Suspended ceiling with hidden pipeline
By incorporating light-emitting components and cooling fans into the ceiling design, the internal temperature difference of the ceiling is actively reduced, thus solving the safety hazards caused by temperature differences and achieving a safe and reliable decorative effect as well as extending the equipment lifespan.
Patent Information
- Application Number
- CN202510994402.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-17
- Publication Date
- 2025-11-18
AI Technical Summary
During use, existing suspended ceilings can cause heat buildup due to the installation of electrical wires and air conditioning ducts on the ceiling. Excessive temperature differences can lead to the formation of small water droplets, which can easily cause short circuits or electrical fires and other safety hazards.
A suspended ceiling with concealed pipelines was designed, comprising a light-emitting component, a cooling fan, and a frame assembly. The light-emitting component has a heat dissipation channel, and the cooling fan drives hot airflow into the receiving channel of the frame assembly within the channel, actively reducing the temperature difference inside the suspended ceiling.
Through an active heat dissipation mechanism, the temperature difference inside the ceiling is significantly reduced, condensation is avoided, the safe operation of electrical equipment is ensured, and the decorative effect and service life are improved.
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Figure CN120968166A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of home decoration, and in particular to a suspended ceiling that conceals pipes. Background Technology
[0002] To create a sense of depth in the interior space, suspended ceilings are often installed instead of solid partitions.
[0003] Some existing suspended ceilings conceal electrical wires, air conditioning ducts, fire sprinklers, and fresh air systems installed on the ceiling to achieve a neat and aesthetically pleasing effect.
[0004] However, during use, because the wires, air conditioning pipes, lighting fixtures and other devices are installed on the ceiling, a lot of heat will accumulate inside. When it is humid, the temperature difference between the inside and outside of the ceiling will be too large, forming small water droplets. These water droplets will adhere to the surface of the electrical appliances in the ceiling. If there are gaps, the water droplets can easily cause short circuits, which can lead to the burning of electrical appliances. In severe cases, it can even cause an electrical fire, making it inconvenient to use. Summary of the Invention
[0005] Therefore, it is necessary to provide a suspended ceiling that conceals the pipes to solve the above problems.
[0006] Embodiments of this application provide a suspended ceiling for concealing pipelines, including:
[0007] A ceiling module has an installation side and a shielding side opposite to the installation side, and the ceiling module has an installation hole;
[0008] A light-emitting component is mounted on the mounting side on one side and extends through the mounting hole to the blocking side on the other side; the light-emitting component has a heat dissipation channel.
[0009] A cooling fan is located within the heat dissipation channel;
[0010] The skeleton assembly has an internally formed receiving channel for accommodating pipelines, and the receiving channel is connected to the heat dissipation channel;
[0011] The cooling fan dissipates heat from the light-emitting component to reduce the temperature difference between the accommodating channel and the accommodating channel and the shielding side.
[0012] In at least one embodiment of this application, the light-emitting component includes:
[0013] The light-emitting element has one end mounted on the mounting side and the other end extending through the mounting hole to the blocking side;
[0014] The mounting component forms a sealed cavity and a heat dissipation channel inside. The light-emitting element extends through the mounting hole into the sealed cavity and completely blocks the sealed cavity, so as to form a seal inside the sealed cavity.
[0015] The heat-conducting fin assembly has one end installed inside the sealed cavity and the other end extending through the sealed cavity into the heat dissipation channel.
[0016] In at least one embodiment of this application, the heat-conducting fin group is two groups, and the cooling fan is located between the two groups of heat-conducting fin groups.
[0017] In at least one embodiment of this application, the heat-conducting fin assembly includes a plurality of triangular heat-conducting fins, and a communication channel is formed between the heat-conducting fins and the heat dissipation channel;
[0018] A blowing channel is formed between the two sets of heat-conducting fins. The cross-sectional area of the connecting channel is denoted as a, and the cross-sectional area of the blowing channel is denoted as b, satisfying the relationship: b > a.
[0019] In at least one embodiment of this application, the shape of the heat dissipation channel is the same as the shape of the heat-conducting sheet, and the cross-sectional area of the heat dissipation channel is denoted as c, and the cross-sectional area of the heat-conducting sheet is denoted as d, satisfying the relationship: c > d.
