Chain cable framework composite panel

By designing a cable chain frame composite slab, and utilizing the combination of cable chain shafts and prestressed mesh reinforcement, the problems of large welding volume and difficult wiring layout in floor slab structures were solved, resulting in reduced costs, improved construction efficiency, and enhanced quality.

CN114197719BActive Publication Date: 2025-11-04MEISHI CONSTR TECH (SHANGHAI) CO LTD
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Patent Information

Application Number
CN202111307329.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-11-05
Publication Date
2025-11-04
Estimated Expiration
2041-11-05

AI Technical Summary

Technical Problem

The existing floor slab structure requires a lot of welding during the formation process, resulting in high labor and material costs, and difficulties in wiring layout, which affects construction efficiency and quality.

Method used

The cable chain frame composite plate reduces the amount of welding by combining the cable chain shaft and the prestressed mesh reinforcement. It is prefabricated in the factory, which simplifies on-site construction. The prestressed mesh reinforcement is fixed by the through holes on the cable chain shaft, which reduces labor and material costs.

Benefits of technology

It significantly reduces welding workload, lowers costs, improves construction efficiency, ensures the stability and quality of the concrete layer, simplifies wiring layout, shortens construction period, and enhances safety in use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a cable chain framework combined plate, which comprises a cable chain framework, the cable chain framework comprises a plurality of cable chain shafts and a plurality of prestressed meshing ribs fixed on the cable chain shafts, the cable chain shafts are provided with a group of through holes, the prestressed meshing ribs are fixed in the group of through holes, connecting pieces are connected to the cable chain shafts, and fixed plates are connected to the connecting pieces. On the one hand, the plurality of prestressed meshing ribs are fixed through the cable chain shafts, so that the welding amount required by the connection between the prestressed meshing ribs is greatly reduced, the manpower and material resources required by welding are greatly reduced, and the cost is reduced. On the other hand, the stress on the prestressed meshing ribs is fixed in advance through the bolts on the cable chain shafts, so that the unstable stress state in the concrete layer pouring process can be reduced when the concrete is poured subsequently, and the quality of the cable chain framework combined plate formed subsequently is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of construction, in particular to a cable chain framework combined board. BACKGROUND

[0002] In the field of construction, floor slab structure is an important part of the building, as a part of the whole wall structure, the floor slab structure has an important influence on the whole wall structure, which requires the floor slab structure not only to have sufficient strength and to facilitate the line arrangement in the floor slab structure, to form a fresh air system and to install a hanging piece on the floor slab structure which needs to be formed when the interior of the building is decorated.

[0003] In the prior art, a plurality of steel bars in the floor slab structure are welded to form a steel bar net rack, and then concrete is poured to form the floor slab structure. There is no gap or channel between the various structures in the floor slab structure, which makes it difficult to arrange lines in the floor slab structure. At the same time, when arranging lines in the floor slab structure during secondary decoration, it is necessary to open a wiring channel on the floor slab structure again, which causes difficulty in construction. In addition, a large amount of manpower and material resources are needed in the process of steel bar net rack, which greatly increases the cost.

[0004] Therefore, how to reduce the welding amount of the floor slab structure during the formation process and facilitate decoration, wiring and the like in the floor slab structure is a technical problem to be solved at present. SUMMARY

[0005] The problem solved by the present application is to provide a cable chain framework combined board, which reduces the welding amount required during the formation process of the cable chain framework combined board, reduces the labor cost and labor cost, and the cable chain framework in the cable chain framework combined board can be prepared in advance in the factory, greatly reducing the work amount of on-site pouring at the construction site, which helps to shorten the construction period, so that the cable chain framework combined board has a wide range of use.

[0006] To solve the above problems, the present application provides a cable chain framework combined board, comprising: a cable chain framework, the cable chain framework comprising a plurality of cable chain shafts and a plurality of pre-stressed meshing steel bars fixed on the cable chain shafts, the cable chain shafts having a group of through holes, and the pre-stressed meshing steel bars being fixed in the group of through holes; a connecting piece connected to opposite two end portions of the cable chain shaft; and a fixed plate connected with the connecting piece.

