Net heat all-in-one machine
By integrating water purification and heating modules into a single three-dimensional space through the layered layout of the integrated water purifier and heater, the problem of large space occupation of the integrated water purifier and heater is solved, achieving a compact structure and efficient water supply, and improving the reliability and space utilization of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- KEMFLO (NANJING) ENVIRONMENTAL TECHNOLOGY CO LTD
- Filing Date
- 2025-08-27
- Publication Date
- 2026-07-31
AI Technical Summary
The existing split design of integrated air purifier and heating system results in a large space occupation, making it difficult to use efficiently in space-constrained scenarios such as small apartments. In addition, the complex piping connection makes it difficult to achieve compact integration.
The system adopts a three-dimensional layout with multiple filter cartridges of the water purification unit arranged horizontally, the heating tank and booster pump located above the water purification unit, and the water circuit board set vertically. By utilizing the space at the bottom horizontally and developing the space at the top vertically, the functional modules are integrated into the same three-dimensional space, reducing the overall footprint.
The integrated water purifier and heating unit has a compact structure, occupies little space, avoids the compression of storage and operation space caused by scattered layouts, reduces noise radiation, and improves water supply efficiency and equipment reliability.
Smart Images

Figure CN224572557U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of water treatment equipment technology, and in particular to integrated water purification and heating units. Background Technology
[0002] As water purifier technology evolves towards multi-functional integration, the market demand for multi-functional drinking water equipment is becoming increasingly prominent. Currently, although a small number of integrated water purifier and heating products have emerged, the overall market is still dominated by separate combinations of water purifiers and water dispensers.
[0003] Traditional separate designs suffer from significant drawbacks in terms of structural compactness. Water purifiers and water dispensers each require independent spaces, and stacking them greatly increases the space occupied in the installation area. Whether on kitchen countertops or inside cabinets, efficient space utilization is difficult, especially in small apartments or other space-constrained settings, where this dispersed layout further squeezes already limited storage or workspace. Furthermore, the pipe connections between the two not only increase the complexity of the installation layout but also make it difficult to achieve a compact and integrated overall water system. Utility Model Content
[0004] Based on this, a combined air purifier and heating unit is provided to solve the problem of large space occupation of existing combined air purifier and heating units.
[0005] Embodiments of this application disclose an integrated air purifier and heater, comprising:
[0006] Mid-frame;
[0007] A water purification mechanism passes through the middle frame; the water purification mechanism includes multiple filter elements, which are arranged horizontally.
[0008] A heating tank is installed on the middle frame and arranged above the water purification mechanism. The axis of the heating tank is arranged along the height direction of the integrated water purification and heating machine.
[0009] A booster pump is mounted on the middle frame and is arranged above the water purification mechanism;
[0010] A water channel plate is installed on the middle frame. The water channel plate is vertically arranged and perpendicular to the axis of the filter element.
[0011] In one embodiment, the booster pump is arranged vertically between the heat tank and the water circuit board, and the booster pump is parallel to the heat tank.
[0012] In one embodiment, a partition is provided between the booster pump and the water circuit board, the partition is provided with a through hole, and / or the partition and the middle frame enclose a through hole, the through hole being used for pipeline communication between the booster pump and the water circuit board.
[0013] In one embodiment, the integrated air purifier and heater further includes:
[0014] A negative pressure valve is arranged above the water purification mechanism;
[0015] A water pump is arranged above the water purification mechanism;
[0016] The negative pressure valve and the water pump are both arranged between the water circuit board and the booster pump;
[0017] The water pump is connected downstream of the negative pressure valve.
[0018] In one embodiment, the hot tank is provided with an outlet at the bottom, and the bottom end of the outlet is connected to a hot water pump;
[0019] The outlet is arranged coaxially with the hot water pump.
[0020] In one embodiment, the middle frame includes a first barrier plate that is perpendicular to the axial direction of the filter element;
[0021] The booster pump is physically isolated from the hot tank by the first barrier plate.
[0022] In one embodiment, the integrated air purifier and heater further includes:
[0023] The main control board is installed at the front end of the middle frame and arranged above the water purification mechanism. The main control board is communicatively connected to the hot water tank.
[0024] The display panel is mounted on the front end of the middle frame and arranged above the water purification mechanism. The display panel is communicatively connected to the main control board.
[0025] The middle frame includes a second barrier plate, which is perpendicular to the axial direction of the filter element. The first barrier plate and the second barrier plate are arranged sequentially along the axial direction of the filter element. The main control board and the display board are physically isolated from the hot tank through the second barrier plate.