[0020] In at least one embodiment of this application, the light-emitting component further includes:
[0021] A sealing element is installed at both ends of the mounting element, and the sealing element, the mounting element, and the light-emitting element form the sealing cavity.
[0022] In at least one embodiment of this application, the skeleton assembly has a connecting hole that communicates with the heat dissipation channel.
[0023] In at least one embodiment of this application, the ceiling module has a mounting plate on its shielding side, and the mounting plate has a locking position.
[0024] The skeleton component includes:
[0025] The keel assembly includes two opposing keel frames. The keel assembly has a slot, and the locking position engages with the slot to fix the ceiling module to the keel assembly.
[0026] In at least one embodiment of this application, the keel frame comprises:
[0027] Installation Department;
[0028] A hook-shaped connecting part, one end of which is connected to the mounting part;
[0029] A hook portion is provided at the end of the hook-shaped connecting portion away from the mounting portion, and is located on the side of the hook-shaped connecting portion away from the mounting portion. One end of the hook portion is inclined towards the hook-shaped connecting portion, and the other end of the hook portion is bent away from the hook-shaped connecting portion. The receiving channel is formed between the hook-shaped connecting portion and the hook portion.
[0030] In at least one embodiment of this application, the skeleton component further includes:
[0031] Install the frame, which is perpendicular to the keel assembly;
[0032] The connector has one end secured to the mounting frame and the other end secured to the keel assembly. The mounting frame has the receiving channel and the communicating hole.
[0033] The suspended ceiling with concealed wiring implemented in this embodiment will have at least the following beneficial effects:
[0034] The aforementioned ceiling with concealed piping features a dedicated heat dissipation channel for the light-emitting components, within which a cooling fan is installed. When the light-emitting components are running, the heat generated is actively transferred to the internal frame components of the ceiling by the cooling fan through the heat dissipation channel.
[0035] The frame assembly has a dedicated channel for housing wires, pipes and other pipelines, which is connected to the aforementioned heat dissipation channel. This allows the hot airflow driven by the cooling fan to actively enter the pipeline housing channel of the frame assembly, thereby significantly increasing the overall temperature inside the ceiling, reducing the temperature difference between the ceiling interior and the external environment, and effectively preventing condensation caused by excessive temperature difference.
[0036] Through an active circulating airflow mechanism, the heat generated during the operation of the light-emitting components is used to actively reduce the temperature difference between different areas inside the ceiling, thereby preventing the formation of condensation and ensuring the safe operation of electrical equipment such as wires, air conditioning pipes, and lighting fixtures hidden inside the ceiling. Attached Figure Description
[0037] Figure 1 This is a schematic diagram of the ceiling structure for concealing pipelines in this invention;
[0038] Figure 2 for Figure 1 Another angle structural diagram of the suspended ceiling concealing pipelines;
[0039] Figure 3 for Figure 1 Exploded view of the ceiling with concealed pipes;
[0040] Figure 4 for Figure 1A sectional view of the ceiling with concealed pipes;
[0041] Figure 5 for Figure 4 Enlarged view of section A in the middle;
[0042] Figure 6 for Figure 4 Enlarged view of section B;
[0043] Figure 7 for Figure 1 Another sectional view of the ceiling with concealed pipes;
[0044] Figure 8 for Figure 7 Enlarged view of section C.
[0045] Explanation of main component symbols
[0046] 100. Ceilings that conceal pipes;
[0047] 110. Ceiling module; 110a. Mounting side; 110b. Obstruction side; 110c. Mounting hole; 111. Mounting plate; 111a. Clip;
[0048] 120. Light-emitting component; 121. Light-emitting element; 122. Mounting component; 123. Heat-conducting fin assembly; 124. Heat-conducting sheet; 124a. Connecting channel; 124b. Air blowing channel; 125. Sealing component; 120a. Sealing cavity; 120b. Heat dissipation channel;
[0049] 130. Cooling fan;
[0050] 140. Frame assembly; 140a. Accommodation channel; 140b. Connecting hole; 141. Keel assembly; 142. Keel frame; 141a. Slot; 143. Mounting part; 144. Hook-type connection part; 145. Hook part; 146. Mounting frame; 147. Connector. Detailed Implementation
[0051] The embodiments of this application will now be described with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.
