An overhead deck module and a prefabricated ground overhead mechatronic integrated module system

By using elevated deck modules to set up cavities and passages in the building, the problem of air ducts occupying ceiling space was solved, and convenient layout of heating and ventilation ducts, water supply and drainage and electrical pipes was realized, improving indoor comfort and construction efficiency.

CN122485394APending Publication Date: 2026-07-31HEYI SMART TECH (SHANGHAI) CO LTD +1
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Patent Information

Application Number
CN202610653351.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-05-12
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing building HVAC systems have ductwork installations that occupy ceiling space, leading to problems such as noise, complex equipment, inconvenient maintenance, and uneven heating and cooling. Furthermore, the ground-level elevated design is complex and difficult to integrate with electromechanical systems.

Method used

It adopts an elevated deck module with internal cavities and channels for laying heating and ventilation pipes, water supply and drainage pipes and electrical pipes. It also has the function of electromechanical system integration. Modular splicing and connection are achieved through support components and positioning slots.

Benefits of technology

It effectively solves the problem of ceiling space occupation, simplifies construction, enables convenient layout of heating and ventilation pipes, water supply and drainage and electrical pipes, improves indoor comfort and construction efficiency, and adapts to the ventilation needs of different rooms.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention provides an elevated deck module and a prefabricated ground-mounted electromechanical integrated module system, relating to the fields of building heating, ventilation, air conditioning, electrical systems, and water supply and drainage. It effectively solves the problem of ceiling space occupation and integrates heating and ventilation ducts with various electromechanical pipelines. The elevated deck module contains a receiving cavity that extends horizontally through the module. This cavity has multiple interconnected channels that function as ducts or air boxes in the heating, ventilation, and airflow system. The elevated deck module and prefabricated ground-mounted electromechanical integrated module system of this invention address some of the shortcomings of traditional electromechanical systems.
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Description

Technical Field

[0001] This invention relates to the fields of building heating, ventilation, air conditioning, electrical systems, and water supply and drainage, and particularly to an elevated deck module and a prefabricated ground-mounted electromechanical integrated module system. Background Technology

[0002] Currently, building HVAC air convection systems use ducts as pathways to guide, transport, and distribute air (including fresh air supply and return, exhaust, and hot / cold air supply and return) to achieve functions such as indoor air circulation, temperature regulation, and pollutant removal. Ducts can be classified by material into metal ducts and non-metal ducts, and by shape into rectangular ducts and circular ducts. Ducts transporting cold or hot air require additional insulation to prevent heat loss and condensation.

[0003] In existing technologies, air ducts are generally installed in the ceiling of the house. However, this method has problems such as equipment and pipes occupying ceiling space, generating noise to a certain extent, complex integrated pipelines, inconvenience for operators to carry out maintenance, and uneven room temperature caused by uneven airflow due to limited layout.

[0004] Alternatively, existing technologies often attempt to optimize air distribution by using floor-mounted air supply systems with ductwork laid beneath the floor or by adding ductwork within the cavity of a raised floor. However, this approach suffers from problems such as large raised floor dimensions, complex construction, and difficulty in integrating electromechanical systems. Summary of the Invention

[0005] The purpose of this invention is to provide an elevated deck module and a prefabricated ground-based elevated electromechanical integrated module system, which can effectively solve the problem of ceiling space occupation and can also serve as a conduit for heating, ventilation, water supply and drainage and electrical conduits.

[0006] To solve the above-mentioned technical problems, the embodiments of the present invention provide an elevated deck module, wherein an accommodating cavity is provided inside the elevated deck module, the accommodating cavity extends horizontally through the elevated deck module, and the accommodating cavity is provided with multiple channels, the multiple channels being interconnected.

[0007] In some embodiments, the elevated deck module includes a cover and a chassis, the cover being mounted on the chassis, and the cover and chassis enclosing each other to form the receiving cavity.

[0008] In some embodiments, a support member is provided between the cover and the chassis, with one end of the support member connected to the side of the cover near the chassis and the other end of the support member installed on the side of the chassis near the cover.

[0009] In some embodiments, there are multiple supports, which are spaced apart horizontally, and the receiving cavity forms multiple channels through the multiple supports.