[0026] In one embodiment, the integrated air purifier and heater further includes:
[0027] An adapter is mounted on the middle frame and vertically arranged above the water purification mechanism; the adapter is electrically connected to the main control board.
[0028] The middle frame includes a third barrier plate, which is parallel to the axial direction of the filter element. One end of the third barrier plate is connected to the first barrier plate, and the other end extends towards the water circuit plate. The adapter is physically isolated from the booster pump through the third barrier plate.
[0029] In one embodiment, the middle frame further includes a fourth barrier plate, which is parallel to the axial direction of the filter element, and one end of the fourth barrier plate is connected to the first barrier plate and the other end is connected to the second barrier plate.
[0030] The first barrier plate, the second barrier plate, and the fourth barrier plate enclose and construct a hot tank tank, and the hot tank is arranged inside the hot tank tank.
[0031] In one embodiment, the outer wall of the fourth barrier plate is provided with a plurality of reinforcing ribs, which extend outward from the fourth barrier plate;
[0032] The reinforcing rib includes an outer reinforcing frame and inner reinforcing plates arranged crosswise within the outer reinforcing frame. The two ends of the inner reinforcing plates are fixedly connected to the interior of the outer reinforcing frame.
[0033] In one embodiment, the integrated air purification and heating unit further includes a plurality of wire channels, the wire channels including mutually isolated high-voltage wire channels and low-voltage wire channels;
[0034] The outer rib frame and the fourth barrier plate enclose and construct the high-voltage conductor trough or the low-voltage conductor trough.
[0035] According to the embodiments of this application, the integrated water purifier and heat pump uses a middle frame as a carrier and adopts a three-dimensional layout with upper and lower layers. Specifically, multiple filter elements of the water purification mechanism are arranged horizontally, making full use of the horizontal space of the middle frame and avoiding the height redundancy caused by vertical stacking of filter elements. The heating tank and booster pump are both arranged above the water purification mechanism, with the heating tank axis set vertically along the height direction. The water circuit board is set vertically and perpendicular to the filter element axis, which can serve as a centralized carrier for water circuit connection and avoid excessive occupation in the width direction. By utilizing the bottom space horizontally and developing the upper space vertically, the vertically layered design integrates the originally separate functional modules of the equipment into the same three-dimensional space, significantly reducing the overall footprint. Through the above arrangement, the integrated water purifier and heat pump has a compact structure, occupies little space, and avoids the compression of storage and operating space by the dispersed layout. Attached Figure Description
[0036] Figure 1 This is a schematic diagram of the structure of an integrated air purifier and heat pump according to an embodiment of this application.
[0037] Figure 2This is a schematic diagram illustrating the negative pressure valve and water pump in an integrated water purification and heating unit according to an embodiment of this application.
[0038] Figure 3 This is a structural schematic diagram of an integrated air purifier and heat pump according to an embodiment of this application, from another perspective.
[0039] Figure label:
[0040] 100. Water purification mechanism; 110. Filter element; 111. Pre- and post-filter elements; 112. RO filter element;
[0041] 200. Hot can;
[0042] 300. Booster pump;
[0043] 400. Negative pressure valve;
[0044] 500. Water pump;
[0045] 600. Hot water pump;
[0046] 700. Water circuit board; 710. Inlet; 720. Outlet;
[0047] 800, Middle frame; 810, First baffle plate; 820, Second baffle plate; 830, Third baffle plate; 840, Fourth baffle plate; 841, Hot tank tank; 850, First mounting sleeve; 860, Second mounting sleeve;
[0048] 900. Main control board; 910. Display board; 920. Adapter;
[0049] 1000, partition; 1010, through hole;
[0050] 1100, Reinforcing rib; 1110, External reinforcing frame; 1120, Internal reinforcing plate;
[0051] 1200, cable tray; 1210, high-voltage cable tray; 1220, low-voltage cable tray; Detailed Implementation
[0052] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.
[0053] In the description of this application, it should be understood that if terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" appear, these terms indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.
[0054] Furthermore, where the terms "first" and "second" appear, these terms are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined with "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, where the term "multiple" appears, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.
[0055] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0056] In this application, unless otherwise expressly specified and limited, the use of descriptions such as "above" or "below" the second feature indicates that the first and second features are in direct contact or indirect contact via an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. Similarly, "below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0057] It should be noted that if an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. If an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. If so, the terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used in this application are for illustrative purposes only and do not represent the only possible implementation.
