Floor heating module bottom plate for modular integrated building
By using a combination of ribs and underfloor heating panels in the underfloor heating module base plate of modular integrated buildings, the structural strength of the base plate is enhanced, the problem of increased base plate thickness and weight is solved, and efficient underfloor heating construction is achieved.
Patent Information
- Application Number
- CN202422982275.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2034-12-04
AI Technical Summary
In existing technologies, the underfloor heating module base plate of modular integrated buildings cannot guarantee structural strength while reducing the thickness of the main base plate, resulting in deflection or cracking of the base plate, and increasing the weight of the box and the difficulty of construction.
The design features horizontally spaced ribs on the main body of the base plate. Combined with the underfloor heating panels and pipes, the ribs and underfloor heating panels are hidden under the floor surface. The ribs enhance the strength of the base plate and reduce its thickness. Steel mesh and steel sleeves are used to strengthen the connection, allowing for flexible and diverse layout of the underfloor heating pipes.
It effectively reduced the thickness and weight of the base plate, increased the net height of the room, solved the problems of base plate deflection and cracking, and ensured the construction quality and efficiency of the underfloor heating module.
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Figure CN223677850U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of modular integrated building, especially relates to a floor heating module bottom plate for modular integrated building. BACKGROUND
[0002] The concrete modular integrated building takes a standard module as a basic unit, completes the production of the module main body, the installation of the sanitary appliance, the mechanical and electrical pipeline and the integrated installation of decoration in a factory, only carries out the assembly of the module and the connection of the pipeline between the module units on the ground plot.
[0003] In the prior art, the subsequent structural bottom pocket of the hexahedral module box is greater than the non-modular ground structure thickness (dry floor heating plate thickness) in the combined construction process with the floor heating; first, the room's part net height is sacrificed while meeting the integration; second, to meet the demand of net height, the thickness of the bottom plate body needs to be reduced, which affects the structural strength of the bottom plate body, and after the floor heating and the floor are integrated, the bottom plate body will appear the phenomenon of sagging or cracking; third, the use of the module box with floor heating increases the weight of the box, increases the hoisting difficulty of the box and increases the construction difficulty.
[0004] Therefore, there is an urgent need for a floor heating module bottom plate for modular integrated building which can reduce the thickness of the bottom plate body and ensure the structural strength. UTILITY MODEL CONTENT
[0005] (I) Technical problem to be solved
[0006] In view of the above-mentioned shortcomings and deficiencies of the prior art, the utility model provides a floor heating module bottom plate for modular integrated building, which solves the technical problem that the prior art cannot reduce the thickness of the bottom plate body and ensure the structural strength.
[0007] (II) Technical scheme
[0008] In order to achieve the above-mentioned purpose, the main technical scheme adopted by the utility model includes:
[0009] The utility model discloses an embodiment provides a floor heating module bottom plate for modular integrated building, including bottom plate main part, floor heating plate, floor heating pipeline and ground surface layer, the upper surface of bottom plate main part is equipped with a plurality of rib strip in horizontal interval, and the floor heating plate is laid on the bottom plate main part, the upper surface of floor heating plate is provided with pipeline groove, and the floor heating pipeline is laid in the pipeline groove, and the ground surface layer is bonded to the upper surface of floor heating plate, and the bottom plate main part, floor heating plate, floor heating pipeline, rib strip all hide below ground surface layer.
[0010] Optionally, the floor heating module bottom plate is for dry floor heating, and the floor heating module bottom plate is composed of a bottom plate main body, a floor heating plate, a floor heating pipeline, a ground surface layer and a plurality of rib strips.
[0011] Optionally, the thickness of the rib strip and the floor heating plate is within the range of 30-50mm, and the thickness of the rib strip is less than or equal to the thickness of the floor heating plate; the thickness of the bottom plate main body is within the range of 30-40mm.