[0010] In some embodiments, the elevated deck module is provided with through holes arranged in a top-to-bottom direction. The through holes are used as a backfill template for connecting the concrete pouring above the elevated deck module to the ground structure foundation.

[0011] In some embodiments, the cover has a protrusion on the side away from the chassis, and the protrusion extends vertically upward toward the side away from the chassis.

[0012] In some embodiments, there are multiple protrusions, which are spaced apart horizontally.

[0013] In some embodiments, the cover sidewall is provided with a first positioning groove, and the covers of two adjacent aerial deck modules are connected through the first positioning groove so that the receiving cavities between the two adjacent aerial deck modules can be connected after they abut each other; the first positioning grooves of the two aerial deck modules spliced ​​together form a through hole.

[0014] In some embodiments, a second positioning groove is provided at the corner of the cover, and two adjacent covers are connected through the second positioning groove so that the receiving cavities between the two adjacent aerial deck modules can be connected after they abut each other; the second positioning grooves of the four aerial deck modules spliced ​​together form a through hole.

[0015] The present invention also provides a prefabricated ground-mounted electromechanical integrated module system, which includes multiple interconnected elevated deck modules, and the receiving cavities of two interconnected elevated deck modules are interconnected.

[0016] Compared with the prior art, the present invention has the following beneficial effects: This invention discloses an elevated deck module. The elevated deck module includes a receiving cavity that extends horizontally through the module, creating a cavity structure with multiple interconnected channels. This structure serves as a duct or air box in a heating, ventilation, and air circulation system. This design allows the elevated deck module to be laid on the ground, effectively solving the problem of ceiling space occupation. Multiple modules can also be spliced ​​together, resulting in a simple structure and easy operation. Furthermore, the internal receiving cavity and multiple channels allow for the installation of different types of structures according to actual needs, integrating heating, ventilation, water supply, drainage, and electrical piping, thus facilitating the integration of electromechanical systems. Attached Figure Description

[0017] One or more embodiments are illustrated by way of example with reference numerals in the accompanying drawings. These illustrations do not constitute a limitation on the embodiments. Elements with the same reference numerals in the drawings are denoted as similar elements. Unless otherwise stated, the figures in the drawings are not to be limited by scale.

[0018] Figure 1 This is a schematic diagram of the structure of the elevated deck module in an embodiment of the present invention; Figure 2 for Figure 1 A structural schematic diagram of the elevated deck module from another perspective.

[0019] Explanation of reference numerals in the accompanying drawings of this invention: 1-Elevated deck module; 11-Cover; 12-Chassis; 13-Receiving cavity; 14-Supporting component; 15-Through hole; 16-Protrusion; 17-First positioning groove; 18-Second positioning groove; 19-Channel; 20-Assembly interface.

[0020] The realization of the objective, functional features and advantages of the present invention will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0022] It should be noted that if the embodiments of the present invention involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indicators will also change accordingly.

[0023] Furthermore, if the embodiments of this invention involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. If the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this invention.

[0024] This invention provides an elevated deck module, such as Figure 1 and Figure 2 As shown, the elevated deck module 1 is provided with a receiving cavity 13, which extends horizontally through the elevated deck module 1. The receiving cavity 13 is provided with multiple channels 19, which are interconnected.

[0025] For example, the elevated deck module 1 is provided with a receiving cavity 13, meaning that the interior of the elevated deck module 1 is a hollow structure. The receiving cavity 13 extends horizontally through the elevated deck module 1, which can be understood as a through hole provided on the side of the elevated deck module 1. The receiving cavity 13 is provided with multiple channels 19, with partitions between adjacent channels 19, and the multiple channels 19 can be interconnected to facilitate the insertion of corresponding components between the channels 19.