[0058] See Figure 1 This application proposes an integrated water purification and heating machine, which includes a middle frame 800, a water purification mechanism 100, a heating tank 200, a booster pump 300, and a water circuit board 700. The water purification mechanism 100 passes through the middle frame 800 and includes multiple filter elements 110 arranged horizontally. The heating tank 200 is mounted on the middle frame 800 and is positioned above the water purification mechanism 100, with its axis arranged along the height of the integrated water purification and heating machine. The booster pump 300 is mounted on the middle frame 800 and positioned above the water purification mechanism 100. The water circuit board 700 is mounted on the middle frame 800, is vertically arranged, and is perpendicular to the axis of the filter elements 110.
[0059] According to the embodiments of this application, the integrated water purifier and heat pump uses a middle frame 800 as a carrier and adopts a three-dimensional layout with upper and lower layers. Specifically, the multiple filter elements 110 of the water purification mechanism 100 are arranged horizontally, making full use of the lateral space of the middle frame 800 and avoiding the height redundancy caused by the vertical stacking of the filter elements 110. The heating tank 200 and the booster pump 300 are both arranged above the water purification mechanism 100, and the axis of the heating tank 200 is set vertically along the height direction. The water circuit plate 700 is set vertically and perpendicular to the axis of the filter elements 110, which can serve as a centralized carrier for water circuit connection and avoid excessive occupation in the width direction. By utilizing the bottom space horizontally and developing the upper space vertically, the vertically layered design integrates the originally separate functional modules of the equipment into the same three-dimensional space, greatly reducing the overall footprint. Through the above arrangement, the integrated water purifier and heat pump has a compact structure, occupies little space, and avoids the compression of storage and operation space by the dispersed layout.
[0060] It is understandable that the axis of the hot tank 200 is arranged along the height direction of the integrated heat and water purification unit, where the height direction refers to the vertical or approximately vertical direction.
[0061] In some embodiments, the booster pump 300 is arranged vertically between the heat tank 200 and the water circuit board 700, and the booster pump 300 is parallel to the heat tank 200. The vertical arrangement of the booster pump 300 facilitates the pipeline layout of the booster pump 300 and the heat tank 200, and makes the overall length dimension of the integrated heat and water purifier as compact as possible.
[0062] In some embodiments, the top surface of the booster pump 300 is lower than the top surface of the hot tank 200, so that there is a height difference between the booster pump 300 and the hot tank 200, which facilitates the arrangement of pipelines on the respective top surfaces of the hot tank 200 and the booster pump 300.
[0063] See Figure 1 In some embodiments, a partition 1000 is provided between the booster pump 300 and the water circuit board 700. The partition 1000 has a through hole 1010, and / or the partition 1000 and the middle frame 800 enclose the through hole 1010, which allows the pipeline between the booster pump 300 and the water circuit board 700 to communicate. When the booster pump 300 is working, it will generate noise due to mechanical vibration. The partition 1000 acts as a physical barrier.
[0064] The partition 1000 and the middle frame 800 enclose a relatively sealed cavity space, enclosing the booster pump 300. This allows noise to be reflected and attenuated multiple times within the cavity, rather than directly diffused to other areas inside the equipment. It also blocks the direct transmission of noise to the water circuit board 700 and surrounding components, reducing the noise radiation range and lowering the overall noise level of the equipment at its source. Simultaneously, this cavity structure provides space for the addition of additional noise reduction mechanisms such as insulation cotton and damping pads. After lining the inner walls of the cavity with sound-absorbing materials such as insulation cotton, vibration energy and sound waves can be further absorbed, significantly improving the noise reduction effect.
[0065] The through hole 1010 not only meets the pipeline connection requirements between the booster pump 300 and the water circuit board 700, ensuring smooth water flow, but also reduces noise leakage from the through hole 1010 by minimizing the opening size.