[0052] It should be noted that when a component is considered to be "connected" to another component, it can be directly connected to the other component or may also have an intervening component. When a component is considered to be "placed" on another component, it can be directly placed on the other component or may also have an intervening component. The terms "top," "bottom," "upper," "lower," "left," "right," "front," "back," and similar expressions used in this article are for illustrative purposes only.
[0053] The following detailed description of some embodiments of this application is provided in conjunction with the accompanying drawings. Unless otherwise specified, the following embodiments and features can be combined with each other.
[0054] Embodiments of this application provide a suspended ceiling 100 for concealing pipelines, including:
[0055] The ceiling module 110 has a mounting side 110a and a shielding side 110b disposed opposite to the mounting side 110a, and the ceiling module 110 has a mounting hole 110c.
[0056] The light-emitting component 120 is mounted on the mounting side 110a on one side and extends through the mounting hole 110c to the blocking side 110b on the other side. The light-emitting component 120 has a heat dissipation channel 120b.
[0057] A cooling fan 130 is disposed within the cooling channel 120b;
[0058] The skeleton assembly 140 has an internally formed receiving channel 140a for receiving pipelines, and the receiving channel 140a is connected to the heat dissipation channel 120b;
[0059] The cooling fan 130 dissipates heat from the light-emitting component 120 to reduce the temperature difference between the accommodating channel 140a and the shielding side 110b.
[0060] Please refer to Figures 1-8 In this embodiment, the light-emitting component 120 is mounted on the mounting side 110a of the ceiling module 110 via the mounting hole 110c provided on the ceiling module 110, and the other end extends through the ceiling module 110 to the shielding side 110b of the ceiling module 110, thereby realizing the function of indoor lighting. At the same time, the light-emitting component 120 itself is provided with a dedicated heat dissipation channel 120b, and a cooling fan 130 is arranged in the heat dissipation channel 120b. When the light-emitting component 120 is running, the heat generated is actively transported to the frame component 140 inside the ceiling through the heat dissipation channel 120b under the action of the cooling fan 130.
[0061] The frame assembly 140 has a dedicated accommodating channel 140a for housing wires, pipes and other pipelines, which is connected to the aforementioned heat dissipation channel 120b. This allows the hot airflow driven by the cooling fan 130 to actively enter the pipeline accommodating channel 140a of the frame assembly 140, thereby significantly increasing the overall temperature inside the ceiling, reducing the temperature difference between the ceiling interior and the external environment, and effectively preventing condensation caused by excessive temperature difference.
[0062] Through an active circulating airflow mechanism, the heat generated during the operation of the light-emitting component 120 is used to actively reduce the temperature difference between different areas inside the ceiling, thereby preventing the formation of condensation from the source and ensuring the safe operation of electrical equipment such as wires, air conditioning pipes, and lighting hidden inside the ceiling.
[0063] The active cooling fan 130 enables the heat inside the ceiling to be actively diffused and evenly distributed, reducing the temperature difference between various components and pipelines within the ceiling. This fundamentally suppresses condensation, preventing accidents such as short circuits, component burnout, and even fires caused by small water droplets, and greatly improving safety.
[0064] The internal accommodating channel 140a of the skeleton component 140 centrally conceals wires, pipes and other pipelines, while the ceiling module 110 simultaneously provides lighting functions, making the design of the entire ceiling space more compact. This avoids the space waste and visual clutter caused by exposed pipelines or independent installation of multi-functional devices in traditional ceilings, and significantly enhances the interior decoration effect.
[0065] Active heat dissipation can effectively prevent the accumulation of local high temperatures inside the ceiling, significantly reducing the risk of insulation aging and other damage to electrical components and pipelines caused by long-term heat exposure, thereby extending the service life of electrical equipment inside the ceiling and ensuring long-term reliable operation.
