Water pump assembly, water power module and heating and ventilation equipment

CN224664772UActive Publication Date: 2026-08-21GD MIDEA AIR CONDITIONING EQUIP CO LTD
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Patent Information

Application Number
CN202521963493.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-11
Publication Date
2026-08-21
Estimated Expiration
2035-09-11

AI Technical Summary

Technical Problem

然而,由于支架的设置占据了空间,这往往会导致与水泵相邻的管路进行不必要的弯曲和绕行,增加了管路布局的复杂性

Benefits of technology

本实用新型实施例的水泵组件通过支腿将第一支撑台悬空设置在底盘上侧,从而利用了支架在高度方向上产生的空间为第一管路提供了穿行的通道,避免了管路的不必要弯曲和绕行,从而降低了布管的复杂性,避免了因管路延长而导致的流体阻力增加,不仅减少了管路材料的消耗,节约了水泵组件的材料成本,还降低了水泵组件整体的安装难度,缩短了水泵组件的装配时长;再通过第一支撑台支撑水泵,通过第二支撑台支撑第二管路,在无需额外增加独立的支撑结构的基础上,不仅能够为水泵提供稳定支撑,还能够兼顾管路的支撑,避免了第二管路因缺乏支撑而导致的晃动或下垂,延长了第二管路的使用寿命,从而提高了管路的整体稳定性,进而确保了水泵组件的可靠性。

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Abstract

The utility model discloses a water pump assembly, hydraulic module and heating and ventilation equipment belongs to household electrical appliances technical field. Among them, water pump assembly is applied to hydraulic module, and hydraulic module includes first pipeline and second pipeline, and water pump assembly includes chassis, water pump and support, and the support includes first support platform, support leg and second support platform, and at least two are established at support leg interval, and one end of support leg is connected to first support platform, and the other end is connected to chassis, and first support platform is established at the upside of chassis interval, and is configured as can support water pump, and the partial structure of first pipeline is worn between chassis and first support platform, and second support platform is connected with first support platform, and is configured as can support the partial structure of second pipeline. The utility model not only avoids the unnecessary bending and round of pipeline, thereby reduces the complexity of the pipe arrangement, and moreover, on the basis that the independent support structure is not needed to be additionally increased, can provide stable support for water pump, also can take into account the support of pipeline.
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Description

Technical Field

[0001] This utility model relates to the field of household appliance technology, and in particular to a water pump assembly, a hydraulic module, and a heating, ventilation, and air conditioning (HVAC) device. Background Technology

[0002] In hydraulic modules, water pumps are typically equipped with supports. However, because these supports occupy space, they often lead to unnecessary bends and detours in the piping adjacent to the pump, increasing the complexity of the piping layout. Furthermore, these pipes often lack support, making them prone to loosening and consequently reducing the overall stability and reliability of the hydraulic module. Utility Model Content

[0003] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes a water pump assembly that not only improves the stability of the water pump support but also provides support for the pipeline, while reducing the complexity of pipeline layout.

[0004] This utility model also proposes a hydraulic module and HVAC equipment that includes the above-mentioned water pump components.

[0005] According to a first aspect of the present invention, a water pump assembly is applied to a hydraulic module. The hydraulic module includes a first pipeline and a second pipeline. The water pump assembly includes a chassis, a water pump, and a support. The support includes a first support platform, legs, and a second support platform. At least two legs are spaced apart. One end of each leg is connected to the first support platform, and the other end is connected to the chassis. The first support platform is spaced apart on the upper side of the chassis and is configured to support the water pump. A portion of the first pipeline passes through the chassis and the first support platform. The second support platform is connected to the first support platform and is configured to support a portion of the second pipeline.

[0006] The water pump assembly according to the embodiments of the present utility model has at least the following beneficial effects: In this embodiment of the utility model, the water pump assembly suspends the first support platform above the chassis via outriggers. This utilizes the space created by the support in the height direction to provide a passage for the first pipeline, avoiding unnecessary bends and detours, thus reducing the complexity of pipe laying and preventing increased fluid resistance due to pipeline extension. This not only reduces pipeline material consumption and saves on the material cost of the water pump assembly, but also lowers the overall installation difficulty and shortens the assembly time. Furthermore, the first support platform supports the water pump, and the second support platform supports the second pipeline. Without the need for additional independent support structures, this provides stable support for both the water pump and the pipeline, preventing swaying or sagging of the second pipeline due to lack of support, extending the service life of the second pipeline, and thus improving the overall stability of the pipeline, thereby ensuring the reliability of the water pump assembly.