[0066] See Figure 3In some embodiments, the water purification unit 100 includes pre- and post-filter cartridges 111 and an RO filter cartridge 112 (Reverse Osmosis Filter). The pre- and post-filter cartridges 111 are pre-filters and post-filters. The RO filter cartridge 112 is connected downstream of the pre-filter and upstream of the post-filter. That is, water first passes through the pre-filter, then flows into the RO filter cartridge 112, and the water treated by the RO filter cartridge 112 flows into the post-filter. The pre- and post-filter cartridges 111 and the RO filter cartridge 112 are arranged sequentially in a horizontal direction. Specifically, the pre-filter is located downstream of the inlet 710, filtering large particles such as sediment and rust, and protecting the subsequent RO filter cartridge 112. The post-filter is located downstream of the RO filter cartridge 112, further improving the taste of the water, such as by adsorbing residual chlorine and adjusting the pH value. The RO filter cartridge 112 serves as the core filtration component, removing heavy metals, bacteria, and other harmful substances through reverse osmosis technology. Since the lifespan of each filter material in the water purification unit 100 is inconsistent, the layout of multiple filter elements 110 is more reasonable. If the flow rate of room temperature water is increased later, the multiple filter elements 110 have more room for operation.
[0067] In some embodiments, the pre- and post-filter elements 111 are configured as PPC filter elements 110 (Polypropylene Composite Filter).
[0068] With the above arrangement, multiple filter elements 110 are arranged horizontally, occupying little vertical space in the equipment. The horizontal arrangement makes the filter elements 110 linearly aligned, allowing for individual disassembly during replacement without the need to disassemble the entire assembly.
[0069] See Figure 3 In some embodiments, the middle frame 800 includes a first mounting housing 850 and a second mounting housing 860, with the front and rear filter elements 111 arranged within the first mounting housing 850. The RO filter element 112 is arranged within the second mounting housing 860. The first and second mounting housings 850 and 860 are arranged in a horizontal array. The ends of the front and rear filter elements 111 and the RO filter element 112 are engaged with filter element mounting seats on the water channel plate 700.
[0070] In some embodiments, the integrated water purification and heating unit further includes a negative pressure valve 400 and a water pump 500. The negative pressure valve 400 is arranged above the water purification mechanism 100; the water pump 500 is arranged above the water purification mechanism 100; both the negative pressure valve 400 and the water pump 500 are arranged between the water circuit board 700 and the booster pump 300. The water pump 500 is connected downstream of the negative pressure valve 400.
[0071] Specifically, the negative pressure valve 400 and the water pump 500 are both installed above the water purification unit 100, between the water circuit board 700 and the booster pump 300. They are arranged axially along the filter element 110, avoiding space waste caused by dispersed component placement. The water pump 500 is connected downstream of the negative pressure valve 400; water flows through the negative pressure valve 400, is processed by the negative pressure valve 400, and then enters the water pump 500, before connecting to the outlet 720 on the water circuit board 700 via subsequent piping. The negative pressure valve 400, water pump 500, water circuit board 700, and booster pump 300 share the same space above the water purification unit 100, achieving a compact arrangement through the structural constraints of the middle frame 800, without occupying additional longitudinal or lateral redundant space. Compared to the messy distribution of pipes and auxiliary components in traditional split designs, this centralized layout makes efficient use of the space above the water purification unit 100, further reducing the overall size of the equipment.
[0072] The negative pressure valve 400 and the water pump 500 are located between the water circuit board 700 and the booster pump 300. After water flows out of the water circuit board 700, it passes through the negative pressure valve 400 and the water pump 500 in sequence via a short pipeline, reducing pipeline detours and redundancy, making pipeline connections more regular, reducing the intersection of pipelines across areas, and reducing the layout complexity during installation. The compact water path reduces water flow resistance, improves water supply efficiency, and reduces the risk of leakage and energy loss caused by excessively long pipelines. The negative pressure valve 400 is used to balance water pressure and prevent water backflow or water supply interruption caused by negative pressure, while the water pump 500 can assist in increasing water flow power. The combination of the two can effectively solve the pressure fluctuation problem that may occur during water purification. The close arrangement of the two between the water circuit board 700 and the booster pump 300 ensures that the water filtered by the water purification unit 100 enters the hot tank 200 or subsequent pipelines stably, improving the reliability of equipment operation.
[0073] See Figure 1 In some embodiments, the bottom of the hot tank 200 is provided with an outlet, and the bottom end of the outlet is connected to the hot water pump 600; the outlet and the hot water pump 600 are arranged coaxially.
[0074] Specifically, the outlets of the hot water pump 600 and the heating tank 200 are arranged coaxially to ensure a smooth water flow path and reduce the risk of eddies and air bubble intake. The inlets of the hot water pump 600 and the heating tank 200 are located at the bottom. Utilizing the rising characteristic of air bubbles, this ensures that the air bubbles generated during heating are concentrated at the top of the heating tank 200, away from the suction port of the hot water pump 600, thus preventing air bubbles from entering the pipeline and causing unstable water flow or damage to the pump body of the hot water pump 600.