[0012] Optionally, when the thickness of the rib strip is equal to the thickness of the floor heating plate: the area of the bottom plate main body other than the rib strip is laid with the floor heating plate, and the ground surface layer is bonded above the floor heating plate and the rib strip; when the thickness of the rib strip is less than the thickness of the floor heating plate: the lower surface of the floor heating plate is provided with a containing groove matched with the rib strip, and the floor heating plate is laid on the area of the bottom plate main body other than the rib strip and on the rib strip.
[0013] Optionally, when the thickness of the rib strip is equal to the thickness of the floor heating plate, the floor heating pipeline is arranged in one of the following ways: way one and way two; when the thickness of the rib strip is less than the thickness of the floor heating plate, the floor heating pipeline is arranged in one of the following ways: way two and way three; way one: a steel sleeve is embedded on the rib strip and communicates with the pipeline grooves on both sides of the rib strip, and the floor heating pipeline is arranged in the steel sleeve; way two: one end of the rib strip is provided with a spacing area with a width of 400-500mm from the edge of the bottom plate main body, the corresponding floor heating plate is laid in the spacing area, and the pipeline grooves at both ends of the floor heating plate in the spacing area communicate with the pipeline grooves of the floor heating plate on both sides of the rib strip, and the floor heating pipeline passes through the spacing area; way three: a pipeline channel is arranged on the rib strip and communicates with the pipeline grooves on both sides of the rib strip, the top of the pipeline channel is open, and the floor heating pipeline is arranged in the pipeline channel.
[0014] Optionally, the steel sleeve is a DN25 floor heating steel sleeve.
[0015] Optionally, the thickness of the rib strip and the floor heating plate is 30mm; the thickness of the bottom plate main body is 40mm.
[0016] Optionally, a steel mesh is pre-buried in the bottom plate main body; a plurality of through-length steels are pre-buried in the rib strip along the extension direction of the rib strip, the steels are fixedly connected with the steel mesh, and the bottom plate main body is fixedly connected with the rib strip.
[0017] Optionally, the spacing between the adjacent two rib strips is within the range of 500-1000mm, and the width of the rib strip is within the range of 50-100mm.
[0018] Optionally, the pipe laying mode of the floor heating pipeline is reciprocating.
[0019] (III) ADVANTAGEOUS EFFECTS
[0020] The present application has the following advantages:
[0021] The floor heating module bottom plate for modular integrated building of the present application comprises a bottom plate body, a floor heating plate, a floor heating pipeline and a ground surface layer. The upper surface of the bottom plate body is provided with a plurality of rib strips transversely and at intervals, and the floor heating plate is laid on the bottom plate body. The upper surface of the floor heating plate is provided with a pipeline groove, and the floor heating pipeline is laid in the pipeline groove. The ground surface layer is bonded to the upper surface of the floor heating plate. The bottom plate body, the floor heating plate, the floor heating pipeline and the rib strips are all hidden under the ground surface layer. Compared with the prior art, the present application can reduce the thickness of the original ground surface by using the combination of a plurality of rib strips and floor heating, effectively reduce the thickness of the bottom plate body under the condition of effectively controlling the deflection of the bottom plate body, reduce the weight of the module box, save materials, increase the net height of the room, solve the problem of deflection and cracking of the original ground surface bottom plate body, and solve the problem of large layer height occupied by the floor heating integrated construction in modular integrated building. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1 FIG. 1 is a top view of embodiment 1 of the floor heating module bottom plate for modular integrated building of the present application, wherein the ground surface layer is not shown for clarity of structure;
[0023] Figure 2 FIG. 2 is a sectional view of the floor heating module bottom plate for modular integrated building of the present application along the extension direction of the rib strip; Figure 1 FIG. 3 is a sectional view of the floor heating module bottom plate for modular integrated building of the present application along the extension direction of the rib strip;
[0024] Figure 3 FIG. 4 is a top view of embodiment 2 of the floor heating module bottom plate for modular integrated building of the present application, wherein the ground surface layer is not shown for clarity of structure;
[0025] Figure 4 FIG. 5 is a sectional view of the floor heating module bottom plate for modular integrated building of the present application along the extension direction of the rib strip; Figure 3 FIG. 6 is a sectional view of the floor heating module bottom plate for modular integrated building of the present application along the extension direction of the rib strip;
[0026] Figure 5 FIG. 7 is a sectional view of embodiment 3 of the floor heating module bottom plate for modular integrated building of the present application along the extension direction of the rib strip;
[0027] Figure 6The embodiment 4 of the floor heating module bottom plate for modular integrated building is shown in the top view.