[0007] Optionally, the connecting piece comprises a connecting portion and a locking portion, and the locking portion is connected to the end portion of the cable chain shaft.

[0008] Optionally, the cross-sectional shape of the connecting portion is one of a "cross" shape, a "Y" shape, a cylindrical shape, a prismatic shape and a "star" shape.

[0009] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0010] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0011] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0012] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0013] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0014] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0015] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0016] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0017] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0018] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0019] Optionally, the connecting part is further provided with a connecting hole in the cross section.

[0020] Compared with the prior art, the technical scheme of the present application has the following advantages:

[0021] The cable chain framework combined plate of the present application comprises a cable chain framework, the cable chain framework comprises a plurality of cable chain shafts and a plurality of prestressed meshing tendons fixed on the cable chain shafts, the cable chain shafts have a group of through holes, the prestressed meshing tendons are fixed in the group of through holes, a connecting piece is connected to the cable chain shafts, and a fixed plate is connected to the connecting piece. On the one hand, the plurality of prestressed meshing tendons are fixed through the cable chain shafts, so that the welding amount required for the connection between the prestressed meshing tendons is greatly reduced, the manpower and material resources required for welding are greatly reduced, and the cost is reduced. On the other hand, the stress on the prestressed meshing tendons is fixed in advance through the bolts on the cable chain shafts, so that the unstable state of stress during the pouring of the concrete layer is reduced during the subsequent pouring of the concrete, and the quality of the cable chain framework combined plate formed subsequently is improved. BRIEF DESCRIPTION OF DRAWINGS

[0022] Figure 1 It is a structural schematic view of the cable chain framework combined plate in the first embodiment of the present application.

[0023] Figure 2 It is a front view of Figure 1 .

[0024] Figure 3 It is a structural schematic view of the cable chain framework combined plate in the second embodiment of the present application.

[0025] Figure 4 It is a structural schematic view of the cable chain framework combined plate in the third embodiment of the present application.

[0026] Figure 5 It is a structural schematic view of the cable chain framework combined plate in the fourth embodiment of the present application.

[0027] Figure 6 It is a structural schematic view of the cable chain framework combined plate in the fifth embodiment of the present application.

[0028] Figure 7 It is a structural schematic view of the cable chain framework combined plate in the sixth embodiment of the present application.

[0029] Figure 8 It is a structural schematic view of the cable chain framework combined plate in the seventh embodiment of the present application.

[0030] Figure 9 It is a structural schematic view of the cable chain framework combined plate in the eighth embodiment of the present application.

[0031] Figure 10 It is a structural schematic view of the cable chain framework combined plate in the ninth embodiment of the present application.

[0032] Figure 11 It is a structural schematic view of the cable chain framework combined plate in the tenth embodiment of the present application.

[0033] Figure 12 Fig. 8 is a structural schematic diagram of a cable chain framework combined plate according to an eleventh embodiment of the present application;

[0034] Figure 13 Fig. 9 is a structural schematic diagram of a cable chain framework combined plate according to a twelfth embodiment of the present application;

[0035] Figure 14 Fig. 10 is a structural schematic diagram of a cable chain framework combined plate according to a thirteenth embodiment of the present application;

[0036] Figure 15 Fig. 11 is a structural schematic diagram of a connecting piece according to an embodiment of the present application;

[0037] Figure 16 Fig. 12 is a structural schematic diagram of a connecting piece according to another embodiment of the present application;

[0038] Figure 17 Fig. 13 is a structural schematic diagram of a cable chain shaft according to an embodiment of the present application;

[0039] Figure 18 Fig. 14 is a structural schematic diagram of a cable chain shaft according to another embodiment of the present application;

[0040] Figure 19 Fig. 15 is a structural schematic diagram of a cable chain framework according to an embodiment of the present application. DETAILED DESCRIPTION

[0041] At present, the manufacturing process of a floor plate in a construction site is generally to set up a foot support, set a formwork, connect a plurality of steels by welding to form a required steel net, assemble a laminated floor plate, and pour cement, etc.

