connect the first embedded member to support the lower cross beam; a plurality of hangers, the plurality of hangers being arranged on the upper crossbeam and spaced apart along the extension direction of the upper crossbeam, the hangers being used to connect the second embedded parts to support the upper crossbeam; and A pull rod is arranged at the mid-span position of the upper cross beam, and is used to connect the second embedded part to support the upper cross beam.
2. The panel unit according to claim 1, characterized in that: The support frame further comprises a plurality of columns arranged at intervals, and a receiving area for receiving the glass plate is formed between two adjacent columns; The upper crossbeam includes at least two first crossbeams arranged along the extension direction thereof and a third crossbeam located on both sides of the first crossbeam in the extension direction; the lower crossbeam includes at least two second crossbeams arranged along the extension direction thereof and a fourth crossbeam located on both sides of the second crossbeam in the extension direction; the first crossbeam and the second crossbeam are arranged opposite to each other, and the third crossbeam and the fourth crossbeam are arranged opposite to each other; Any two adjacent first beams are spliced through the columns, any two adjacent second beams are spliced through the columns, the first beam is spliced with the third beam through the columns, and the second beam is spliced with the fourth beam through the columns; The column is provided with the hanger at the joint position of the first beam, and the pull rod is provided at the middle position of each first beam; The support comprises a first support and a second support. The first support is arranged at a joint position of the column with the second cross beam, and the second support is arranged at a middle position of each of the second cross beams.
3. The panel unit according to claim 2, characterized in that: The pull rod includes a first connecting member and a first connecting portion arranged on one side of the first connecting member, the first connecting portion is used to connect the second embedded member, and the first connecting member is connected to the first crossbeam.
4. The panel unit according to claim 2, characterized in that: The plate unit also includes an adjustment component, the first bracket includes a second connecting member, a third connecting member and a first supporting member, the second connecting member is connected to the third connecting member through the adjustment component, so that the spacing of the third connecting member relative to the second connecting member along the first direction can be adjusted, the third connecting member is connected to the first supporting member through the adjustment component, so that the spacing of the third connecting member relative to the first supporting member along the second direction can be adjusted, the first supporting member is used to connect the first embedded part, and the first direction and the second direction intersect.
5. The panel unit according to claim 4, characterized in that: The adjustment component includes a locking member and an adjustment pin, and the second connecting member, the third connecting member and the first supporting member are all provided with a first through slot, and the adjustment pin passes through the first through slots on the second connecting member and the third connecting member and is locked with the locking member; and / or the adjustment pin passes through the first through slots on the third connecting member and the first supporting member and is locked with the locking member.
6. The panel unit according to claim 5, characterized in that: A sliding groove is provided at one end of the lower cross beam close to the second connecting member, a second connecting portion is provided at a side of the second connecting member away from the third connecting member, and the second connecting member is connected to the sliding groove via the second connecting portion.
7. The panel unit according to claim 6, characterized in that: The second supporting member includes a fourth connecting member and a second supporting member that are interconnected, and a third connecting portion is provided on a side of the fourth connecting member close to the lower cross beam, and the fourth connecting member is connected to the slide groove via the third connecting portion; the fourth connecting member is connected to the second supporting member via the adjusting assembly so that the spacing of the fourth connecting member relative to the second supporting member along the extension direction of the second supporting member can be adjusted, and the second supporting member is used to connect the first embedded member.
8. The panel unit according to claim 5, characterized in that: The hanger includes a connecting plate, a hook and a third support member, the hook is connected to the column, the third support member is connected to the connecting plate, the hook is hung on the connecting plate by an adjusting bolt so that the distance between the connecting plate and the hook along the first direction can be adjusted, and the third support member is used to connect the second embedded part.
9. The panel unit according to claim 8, characterized in that: The third support member is provided with a second through slot relatively arranged along the second direction, and the second through slot is extended along the extension direction of the third support member. The adjustment pin passes through the second through slots on both sides and the connecting plate and is locked with the locking member, so that the distance between the third support member and the connecting plate along the extension direction of the third support member can be adjusted.
10. A plate system, characterized in that: It comprises a plurality of plate units according to any one of claims 1 to 9, wherein the plurality of plate units are spliced together to form the plate system.