[0066] It should be noted that the ceiling module 110 is an aluminum ceiling panel, which is formed by splicing together multiple aluminum ceiling panels and is roughly rectangular in shape.
[0067] The cooling fan 130 is a fan structure and uses a motor to drive the fan blades, thereby driving airflow.
[0068] In at least one embodiment of this application, the light-emitting component 120 includes:
[0069] The light-emitting element 121 has one end mounted on the mounting side 110a and the other end extending through the mounting hole 110c to the blocking side 110b.
[0070] Mounting component 122 has a sealed cavity 120a and a heat dissipation channel 120b inside. The light-emitting component 121 extends through the mounting hole 110c into the sealed cavity 120a and completely blocks the sealed cavity 120a so that a seal is formed inside the sealed cavity 120a.
[0071] The heat-conducting fin assembly 123 has one end installed in the sealed cavity 120a, and the other end extends through the sealed cavity 120a into the heat dissipation channel 120b.
[0072] Please refer to Figures 1-8In this embodiment, the light-emitting element 121 is completely sealed and isolated from the outside air and water vapor after passing through the sealing cavity 120a provided inside the mounting component 122, thus preventing water vapor from directly entering the light-emitting component 120 and eliminating contact between the internal electrical components and condensate.
[0073] Meanwhile, the heat generated by the light-emitting element 121 during operation is effectively dissipated to maintain a safe and stable internal temperature of the component. Therefore, this embodiment specifically provides a dedicated heat dissipation channel 120b inside the mounting component 122, and a heat-conducting fin assembly 123 is provided between the sealed cavity 120a and the heat dissipation channel 120b, thereby utilizing the heat-conducting fin assembly 123 to quickly and efficiently transfer the heat generated in the sealed cavity 120a into the heat dissipation channel 120b.
[0074] Since the heat dissipation channel 120b is connected to the external space (such as the pipeline accommodation space in the ceiling frame), the heat in the sealed cavity 120a can be continuously discharged and actively diffused into the interior space of the ceiling through the action of the cooling fan 130, so that the temperature in the overall space inside the ceiling tends to be uniform and condensation is avoided in local areas of the ceiling due to excessive temperature difference.
[0075] The heat-conducting fin assembly 123 introduces the heat from the light-emitting component 120 into the heat dissipation channel 120b, and works with the cooling fan 130 to actively transfer the heat to the interior space of the ceiling (such as the space for accommodating pipelines in the frame assembly 140), thereby increasing the overall temperature of the ceiling evenly and significantly reducing the temperature difference between the interior space of the ceiling and the external environment. This effectively prevents condensation around other equipment and pipelines in the ceiling and further improves the overall safety of the interior space of the ceiling.
[0076] The light-emitting component 121 is a lamp.
[0077] Mounting component 122 is generally an isosceles trapezoidal structure, used to form a sealed cavity 120a and a heat dissipation channel 120b, while the light-emitting component 121 is mounted on the ceiling module 110 by thread fixing or other fixing methods.
[0078] In at least one embodiment of this application, the heat-conducting fin group 123 is in two groups, and the cooling fan 130 is located between the two groups of heat-conducting fin groups 123.
[0079] Please refer to Figures 1-8 In this embodiment, the heat-conducting fin assembly 123 is used to quickly transfer the heat generated by the light-emitting component 120 (especially the light-emitting element 121) during operation from the sealed cavity into the heat dissipation channel. By setting the heat-conducting fin assembly 123 into a two-set structure, the heat dissipation area and heat conduction efficiency can be significantly increased, and heat can be more effectively conducted from the sealed light-emitting component 120 to the external space, avoiding the accumulation of internal heat.
[0080] When the cooling fan 130 is working, the airflow in the heat dissipation channel will actively pass through the two sets of heat-conducting fins 123 to form an efficient heat exchange airflow path, thereby actively carrying away the heat from the surface of the heat-conducting fins and transferring it to a wider space inside the ceiling, effectively preventing local heat accumulation around the heat-conducting fins 123 and achieving the purpose of actively balancing the internal temperature.