[0075] With the above configuration, when the heating element inside the hot water tank 200 heats the water, it will generate bubbles, which will rise to the surface. Since the outlet and the hot water pump 600 are located at the bottom of the hot end, the rising bubbles will not reach the outlet and the hot water pump 600, thus avoiding interference with the normal operation of the hot water pump 600.
[0076] See Figure 3 In some embodiments, the middle frame 800 includes a first barrier plate 810, which is perpendicular to the axial direction of the filter element 110; the booster pump 300 is physically isolated from the hot tank 200 through the first barrier plate 810. The first barrier plate 810 is a vertical or approximately vertical plate structure, located between the booster pump 300 and the hot tank 200, physically separating them into different spatial regions, so that the booster pump 300 and the hot tank 200 do not come into contact, thus achieving physical isolation.
[0077] Specifically, the booster pump 300 generates mechanical vibration during operation, while the heat storage tank 200, as a heat storage component, requires a relatively stable environment to avoid loosening of pipe connections or damage to the heat storage tank 200 itself due to vibration. The first baffle plate 810, through physical isolation, can reduce the transmission of vibration from the booster pump 300 to the heat storage tank 200, reducing the risk of vibration fatigue in the heat storage tank 200 and surrounding pipes. The heat storage tank 200 generates heat during heating, and the first baffle plate 810 can, to a certain extent, prevent the heat from the heat storage tank 200 from diffusing to the booster pump 300. This prevents the booster pump 300 from being in a high-temperature environment for extended periods, reducing performance degradation or shortened lifespan due to overheating, and ensuring long-term stable operation of the equipment. The first baffle plate 810 achieves functional compatibility and spatial coordination between the booster pump 300 and the heat storage tank 200 through physical isolation, reducing mutual interference between components and optimizing the utilization of internal space.
[0078] See Figure 3 In some embodiments, the integrated water purification and heating unit further includes a main control board 900 and a display board 910. The main control board 900 is installed at the front end of the middle frame 800 and arranged above the water purification mechanism 100. The main control board 900 is communicatively connected to the heating tank 200. The display board 910 is installed at the front end of the middle frame 800 and arranged above the water purification mechanism 100. The display board 910 is communicatively connected to the main control board 900. The middle frame 800 includes a second barrier plate 820. The second barrier plate 820 is perpendicular to the axis of the filter element 110. The first barrier plate 810 and the second barrier plate 820 are arranged sequentially along the axis of the filter element 110. The main control board 900 and the display board 910 are physically isolated from the heating tank 200 through the second barrier plate 820.
[0079] Specifically, the main control board 900 and display board 910 are located at the front end of the middle frame 800, close to the user operation side. The main control board 900 is positioned above the water purification mechanism 100, making full use of the vertical space above the water purification mechanism 100 and avoiding occupying the horizontal installation area of the bottom filter element 110. This creates a compact, layered layout with the water purification mechanism 100 below, without increasing the overall size of the equipment. The front-end arrangement facilitates close-range connection between the main control board 900 and the display board 910, reducing the length of the wiring between them. Simultaneously, its communication connection with the heating tank 200 can be achieved through pre-set wiring channels within the middle frame 800, avoiding wiring detours across areas and conforming to the standardized design of the overall piping and wiring.
[0080] When the heating tank 200 is in operation, it generates heat and some vibration. The second barrier plate 820 separates the main control board 900, display board 910, and heating tank 200 into different areas, preventing heat transfer to electronic components and avoiding the impact of high temperatures on circuit stability. It also reduces the interference of heating tank 200 vibration on precision electronic components, improving equipment reliability. Physical isolation is achieved through the second barrier plate 820, eliminating the need for separate, long-distance installation space for electronic components, and enabling safe separation of functional areas within a compact layout.
[0081] See Figure 3 In some embodiments, the integrated water purifier and heater also includes an adapter 920, which is mounted on the middle frame 800 and vertically arranged above the water purification mechanism 100. The adapter 920 is electrically connected to the main control board 900. The middle frame 800 includes a third barrier plate 830, which is parallel to the axial direction of the filter element 110. One end of the third barrier plate 830 is connected to the first barrier plate 810, and the other end extends towards the water circuit board 700. The adapter 920 is physically isolated from the booster pump 300 through the third barrier plate 830.