[0028] Figure 7 For Figure 6 The sectional view of the floor heating module bottom plate for modular integrated building along the extension direction of the rib is shown.
[0029] Reference Signs List
[0030] 1: bottom plate body; 2: floor heating plate; 3: floor heating pipeline; 4: ground surface layer; 5: rib; 6: steel sleeve; 7: spacing area. DETAILED DESCRIPTION
[0031] In order to better explain the utility model, so as to facilitate understanding, the utility model is described in detail below by specific embodiments combined with the drawings.
[0032] Embodiment 1:
[0033] With reference to Figures 1 to 2 , the embodiment provides a floor heating module bottom plate for modular integrated building. The floor heating module bottom plate of the embodiment is composed of a bottom plate body 1, a floor heating plate 2, a floor heating pipeline 3, a ground surface layer 4 and a plurality of ribs 5, which are described in detail as follows.
[0034] The upper surface of the bottom plate body 1 in the embodiment is transversely spaced apart by a plurality of ribs 5, the floor heating plate 2 is laid on the bottom plate body 1, and the plurality of ribs 5 are arranged transversely along the bottom plate body 1. The ribs 5 are arranged to reduce the height of the original bottom plate body 1 while enhancing the strength of the bottom plate body 1. The plurality of ribs 5 weaken the downward deflection of the bottom plate body 1, and the floor heating plate 2 is laid on the bottom plate body 1. The recesses are formed between adjacent ribs 5. The laying of the floor heating plate 2 in the recesses can effectively utilize the space of the height of the recesses. The floor heating plate 2 has the characteristics of light weight, high compressive strength and good heat preservation effect. The floor heating plate 2 is composed of a heat preservation layer and a uniform heating aluminum plate. The main function of the heat preservation layer is to reduce the downward transmission of heat and prevent heat loss, thereby improving the energy efficiency of the floor heating system. The main function of the uniform heating aluminum plate is to quickly and uniformly conduct heat, so that the ground temperature is more uniform, thereby improving the comfort of the floor heating system. The combination of the heat preservation layer and the uniform heating aluminum plate can reduce heat loss, improve energy efficiency and reduce energy consumption. The floor heating plate 2 can be laid in the recesses to form a plane with the ribs 5, or the floor heating plate 2 can be laid on the ribs 5 to form a plane with the floor heating plate 2 laid in the recesses. The floor heating structure and the recess structure can effectively reduce the thickness of the floor heating floor module, and therefore the weight of the floor heating module bottom plate can be significantly reduced.
[0035] In order to enhance the strength of the floor body 1 and the rib 5, a steel mesh is embedded in the floor body 1. A plurality of longitudinal steel bars are embedded in the rib 5 along the extension direction of the rib 5, and the steel bars are fixedly connected with the steel mesh. The floor body 1 is fixedly connected with the rib 5. The steel mesh can enhance the strength and integrity of the floor body 1, the plurality of longitudinal steel bars embedded in the rib 5 along the extension direction of the rib 5 can enhance the rigidity of the rib 5 and reduce the deflection of the rib 5, and the fixed connection between the floor body 1 and the rib 5 can be achieved by pouring concrete in one piece, or by welding, cement mortar or concrete bonding after the rib 5 is formed, which can enhance the deformation resistance of the floor body 1 and the rigidity of the floor body 1. The fixed connection between the steel bars and the steel mesh includes but is not limited to welding, riveting and bonding.