[0026] In the above embodiments, the elevated deck module 1 is provided, and the elevated deck module 1 is provided with a receiving cavity 13. The receiving cavity 13 can penetrate the elevated deck module 1 horizontally, so that the interior of the elevated deck module 1 forms a cavity structure with multiple channels 19, and the multiple channels 19 are interconnected, serving as air ducts or air boxes in the HVAC convection system. This arrangement allows the elevated deck module 1 to be laid on the ground, effectively solving the problem of ceiling space occupation; multiple elevated deck modules 1 can also be spliced ​​together, with a simple structure and easy operation; and because the elevated deck module 1 is provided with a receiving cavity 13 and multiple channels 19, different types of structures can be installed on the elevated deck module 1 according to actual needs, serving as both a heating and ventilation duct, water supply and drainage, and electrical conduit, thereby facilitating the integration of electromechanical systems.

[0027] In some embodiments of the present invention, the elevated deck module 1 includes a cover 11 and a chassis 12. The cover 11 is mounted on the chassis 12, and the cover 11 and the chassis 12 enclose a receiving cavity 13.

[0028] For example, the elevated deck module 1 includes a cover 11, which may be a quadrilateral structure, with one end closed and the other end open. The elevated deck module 1 also includes a chassis 12, which is mounted on the open end of the cover 11. The elevated deck module 1 is typically polygonal; for example, it may be triangular, quadrilateral, pentagonal, hexagonal, or similar shapes. In some embodiments of the present invention, the elevated deck module 1 is square; the following description will use a square-shaped elevated deck module 1 as an example.

[0029] The cover 11 and chassis 12 can be made of expanded polypropylene (EPP), which provides both structural load-bearing capacity and thermal insulation. Alternatively, the cover 11 and chassis 12 can be made of other rigid insulation materials, such as extruded polystyrene (XPS). XPS is made from polystyrene resin as the main raw material, with the addition of foaming agents, flame retardants, and other auxiliary materials, and is continuously extruded under high temperature and pressure to form a foam plastic board. Its interior exhibits a uniform closed-cell honeycomb structure, with each pore independent, forming an effective thermal barrier. Alternatively, metal or composite material modules can be used, but an additional insulation layer is required. In this embodiment of the invention, the materials for the chassis 12 and cover 11 are not specifically limited; they can be chosen according to actual conditions.

[0030] In another example, the cover 11 and the chassis 12 are fitted together to form a receiving cavity 13. For example, the cover 11 and the chassis 12 are connected by means of bonding, snap-fitting, or other connection methods; or, for another example, the cover 11 and the chassis 12 can be manufactured as a single piece. In this embodiment of the invention, the molding method and connection method of the cover 11 and the chassis 12 are not specifically limited, as long as they meet the usage requirements.

[0031] In another example, when the cover 11 is connected to the chassis 12, it can form an arched load-bearing structure with eight holes on four sides. That is, after the cover 11 and the chassis 12 are connected, a quadrilateral structure is formed. Each of the four sides of this structure is provided with two through holes 15, and one side is connected to the through hole 15 on the opposite side, and the other side is connected to the through hole 15 on the opposite side.

[0032] It should be explained that during the fabrication of the cover 11 and chassis 12, the cross-sectional area of ​​the receiving cavity 13 in the elevated deck module 1 can be adjusted through computer airflow simulation and sample load-bearing tests to achieve the optimal cavity height. For example, the cavity height can be 5.5 cm, thereby minimizing the height of the elevated layer and providing a higher indoor clear height. It is understood that the optimal cavity height may change with the optimization of the design and / or technological advancements; therefore, this embodiment of the invention does not specifically limit the optimal cavity height, and conclusions can be drawn based on actual conditions.

[0033] Alternatively, since the elevated deck module 1 is used for ground paving, its modular and standardized dimensions can be adjusted to allow it to effectively connect with standard products such as drainage pipes, ground sockets, and ground supports, thereby meeting the needs of electromechanical construction operations in different scenarios.

[0034] In some embodiments of the present invention, a support member 14 is provided between the cover 11 and the chassis 12. One end of the support member 14 is connected to the side of the cover 11 near the chassis 12, and the other end of the support member 14 is installed on the side of the chassis 12 near the cover 11. There are multiple support members 14, which are arranged at horizontal intervals, and the receiving cavity 13 forms multiple channels 19 through the multiple support members 14.

[0035] In this embodiment of the invention, a plurality of support members 14 may be provided between the cover 11 and the chassis 12. One end of the support member 14 is installed on the side of the cover 11 near the chassis 12, and the other end of the support member 14 is installed on the side of the chassis 12 near the cover 11.