[0042] The inventor finds through analysis that the traditional steel net forming process needs a large amount of welding work, greatly increases the labor cost, and is inconvenient for shortening the construction period. Meanwhile, the floor plate needs to be set up a support, be supported, and be transported to the construction site for secondary processing, which results in high labor cost and high transportation cost, and delays the construction period to a certain extent.

[0043] The inventor finds through research that the cable chain shaft with the through hole group and the pre-stressed netting steel fixed in the through hole group simplifies the forming process of the cable chain framework, reduces the welding amount of the pre-stressed netting steel in the forming process, greatly reduces the labor and material costs, and pre-applies tension to the netting steel to make the netting steel in a straightened state, and locks the pre-stress in the pre-stressed netting steel in advance, which can reduce the bubbles and other defects generated in the pouring process of the concrete layer, and improve the quality of the cable chain framework combined plate formed subsequently.

[0044] The inventor also finds that, by using the cable chain framework combination plate as the floor plate, the cable chain framework combination plate can be prepared in the factory in advance and then assembled on the site, which greatly reduces the manufacturing time of the cable chain framework combination plate and helps shorten the construction period; on the other hand, due to the existence of the prestressed meshing wire, when the cable chain framework combination plate bears the tension generated by the external load, the prestress in the concrete layer is first offset, and then the concrete layer is subjected to tension and cracks appear with the increase of the load, so the appearance and development of the cracks of the cable chain framework combination plate are delayed, and the safety factor of the cable chain framework combination plate is greatly improved.

[0045] The inventor finds that, in the forming process of the floor plate, a cable chain shaft is used, which includes a main body extending along a first direction, a through hole located on the main body and penetrating the main body along a second direction perpendicular to the first direction; the through hole is used to pass through the meshing wire to fix the meshing wire, so as to form a cable chain framework; the cable chain framework does not need additional welding work to weld the meshing wires together during the forming process, which greatly reduces the manpower and material resources required for welding and saves a lot of cost; on the other hand, the cable chain shaft is used to prepare the cable chain framework in the factory in advance, avoiding the construction of the meshing wire framework on the site, greatly shortening the construction period and having a wide range of applications.

[0046] In order to make the above-mentioned purposes, features and advantages of the present application more obvious and easy to understand, the specific embodiments of the present application will be described in detail below with reference to the accompanying drawings.

[0047] Please refer to Figure 1 and Figure 2 A cable chain framework combination plate 300 includes a cable chain framework 200, a connecting piece 301 and a fixed plate 304.

[0048] The cable chain framework 200 includes a plurality of cable chain shafts 100 and a plurality of prestressed meshing wires 201 fixed on the cable chain shafts 100, the cable chain shaft 100 has a through hole group 102, and the prestressed meshing wire 201 is fixed in the through hole group 102;

[0049] The connecting piece 301 is connected to the opposite two ends of the cable chain shaft 100.

[0050] The fixed plate 304 is connected with the connecting piece 301.

[0051] In the embodiment, on one hand, the several pre-stress meshing tendons 201 pass through the through hole group 102 and are fixed in the through hole group 102, the fixing mode of the pre-stress meshing tendon 201 adopts fixing through the cable chain shaft 100 instead of the traditional welding fixing, so that the welding amount required for fixing the pre-stress meshing tendons 201 is greatly reduced, the manpower and material resources required for welding are greatly reduced, and the cost is reduced; on the other hand, the stress on the pre-stress meshing tendon is fixed in advance through the bolt on the cable chain shaft, so that the unstable stress state of the concrete layer during pouring can be reduced, and the quality of the cable chain frame combined plate formed subsequently is improved.