[0082] Adapter 920 is located on the side of the heating tank 200 near the water circuit board 700. Adapter 920 typically converts external AC power (220V) into DC power (12V or 24V, etc.) required by the internal components of the equipment. This DC power is then supplied to the main control board 900 via an electrical connection. The main control board 900 then supplies power to all power-consuming components such as the heating elements, hot water pump 600, water pump 500, and booster pump 300. Since the heating elements inside the heating tank 200 have high power output, placing adapter 920 close to the heating tank 200 shortens the power supply line length, reduces line loss and voltage drop, and ensures stable operation of the heating tank 200.
[0083] The third barrier plate 830 is connected to the first barrier plate 810 at one end and extends to the water channel plate 700 at the other end. It forms a mutually supporting frame structure with other parts of the middle frame 800, which enhances the overall rigidity of the middle frame 800 and provides a stable installation foundation for components such as the adapter 920 and the booster pump 300, thereby indirectly improving the durability of the equipment.
[0084] See Figure 3 In some embodiments, the middle frame 800 further includes a fourth barrier plate 840, which is parallel to the axial direction of the filter element 110, and one end of the fourth barrier plate 840 is connected to the first barrier plate 810, while the other end is connected to the second barrier plate 820. The first barrier plate 810, the second barrier plate 820, and the fourth barrier plate 840 together form a hot tank tank 841, within which the hot tank 200 is arranged.
[0085] The enclosing structure of the hot tank 841 physically separates the hot tank 200 from adjacent components, preventing the heat generated by the hot tank 200 during operation from spreading to surrounding electronic components or vibration-sensitive parts. The fourth barrier plate 840 connects the first barrier plate 810, the second barrier plate 820, and the third barrier plate 830 to form a frame-type support structure for the middle frame 800, significantly improving the deformation resistance and load-bearing capacity of the middle frame 800.
[0086] Furthermore, placing the hot tank 200 within the hot tank tank 841 reduces the direct radiation and convection of heat generated during operation to the surrounding environment. The first barrier plate 810, the second barrier plate 820, and the fourth barrier plate 840 themselves form thermal resistance, slowing down the rate of heat conduction through the solid. The hot tank tank 841 reduces airflow between the inside and outside of the tank, decreasing heat loss due to air convection and indirectly improving the insulation efficiency of the hot tank 200. For mechanical components such as the booster pump 300, this reduces the increase in ambient temperature caused by heat absorption, preventing any impact on their operational stability. For electronic components such as the main control board 900 and the display board 910, this reduces interference from high temperatures on circuit performance.
[0087] Furthermore, special insulation materials such as insulation cotton and heat-insulating foam can be filled into the inner wall of the hot tank 841 or between the hot tank 200 and the baffle plate to improve the insulation effect of the hot tank 200.
[0088] See Figure 3 In some embodiments, the outer wall of the fourth barrier plate 840 is provided with a plurality of reinforcing ribs 1100, which extend outward from the fourth barrier plate 840; the reinforcing ribs 1100 include an outer rib frame 1110 and an inner rib plate 1120 intersectingly arranged in the outer rib frame 1110, and the two ends of the inner rib plate 1120 are fixedly connected to the interior of the outer rib frame 1110.
[0089] Specifically, the reinforcing rib 1100 extends outward from the fourth barrier plate 840, protruding outward from its outer wall to form a structure protruding from the surface of the fourth barrier plate 840, reducing the gap between it and the outer shell. This design significantly enhances the deformation resistance of the outer wall of the fourth barrier plate 840. When a user touches the equipment shell, especially the area corresponding to the fourth barrier plate 840, or when the equipment experiences a minor external impact, the reinforcing rib 1100 disperses the external force, preventing the fourth barrier plate 840 from developing significant dents due to stress. By strengthening structural rigidity, the reinforcing rib 1100 ensures that the gap between the fourth barrier plate 840 and the outer shell remains uniform and stable, improving the user's experience of a solid and well-organized device.