[0036] For example, the number of support members 14 can be set to six, seven or eight, etc. In this embodiment of the invention, the number of support members 14 is not specifically limited, and can be set according to the actual situation.

[0037] In another example, multiple support members 14 are spaced apart in the horizontal direction. For example, some of the support members 14 are spaced apart in the transverse direction, and other support members 14 are spaced apart in the longitudinal direction, so that the receiving cavity 13 is divided into multiple channels 19 by the multiple support members 14.

[0038] The support member 14 can be part of the cover 11, that is, the support member 14 and the cover 11 are integrally formed. In this embodiment of the invention, the forming method and manufacturing process of the support member 14 are not specifically limited, and can be set according to the actual situation.

[0039] In the above embodiments, multiple support members 14 are provided, forming multiple channels 19. This configuration allows the elevated deck module 1 to become an integrated module providing insulation, structure, and installation, combining multiple functions such as heating and ventilation ducts, air channels, underfloor heating coil installation, and pipeline layout. It also enables a comprehensive solution for combined floor air supply or return with underfloor heating. The elevated deck module 1 is laid across the entire floor, ensuring that the air ducts almost cover the entire floor, providing a foundation for uniform, low-speed air supply throughout the house. This creates multiple ventilation paths (e.g., straight lines, turns, and branching), flexibly adapting to the layout and ventilation needs of different rooms, thus improving indoor comfort. Furthermore, because the elevated deck module 1 has an internal cavity 13 and can be connected to supporting columns (which can be structural components), the elevated deck module 1 is supported, creating a gap between it and the ground. This ensures the elevated deck module 1 achieves moisture resistance, further enhancing living comfort.

[0040] In some embodiments of the present invention, the elevated deck module 1 is provided with a through hole 15, which is arranged in a top-to-bottom direction. The through hole 15 is used as a backfill template for connecting the concrete pouring above the elevated deck module 1 with the ground structure foundation.

[0041] For example, the elevated deck module 1 may be provided with a through hole 15, which is vertically arranged. The through hole 15 can be a round hole, a square hole, etc., and is located at the center of the elevated deck module 1. In this embodiment of the invention, the shape and size of the through hole 15 are not specifically limited, and can be set according to actual needs. For example, the through hole 15 can be arranged as a flared hole that gradually decreases in size from top to bottom.

[0042] It should be explained that concrete can be poured into the elevated deck module 1 through the through hole 15 to form a backfill template shape for connection with the ground structure foundation.

[0043] In another example, a sleeve is inserted into the through hole 15. The sleeve is inserted into the through hole 15 by an interference fit. The sleeve can also be connected to the through hole 15 by a threaded connection or other means. In this embodiment of the invention, the connection method between the sleeve and the through hole 15 is not specifically limited, and can be set according to the actual situation.

[0044] In the above embodiment, the through hole 15 and sleeve facilitate the movement of the elevated deck module 1 and provide support for the entire elevated deck module 1. Furthermore, by adjusting the length of the sleeve, different elevated deck modules 1 can be spliced ​​together to form the desired structure, such as a stepped structure. This allows for personalized customization, expands the applicability of the elevated deck module 1, adapts to different installation requirements, and features a simple structure that is easy to operate.

[0045] In some embodiments of the present invention, a protrusion 16 is provided on the side of the cover 11 away from the chassis 12, and the protrusion 16 extends vertically upward toward the side away from the chassis 12. There are multiple protrusions 16, and the multiple protrusions 16 are spaced apart in the horizontal direction.

[0046] In this embodiment of the invention, a plurality of protrusions 16 are provided on the side of the cover 11 away from the chassis 12. The protrusions 16 protrude from the outer surface of the cover 11 toward the direction away from the chassis 12, providing mounting points for other parts so that the parts can be mounted on the cover 11.

[0047] For example, taking protrusion 16 as a bump, the bump can be a square column or a circular column. In this embodiment of the invention, the shape and size of the bump are not specifically limited, and can be set according to the actual situation. For example, protrusion 16 can be set in a cone shape that is smaller at the top and larger at the bottom. Furthermore, the upper end surface of protrusion 16 can be provided with a recess in the shape of a circle or a square.