[0052] In the embodiment, the connecting piece 301 includes a first connecting piece 302 and a second connecting piece 303, the shape of the connecting part of the first connecting piece 302 is different from the shape of the connecting part of the second connecting piece 303.

[0053] In the embodiment, the connecting part of the first connecting piece 302 is cylindrical, and the connecting part of the second connecting piece 303 is prismatic.

[0054] In the embodiment, the connecting piece 301 can be used as a connecting piece and can also be used as a component for fixing the pre-stress meshing tendon.

[0055] In other embodiments, the connecting piece 301 can be used as a connecting piece, and the component for fixing the pre-stress meshing tendon can adopt another structure.

[0056] In other embodiments, the shape of the connecting part of the first connecting piece is the same as the shape of the connecting part of the second connecting piece, and details are described in Figures 11 to 14 .

[0057] In the embodiment, the fixing plate 304 can be a metal plate, a non-metal plate, a concrete plate, and a decorative plate, and the fixing plate can be used as a formwork, a supporting plate, or a decorative plate, which can be selected according to actual design requirements.

[0058] In Figures 11 to 14 the structure, the shape of the connecting part of the first connecting piece and the shape of the connecting part of the second connecting piece both adopt a “cross” structure.

[0059] Please refer to Figure 15 , the connecting piece 301 includes a connecting part 307 and a locking part 308.

[0060] In the embodiment, the locking part 308 is connected to the end of the cable chain shaft 100, and the connecting part 307 is used to connect with the fixing plate 304.

[0061] In the embodiment, the cross-sectional shape of the connecting part 307 is a "cross" shape.

[0062] In other embodiments, the cross-sectional shape of the connecting part 307 is one of a "cross" shape, a "Y" shape, a cylindrical shape, a prism shape, and a "star" shape.

[0063] In the embodiment, the connecting hole is not provided on the cross-section of the connecting part.

[0064] In other embodiments, please refer to Figure 16 The connecting hole 309 can be provided on the cross-section of the connecting part 307 to facilitate the connection with the fixing plate 304.

[0065] In the embodiment, the connecting part 307 is threadedly connected or clamped between the connecting member 301 and the end of the cable shaft 100.

[0066] Please continue to refer to Figure 1 and Figure 2 The fixing plate 304 is a single-layer structure.

[0067] In the embodiment, the fixing plate 304 includes a first fixing plate 305 and a second fixing plate 306.

[0068] In the embodiment, the first fixing plate 305 is connected to the first connecting member 302 and covers the surface of the connecting part of the first connecting member, and the second fixing plate 306 is connected to the second connecting member 303 and the surface of the second fixing plate exposes the surface of the connecting part of the second connecting member.

[0069] In the embodiment, the prestressed meshed tendon 201 is a prestressed steel tendon.

[0070] In other embodiments, the prestressed meshed tendon 201 can also be one or a combination of a prestressed steel tendon, a prestressed glass fiber tendon, or a prestressed carbon fiber tendon.

[0071] The glass fiber tendon refers to a tendon made of glass fiber and having a sufficient strength to replace a steel tendon; the carbon fiber tendon refers to a tendon made of carbon fiber and having a sufficient strength to replace a steel tendon.

[0072] Please refer to Figure 17 The cable shaft 100 includes a main body part 101.

[0073] Figure 17 The difference between a and Figure 17 b is only whether the end of the main body part 101 is fixed with a twist.

[0074] The fixed torsion 105 is used for fixing the wire mesh tendon in the through hole group 102 in the subsequent process, which can fix the wire mesh tendon and lock the prestress on the wire mesh tendon.

[0075] The fixed torsion 105 can be removed and replaced by the connecting piece 301 in the subsequent use process, or can be directly used as the connecting piece 301, which can be selected according to the design requirement.

[0076] The main body part 101 extends along a first direction;

[0077] The through hole group 102 is located on the main body part 101 and penetrates the main body part along a second direction, and the second direction is perpendicular to the first direction.

[0078] In the embodiment, the first direction is set as the Y-axis direction.

