Modular wall hanging system
The modular wall-mounted system features an embedded sliding groove and an L-shaped slider design, achieving three-zone isolation of water and electrical circuits. This solves the problems of low water and electrical integration and insufficient safety isolation in existing wall-mounted systems, improving construction efficiency and user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- QINGDAO HAIGAO DESIGN & MANUFACTURING CO LTD
- Filing Date
- 2026-02-27
- Publication Date
- 2026-05-15
AI Technical Summary
Existing wall-mounted systems suffer from problems such as low integration of water and electricity, insufficient safety isolation, difficulty in module disassembly and maintenance, and poor functional expandability.
The modular wall-mounted system utilizes an embedded integrated circuit slot, water channel slot, and load-bearing slot within the sliding groove. Combined with the collaborative design of the L-shaped slider and external modules, it achieves three-zone isolation of the water channel, electrical circuit, and sliding rail. It supports dual or single-channel water and electricity supply, and the modules can share the same track, providing plug-and-play functionality.
It reduces the amount of wall grooving, improves construction efficiency, lowers renovation costs, avoids the risk of water and electricity leakage, and enhances the flexibility of the modules and the user experience.
Smart Images

Figure CN122030780A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of home appliance technology, such as a modular wall-mounted system. Background Technology
[0002] Currently, most wall-mounted tracks are single-function designs, capable of supplying either electricity or water independently. This necessitates separate pre-installation of electrical tracks and water pipes, leading to cumbersome wall-grooving processes, low construction efficiency, and additional wall space requirements. This not only fails to meet the integrated needs of the water purification module in a kitchen wall-mounted system for simultaneous water and electricity supply, but also prevents storage modules requiring only electricity from sharing the same track. Adding or replacing modules later necessitates re-grooving and modification, resulting in poor versatility and high renovation costs. Furthermore, the few existing composite tracks lack sophisticated partitioning and isolation structures, with no effective physical barrier between water and electrical circuits, coupled with the multiple circuits... High-voltage power supply without specific insulation protection makes it highly susceptible to water leakage and electrical conductivity hazards in the humid environment of a kitchen, compromising safety. Existing water and electricity supply modules are mostly fixed installations; if traditional sliding water connectors are used, the interference fit of the seals prevents the modules from sliding flexibly along the track, requiring significant sealing resistance during insertion and removal, hindering quick assembly and disassembly. Furthermore, poor contact at the connectors during sliding can easily interrupt the water and electricity supply, resulting in insufficient stability. Additionally, traditional wall-mounted tracks have relatively limited functionality, hindering the synergistic effect between modules and leading to a poor user experience.
[0003] Therefore, it is evident that how to solve the technical problems of low water and electricity integration, insufficient safety isolation, difficulty in module disassembly and maintenance, and poor functional expandability in existing wall-mounted systems has become a technical problem that urgently needs to be solved by those skilled in the art.
[0004] It should be noted that the information disclosed in the background section above is only used to enhance the understanding of the background of this application, and therefore may include information that does not constitute prior art known to those skilled in the art. Summary of the Invention
[0005] To provide a basic understanding of some aspects of the disclosed embodiments, a brief summary is given below. This summary is not intended as a general commentary, nor is it intended to identify key / important components or describe the scope of protection of these embodiments, but rather as a prelude to the detailed description that follows.
[0006] This disclosure provides a modular wall-mounted system to address the problems of low water and electricity integration, insufficient safety isolation, difficulty in module disassembly and maintenance, and poor functional expandability in wall-mounted systems.
[0007] In some embodiments, the modular wall-mounted system includes: an embedded sliding groove, an L-shaped slider, and an external module. The embedded sliding groove is embedded in the wall and has an internal circuit groove, a water channel groove, and a load-bearing groove. The L-shaped slider includes a first side and a second side, wherein the first side is slidably installed in the embedded sliding groove and has a circuit connector that can be inserted into the circuit groove, a water channel quick connector that can be inserted into the water channel groove, and a load-bearing locking tooth that can be inserted into the load-bearing groove. The second side is located outside the embedded sliding groove and is parallel to the wall. The external module is fixedly disposed on the second side of the L-shaped slider parallel to the wall and can slide along the embedded sliding groove with the L-shaped slider.
[0008] Optionally, the circuit slot is provided with conductive contacts that can be slidably connected to the circuit connector.
[0009] Optionally, an insulating rubber layer is provided in the circuit groove above the conductive contact. There are two insulating rubber layers, and the two insulating rubber layers are on the same plane. The circuit connector can pass through the gap between the two insulating rubber layers.