[0081] The layout of the two sets of heat-conducting fins 123 expands the effective heat dissipation area. At the same time, the structure with the fan in the middle ensures that the generated airflow can act evenly and efficiently on the two sets of fins, quickly removing heat and avoiding the problem of insufficient heat dissipation efficiency on one side that may occur in traditional single-fin structures.
[0082] In at least one embodiment of this application, the heat-conducting fin group 123 includes a plurality of triangular heat-conducting fins 124, and a communication channel 124a is formed between the heat-conducting fins 124 and the heat dissipation channel;
[0083] A blowing channel 124b is formed between the two sets of heat-conducting fin groups 123. The cross-sectional area of the connecting channel 124a is denoted as a, and the cross-sectional area of the blowing channel 124b is denoted as b, satisfying the relationship: b > a.
[0084] Please refer to Figures 1-8 In this embodiment, multiple triangular heat-conducting fins 124 are used in the heat-conducting fin group 123 in order to utilize the sharp geometric characteristics of triangles to increase the effective heat dissipation area of the heat-conducting fins 124 in contact with the airflow, thereby enhancing the heat exchange efficiency of the heat-conducting fins 124 themselves and accelerating the transfer of heat from the sealed cavity of the light-emitting component 120 to the external heat dissipation channel.
[0085] Each triangular heat-conducting fin 124 forms a connecting channel 124a (the cross-sectional area is denoted as a) with a small cross-sectional area between it and the heat dissipation channel. The smaller cross-sectional area means that the airflow velocity is increased when passing through the heat-conducting fin 124, so that the airflow is more closely attached to the surface of the heat-conducting fin 124, which improves the heat exchange efficiency of the heat-conducting fins for the airflow and enhances the heat dissipation effect.
[0086] Meanwhile, a large cross-sectional area airflow channel 124b is formed between the two sets of heat-conducting fins 123, satisfying the relationship "b > a". This design allows the cross-sectional area of the airflow to expand when passing through the area between the two sets of heat-conducting fins, thereby effectively reducing wind resistance and improving the smoothness of airflow, ensuring that the cooling fan 130 can stably and efficiently push the airflow through the heat-conducting fin area.
[0087] The large-area structure of the triangular heat-conducting plate 124 and the small-section connecting channel 124a enable rapid heat conduction and exchange, while the larger-section airflow channel 124b reduces airflow resistance, allowing the airflow generated by the cooling fan 130 to effectively cover the entire heat dissipation area, thereby quickly and evenly removing heat and preventing damage to electrical components due to high temperature accumulation in local areas.
[0088] In at least one embodiment of this application, the shape of the heat dissipation channel is the same as the shape of the heat-conducting sheet 124, and the cross-sectional area of the heat dissipation channel is denoted as c, and the cross-sectional area of the heat-conducting sheet 124 is denoted as d, satisfying the relationship: c > d.
[0089] Please refer to Figures 1-8 In this embodiment, the shape of the heat dissipation channel is designed to be completely consistent with the shape of the heat conduction plate 124, which can ensure that the position of the heat conduction plate 124 in the heat dissipation channel is reasonable and stable, forming an effective heat conduction interface, which helps the airflow to pass through the heat dissipation channel evenly and smoothly, and ensures effective heat exchange between the air and the heat conduction plate 124.
[0090] The design of the heat dissipation channel having a cross-sectional area (c) larger than that of the heat-conducting plate 124 (d) allows the heat-conducting plate 124 to be fully exposed to the airflow within the heat dissipation channel, thereby increasing the effective heat exchange area between the heat-conducting plate 124 and the air.
[0091] The large heat dissipation channel cross-sectional area ensures that the airflow resistance is moderate when the airflow passes through the heat conduction plate 124, and the heat on the surface of the heat conduction plate 124 can be quickly and efficiently carried away by the airflow generated by the cooling fan 130, thus avoiding heat accumulation.
[0092] At the same time, appropriately increasing the cross-sectional area of the heat dissipation channel (c>d) can effectively reduce the noise and energy consumption of the fan, ensuring that the entire heat dissipation system operates more efficiently, stably, and with lower noise.