[0079] In other embodiments, the first direction can also be the X-axis direction or the Z-axis direction.

[0080] In the embodiment, the second direction is set as the X-axis direction or the Z-axis direction or simultaneously includes the X-axis and the Z-axis.

[0081] In other embodiments, the second direction can also be any one of the X-axis, the Y-axis and the Z-axis or any two combinations.

[0082] In the embodiment, the main body part 101 is a hollow cylinder or a solid cylinder.

[0083] In the embodiment, a threaded structure (not shown in the figure) is arranged in the end of the main body part 101, which is used for connecting the fixed torsion 105 in the subsequent process.

[0084] In other embodiments, a buckle can also be arranged in the end of the main body part 101, which is used for clamping the fixed torsion 105 in the subsequent process.

[0085] In the embodiment, the fixed torsion 105 can be a bolt.

[0086] In other embodiments, the fixed torsion 105 can also be a component similar to the bolt, which can fix the wire mesh tendon and connect the main body part 101.

[0087] In the embodiment, the material of the main body part 101 is steel.

[0088] In other embodiments, the material of the main body part 101 can also be metal, alloy, etc.

[0089] In the embodiment, the through hole group 102 provides space for the wire mesh tendon to pass through.

[0090] In the embodiment, the shape of the main body 101 is cylindrical.

[0091] In other embodiments, the shape of the main body 101 can also be prismatic, including quadrangular prism or octagonal prism (see Figure 18 ), the number of sub-through holes is set according to actual needs.

[0092] In the embodiment, the number of the through hole groups 102 is two, and the number of the sub-through holes is four.

[0093] In the embodiment, when the main body 101 adopts a regular quadrangular prism or a regular octagonal prism, it is convenient for subsequent automation to wear the wire mesh into the through hole group 102, because when the main body 101 is placed neatly, the corresponding through hole group 102 is naturally aligned, and the alignment effect is better than that of the cylindrical main body 101. In the process of wearing the wire mesh, it is not easy to cause the bending of the wire mesh, and it is convenient to maintain the straightness of the wire mesh.

[0094] In the embodiment, the through hole group 102 is used to wear the wire mesh to fix the wire mesh, so as to form a cable chain framework. This cable chain framework does not need additional welding work to weld the wire mesh together during formation, which greatly reduces the manpower and material resources required for welding and saves a lot of cost. On the other hand, the cable chain shaft 100 realizes the pre-preparation of the cable chain framework in the factory, avoids the construction of the wire mesh framework on the construction site, greatly shortens the construction period, and has a wide range of use.

[0095] Please refer to Figure 17 , the through hole group 102 includes a first through hole 103 and a second through hole 104.

[0096] In the embodiment, the number of the through hole group 102 is two, and one through hole group 102 contains two sub-through holes, specifically including the first through hole 103 and the second through hole 104.

[0097] In other embodiments, the number of the through hole group 102 can also be one or three, which can be set according to the design needs, without special limitation.

[0098] In the embodiment, the first through hole 103 penetrates the main body 101 along the direction parallel to the second direction, the second through hole 104 penetrates the main body 101 along the direction parallel to the third direction, and the second direction and the third direction are non-parallel.

[0099] In the embodiment, the second direction and the third direction are arranged perpendicularly.

[0100] In other embodiments, the second direction and the third direction can also be arranged non-perpendicularly, as long as the second direction and the third direction are not perpendicular.

[0101] In the embodiment, the number of the sub-through holes is two.

[0102] In other embodiments, the number of the sub-through holes can also be one, three or other numbers, which can be set according to the design needs.

[0103] In the embodiment, by virtue of the perpendicular arrangement of the first through hole 103 and the second through hole 104, after the first through hole 103 and the second through hole 104 are penetrated by the wire mesh, the wire mesh also has a perpendicular relationship. On the one hand, the two through hole groups 102 increase the number of the wire mesh penetrated, which helps to reduce the welding workload between the wire meshes. On the other hand, the wire meshes penetrated into the first through hole 103 and the second through hole 104 form a point-to-point contact, which makes it easier to realize the process of the wire mesh in the pre-stressed wire mesh 201 by using the fixed twist to resist the wire mesh, and the fixation of the wire mesh is more effective.