[0090] The reinforcing rib 1100 includes an outer reinforcing frame 1110 and inner reinforcing plates 1120. The outer reinforcing frame 1110 is a wraparound frame structure, and the inner reinforcing plates 1120 are intersected inside the outer reinforcing frame 1110, with both ends fixedly connected to the inner side of the outer reinforcing frame 1110, forming a grid-like reinforcing structure. The combined structure of the outer reinforcing frame 1110 and the intersecting inner reinforcing plates 1120 distributes the stress on the outer wall of the fourth barrier plate 840 to multiple support points, making the fourth barrier plate 840 less prone to deformation due to excessive local stress when bearing the weight of internal components. Through the above arrangement, the installation stability of internal components is indirectly ensured, avoiding problems such as component displacement and pipeline loosening caused by deformation of the fourth barrier plate 840, further improving the long-term reliability of the equipment, fundamentally reducing usage failures caused by structural looseness, and indirectly optimizing the user experience.
[0091] In some embodiments, the integrated air purifier and heat pump also includes a plurality of wire channels 1200, which include a high-voltage wire channel 1210 and a low-voltage wire channel 1220 that are isolated from each other; the outer rib frame 1110 and the fourth barrier plate 840 enclose and construct the high-voltage wire channel 1210 or the low-voltage wire channel 1220.
[0092] The wire trough 1200 includes a high-voltage wire trough 1210 and a low-voltage wire trough 1220. The high-voltage wire trough 1210 is used to accommodate power supply lines, such as the high-voltage lines of the adapter 920 connected to the heating component of the hot tank 200, or the high-voltage lines of the adapter 920 connected to the booster pump 300. The low-voltage wire trough 1220 is used to accommodate signal lines, such as the low-voltage signal lines between the main control board 900 and the display board 910, and the sensors. The two are isolated from each other to achieve separation of high and low voltage.
[0093] High-voltage power lines generate electromagnetic radiation during operation. If mixed with low-voltage signal lines, this can interfere with the transmission accuracy of low-voltage signals, leading to equipment malfunctions. The cable tray 1200 physically isolates high-voltage and low-voltage lines in different trays, spatially blocking electromagnetic interference paths. This ensures precise control of components such as the heat tank 200 and booster pump 300 by the main control board 900, improving equipment reliability. During installation, high-voltage lines can be quickly laid out using the high-voltage cable tray 1210 and low-voltage lines using the low-voltage cable tray 1220, avoiding messy and tangled wiring. During maintenance, the tray markings allow for quick differentiation between high-voltage and low-voltage lines, facilitating troubleshooting and reducing maintenance time.
[0094] High-voltage power lines, if in direct contact with low-voltage lines or if short circuits occur due to friction damage, can lead to safety risks such as leakage and overheating. The 1200mm isolation design of the conductor trough, separating high-voltage and low-voltage lines, physically isolates them, reducing the probability of direct contact. Simultaneously, the trough itself protects the conductors, reducing the risk of damage from external components and improving the electrical safety of the equipment.
[0095] Specifically, in some embodiments, the high-voltage wire channel 1210 is disposed above the low-voltage wire channel 1220, that is, the high-voltage wire channel 1210 is disposed on the side of the low-voltage wire channel 1220 away from the filter element 110, so as to avoid water leakage from the filter element 110 or water circuit, which could affect the high-voltage wire channel 1220 and improve safety.
[0096] Furthermore, the conductor trough 1200 is formed by the outer rib frame 1110 of the reinforcing rib 1100 and the outer wall of the fourth barrier plate 840. This eliminates the need to occupy additional internal space within the fourth barrier plate 840. Simultaneously, it utilizes the gaps between the reinforcing ribs 1100 or the gap between the outer rib frame 1110 and the fourth barrier plate 840 to construct wiring channels, achieving space reuse and further reducing the overall size of the equipment.
[0097] With the above arrangement, the adapter 920 is vertically positioned above the water purification unit 100, making full use of the vertical dimension of the upper space. This creates a three-dimensional, layered, and horizontally partitioned layout with the horizontally arranged filter element 110, the same-layer heating tank 200, and the booster pump 300, avoiding additional width occupation in the horizontal direction and further reducing the overall size of the equipment. The third barrier plate 830 separates the adapter 920 from the booster pump 300, preventing the mechanical vibration of the booster pump 300 from being transmitted to the adapter 920, thus avoiding poor circuit contact or component damage caused by vibration. Simultaneously, it also reduces the possibility of electromagnetic interference from the booster pump 300 to the circuit components of the adapter 920, ensuring power supply stability.
[0098] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.
[0099] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.