[0010] Optionally, a flexible corrugated pipe is provided inside the water channel, and a water channel interface is provided on the flexible corrugated pipe, which can be plugged into a water channel quick connector.
[0011] Optionally, a sealing strip is provided inside the water channel on the upper side of the flexible corrugated pipe. There are two sealing strips, and the two sealing strips are on the same plane. The water channel quick connector can pass through the gap between the two sealing strips.
[0012] Optionally, the load-bearing locking teeth are located between the circuit connector and the water quick-connect plug.
[0013] Optionally, a load-bearing guide rail is provided inside the load-bearing groove, and the load-bearing guide rail is tightly fitted with the side of the load-bearing locking teeth.
[0014] Optionally, the external module is a water purifier module, with the power supply and circuit connectors inside the water purifier module connected, and the water circuits connected to the water circuit quick-connect plugs.
[0015] Optionally, the modular wall-mounted system also includes: a water heater; the water heater is fixedly mounted on the wall above the recessed sliding track, and the water purifier module can slide directly below the water heater.
[0016] Optionally, the water heater is equipped with a heating copper pipe, and the water purifier module is equipped with a first water circuit interface that can be connected to the inlet end of the heating copper pipe, and a second water circuit interface that can be connected to the outlet end of the heating copper pipe.
[0017] The modular wall-mounted system provided in this disclosure can achieve the following technical effects: By isolating the electrical, water, and load-bearing channels into three zones and integrating them into a recessed sliding track, and with a co-designed compatibility with L-shaped sliders, the water, electrical, and sliding track functions are integrated into the same recessed sliding track body. Only one pre-installation is needed to meet the supply requirements of dual water and electricity lines or only electrical lines. Compared with existing single tracks, the amount of wall grooves is reduced by more than 60%, greatly improving construction efficiency. At the same time, the L-shaped slider is equipped with electrical connectors and quick-connect plugs for water and / or electrical lines, allowing different functional modules to share the same track. Later upgrades do not require track modification, reducing modification costs. Furthermore, the water and electrical lines are set in separate channels, isolating them from each other and avoiding safety hazards caused by water or electrical leaks. Different modules can slide on the same track and can work together with each other or with other modules installed on the wall, improving the overall user experience.
[0018] The above general description and the description below are exemplary and illustrative only and are not intended to limit this application. Attached Figure Description
[0019] One or more embodiments are illustrated by way of example with reference to the accompanying drawings. These illustrations and drawings do not constitute a limitation on the embodiments. Elements having the same reference numerals in the drawings are shown as similar elements. The drawings are not to be scaled. And wherein: Figure 1 This is a schematic diagram of the internal structure of the embedded sliding groove of the modular wall-mounted system provided in this embodiment; Figure 2 This is a schematic diagram of the structure of the L-shaped slider provided in the embodiments of this disclosure; Figure 3 This is a top view of the first side of the L-shaped slider provided in this embodiment of the disclosure; Figure 4 This is a schematic diagram of the modular wall-mounted system provided in the embodiments of this disclosure; Figure 5 This is a schematic diagram of the internal structure of the water purifier module and the water heater provided in the embodiments of this disclosure; Figure 6 This is a schematic diagram of the matching structure between the water purifier module and the planting module provided in this embodiment.
[0020] Figure label: 100. Embedded groove; 110. Circuit groove; 111. Conductive contact; 112. Insulating rubber layer; 120. Water channel groove; 121. Flexible corrugated pipe; 122. Water channel interface; 123. Pipe groove; 124. Interface groove; 125. Plug groove; 126. Limiting protrusion; 127. Sealing strip; 130. Load-bearing groove; 131. Load-bearing guide rail; 200. L-shaped slider; 201. First side; 202. Second side; 203. Circuit connector; 204. Water channel quick connector; 205. Load-bearing retaining teeth; 206. First 207. Groove; 300. Second groove; 310. External module; 311. Water purifier module; 312. Water inlet pipe; 313. First water circuit interface; 314. Second water circuit interface; 315. Filter assembly; 316. Water outlet pipe; 317. First electric control valve; 318. Second electric control valve; 319. Water receiving box; 320. Drain nozzle; 321. Planting module; 400. Socket; 401. Water heater; 402. Limiting part; 403. Heating copper pipe; 404. Main combustion chamber; 405. Main copper pipe; 406. Secondary combustion chamber. Detailed Implementation
[0021] To provide a more detailed understanding of the features and technical content of the embodiments of this disclosure, the implementation of the embodiments of this disclosure will be described in detail below with reference to the accompanying drawings. The accompanying drawings are for illustrative purposes only and are not intended to limit the embodiments of this disclosure. In the following technical description, for ease of explanation, several details are used to provide a full understanding of the disclosed embodiments. However, one or more embodiments may still be implemented without these details. In other cases, well-known structures and devices may be simplified in their depiction to simplify the drawings.