[0104] In the embodiment, the first through hole 103 and the second through hole 104 are arranged adjacent to each other. After the wire mesh is penetrated into the first through hole 103 and the second through hole 104, the wire meshes can contact each other or have a small distance therebetween, which facilitates the fixation of the subsequent fixed twist.

[0105] In the embodiment, the shapes of the first through hole 103 and the second through hole 104 are circular. In other embodiments, the shapes of the first through hole 103 and the second through hole 104 can also be hexagonal or cylindrical, etc.

[0106] Please refer to Figure 19 A cable chain framework 200, comprising a cable chain shaft 100 and a pre-stressed wire mesh 201.

[0107] In the embodiment, the pre-stressed wire mesh 201 is penetrated into the through hole group 102.

[0108] In the embodiment, the cable chain shaft 100 is used to fix the prestressed wire mesh 201, reduce the welding amount required for forming the cable chain framework 200, simplify the forming process of the cable chain framework 200, greatly reduce the manpower and material resources consumed by welding, thereby helping to reduce the cost; on the other hand, the prestressed wire mesh 201 is fixed by the fixed torsion 105 on the cable chain shaft 100, so that the unstable stress state of the concrete layer during pouring can be reduced, and the quality of the cable chain framework composite plate formed subsequently can be improved.

[0109] In the embodiment, the prestressed wire mesh 201 includes the first prestressed wire mesh 202 inserted into the cable chain shaft 100.

[0110] In the embodiment, the cable chain framework 200 also has the second prestressed wire mesh 203 not inserted into the cable chain shaft 100.

[0111] In other embodiments, the cable chain framework 200 can also include only the first prestressed wire mesh 202 inserted into the cable chain shaft 100.

[0112] In the embodiment, the fixing of the first prestressed wire mesh 202 does not need the traditional welding process, greatly reduces the welding amount, reduces the required manpower and material resources, and reduces the cost.

[0113] In the embodiment, the two opposite ends of the main body part 101 are connected with the connecting piece 301.

[0114] In the embodiment, the connecting piece 301 can play the role of connecting the fixed plate 304 and fixing the prestressed wire mesh 201.

[0115] In the embodiment, the prestress of the prestressed wire mesh 201 is fixed by the fixed torsion 105 on the cable chain shaft 100; in other embodiments, a fixing piece can also be arranged around the through hole corresponding to the through hole group, the fixing piece fixes the prestressed wire mesh 201, and also plays the role of fixing the prestress on the prestressed wire mesh 201.

[0116] Second embodiment

[0117] The difference between the second embodiment and the first embodiment is that the second embodiment includes a concrete layer.

[0118] Please refer to Figure 3 , and the concrete layer 307 is also included.

[0119] The concrete layer 307 comprises the cable chain frame 200, and the fixed plates 304 are located on both sides of the concrete layer 307.

[0120] Third embodiment

[0121] Please refer to Figure 4 The difference between the third embodiment and the first embodiment is that the fixed plates adopt a combination of single-layer structure and laminated structure, that is, one side of the cable chain frame is connected with the fixed plate of single-layer structure, and the other side of the cable chain frame is connected with the fixed plate of laminated structure.

[0122] In this embodiment, the first fixed plate 305 adopts single-layer structure, and the second fixed plate 306 adopts laminated structure.

[0123] In this embodiment, the first fixed plate is connected with the first connecting member 302 and covers the surface of the connecting part of the first connecting member 302, and the second fixed plate 306 is connected with the second connecting member 303, one surface of which exposes the surface of the connecting part of the second connecting member, and one surface of which covers the surface of the connecting part of the second connecting member.