[0093] This ensures that the heat-conducting plate 124 has good contact with the airflow within the heat dissipation channel, allowing heat to be efficiently dissipated;
[0094] The cross-sectional area design (c > d) further increases the contact area between air and the heat-conducting plate 124, effectively improving the overall heat dissipation capacity, reducing the risk of heat accumulation, and extending the service life of electrical components in the ceiling.
[0095] Through rapid and effective heat dissipation, the internal temperature of the ceiling becomes more uniform, significantly reducing the temperature difference between the inside and outside of the ceiling. This fundamentally prevents condensation and effectively protects electrical wires, air conditioning pipes, lighting components, and other electrical components from condensation damage, greatly improving the overall safety and reliability of the ceiling structure.
[0096] The design of the cross-sectional area difference (c>d) effectively reduces the resistance of airflow when passing through the heat dissipation channel, thereby significantly reducing the noise of the cooling fan 130 when it is working, improving the comfort of the ceiling system and greatly improving the user experience.
[0097] In at least one embodiment of this application, the light-emitting component 120 further includes:
[0098] A sealing member 125 is installed at both ends of the mounting member 122, and the sealing cavity is formed between the sealing member 125, the mounting member 122 and the light-emitting member 121.
[0099] Please refer to Figures 1-8 In this embodiment, the sealing member 125 is installed at both ends of the mounting member 122, and cooperates with the main body of the mounting member 122 and the light-emitting member 121 that penetrates into the mounting member 122 to form a tight contact and isolation structure. This ensures that the sealed cavity space inside the light-emitting component 120 is completely isolated from the outside air, preventing external moisture or humidity from entering the internal space of the light-emitting component 120.
[0100] The sealing component 125, together with the mounting component 122 and the light-emitting component 121, forms a stable sealed cavity structure. The heat generated by the light-emitting component 121 is first conducted into the sealed cavity and then quickly discharged to the heat dissipation channel through the heat-conducting fins. The sealed structure of the cavity itself effectively prevents the entry of outside air and moisture, thereby ensuring a long-term dry and stable working environment for the internal electrical components of the light-emitting component 120.
[0101] In at least one embodiment of this application, the skeleton assembly 140 has a connecting hole 140b, which is connected to the heat dissipation channel.
[0102] In this embodiment, the hot air inside the heat dissipation channel can be evenly distributed on the shielding side 110b of the entire ceiling module 110 through the connecting hole 140b, thereby avoiding the generation of water droplets due to temperature difference.
[0103] In at least one embodiment of this application, the ceiling module 110 has a mounting plate 111 on its shielding side 110b, and the mounting plate 111 has a locking slot 111a.
[0104] The skeleton assembly 140 includes:
[0105] The keel assembly 141 includes two keel frames 142 arranged opposite to each other. The keel assembly 141 has a slot 141a. The slot 111a engages with the slot 141a to fix the ceiling module 110 onto the keel assembly 141.
[0106] Please refer to Figures 1-8 In this embodiment, the frame assembly 140 is used to conceal and protect the internal pipelines (such as electrical wires, air conditioning pipes, fresh air pipes, etc.) of the ceiling structure, and its interior is provided with a receiving channel 140a for accommodating the pipelines. In this embodiment, a connecting hole 140b is further provided in the frame assembly 140. The function of the connecting hole 140b is to allow the receiving channel 140a inside the frame to directly communicate with the heat dissipation channel of the light-emitting component 120, forming an airflow path.
[0107] The airflow in the heat dissipation channel is actively circulated by the cooling fan 130, carrying the heat generated by the light-emitting component 120 and actively entering the accommodating channel 140a space inside the frame component 140 through the connecting hole 140b. This airflow path ensures that the inside of the frame component 140 also receives heat, effectively increasing the overall temperature inside the frame component 140 and preventing condensation from occurring in the frame area due to excessive temperature difference with the external environment.
[0108] By setting the connecting hole 140b, the air in the internal accommodating channel 140a of the frame assembly 140 and the airflow in the heat dissipation channel of the light-emitting component 120 form an efficient flow path, which quickly and actively transfers heat to the internal space of the frame, significantly reducing the temperature difference between the internal and external spaces of the frame assembly 140, and completely avoiding condensation caused by excessive temperature difference, thereby greatly improving the safety of electrical components and pipelines in the ceiling.