[0022] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this disclosure are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate for the embodiments of this disclosure described herein. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion.
[0023] In this disclosure, the terms "upper," "lower," "inner," "middle," "outer," "front," and "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for better description of the embodiments of this disclosure and their implementations, and are not intended to limit the indicated devices, elements, or components to having a specific orientation, or to require them to be constructed and operated in a specific orientation. Furthermore, some of the aforementioned terms may be used to indicate other meanings besides orientation or positional relationship; for example, the term "upper" may in some cases indicate a dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in the embodiments of this disclosure according to the specific circumstances.
[0024] Furthermore, the terms "set up," "connect," and "fix" should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of the above terms in the embodiments of this disclosure according to the specific circumstances.
[0025] Unless otherwise stated, the term "multiple" means two or more.
[0026] In this embodiment of the disclosure, the character " / " indicates that the objects before and after it are in an "or" relationship. For example, A / B means: A or B.
[0027] The term "and / or" describes an association between objects, indicating that three relationships can exist. For example, A and / or B means: A or B, or A and B.
[0028] It should be noted that, unless otherwise specified, the embodiments and features described in the present disclosure can be combined with each other.
[0029] Combination Figure 1-2As shown, this embodiment of the present disclosure provides a modular wall-mounted system including: an embedded sliding groove 100, an L-shaped slider 200, and an external module 300. The embedded sliding groove 100 is embedded in the wall and has an internal circuit groove 110, a water channel groove 120, and a load-bearing groove 130. The L-shaped slider 200 includes a first side 201 and a second side 202. The first side 201 is slidably installed in the embedded sliding groove 100 and has a circuit connector 203 that can be inserted into the circuit groove 110, a water channel quick connector 204 that can be inserted into the water channel groove 120, and a load-bearing locking tooth 205 that can be inserted into the load-bearing groove 130. The second side 202 is located outside the embedded sliding groove 100 and is parallel to the wall. The external module 300 is fixedly installed on the second side 202 of the L-shaped slider 200 parallel to the wall and can slide along the embedded sliding groove 100 with the L-shaped slider 200.
[0030] The modular wall-mounted system provided in this embodiment isolates the circuit groove 110, water groove 120, and load-bearing groove 130 into three zones, integrating them into the embedded sliding groove 100. This design, compatible with the L-shaped slider 200, integrates water, electrical, and sliding rail functions within the same embedded sliding groove 100. Only one pre-installation is needed to meet the supply requirements of both water and electricity circuits, as well as electrical circuits alone. Compared to existing single-track systems, this reduces wall grooving by more than 60%, significantly improving construction efficiency. Simultaneously, the L-shaped slider 200 is equipped with an electrical connector 203 and a water quick-connect plug 204, allowing for selective connection of water and / or electrical circuits as needed. This allows different functional modules to share the same track, eliminating the need for track modifications during later upgrades, reducing modification costs. Furthermore, by placing the water and electrical circuits in separate grooves, they are isolated from each other, preventing safety hazards caused by water or electrical leaks. Different modules can slide on the same track, working collaboratively with each other or with other modules installed on the wall, enhancing the overall user experience.
[0031] Optionally, the circuit connector 203 adopts an elastic metal spring structure with gold-plated surface to ensure good conductivity and corrosion resistance when in contact with the conductive strip in the circuit groove 110; when the first side 201 of the L-shaped slider 200 is inserted into the embedded slide groove 100, the circuit connector 203 automatically snaps into the circuit groove 110 under the action of elasticity and forms a stable electrical connection with the conductive contact 111, realizing plug and play.
[0032] Optionally, the water quick-connect plug 204 is equipped with a one-way valve structure to maintain a sealed state when not connected, preventing liquid leakage.
[0033] Optionally, the circuit groove 110 is provided with conductive contacts 111, which can be slidably connected with the circuit connector 203. In this way, when the L-shaped slider 200 slides along the embedded groove 100, the circuit connector 203 and the conductive contacts 111 maintain stable contact, realize continuous power supply, and ensure that the external module 300 can obtain a stable power supply in any position.
[0034] Optionally, the conductive contact 111 adopts an elastic metal sheet structure, which can adaptively compensate for wear gaps, improving contact reliability and service life. In this way, the elastic metal sheet can maintain a constant contact pressure during long-term sliding, effectively reducing contact resistance and preventing power interruption problems caused by loosening or oxidation.