[0036] Moreover, the distance between the two adjacent ribs 5 is in the range of 500-1000mm, and the width of the rib 5 is in the range of 50-100mm. The rib 5 distance of 500-1000mm can effectively enhance the strength of the floor body 1, and also will not interfere with the laying of the floor heating plate 2. The rib 5 width of 50-100mm can enhance the strength of the floor body 1 while reducing the load of the floor body 1.
[0037] The above structure design can reduce the thickness of the floor heating plate 2. In the embodiment, the thickness of the rib 5 and the floor heating plate 2 is in the range of 30-50mm. The thickness of the floor body 1 is in the range of 30-40mm. Compared with the original 60mm thick floor body 1 plus dry floor heating method, it is reduced to 30-40mm plus dry floor heating method.
[0038] Preferably, the thickness of the embodiment can reach 30mm for the rib 5 and the floor heating plate 2, and 40mm for the floor body, which reduces the thickness of the 20mm thick floor body 1 while maintaining the strength of the floor body 1.
[0039] The upper surface of the floor heating plate 2 in the embodiment is provided with a pipeline groove, and the floor heating pipeline 3 is laid in the pipeline groove. The pipeline groove on the upper surface of the floor heating plate 2 can effectively place the floor heating pipeline 3. The types of the floor heating plate 2 are different, and the shapes of the pipeline grooves are different, but the shape of the pipeline groove is still surplus compared with the floor heating pipeline 3, which is convenient for increasing or reducing the density of the floor heating pipeline 3 in the room, or different shapes of the room and the arrangement of the floor heating pipeline 3.
[0040] Since there is no rib 5 in normal floor heating, the rib 5 is arranged in the embodiment and the thickness of the rib 5 is equal to the thickness of the floor heating plate 2, the area of the floor body 1 except the rib 5 is paved with the floor heating plate 2, and the ground surface layer 4 is bonded on the top of the floor heating plate 2 and the rib 5. When the thickness of the rib 5 is equal to the thickness of the floor heating plate 2, the floor heating plate 2 is filled in the groove formed by the adjacent ribs 5 during paving the floor heating plate 2, and the floor heating plate 2 and the rib 5 form a plane, and at this time, the bonding of the ground surface layer 4 is directly bonded on the plane formed by the floor heating plate 2 and the rib 5.
[0041] Therefore, when the floor heating pipeline 3 passes through the rib 5, the floor heating pipeline 3 is arranged in the embodiment as follows: referring to Figure 1 and Figure 2 , the steel sleeve 6 is embedded on the rib 5 and communicates with the pipeline grooves on both sides, and the floor heating pipeline 3 is arranged in the steel sleeve 6. The steel sleeve 6 is pre-buried on the rib 5, the pipeline grooves on both sides of the steel sleeve 6 are communicated, the floor heating pipeline 3 passes through the steel sleeve 6 and passes through the rib 5, and the floor heating module and the rib 5 form an integral whole, which not only ensures the function of the floor heating module, but also ensures the strength of the floor body 1, and the arrangement of the steel sleeve 6 can enhance the strength of the through hole of the floor heating pipeline 3 passing through the rib 5.
[0042] Preferably, the steel sleeve 6 is a DN25 floor heating steel sleeve, which is matched with the thickness of the rib 5 and the floor heating plate 2 and is convenient for the passing of the floor heating pipeline 3.
[0043] In order to achieve better heating effect in the room, the floor heating pipeline 3 is arranged in a reciprocating type, and the arrangement of the floor heating pipeline 3 can determine the heating effect in the room to a certain extent. The reciprocating arrangement can be regarded as a kind of uniform arrangement, which can make the temperature in the room uniform and the temperature rising speed faster.