[0109] In at least one embodiment of this application, the keel frame 142 includes:
[0110] Installation section 143;
[0111] The hook-shaped connecting part 144 is connected at one end to the mounting part 143;
[0112] A hook portion 145 is provided at one end of the hook-shaped connecting portion 144 away from the mounting portion 143, and is located on the side of the hook-shaped connecting portion 144 away from the mounting portion 143. One end of the hook portion 145 is inclined toward the hook-shaped connecting portion 144, and the other end of the hook portion 145 is bent away from the hook-shaped connecting portion 144. The receiving channel 140a is formed between the hook-shaped connecting portion 144 and the hook portion 145.
[0113] Please refer to Figures 1-8 In this embodiment, the mounting part 143 serves as the basic component of the keel frame 142 structure, and is used to securely install and connect the ceiling module 110, providing a stable support structure for the ceiling module 110 and forming a stable connection with the ceiling module 110.
[0114] One end of the hook-shaped connector 144 is connected to the mounting part 143, and the whole is designed in a hook shape, which can enhance the structural stability and is used to connect the mounting part 143 and the hook part 145. Through this structure, the keel frame 142 structure can form a stable geometric structure, ensuring the structural strength when supporting the ceiling module 110.
[0115] The hook portion 145 is located at the end of the hook-shaped connector 144 away from the mounting portion 143. It is specially designed to be inclined towards the hook-shaped connector 144 and then bent away from the hook-shaped connector 144 to form a structure. This special hook structure design not only enhances the rigidity and strength of the keel frame 142 itself, but also cleverly forms a semi-enclosed space structure with the hook-shaped connector 144, namely the accommodating channel 140a.
[0116] The hook-shaped connector 144 and the bent hook 145 form a accommodating channel 140a through this specific tilting and bending fit, providing effective accommodation and concealment space for electrical wires, air conditioning pipes, fire sprinkler systems, and fresh air system pipes inside the ceiling. This structural design cleverly hides the pipes within the keel frame 142, making the ceiling aesthetically pleasing and neat, while also facilitating subsequent installation and maintenance.
[0117] The specially designed installation part 143, hook-shaped connection part 144 and bend part 145 in the keel frame 142 ingeniously form a receiving channel 140a, realizing the dual functions of pipeline concealment and structural stability, greatly improving the overall aesthetics, practicality, stability and safety of the ceiling structure. The structural design is compact and reasonable.
[0118] In at least one embodiment of this application, the skeleton component 140 further includes:
[0119] The mounting frame 146 is set perpendicularly to the keel assembly 141;
[0120] The connector 147 is attached to the mounting frame 146 at one end and to the keel assembly 141 at the other end. The mounting frame 146 has the receiving channel 140a and the connecting hole 140b.
[0121] Please refer to Figures 1-8 In this embodiment, the mounting frame 146 and the keel assembly 141 are arranged vertically, forming a stable spatial cross-support structure. This vertical cross-support layout can significantly improve the load-bearing strength and structural rigidity of the overall ceiling frame, ensuring the structural stability of the ceiling module 110 during installation and long-term use.
[0122] One end of the connector 147 is snapped onto the mounting frame 146, and the other end is snapped onto the keel assembly 141, so that the mounting frame 146 and the keel assembly 141 are firmly connected. The connector 147 makes the installation and disassembly of the entire frame assembly 140 simpler and faster through the snap-fit method, which is convenient for construction personnel to operate on site, and also facilitates later maintenance or disassembly.
[0123] The accommodating channel 140a within the mounting frame 146 provides effective space for concealing internal ceiling wiring (electrical wires, air conditioning ducts, fresh air ducts, etc.), avoiding the problem of exposed wiring causing a cluttered indoor environment. The structural design of the accommodating channel 140a makes full use of the internal space of the mounting frame 146, thereby improving the efficiency of ceiling space utilization.
[0124] The connecting hole 140b in the mounting frame 146 is connected to the heat dissipation channel of the light-emitting component 120, forming an active heat dissipation airflow channel. This allows the heat generated by the light-emitting component 120 to actively flow into the receiving channel 140a inside the mounting frame 146, thereby achieving efficient and active heat dissipation throughout the ceiling, reducing the overall temperature difference inside the ceiling, and effectively preventing condensation.