[0035] Understandably, the elastic metal sheet is made of phosphor bronze or beryllium copper, which has excellent conductivity and fatigue resistance. It can maintain stable elastic deformation capability even in frequent plugging and unplugging scenarios, ensuring a continuous and reliable connection between the circuit connector 203 and the conductive contact 111.
[0036] Optionally, the conductive contact 111 is elongated and extends along the length of the circuit groove 110, running through the entire extension path of the embedded slide groove 100. This ensures that the L-shaped slider 200 can achieve effective connection between the circuit connector 203 and the conductive contact 111 at any sliding position, thereby ensuring the continuity and stability of the power supply to the external module 300 and avoiding power interruption or poor contact.
[0037] Optionally, an insulating rubber layer 112 is provided inside the circuit groove 110 above the conductive contact 111. Two insulating rubber layers 112 are provided, and both layers are on the same plane. The circuit connector 203 can pass through the gap between the two insulating rubber layers 112. In this way, the insulating rubber layer 112 effectively prevents dust and moisture from entering the circuit groove 110, avoiding short circuits or oxidation of the conductive contact 111. It also acts as a seal during the sliding of the L-shaped slider 200, keeping the groove clean. The gap width between the two insulating rubber layers 112 is adapted to the thickness of the circuit connector 203, ensuring smooth sliding of the connector while preventing external foreign objects from intruding, further improving the safety and stability of the system.
[0038] Optionally, two insulating rubber layers 112 are respectively fixed to two opposite side walls of the circuit groove 110 and arranged opposite each other. The circuit connector 203 passes through the space between the two insulating rubber layers 112, which can support the space between the two insulating rubber layers 112 to form a gap, thereby achieving a dynamic sealing effect and effectively preventing external pollutants from entering the track. When the L-shaped slider 200 moves, the circuit connector 203 moves synchronously to the position where the gap is formed, ensuring that the conductive contact 111 is always in a closed environment, effectively isolating it from the corrosion of dust and moisture, and reducing the risk of oxidation of the metal contact surface.
[0039] Optionally, a flexible corrugated pipe 121 is provided inside the water channel 120, and a water channel interface 122 is provided on the flexible corrugated pipe 121. The water channel interface 122 can be plugged into the water channel quick connector 204. In this way, the flexible corrugated pipe 121 can freely extend and retract with the movement of the L-shaped slider 200 to adapt to the water channel connection requirements at different locations. The water channel quick connector 204 can be used immediately without tools, and connection and disassembly can be completed without tools, improving installation and maintenance efficiency.
[0040] Optionally, the water channel 120 includes a pipe channel 123, an interface channel 124, and a plug channel 125. The pipe channel 123 accommodates the flexible corrugated pipe 121, the interface channel 124 is located on the upper side of the pipe channel 123 and corresponds to the water interface 122, and the plug channel 125 accommodates the water quick-connect plug 204. The three components work together to achieve modular integration of the water channel. Thus, the plug channel 125 and the interface channel 124 are spatially interconnected, allowing the water quick-connect plug 204 to directly connect to the water interface 122 for rapid connection. The pipe channel 123 extends along the slide path, ensuring smooth expansion and contraction of the flexible corrugated pipe 121 as the L-shaped slider 200 moves, avoiding bending damage. The entire water channel 120 has a compact structure and high integration, effectively improving the efficiency of the external module 300's assembly and disassembly, as well as the overall system sealing, ensuring stable and safe liquid transmission.
[0041] Optionally, the water interface 122 is rectangular in shape and can be locked in the interface groove 124 to achieve limiting and fixing, preventing the water interface 122 from rotating in the interface groove 124, effectively positioning the assembly direction of the water interface 122, ensuring the precise docking of the water quick connector 204 and the water interface 122, and avoiding leakage or connection failure due to misalignment.
[0042] Optionally, the upper edge of the water inlet 122 is provided with a limiting protrusion 126, which can be engaged with the bottom sidewall of the plug groove 125. In this way, the cooperation between the limiting protrusion 126 and the bottom sidewall of the plug groove 125 effectively restricts the vertical displacement of the water inlet 122. This provides sufficient upward support to the water system structure during the docking of the water inlet 122 with the water quick-connect plug 204, preventing insecure connection. Simultaneously, it prevents loosening and detachment during vibration or frequent plugging and unplugging, further improving connection reliability.
[0043] Optionally, the end of the water inlet 122 is provided with an annular sealing ring, which, when inserted with the water quick-connect plug 204, achieves a tight fit through interference, effectively preventing liquid leakage. The sealing ring is made of corrosion-resistant, highly elastic fluororubber material, which can maintain its sealing performance for a long time in high temperature and high humidity environments.