[0048] As another example, there can be multiple bumps. In the horizontal direction, multiple bumps are distributed at intervals along the horizontal and / or vertical directions. In this embodiment of the invention, the number of bumps and the spacing between bumps are not specifically limited, but are set according to actual needs.

[0049] It should be explained that the upper surface of the cover 11 can be provided with clearance spaces, which can be strip grooves, circular grooves, or other structures, to facilitate the installation of supports, pipes, etc., in corresponding positions. Furthermore, multiple protrusions are provided on the elevated deck module 1 for the laying of underfloor heating pipes and to increase structural interlocking strength; the arrayed distribution of these protrusions improves the overall load-bearing capacity and distributes the load. Additionally, inverted frustum shapes with 300mm spacing can be used as support templates after backfilling, resulting in superior compressive strength of the top backfilled structure.

[0050] In the above embodiment, the protrusions 16 divide the upper surface of the cover 11 into multiple different areas and provide installation points, allowing different types of parts to be installed on the cover 11 during construction. This design facilitates operation by workers and saves installation space.

[0051] In some embodiments of the present invention, a first positioning groove 17 is provided on the side wall of the cover 11, and the covers 11 of two adjacent overhead deck modules 1 are connected through the first positioning groove 17. A second positioning groove 18 is provided at the corner of the cover 11, and two adjacent covers 11 are connected through the second positioning groove 18.

[0052] For example, taking the elevated deck module 1 as a quadrilateral structure, the side wall of the elevated deck module 1 is provided with a first positioning groove 17, which can also be understood as the side wall of the cover 11 being provided with a first positioning groove 17. For example, a semi-circular groove is provided at the middle position of each of the four sides of the cover 11. Since the semi-circular groove has depth in the vertical direction, it can be set as a horn shape. Taking the semi-circular groove as a horn shape as an example, the opening of the semi-circular groove on the side closer to the chassis 12 is smaller than the opening on the side farther from the chassis 12; this setting makes it convenient for workers to insert pipes and other components into the semi-circular groove from top to bottom. The first positioning groove 17 can also be other structures, such as a square structure. In this embodiment of the invention, the shape and size of the first positioning groove 17 are not specifically limited, and can be set according to the actual situation.

[0053] Two adjacent covers 11 can be positioned by the first positioning groove 17, thereby splicing the two adjacent covers 11 together. After the two adjacent covers 11 are spliced ​​together, the semi-circular groove on one cover 11 is aligned with the semi-circular groove on the other cover 11 to form a complete circular slot.

[0054] It is understandable that, taking the elevated deck module 1 as an example of a quadrilateral structure, the elevated deck module 1 has four splicing edges, and a first positioning groove 17 is provided at the center of each of the four splicing edges. Along the horizontal direction, splicing interfaces 20 are provided on both sides of the first positioning groove 17. The splicing interfaces 20 penetrate the elevated deck module 1 horizontally. After two adjacent elevated deck modules 1 are spliced ​​through the first positioning groove 17, the splicing interfaces 20 on the splicing edges of the two adjacent elevated deck modules 1 can be aligned, so that the channels 19 in the two connected elevated deck modules 1 are interconnected. It can also be understood that the receiving cavities 13 in the two adjacent elevated deck modules 1 can be interconnected. Furthermore, the first positioning grooves 17 of the two interconnected elevated deck modules 1 can be spliced ​​together to form a through hole 15. This design serves two purposes: firstly, it provides positioning, making it convenient for workers to splice adjacent elevated deck modules 1 together, saving time and improving work efficiency; secondly, after the splicing is completed, concrete grout can be poured into the through hole 15. After the concrete grout solidifies, it will firmly connect the two adjacent elevated deck modules 1, thereby ensuring the connection strength after multiple elevated deck modules 1 are fully laid, and improving the reliability of the connection of the elevated deck modules 1.