[0044] The ground surface layer 4 in the embodiment is a structural layer on the floor heating module, which is selected according to the needs and can be ceramic tiles, wooden floor or other structures according to the needs. According to the decoration preference, different types of ground surface layers 4 can be selected in each embodiment, but the fixed position of the ground surface layer 4 in each embodiment is the same, and the ground surface layer 4 directly covers the floor heating pipeline 3 to absorb the heat on the floor heating pipeline 3 faster and then radiate to the indoor.
[0045] In the embodiment, the floor heating module bottom plate is used for dry floor heating and is composed of the floor body 1, the floor heating plate 2, the floor heating pipeline 3, the ground surface layer 4 and a plurality of ribs 5 (with steel sleeves 6). Unlike other methods, the rib 5 in the embodiment is more suitable for dry floor heating, and the floor heating module bottom plate composed of the floor body 1, the floor heating plate 2, the floor heating pipeline 3, the ground surface layer 4 and a plurality of ribs 5 does not interfere with the normal function of dry floor heating.
[0046] In summary, compared with the prior art, the utility model discloses a plurality of rib 5 and the mode of combination of floor heating, can reduce the thickness of the original ground practice, effectively reduce the thickness of the module bottom plate 1 under the condition of effectively controlling the deflection of the bottom plate main body 1, reduce the weight of the module box, save the material, increase the room net height, solve the problem of the deflection and cracking of the bottom plate main body 1 of the original ground practice, also solve the problem of large floor height occupied by the integrated construction of modularization of floor heating.
[0047] Embodiment 2:
[0048] The difference between this embodiment and embodiment 1 is that the setting form of rib 5 is different, and because of the form of rib 5 in this embodiment, steel pipe sleeve 6 is no longer needed, and therefore, when floor heating pipeline 3 passes through rib 5, the specific laying mode of floor heating pipeline 3 in this embodiment is as follows:
[0049] Reference Figure 3 And Figure 4 One end of rib 5 and the edge of bottom plate main body 1 have a spacing area 7 with a width of 400-500mm, corresponding floor heating plate 2 is laid in spacing area 7, and the pipeline groove of floor heating plate 2 in spacing area 7 is connected to the pipeline groove of floor heating plate 2 on both sides of rib 5, and floor heating pipeline 3 passes through spacing area 7. Rib 5 is provided with a spacing area 7 with a width of 400-500mm from the edge of bottom plate main body 1 in the area where floor heating pipeline 3 passes, which allows floor heating pipeline 3 to be laid in the spacing area 7, and the pipeline groove of floor heating plate 2 in spacing area 7 is connected to the pipeline groove of floor heating plate 2 on both sides of rib 5, and floor heating plate 2 is laid in the groove formed between adjacent rib 5 and spacing area 7, and floor heating plate 2 in the groove and spacing area 7 can be laid integrally or separately, and ground surface layer 4 is adhered and laid on the upper surface of floor heating plate 2 and rib 5.
[0050] Embodiment 3:
[0051] The difference between this embodiment and embodiment 2 and embodiment 1 is that the thickness of rib 5 is less than the thickness of floor heating plate 2, and the laying mode of floor heating pipeline 3 is as follows:
[0052] When the thickness of the rib 5 is less than the thickness of the floor heating plate 2, the lower surface of the floor heating plate 2 is provided with accommodating grooves adapted to the rib 5, and the floor heating plate 2 is laid on the area of the floor body 1 except the rib 5 and on the rib 5. When the thickness of the rib 5 is less than the thickness of the floor heating plate 2, the floor heating plate 2 needs to cover the floor body 1 and the rib 5 as a whole when laying the floor heating plate 2. Of course, the floor heating plate 2 can be a whole, and the lower surface of the floor heating plate 2 is provided with accommodating grooves adapted to the rib 5, so that the integrity of the floor heating plate 2 can be maintained, and the heat retention effect of the floor heating can be enhanced. The floor heating plate 2 can also be divided into parts, and the corresponding floor heating plate 2 is filled in the groove formed by each adjacent rib 5. The floor heating plate 2 is laid on the rib 5 after being cut and processed, which brings a certain convenience to the construction process. At this time, the ground surface layer 4 is adhered and laid on the upper surface of the floor heating plate 2.