[0044] Optionally, the water inlet 122 is equipped with a valve core structure consisting of a spring-loaded sealing steel ball, which remains closed under normal conditions to prevent liquid backflow or leakage. When the quick-connect water plug 204 is inserted, the push rod at the front of the plug pushes the steel ball to move against the spring pressure, opening the channel. When it is pulled out, it automatically resets and closes. This self-closing design further improves sealing reliability, prevents media leakage during disassembly and assembly, and ensures a clean and safe operating environment.
[0045] Optionally, a sealing strip 127 is provided inside the water channel 120 on the upper side of the flexible corrugated pipe 121. Two sealing strips 127 are provided, and both are on the same plane. The water channel quick-connect plug 204 can pass through the gap between the two sealing strips 127. In this way, the sealing strips 127 effectively prevent water stains and dust from entering the interior of the water channel 120, preventing aging of the flexible corrugated pipe 121 or blockage of the water channel 120. This maintains good sealing performance during the sliding of the L-shaped slider 200, ensuring a dry and clean environment inside the channel. The gap between the two sealing strips 127 can be opened when the water channel quick-connect plug 204 slides, ensuring smooth plug passage while effectively preventing external contaminants from entering, improving the durability and safety of the water system. This structural design makes water and electricity separation more thorough, and with modular expansion capabilities, it meets future functional upgrade needs and is suitable for diverse application scenarios.
[0046] Optionally, the two sealing strips 127 are arranged in the same way as the insulating rubber layer 112. During the insertion and movement of the water circuit quick-connect plug 204, the sealing strip 127 at the location of the quick-connect plug 204 is pushed to both sides, while the sealing strips 127 at other locations remain closed. This ensures dynamic sealing performance while minimizing the intrusion of external contaminants. This design further enhances the stability of the internal environment of the water circuit trough 120, allowing the sealing strips 127 to maintain good resilience and fit even during frequent insertion and removal, effectively extending their service life and ensuring the safety and reliability of the system operation.
[0047] Optionally, the load-bearing retaining tooth 205 is located between the circuit connector 203 and the water quick-connect plug 204. This location allows the load-bearing retaining tooth 205 to evenly distribute the mechanical stress generated during slider movement, preventing wear or breakage of the wiring and piping due to concentrated stress. Simultaneously, the load-bearing retaining tooth 205 is tightly connected to the inner side of the slide groove, improving sliding stability and preventing the L-shaped slider 200 from shaking or falling off when carrying the external module 300.
[0048] Optionally, the load-bearing tooth 205 is a rectangular protrusion that protrudes vertically downward on the first side 201 of the L-shaped slider 200, and its lower end face contacts the bottom of the load-bearing groove 130 to form a stable support. This effectively distributes the weight of the external module 300 and prevents the L-shaped slider 200 from deforming or jamming due to excessive load.
[0049] Optionally, a load-bearing guide rail 131 is provided inside the load-bearing groove 130, and the load-bearing guide rail 131 is tightly engaged with the side of the load-bearing retaining tooth 205. In this way, the tight engagement between the load-bearing guide rail 131 and the side of the load-bearing retaining tooth 205 can effectively limit the offset and sway of the L-shaped slider 200, enhance the vibration resistance of the structure, and ensure that the external module 300 maintains stable operation during high-speed sliding or frequent movement; at the same time, it reduces frictional resistance, making the L-shaped slider 200 slide more smoothly and extending its service life.
[0050] Optionally, the load-bearing guide rail 131 is disposed on two opposite side walls within the load-bearing groove 130, extending along the sliding direction, and forming a sliding connection with the two sides of the load-bearing retaining tooth 205, further improving the guiding accuracy. This mating structure can effectively suppress torsional deformation caused by lateral force while bearing radial load, ensuring that the L-shaped slider 200 maintains good alignment during long-term operation and preventing local stress concentration caused by uneven wear.
[0051] Optionally, the load-bearing guide rail 131 comprises a sliding track made of high-strength engineering plastic and metal balls, with the sliding track confining the metal balls to the side of the load-bearing groove 130. In this way, the metal balls roll within the sliding track, significantly reducing the coefficient of friction between the load-bearing teeth 205 and the load-bearing guide rail 131, allowing the L-shaped slider 200 to slide smoothly even under heavy loads, reducing drive energy consumption. Simultaneously, the high-strength engineering plastic possesses excellent wear resistance and self-lubricating properties, which, combined with the high-precision rolling of the metal balls, effectively extends the service life of the guide rail system.