[0055] Another example, taking the elevated deck module 1 as a quadrilateral structure, the side wall of the elevated deck module 1 is provided with a second positioning groove 18, which can also be understood as the cover body 11 having a second positioning groove 18 at each of its four corners. For example, each of the four corners of the cover body 11 is provided with a quarter-arc groove. Since the quarter-arc groove has depth in the vertical direction, it can be set in a trumpet shape. Taking the quarter-arc groove as a trumpet shape as an example, the opening of the quarter-arc groove on the side closer to the chassis 12 is smaller than the opening on the side farther from the chassis 12; this setting makes it convenient for workers to insert pipes and other components into the quarter-arc groove from top to bottom.

[0056] Taking the elevated deck module 1, which has a quadrilateral structure, as an example, each of the four corners of the elevated deck module 1 is provided with a second positioning groove 18. Taking one of the splicing edges of the elevated deck module 1 as an example, along the horizontal direction, the two ends of the splicing edge are provided with second positioning grooves 18. The first positioning groove 17 is located in the middle position of the two second positioning grooves 18. One splicing interface 20 is located between the first positioning groove 17 and one of the second positioning grooves 18, and the other splicing interface 20 is located between the first positioning groove 17 and the other second positioning groove 18. The four elevated deck modules 1 spliced ​​together are spliced ​​through the second positioning grooves 18, and the four corresponding second positioning grooves 18 can be spliced ​​to form a through hole 15. Grouting material can be poured into the four through holes 15 after splicing, thus firmly connecting the four elevated deck modules 1. On the basis of pouring grouting material into the through hole 15 formed by splicing two adjacent first positioning grooves 17, the firmness of the connection between multiple adjacent elevated deck modules 1 can be further improved. Meanwhile, four adjacent covers 11 can be positioned using the second positioning groove 18, making it convenient for workers to assemble them together. Taking the second positioning groove 18 as an example of an arc-shaped structure that is wider at the top and narrower at the bottom, after the four elevated deck modules 1 are assembled, the corresponding four second positioning grooves 18 can be joined to form a frustum-shaped structure that is wider at the top and narrower at the bottom. Alternatively, the second positioning groove 18 can be of other structures. In this embodiment of the invention, the shape and size of the second positioning groove 18 are not specifically limited, as long as they meet the actual needs.

[0057] It is understandable that the elevated deck module 1 formed by closing the cover 11 and the chassis 12, together with the internal support member 14, can form an arched load-bearing structure with four sides and eight holes and internal support. This design can meet both the ventilation requirements of the cavity and the live load requirements of personnel stepping on it during the laying process. The four sides and eight holes can be understood as the elevated deck module 1 having four sides, and each side having two through holes, with partitions between the two through holes on each side to prevent them from connecting.

[0058] It should be explained that two adjacent elevated deck modules 1 can be connected by connectors. The connectors can be parts with connecting functions such as buckles. The connectors can be set on the cover 11 and / or the chassis 12. After the two elevated deck modules 1 are connected by the connectors, the receiving cavities 13 in the two elevated deck modules 1 can communicate with each other. In this embodiment of the invention, the installation position and type of the connectors are not specifically limited, and can be set according to the actual situation.

[0059] In the above embodiments, due to the provision of the first positioning groove 17 and the second positioning groove 18, multiple different elevated deck modules 1 can not only be spliced ​​together, but also form locking holes through splicing multiple different elevated deck modules 1, thereby inserting parts such as sleeves into the locking holes, which facilitates splicing and expands the applicability of the elevated deck module 1.

[0060] For example, multiple elevated deck modules 1 can be spliced ​​together using connectors; alternatively, elevated deck modules 1 can be assembled and connected to other functional modules using connectors. After assembly, they are fully laid on the leveled structural floor slab of the room to form a continuous ventilation cavity. The initial end of the continuous ventilation cavity is connected to the air supply riser of the HVAC air supply equipment, and the end is connected to the air outlet box, forming a complete ground cavity air supply system. According to the air volume requirements of different houses, the air volume, air velocity, and noise of the ventilation in the cavity 13 can be distributed and adjusted as needed through the elevated deck modules 1 in different areas, thereby achieving the functional requirements of ground air supply.