[0053] Reference Figure 5 One end of the rib 5 and the edge of the floor body 1 have a spacing area 7 with a width of 400-500 mm. The corresponding floor heating plate 2 is laid in the spacing area 7, and the pipeline grooves at both ends of the floor heating plate 2 in the spacing area 7 are communicated with the pipeline grooves of the floor heating plate 2 on both sides of the rib 5. The floor heating pipeline 3 passes through the spacing area 7. The floor heating plate 2 is laid in the spacing area 7, on the rib 5, and in the groove formed between adjacent ribs 5. The floor heating plate 2 forms a plane as a whole. The floor heating plate 2 in the spacing area 7, on the rib 5, and in the groove formed between adjacent ribs 5 can be a whole, or can be divided into three parts after being processed. It can also be combined in pairs among the floor heating plate 2 in the spacing area 7, on the rib 5, and in the groove, and laid in two parts. In short, three laying methods can be used jointly, or two or one of them can be used alone.
[0054] Example 4
[0055] The difference between this embodiment and example 3 is that the form of the rib 5 is different. In example 1, the rib 5 is arranged transversely along the floor body 1, and there is no spacing space 7. Therefore, when the floor heating pipeline 3 passes through the rib 5, the floor heating pipeline 3 is arranged as follows:
[0056] Reference Figure 6 and Figure 7The pipeline channel is open at the top, and the floor heating pipeline 3 is arranged in the pipeline channel. The floor heating plate 2 is arranged in the groove formed between the adjacent ribs 5 and on the ribs 5. The floor heating plate 2 can be arranged in the corresponding accommodating groove in the area of the ribs 5, the floor heating plate 2 is directly laid in whole, or the floor heating plate 2 is processed, the floor heating plate 2 is arranged in the groove between the ribs 5, and then the floor heating plate 2 is arranged on the ribs 5 and in the interval area 7. In this way, the error of the ribs 5 on site or the error of the ribs 5 on the floor heating plate 2 processing is not limited, the construction is facilitated, and the two methods can be simultaneously used. Part of the floor heating plate 2 is laid in whole and part of the floor heating plate 2 is arranged on the ribs 5, and the two are mutually supplemented and timely adjusted.
[0057] In the description of the present application, it should be understood that the terms "first", "second" are used only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features limited by "first", "second" can be explicitly or implicitly included one or more of the features. In the description of the present application, the meaning of "multiple" is two or more than two, unless otherwise specifically limited.
[0058] In the present application, unless otherwise specifically defined and limited, the terms "installation", "connection", "connection", "fixing" and the like should be understood in a broad sense, for example, it can be fixed connection, or detachable connection, or integrated; it can be mechanical connection, or electrical connection; it can be directly connected, or indirectly connected through intermediate medium; it can be the internal communication of two elements or the interaction relationship of two elements. For ordinary skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0059] In the present application, unless otherwise specifically defined and limited, the first feature is "on" or "under" the second feature, which can be directly contacted by the first and second features, or indirectly contacted by the first and second features through intermediate medium. Moreover, the first feature is "above", "above" and "above" the second feature, which can be directly above or obliquely above the second feature, or only indicates that the horizontal height of the first feature is higher than that of the second feature. The first feature is "below", "below" and "below" the second feature, which can be directly below or obliquely below the second feature, or only indicates that the horizontal height of the first feature is lower than that of the second feature.
[0060] In the description of the present specification, the description of the terms "one embodiment", "some embodiments", "embodiment", "example", "specific example" or "some examples" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any appropriate manner in any one or more embodiments or examples. Furthermore, the person skilled in the art can combine and combine the different embodiments or examples described in the present specification and the features of the different embodiments or examples without contradiction.
[0061] Although the embodiments of the present application have been shown and described above, it is understood that the above embodiments are exemplary and cannot be understood as limiting the present application, and the person skilled in the art can modify, modify, replace and modify the above embodiments within the scope of the present application.