[0124] In this embodiment, the second fixed plate 306 of laminated structure has a hollow cavity 308 therebetween. Due to the existence of the hollow cavity 308, the hollow cavity 308 can not only play the function of sound insulation and noise reduction, but also can be used for arranging lines (including water pipes, gas pipes and circuit lines, etc.) in the hollow cavity. Thus, the damage to the wall surface during the arrangement of the lines can be reduced, and the interests of neighbors will not be damaged, so that the cable chain frame combination plate formed has a wider application range.

[0125] Fourth embodiment

[0126] Please refer to Figure 5 The difference between the fourth embodiment and the third embodiment is only that the fourth embodiment comprises a concrete layer 307.

[0127] In this embodiment, due to the existence of the hollow cavity 308, the hollow cavity 308 can not only play the function of sound insulation and noise reduction, but also can be used for arranging lines (including water pipes, gas pipes and circuit lines, etc.) in the hollow cavity. Thus, the damage to the wall surface during the arrangement of the lines can be reduced, and the interests of neighbors will not be damaged, so that the cable chain frame combination plate formed has a wider application range.

[0128] Fifth embodiment

[0129] A cable chain framework combination plate 300 comprises a cable chain framework 200, the cable chain framework 200 comprising a plurality of cable chain shafts 100 and a plurality of prestressed meshing wires 201 fixed on the cable chain shafts 100, the cable chain shafts 100 having a plurality of through holes 102, and the prestressed meshing wires 201 being fixed in the through holes 102; a connecting piece connected to opposite ends of the cable chain shafts 100; and a fixed plate 304 connected to the connecting piece 301.

[0130] In the embodiment, the connecting piece comprises a third connecting piece 309 and a fourth connecting piece 310, the connecting part of the third connecting piece 309 having a cylindrical cross section, and the connecting part of the fourth connecting piece 310 having a cross section in the shape of a cross.

[0131] In the embodiment, the cross section of the connecting part of the fourth connecting piece 310 is in the shape of a cross, so as to increase the connecting area between the connecting piece and the fixed plate 304, enhance the connecting stability of the fixed plate, and thus help to enhance the strength and stability of the cable chain framework combination plate.

[0132] In the embodiment, the fixed plate 304 comprises a fifth fixed plate 311 and a sixth fixed plate 312, the fifth fixed plate 311 being connected to the third connecting piece 309 and exposing the surface of the connecting part of the third connecting piece, and the fifth fixed plate 311 being tightly attached to the cable chain framework 200.

[0133] In the embodiment, the sixth fixed plate 312 is connected to the fourth connecting piece 310 and covers one surface of the connecting part of the fourth connecting piece 310, and exposes the surface of the connecting part of the fourth connecting piece 310.

[0134] In the embodiment, the sixth fixed plate 312 has a laminated structure.

[0135] Sixth Embodiment

[0136] Please refer to Figure 7 The sixth embodiment differs from the fifth embodiment only in that it further comprises a concrete layer 307 wrapping the cable chain framework.

[0137] Seventh Embodiment

[0138] Please refer to Figure 8 The seventh embodiment differs from the sixth embodiment only in that it further comprises a filling layer 313.

[0139] The filling layer 313 is filled between the laminated sixth fixed plates 312.

[0140] In the embodiment, the filling layer 313 can be a heat insulation layer, a fireproof layer, etc.

[0141] Eighth Embodiment

[0142] Referring to Figure 9 The eighth embodiment differs from the seventh embodiment only in that the fifth fixing plate 311 is connected to the third connecting member 309 and covers the surface of the connecting portion of the third connecting member 311, and does not have a concrete layer.

[0143] Ninth Embodiment

[0144] Referring to Figure 10 The ninth embodiment differs from the eighth embodiment only in that it has a concrete layer 307.

[0145] Tenth Embodiment

[0146] Referring to Figure 11 The tenth embodiment differs from the fifth embodiment in that the connecting member 301 has the same cross-sectional shape.

[0147] The connecting portion of the connecting member 301 has a cross-sectional shape of a "cross".