[0061] In another example, by setting up the elevated deck module 1, the traditional ceiling-mounted piping system can be moved to the ground-level cavity 13, thereby reducing the ceiling height by 20-40cm and effectively increasing the room's net height. There's no need to install fan coil units or other equipment in the room, effectively reducing noise and significantly improving comfort. Airflow, underfloor heating installation, and piping layout can all be achieved within the same elevated deck module 1, demonstrating strong system integration. Materials with low thermal conductivity can be used to effectively prevent condensation, and the materials used meet the requirements for non-toxic, recyclable, and other green building materials. Furthermore, each elevated deck module 1 is lightweight, requires no metal supports, and is easy to install; the temperature distribution of the floor-mounted air supply is more uniform.

[0062] It's important to explain that in high-quality, fully-furnished interior projects, traditional mechanical and electrical (MEP) systems typically face several challenges: HVAC vents heavily rely on suspended ceilings, impacting floor height and spatial proportions; floor-mounted air supply systems lack standardized construction, relying on experience and leading to significant errors; MEP locations are highly coupled with changes in interior function, making later adjustments difficult; underground MEP pipelines are complex and intersecting, lacking a clear maintenance logic; and they struggle to integrate deeply with prefabricated interior design and modular construction methods. While traditional metal-supported raised floor designs offer convenient layout for building service systems, over time, metal-supported floors have become inadequate in terms of load-bearing capacity, safety, acoustics, and aesthetics, failing to meet contemporary interior design standards.

[0063] Therefore, the design structure of the elevated deck module 1 and the prefabricated ground-mounted electromechanical integrated module system in this embodiment of the invention simplifies the installation of building service systems. Compared with traditional column base plates, it reconstructs the design and construction logic of indoor ground electromechanical systems through a "modularization + functional decoupling + industrialized interface" approach. Furthermore, the elevated deck module 1, as a standard module, not only undertakes active electromechanical functions and reserves a unified interface for connection with functional modules or pipeline systems, but also provides a high-load-bearing and stable base interface for ground paving materials through top grouting backfill.

[0064] In summary, the elevated deck module 1 and the prefabricated ground-based electromechanical integrated module system are not only ground-based elevated systems, but also electromechanical platforms for prefabricated and standardized indoor construction methods. For designers, they provide parameterizable and standardized electromechanical implementation solutions; for construction teams, they reduce on-site uncertainties and improve construction accuracy and efficiency; and for owners, they offer higher spatial quality, lower noise, and stronger long-term adaptability.

[0065] This invention also provides a prefabricated ground-mounted electromechanical integrated module system, which includes multiple interconnected aerial deck modules 1.

[0066] It is understood that each elevated deck module 1 has multiple splicing surfaces, and two elevated deck modules 1 can be spliced ​​together through these splicing surfaces. Each elevated deck module 1 can also be spliced ​​together with multiple elevated deck modules 1 through multiple splicing surfaces. In a single elevated deck module 1, the receiving cavity 13 penetrates each splicing surface of the elevated deck module 1 to form a splicing interface 20 on each splicing surface; each channel 19 penetrates two splicing surfaces at both ends in its extending direction to form splicing interfaces 20 on the two splicing surfaces. In two spliced ​​elevated deck modules 1, the splicing interfaces 20 on the two splicing surfaces of the two elevated deck modules 1 are aligned to connect the receiving cavities 13 of both modules and to connect the two modules with the corresponding channels 19 of the splicing interfaces 20.

[0067] Multiple elevated deck modules 1 are spliced ​​together to form a prefabricated ground-mounted electromechanical integrated modular system. For example, two adjacent elevated deck modules 1 are connected by connectors with hollow structures to allow the respective accommodating cavities 13 of the two adjacent modules to communicate with each other. Furthermore, during the full installation of the elevated deck modules 1, the openings of the accommodating cavities of specific modules 1 can be sealed according to actual needs, thereby meeting different air supply requirements for different rooms. In this embodiment of the invention, the type of sealing component is not specifically limited; it can be selected according to actual needs, as long as it achieves the sealing effect. With this configuration, the elevated deck module 1 in the prefabricated ground-mounted electromechanical integrated modular system not only meets the requirements of load bearing, space saving, and integration of heating and ventilation ducts and electromechanical pipelines, but also functions as a duct, air box, or pipe in the HVAC convection system, unlike traditional deck modules which can only be used as a support structure. Therefore, the elevated deck module 1 and the prefabricated ground-mounted electromechanical integrated modular system proposed in this embodiment of the invention can achieve more functions and are easier for users to operate than traditional structures.