Claims
1. A floor heating module base plate for modular integrated buildings, characterized in that, It comprises a floor body (1), a floor heating plate (2), a floor heating pipeline (3) and a floor surface layer (4); The upper surface of the floor body (1) is provided with a plurality of rib strips (5) in transverse intervals, and the floor heating plate (2) is laid on the floor body (1); The upper surface of the floor heating plate (2) is provided with a pipeline groove, and the floor heating pipeline (3) is laid in the pipeline groove; The floor surface layer (4) is bonded to the upper surface of the floor heating plate (2); The floor body (1), the floor heating plate (2), the floor heating pipeline (3) and the rib strip (5) are hidden under the floor surface layer (4).
2. The floor heating module floor for modular integrated buildings according to claim 1, wherein The floor heating module floor is for dry floor heating, and the floor heating module floor is composed of the floor body (1), the floor heating plate (2), the floor heating pipeline (3), the floor surface layer (4) and a plurality of rib strips (5).
3. The floor heating module floor for modular integrated buildings according to claim 1, wherein The thickness of the rib strip (5) and the floor heating plate (2) is in the range of 30-50 mm, and the thickness of the rib strip (5) is less than or equal to the thickness of the floor heating plate (2); The thickness of the floor body (1) is in the range of 30-40 mm.
4. The floor heating module floor for modular integrated buildings according to claim 3, wherein When the thickness of the rib strip (5) is equal to the thickness of the floor heating plate (2): The floor heating plate (2) is laid on the floor body (1) except the rib strip (5), and the floor surface layer (4) is bonded above the floor heating plate (2) and the rib strip (5); When the thickness of the rib strip (5) is less than the thickness of the floor heating plate (2): The lower surface of the floor heating plate (2) is provided with a containing groove matched with the rib strip (5), and the floor heating plate (2) is laid on the floor body (1) except the rib strip (5) and on the rib strip (5).
5. The floor heating module floor for modular integrated buildings according to claim 4, wherein When the thickness of the rib strip (5) is equal to the thickness of the floor heating plate (2), the laying mode of the floor heating pipeline (3) is one of the following mode one and mode two; When the thickness of the rib strip (5) is less than the thickness of the floor heating plate (2), the laying mode of the floor heating pipeline (3) is one of the following mode two and mode three; Mode one: A steel sleeve (6) is embedded on the rib strip (5) and connected with the pipeline grooves on both sides of the rib strip (5), and the floor heating pipeline (3) is arranged in the steel sleeve (6); Mode two: One end of the rib strip (5) and the edge of the floor body (1) have a spacing area (7) with a width of 400-500 mm, the corresponding floor heating plate (2) is laid in the spacing area (7), and the pipeline grooves at both ends of the floor heating plate (2) in the spacing area (7) are connected with the pipeline grooves of the floor heating plate (2) on both sides of the rib strip (5), and the floor heating pipeline (3) passes through the spacing area (7); Mode three: The rib (5) is provided with a pipeline channel which communicates with the pipeline grooves on both sides of the rib (5), the pipeline channel is open at the top, and the floor heating pipeline (3) is arranged in the pipeline channel.
6. The floor heating module base plate for modular integrated buildings according to claim 5, wherein the thickness of the rib (5) and the floor heating plate (2) is 30 mm.
7. The floor heating module base plate for modular integrated buildings according to claim 5, wherein the thickness of the base plate body (1) is 40 mm.
8. The floor heating module base plate for modular integrated buildings according to claim 1, wherein a steel mesh is embedded in the base plate body (1).
9. The floor heating module base plate for modular integrated buildings according to claim 1, wherein the distance between two adjacent ribs (5) is in the range of 500-1000 mm, and the width of the rib (5) is in the range of 50-100 mm.
10. The floor heating module base plate for modular integrated buildings according to claim 1, wherein the floor heating pipeline (3) is arranged in a reciprocating manner.