[0052] Optionally, the surface of the metal ball bearings is treated with anti-corrosion coating to adapt to long-term operation in humid environments and avoid jamming caused by oxidation.
[0053] Combination Figure 3-4 In some optional embodiments, the external module 300 is a water purifier module 310. The power cord inside the water purifier module 310 is connected to the circuit connector 203, and the water inlet pipe 311 is connected to the water circuit quick-connect plug 204. In this way, after the water purifier module 310 is powered on, it can realize the functions of instant heating, instant filtration, and instant drinking. Moreover, the water purifier module 310 can slide freely along the embedded slide groove 100 with the L-shaped slider 200, flexibly adjusting the water outlet position to meet the water filling needs of different containers.
[0054] Optionally, the L-shaped slider 200 has a first groove 206 on its first side 201. One end of the first groove 206 extends to the junction of the first side 201 and the second side 202, and the other end is provided with a circuit connector 203. The power cord of the water purifier module 310 passes through the first groove 206 and connects to the circuit connector 203. In this way, the power cord can be confined within the first groove 206, preventing damage to the power cord due to pulling or tangling during sliding, ensuring stable and reliable power supply. It also prevents the power cord from pressing on the first side 201, which would increase the overall thickness and affect the smooth sliding of the L-shaped slider 200 within the groove. The layout of the first groove 206 makes the power cord routing more regular, further improving space utilization and safety.
[0055] Optionally, the first side 201 of the L-shaped slider 200 is provided with a second groove 207. One end of the second groove 207 extends to the junction of the first side 201 and the second side 202, and the other end is provided with a water circuit quick connector 204. The water inlet pipe 311 of the water purifier module 310 passes through the second groove 207 and connects to the water circuit quick connector 204. In this way, similar to the effect of the power cord being confined within the first groove 206, the water inlet pipe 311 is confined within the second groove 207, preventing damage or leakage caused by pulling or bending during sliding, and ensuring a stable and reliable water circuit connection. At the same time, it prevents the water inlet pipe 311 from pressing against the first side 201 and increasing the overall thickness, which would affect the smooth operation of the L-shaped slider 200 within the slide groove. The setting of the second groove 207 makes the water inlet pipe 311 more regular, improving space utilization efficiency, reducing interference risks, and further enhancing system integration and safety.
[0056] Optionally, the first groove 206 and the second groove 207 are arranged parallel to each other on the first side 201 of the L-shaped slider 200, with the spacing adapted to the layout requirements of the power line and the water inlet pipe 311 to avoid mutual interference. Both grooves extend from the junction of the first side 201 and the second side 202 to ensure that the lines and pipes are subjected to uniform force in the turning area and reduce the risk of bending damage.
[0057] Optionally, both the first groove 206 and the second groove 207 are provided with fixing buckles, which can fix the power cord and the water inlet pipe 311 in sections to prevent the interface from becoming loose due to vibration or inertial displacement during the sliding process.
[0058] Optionally, the modular wall-mounted system also includes a water heater 400; the water heater 400 is fixedly mounted on the wall above the embedded sliding groove 100, and the water purifier module 310 can slide directly below the water heater 400. This creates a collaborative working area between the water purifier module 310 and the water heater 400. When the water purifier needs hot water, it can slide directly below the water heater 400, allowing the water heater 400 to heat the water entering the water purifier module 310. When used together, users only need to slide the water purifier module 310 directly below the water heater 400 when hot water is needed; when hot water is not needed, such as when water is needed for cooking in the kitchen, the water purifier module 310 can be slid closer to the stove, making it convenient for users and improving the overall user experience.
[0059] Combination Figure 5 As shown, optionally, a limiting part 401 is provided on one side of the lower part of the water heater 400, which allows the water purifier module 310 to slide to abut against the limiting part 401 when it is directly below the water heater 400, thereby achieving positioning and preventing excessive sliding from affecting the water circuit connection.
[0060] Optionally, the water heater 400 includes a heating copper pipe 402, and the water purifier module 310 includes a first water path interface 312 that connects to the inlet of the heating copper pipe 402, and a second water path interface 313 that connects to the outlet of the heating copper pipe 402. Thus, when the water purifier module 310 slides directly below the water heater 400, the first water path interface 312 and the second water path interface 313 automatically connect to the inlet and outlet of the heating copper pipe 402, respectively, establishing a hot water circulation path; when disconnected, they automatically seal to prevent leakage. This docking structure supports rapid connection and disconnection, ensuring heat transfer efficiency while improving safety and meeting the demand for instant hot water.