[0007] According to some embodiments of the present invention, the second support platform includes a connecting plate and a platform. The connecting plate extends in the vertical direction and is connected to the first support platform. The platform is formed at the end of the connecting plate away from the first support platform. The platform is horizontally arranged, and part of the structure of the second pipeline is placed on the platform. According to some embodiments of the present invention, the support leg and the connecting plate are respectively bent and formed around the periphery of the first support platform, the support leg and the connecting plate are spaced apart along the circumference of the first support platform, and the first support platform, the support leg and the second support platform are integrally formed.

[0008] According to some embodiments of the present invention, the hydraulic module further includes a valve, which is connected to the first pipeline and located on the upper side of the first pipeline. The second support platform and the valve are located on the same side of the first support platform. The connecting plate is bent upward, and the platform and the valve are spaced apart in the vertical direction.

[0009] According to some embodiments of the present invention, at least one of the two support legs is provided with a marking surface facing away from the water pump. The marking surface is provided with a positioning mark for indicating the installation direction of the valve. On a projection surface parallel to the marking surface, the positioning mark and the valve are spaced apart.

[0010] According to some embodiments of the present invention, at least one of the two support legs is a first support leg and the other part is a second support leg. The first support platform is provided with the first support leg on both sides along the first direction, and the first support platform is provided with the second support leg on at least one side along the second direction. The first direction and the second direction are arranged at an angle. The first support leg and the second support leg are arranged circumferentially along the first support platform to form a space for the first pipeline to pass through.

[0011] According to some embodiments of the present invention, the water pump includes a first shell section and a second shell section coaxially arranged. The axial direction of the water pump is horizontal. The outer diameter of the second shell section is larger than the outer diameter of the first shell section. The first support platform includes a first support part and a second support part arranged sequentially along the axial direction of the water pump. The upper end face of the first support part protrudes in the vertical direction from the upper end face of the second support part by the height difference. The first support part and the second support part are transitioned by a stepped surface. A portion of the structure of the first shell section is placed in the first support part, and a portion of the structure of the second shell section is placed in the second support part.

[0012] According to some embodiments of the present invention, the end of the support leg away from the first support platform is bent to form a flange that fits against the surface of the chassis. The flange is provided with a protrusion, and the chassis is provided with a locking hole corresponding to the protrusion. The protrusion is locked in the locking hole. And / or, the flange is provided with a first connecting hole, the chassis is provided with a second connecting hole, and the first connecting hole and the second connecting hole are connected by fasteners.

[0013] The hydraulic module according to the second aspect of the present invention includes the water pump assembly described in the first aspect embodiment.

[0014] The hydraulic module according to the embodiment of this utility model has at least the following beneficial effects: The hydraulic module of this utility model adopts the water pump assembly of the first aspect embodiment. By optimizing the structural design of the water pump assembly, the complex bends and length of the internal pipelines of the hydraulic module are reduced, and the internal pipeline layout of the hydraulic module is made more compact, reducing the complexity of the pipeline layout. This not only improves the overall assembly efficiency of the hydraulic module, but also saves the material cost of the hydraulic module. In addition, the pipelines in the hydraulic module are effectively supported, improving the sealing performance of the pipelines, thereby extending the service life of the hydraulic module and improving the operational reliability of the hydraulic module.

[0015] The heating, ventilation, and air conditioning equipment according to a second aspect embodiment of the present invention includes the hydraulic module described in the second aspect embodiment.

[0016] The HVAC equipment according to the embodiments of this utility model has at least the following beneficial effects: The HVAC equipment of this utility model adopts the hydraulic module of the second aspect embodiment. By reducing unnecessary bends and detours in the pipeline, it helps to reduce the energy consumption of the entire HVAC equipment and save its operating costs. Furthermore, by ensuring that the water pump and pipeline are firmly supported, the risk of HVAC equipment failure is reduced, the service life of HVAC equipment is extended, and the operational stability and reliability of HVAC equipment are improved.

[0017] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0018] The present invention will be further described below with reference to the accompanying drawings and embodiments, wherein: Figure 1 This is a schematic diagram of the structure of a hydraulic module according to an embodiment of the present invention; Figure 2 for Figure 1 A magnified view of a section at point A in the middle; Figure 3 This is a schematic diagram of the structure of a bracket according to an embodiment of the present invention; Figure 4 This is a side view of a bracket according to an embodiment of the present invention; Figure 5 This is a side view of a hydraulic module according to an embodiment of the present invention.