Claims
1. A heat and power unit, characterized in that, include: Mid-frame (800); A water purification mechanism (100) passes through the middle frame (800); the water purification mechanism (100) includes multiple filter elements (110) arranged in a horizontal direction; A hot tank (200) is installed on the middle frame (800). The hot tank (200) is arranged above the water purification mechanism (100). The axis of the hot tank (200) is arranged along the height direction of the integrated water purification and heating machine. A booster pump (300) is mounted on the middle frame (800) and is arranged above the water purification mechanism (100); A water channel plate (700) is installed on the middle frame (800). The water channel plate (700) is vertically arranged and perpendicular to the axis of the filter element (110).
2. The heat-only integrated machine of claim 1, wherein, The booster pump (300) is arranged vertically between the hot tank (200) and the water circuit board (700), and the booster pump (300) is parallel to the hot tank (200).
3. The heat-only integrated machine of claim 2, wherein, A partition (1000) is provided between the booster pump (300) and the water circuit board (700). The partition (1000) is provided with a through hole (1100), and / or the partition (1000) and the middle frame (800) enclose the through hole (1100), and the through hole (1100) is used for the pipeline connection between the booster pump (300) and the water circuit board (700).
4. The heat-only integrated machine of claim 2, wherein, The integrated air purifier and heating unit also includes: A negative pressure valve (400) is arranged above the water purification mechanism (100); A water pump (500) is arranged above the water purification unit (100); The negative pressure valve (400) and the water pump (500) are both arranged between the water circuit board (700) and the booster pump (300); The water pump (500) is connected downstream of the negative pressure valve (400).
5. The heat-only integrated machine of claim 1 wherein, The hot tank (200) has an outlet at the bottom, and the bottom end of the outlet is connected to a hot water pump (600); The outlet is arranged coaxially with the hot water pump (600).
6. The heat-only integrated machine of claim 1 wherein, The middle frame (800) includes a first barrier plate (810), which is perpendicular to the axis of the filter element (110). The booster pump (300) is physically isolated from the hot tank (200) by the first barrier plate (810).
7. The heat-only integrated machine of claim 6, wherein, The integrated air purifier and heating unit also includes: The main control board (900) is installed at the front end of the middle frame (800) and arranged above the water purification mechanism (100). The main control board (900) is communicatively connected to the hot tank (200). Display panel (910), the display panel (910) is installed at the front end of the middle frame (800) and arranged above the water purification mechanism (100), the display panel (910) is communicatively connected to the main control board (900); The middle frame (800) includes a second barrier plate (820), which is perpendicular to the axis of the filter element (110). The first barrier plate (810) and the second barrier plate (820) are arranged sequentially along the axis of the filter element (110). The main control board (900) and the display board (910) are physically isolated from the hot tank (200) through the second barrier plate (820).
8. The heat-only integrated machine of claim 7, wherein, The integrated air purifier and heating unit also includes: An adapter (920) is mounted on the middle frame (800) and vertically arranged above the water purification mechanism (100). The adapter (920) is electrically connected to the main control board (900). The middle frame (800) includes a third barrier plate (830), which is parallel to the axial direction of the filter element (110). One end of the third barrier plate (830) is connected to the first barrier plate (810), and the other end extends towards the water circuit plate (700). The adapter (920) is physically isolated from the booster pump (300) through the third barrier plate (830).
9. The direct heat integral machine of claim 7, wherein, The middle frame also includes a fourth barrier plate (840), which is parallel to the axis of the filter element (110), and one end of the fourth barrier plate (840) is connected to the first barrier plate (810), and the other end is connected to the second barrier plate (820). The first barrier plate (810), the second barrier plate (820) and the fourth barrier plate (840) enclose and construct a hot tank tank (841), and the hot tank (200) is arranged in the hot tank tank (841).
10. The integrated air purifier and heater according to claim 9, characterized in that, The outer wall of the fourth barrier plate (840) is provided with a plurality of reinforcing ribs (1100), and the reinforcing ribs (1100) extend outward from the fourth barrier plate (840); The reinforcing rib (1100) includes an outer reinforcing frame (1110) and an inner reinforcing plate (1120) intersectingly arranged within the outer reinforcing frame (1110). The two ends of the inner reinforcing plate (1120) are fixedly connected to the interior of the outer reinforcing frame (1110).
11. The heat-only integrated machine of claim 10, wherein, The integrated air purifier and heat pump also includes several wire channels (1200), which include mutually isolated high-voltage wire channels (1210) and low-voltage wire channels (1220); The outer rib frame (1110) and the fourth barrier plate (840) enclose and construct the high-voltage conductor trough (1210) or the low-voltage conductor trough (1220).