[0061] Optionally, both the inlet and outlet ends of the heating copper pipe 402 are located on the limiting part 401, with the openings facing parallel to the bottom side of the water heater 400 and directly below it. The first water path interface 312 and the second water path interface 313 of the water purifier are positioned correspondingly on the upper side of the water purifier module 310. Thus, when the water purifier module 310 slides directly below the water heater 400, the first water path interface 312 and the second water path interface 313 can precisely align with and automatically engage with the inlet and outlet ends of the heating copper pipe 402, ensuring reliable connection and preventing leakage due to misalignment. The interfaces employ an elastic sealing structure, completing sealing and locking upon sliding into position, improving the stability of the connection.
[0062] Optionally, the inlet and outlet of the heating copper tube 402 are socket 321 structures set on the limiting part 401. The socket 321 structure is provided with an elastic retaining ring and a silicone sealing ring. The first water circuit interface 312 and the second water circuit interface 313 corresponding to the water purifier module 310 are plug-in connectors. When the connector slides into place, it is inserted into the socket 321. The elastic retaining ring automatically locks the annular groove outside the connector to achieve physical limiting. The silicone sealing ring is deformed under pressure to fill the gap, forming a double leak-proof guarantee.
[0063] Optionally, the water purifier module 310 is equipped with a filter assembly 314. An inlet pipe 311 connects to the filter assembly 314, and the filter assembly 314 connects to an outlet pipe 315. The outlet pipe 315 is connected to a first water interface 312 and a second water interface 313. A first electrically controlled valve 316 is installed on the section of the outlet pipe 315 between the first and second water interfaces 312 and 313. A second electrically controlled valve 317 is installed on the first and / or second water interface 313. Thus, when the water purifier module 310 is connected to the water heater 400, the first electrically controlled valve 316 is closed, and the second electrically controlled valve 317 is opened. Water flows through the filter assembly 314 and then enters the heating copper pipe 402 for circulation heating before flowing out, achieving instant hot water. When disconnected, the second electrically controlled valve 317 is closed, and the first electrically controlled valve 316 is opened, and the system switches to a direct water supply mode, ensuring uninterrupted water supply when the water purifier is used independently. The entire switching process is automatically identified and controlled by the position sensor, requiring no manual intervention and improving ease of operation and system intelligence. The position sensor monitors the relative position of the water purifier module 310 and the water heater 400 in real time. When a sliding signal is detected, the controller automatically opens the second solenoid valve 317 and closes the first solenoid valve 316, initiating the heating cycle. During separation, the action is reversed to ensure accurate water circuit on / off logic. The system also features a fault self-checking mechanism. If a valve malfunction or improper connection is detected, a buzzer alarm will be immediately triggered and the heating function will be disabled, further ensuring safety.
[0064] Optionally, the water heater 400 is a gas water heater 400, which has two combustion chambers. The main combustion chamber 403 contains a main copper pipe 404, which is connected to the indoor water supply system and is used to supply constant-temperature hot water to indoor faucets and other water points. The secondary combustion chamber 405 contains a heating copper pipe 402, which is dedicated to providing an independent heating path for the water purifier module 310. The two combustion chambers work together but their water circuits are separate, ensuring that domestic hot water and direct drinking water systems do not interfere with each other. During the heating process, the gas proportional valve precisely adjusts the heat according to the drinking water demand to maintain a constant outlet water temperature. When the water purifier module 310 is in place and connected, the controller simultaneously starts the heating program of the secondary combustion chamber 405, and the heat is quickly transferred to the heating copper pipe 402 to achieve efficient and energy-saving directional heating. The entire system takes into account both the daily water demand of the family and the demand for high-quality drinking water, improving energy efficiency and safety.
[0065] Combination Figure 4 , 6 As shown, in some optional embodiments, the embedded sliding groove 100 has two sections, namely a first sliding groove and a second sliding groove, both of which are embedded in the wall, and the first sliding groove is arranged parallel to the upper side of the second sliding groove; the water purifier module 310 is slidably connected to the first sliding groove; the water heater 400 is fixedly installed on the wall above the first sliding groove, and the water purifier module 310 can slide directly below the water heater 400; it also includes: The planting module 320 is slidably connected to the second slide. In this way, the planting module 320 can be freely pushed and pulled along the second slide, which is convenient for daily maintenance and light adjustment, and its position is staggered from that of the water purification agent module, which facilitates the synergistic effect between the two.
[0066] Optionally, the lower end of the water purifier module 310 is provided with a water collection box 318. This allows the water collection box 318 to collect condensate or overflow water generated during use, preventing drips from staining the countertop.