[0068] The following describes a construction method for a prefabricated ground-mounted electromechanical integrated modular system according to an embodiment of the present invention: S100: First, structural leveling is carried out above the original structural floor slab to ensure that the ground is flat before laying; S200: After the structure is leveled, the elevated deck module 1 is laid. During the laying process, two adjacent elevated deck modules 1 are connected by connectors. S300: After connecting multiple elevated deck modules 1 into a whole, lay underfloor heating pipes according to project requirements; S400: After the underfloor heating pipes are laid, steel wire mesh is laid on top of the elevated deck module 1; S500: A reinforcing bar connected to the structural base plate is inserted into the through hole 15, and the other end of the reinforcing bar is tied to the wire mesh; S600: Finally, backfill the grouting material on the elevated deck module 1 to form a stable structural elevated layer and ensure that the surface of this structural layer is flat so as to meet the laying conditions of the ground surface material.

[0069] The above are merely preferred embodiments of the present invention and do not limit the patent scope of the present invention. All equivalent structural transformations made using the contents of the present invention specification and drawings under the inventive concept of the present invention, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present invention.

Claims

1. An elevated deck module, characterized in that, The elevated deck module (1) is provided with a receiving cavity (13), which extends horizontally through the elevated deck module (1). The receiving cavity (13) is provided with multiple channels (19), which are interconnected.

2. The elevated deck module according to claim 1, characterized in that, The elevated deck module (1) includes a cover (11) and a chassis (12). The cover (11) is installed on the chassis (12), and the cover (11) and the chassis (12) enclose the receiving cavity (13).

3. The elevated deck module according to claim 2, characterized in that, A support member (14) is provided between the cover (11) and the chassis (12). One end of the support member (14) is connected to the side of the cover (11) near the chassis (12), and the other end of the support member (14) is installed on the side of the chassis (12) near the cover (11).

4. The elevated deck module according to claim 3, characterized in that, The number of the support members (14) is multiple, and the multiple support members (14) are spaced apart in the horizontal direction. The receiving cavity (13) forms multiple channels (19) through the multiple support members (14).

5. The elevated deck module according to claim 2, characterized in that, The elevated deck module (1) is provided with a through hole (15), which is arranged in a downward direction. The through hole (15) is used as a backfill template for connecting the concrete pouring above the elevated deck module (1) with the ground structure foundation.

6. The elevated deck module according to claim 2, characterized in that, The cover (11) has a protrusion (16) on the side away from the chassis (12), and the protrusion (16) extends vertically upward toward the side away from the chassis (12).

7. The elevated deck module according to claim 6, characterized in that, The number of protrusions (16) is multiple, and the multiple protrusions (16) are arranged at intervals along the horizontal direction.

8. The elevated deck module according to claim 2, characterized in that, The cover (11) has a first positioning groove (17) on its side wall. The covers (11) of two adjacent aerial deck modules (1) are connected through the first positioning groove (17) so that the accommodating cavities between the two adjacent aerial deck modules (1) can be connected after they abut each other. The first positioning grooves (17) of the two aerial deck modules (1) spliced ​​together form a through hole (15).

9. The elevated deck module according to claim 2, characterized in that, The cover (11) is provided with a second positioning groove (18) at the corner. Two adjacent covers (11) are connected through the second positioning groove (18) so that the accommodating cavities between the two adjacent aerial deck modules (1) can be connected after they abut. The second positioning grooves (18) of the four aerial deck modules (1) spliced ​​together form a through hole (15).

10. A prefabricated ground-to-air electromechanical integrated modular system, characterized in that, It includes multiple aerial deck modules (1) that are spliced ​​together, wherein the aerial deck module (1) is the aerial deck module (1) as described in any one of claims 1-9, and the receiving cavities (13) of two spliced ​​aerial deck modules (1) are interconnected.