[0125] It should be noted that the installation frame 146 and the keel assembly 141 have the same structure.
[0126] The above description is merely an embodiment of this application. It should be noted that those skilled in the art can make improvements without departing from the inventive concept of this application, but these improvements all fall within the protection scope of this application.
Claims
1. A suspended ceiling for concealing pipelines, characterized in that, include: A ceiling module has an installation side and a shielding side opposite to the installation side, and the ceiling module has an installation hole; A light-emitting component is mounted on the mounting side on one side and extends through the mounting hole to the blocking side on the other side; the light-emitting component has a heat dissipation channel. A cooling fan is located within the heat dissipation channel; The skeleton assembly has an internally formed receiving channel for accommodating pipelines, and the receiving channel is connected to the heat dissipation channel; The cooling fan dissipates heat from the light-emitting component to reduce the temperature difference between the accommodating channel and the accommodating channel and the shielding side.
2. The suspended ceiling for concealing pipelines according to claim 1, characterized in that, The light-emitting component includes: The light-emitting element has one end mounted on the mounting side and the other end extending through the mounting hole to the blocking side; The mounting component forms a sealed cavity and a heat dissipation channel inside. The light-emitting element extends through the mounting hole into the sealed cavity and completely blocks the sealed cavity, so as to form a seal inside the sealed cavity. The heat-conducting fin assembly has one end installed inside the sealed cavity and the other end extending through the sealed cavity into the heat dissipation channel.
3. The suspended ceiling for concealing pipelines according to claim 2, characterized in that, The heat-conducting fins are arranged in two groups, and the cooling fan is located between the two groups of heat-conducting fins.
4. The suspended ceiling for concealing pipelines according to claim 3, characterized in that, The heat-conducting fin assembly includes multiple triangular heat-conducting fins, and a communication channel is formed between the heat-conducting fins and the heat dissipation channel; A blowing channel is formed between the two sets of heat-conducting fins. The cross-sectional area of the connecting channel is denoted as a, and the cross-sectional area of the blowing channel is denoted as b, satisfying the relationship: b > a.
5. The suspended ceiling for concealing pipelines according to claim 4, characterized in that, The shape of the heat dissipation channel is the same as that of the heat-conducting sheet, and the cross-sectional area of the heat dissipation channel is denoted as c, and the cross-sectional area of the heat-conducting sheet is denoted as d, satisfying the relationship: c > d.
6. The suspended ceiling for concealing pipelines according to claim 2, characterized in that, The light-emitting component also includes: A sealing element is installed at both ends of the mounting element, and the sealing element, the mounting element, and the light-emitting element form the sealing cavity.
7. The suspended ceiling for concealing pipelines according to claim 1, characterized in that, The frame assembly has a connecting hole, which is connected to the heat dissipation channel.
8. The suspended ceiling for concealing pipelines according to claim 7, characterized in that, The ceiling module is provided with a mounting plate on the shielding side, and the mounting plate is provided with a locking position; The skeleton component includes: The keel assembly includes two opposing keel frames. The keel assembly has a slot, and the locking position engages with the slot to fix the ceiling module to the keel assembly.
9. The suspended ceiling for concealing pipelines according to claim 8, characterized in that, The keel frame includes: Installation Department; A hook-shaped connecting part, one end of which is connected to the mounting part; A hook portion is provided at the end of the hook-shaped connecting portion away from the mounting portion, and is located on the side of the hook-shaped connecting portion away from the mounting portion. One end of the hook portion is inclined towards the hook-shaped connecting portion, and the other end of the hook portion is bent away from the hook-shaped connecting portion. The receiving channel is formed between the hook-shaped connecting portion and the hook portion.
10. The suspended ceiling for concealing pipelines according to claim 9, characterized in that, The skeleton component also includes: Install the frame, which is perpendicular to the keel assembly; The connector has one end secured to the mounting frame and the other end secured to the keel assembly. The mounting frame has the receiving channel and the communicating hole.