[0067] Optionally, the water receiving box 318 of the water purifier module 310 is equipped with a drain spout 319, and the planting module 320 is equipped with a corresponding socket 321. The drain spout 319 can be adapted to the socket 321, allowing water to be drained into the planting module 320 through the socket 321. In this way, the water in the drain spout 319 can be directly supplied to the planting module 320 for plant irrigation, realizing the recycling of water resources. When the water purifier module 310 slides to the designated position, the drain spout 319 automatically inserts into the socket 321 to form a sealed connection and prevent leakage; when separating, it quickly detaches without affecting the movement of the module.
[0068] Optionally, the planting module 320 is equipped with internal lighting. This provides ample illumination for the plants, and the lighting also has a decorative effect. The lighting can be LED full-spectrum plant growth lights, simulating the natural light cycle according to the plant's photosynthetic needs. It supports automatic timed switching and brightness adjustment, balancing energy efficiency and growth efficiency. The lights are embedded in the top inner side of the planting module 320, with a uniform distribution to prevent glare leakage, thus meeting the supplemental lighting needs of indoor plants while creating a warm and natural visual atmosphere.
[0069] The foregoing description and accompanying drawings fully illustrate embodiments of the present disclosure to enable those skilled in the art to practice them. Other embodiments may include structural and other changes. The embodiments represent only possible variations. Individual components and functions are optional unless explicitly required, and the order of operation may vary. Parts and features of some embodiments may be included or substituted for parts and features of other embodiments. Embodiments of the present disclosure are not limited to the structures described above and shown in the accompanying drawings, and various modifications and changes may be made without departing from its scope. The scope of the present disclosure is limited only by the appended claims.
Claims
1. A modular wall-mounted system, characterized in that, include: An embedded groove (100) is embedded in the wall and has an internal circuit groove (110), a water groove (120) and a load-bearing groove (130). The L-shaped slider (200) includes a first side (201) and a second side (202). The first side (201) is slidably installed in the recessed slide groove (100). The first side (201) is provided with a circuit connector (203) that can be inserted into the circuit groove (110), a water quick connector (204) that can be inserted into the water groove (120), and a load-bearing tooth (205) that can be inserted into the load-bearing groove (130). The second side (202) is located outside the recessed slide groove (100) and is parallel to the wall. The external module (300) is fixedly mounted on the second side (202) of the L-shaped slider (200) parallel to the wall, and can slide along the embedded groove (100) with the L-shaped slider (200).
2. The modular wall-mounted system according to claim 1, characterized in that, The circuit slot (110) is provided with a conductive contact (111), which can be slidably connected with the circuit connector (203).
3. The modular wall-mounted system according to claim 2, characterized in that, An insulating rubber layer (112) is provided inside the circuit groove (110) above the conductive contact (111). There are two insulating rubber layers (112), and the two insulating rubber layers (112) are on the same plane. The circuit connector (203) can pass through the gap between the two insulating rubber layers (112).
4. The modular wall-mounted system according to claim 1, characterized in that, The water channel (120) is provided with a flexible corrugated pipe (121), and the flexible corrugated pipe (121) is provided with a water channel interface (122). The water channel interface (122) can be plugged into the water channel quick connector (204).
5. The modular wall-mounted system according to claim 4, characterized in that, A sealing strip (127) is provided inside the water channel (120) on the upper side of the flexible corrugated pipe (121). There are two sealing strips (127), and the two sealing strips (127) are on the same plane. The water channel quick connector (204) can pass through the gap between the two sealing strips (127).
6. The modular wall-mounted system according to claim 1, characterized in that, The load-bearing locking tooth (205) is located between the circuit connector (203) and the water circuit quick connector (204).
7. The modular wall-mounted system according to claim 6, characterized in that, The load-bearing groove (130) is provided with a load-bearing guide rail (131), which is in close contact with the side of the load-bearing clip (205).
8. The modular wall-mounted system according to any one of claims 1 to 7, characterized in that, The external module (300) is the water purifier module (310). The power supply and circuit connector (203) inside the water purifier module (310) are connected, and the water circuit and water circuit quick connector (204) are connected.
9. The modular wall-mounted system according to claim 8, characterized in that, Also includes: The water heater (400) is fixedly mounted on the wall above the embedded slide (100), and the water purifier module (310) can slide directly below the water heater (400).
10. The modular wall-mounted system according to claim 9, characterized in that, The water heater (400) is equipped with a heating copper pipe (402), and the water purifier module (310) is equipped with a first water circuit interface (312) that can be connected to the water inlet of the heating copper pipe (402), and a second water circuit interface (313) that can be connected to the water outlet of the heating copper pipe (402).