[0148] The fixing plate 304 is connected to the connecting member 301 so as to cover the surface of the connecting portion of the connecting member on one side and expose the surface of the connecting portion of the connecting member on the other side.

[0149] The fixing plate 304 has a laminated structure, and the fixing plates of the laminated structure have a hollow cavity 308 therebetween.

[0150] Eleventh Embodiment

[0151] Referring to Figure 12 The eleventh embodiment differs from the tenth embodiment in that the eleventh embodiment further includes a concrete layer.

[0152] Twelfth Embodiment

[0153] Referring to Figure 13 The twelfth embodiment differs from the eleventh embodiment in that the twelfth embodiment has a filling layer 313 filled in the hollow cavity.

[0154] Thirteenth Embodiment

[0155] Referring to Figure 14 The thirteenth embodiment differs from the twelfth embodiment in that the thirteenth embodiment has a filling layer 313 filled in both of the hollow cavities.

[0156] Although the present application has been disclosed with reference to the above embodiments, the application is not limited to the above embodiments. It will be apparent to those skilled in the art that various modifications and changes can be made thereto without departing from the spirit and scope of the application. The scope of the application should be limited only by the appended claims.

Claims

1. A cable chain truss composite panel, characterized by, include: A cable chain frame includes several cable chain shafts and several prestressed mesh reinforcements fixed on the cable chain shafts. The cable chain shafts have a group of through holes, and the prestressed mesh reinforcements are fixed in the group of through holes. The cable chain shafts include a main body, and the end of the main body has a fixing torque. The fixing torque abuts against the mesh reinforcements so that the mesh reinforcements are positioned within the prestressed mesh reinforcements. The fixing torque is then removed. A connector is attached to the two opposite ends of the chain shaft; A fixing plate is connected to the connecting member, which serves both to connect the fixing plate and to fix the prestressed mesh reinforcement. A concrete layer encloses the cable chain frame, with fixing plates located on both sides of the concrete layer, and the cable chain frame composite plate serving as a floor slab.

2. The lacing-architecture panel of claim 1, wherein, The connector includes a connecting part and a locking part, the locking part being connected to the end of the chain shaft.

3. The lacing-architecture panel of claim 2, wherein, The cross-sectional shape of the connecting part is one of the following: cross-shaped, Y-shaped, cylindrical, prism-shaped, and star-shaped.

4. The lacing-architecture panel of claim 2, wherein, The cross-section of the connecting part is also provided with a connecting hole.

5. The lacing-architecture composite panel of claim 1, wherein, The connector is threaded or snapped to the end of the chain shaft.

6. The lacing-architecture composite panel of claim 1, wherein, The chain shaft includes a main body that extends along a first direction; The through-hole group is located on the main body and extends through the main body along a second direction, which is perpendicular to the first direction.

7. The lacing-architecture composite panel of claim 6, wherein, The via group includes at least one sub-via.

8. The lacing-architecture composite panel of claim 7, wherein, The number of sub-through holes can be one, two, or more.

9. The lacing-architecture composite panel of claim 8, wherein, When the number of sub-through holes is two, the sub-through holes include a first through hole that penetrates the main body along a direction parallel to the second direction and a second through hole that penetrates the main body along a direction parallel to the third direction, wherein the second direction and the third direction are not parallel.

10. The lacing-architecture composite panel of claim 6, wherein, The number of through-hole groups is one or more. When the number of through-hole groups is more than one, the multiple through-hole groups are distributed at equal intervals along the first direction on the main body.

11. The lacing-architecture composite panel of claim 6, wherein, The main body is cylindrical or prismatic.

12. The lacing-architecture composite panel of claim 1, wherein, The concrete layer surface exposes the end of the chain shaft.

13. The lacing-architecture composite panel of claim 1, wherein, The fixing plate may have a single-layer structure or a multi-layer structure.

14. The lacing-architecture composite panel of claim 1, wherein, It also includes a filler layer located between the fixing plate on one side and the cable frame.

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