[0019] Icon labels: Water pump assembly 1000; hydraulic module 2000; inlet pipe 2100; refrigerant pipe 2200; valve 2300; Chassis 100; Slot 110; Water pump 200; first shell section 210; second shell section 220; Bracket 300; First support platform 310; First support part 311; Second support part 312; Step surface 313; Support leg 320; Marking surface 321; Positioning mark 322; First support leg 323; Second support leg 324; Gap 325; Flanged edge 326; Protrusion 327; First connecting hole 328; Second support platform 330; connecting plate 331; platform 332. Detailed Implementation

[0020] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0021] In the description of this utility model, it should be understood that the orientation descriptions, such as up, down, etc., are based on the orientation or positional relationship shown in the drawings. They are only for the convenience of describing this utility model 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. Therefore, they should not be construed as limitations on this utility model.

[0022] In the description of this utility model, the use of "first" and "second" is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance or implicitly indicating the number of technical features or the order of the technical features.

[0023] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.

[0024] To ensure the stability and reliability of water pumps during operation, specialized brackets are typically used to support and secure them. However, since these brackets often occupy space within the hydraulic module, the piping adjacent to the pump must undergo unnecessary bends and detours. This increases the complexity of the piping layout, not only increasing the total length of the piping and material consumption but also raising the difficulty and cost of installation. Furthermore, frequent bends and sharp turns in the piping can lead to additional fluid resistance, resulting in increased pressure loss in the hydraulic system and consequently reducing the overall operating efficiency of the hydraulic module.

[0025] On the other hand, because the bracket occupies installation space, it is difficult to find suitable locations to install additional independent support structures for the pipelines adjacent to the water pump. This results in a lack of effective support for these pipelines, making them prone to displacement and loosening. In particular, stress concentration at the connection points may lead to seal failure, increasing the risk of pipeline leakage. Loosening of pipelines not only causes noise and vibration problems but also accelerates the wear of pipeline materials, shortens their service life, and consequently reduces the stability and reliability of the entire hydraulic module.

[0026] To address the aforementioned problems, some embodiments of this utility model propose a water pump assembly 1000, suitable for a hydraulic module 2000. This assembly not only provides stable support for the water pump 200 but also supports the pipeline, while reducing the complexity of pipework. See details below. Figures 1 to 5 The water pump assembly 1000 is described below.

[0027] In this embodiment of the invention, the hydraulic module 2000 includes a water pump 200, a heat exchanger, an inlet pipe 2100, and an outlet pipe. One end of the inlet pipe 2100 is an inlet interface, and the other end is connected to the inlet end of the water pump 200. The outlet end of the water pump 200 is connected to the heat exchanger. The heat exchanger is provided with a water flow pipe and a heat exchange pipe. One end of the water flow pipe is connected to the outlet end of the water pump 200, and the other end is connected to the outlet pipe, thus forming a water flow path. An expansion tank is installed on the outlet pipe to balance the water volume and pressure in the water flow path. An outlet interface is provided at the end of the outlet pipe. The heat exchange pipe is used to connect to an outdoor refrigerant module, allowing heat exchange between the water and the refrigerant to produce hot water. The inlet interface connects to a water supply pipe, and the outlet interface connects to household water appliances, such as air source heat pump water heaters or underfloor heating systems.

[0028] In this embodiment of the utility model, the hydraulic module 2000 includes a first pipeline and a second pipeline. It should be noted that the first and second pipelines only refer to the types of pipelines and do not limit the number of pipelines. Besides the first and second pipelines, the actual configuration of the hydraulic module 2000 may include other pipelines as needed; this embodiment does not limit this. For ease of description, refer to... Figure 1 and Figure 2 As shown, the following description will use the example of a water inlet pipe 2100 for supplying water flow as the first pipe and a refrigerant pipe 2200 for supplying refrigerant flow as the second pipe.

[0029] Generally, the inlet pipe 2100 is usually laid along the periphery of the bracket 300, which results in unnecessary detours for the inlet pipe 2100, thus extending its length. Meanwhile, the refrigerant pipe 2200 is often suspended to one side of the water pump 200, lacking stable support from a structural support. Based on this, referring to... Figure 2 As shown, in this embodiment of the present invention, the water pump assembly 1000 includes: a chassis 100, a water pump 200, and a bracket 300, wherein the bracket 300 includes a first support platform 310, a support leg 320, and a second support platform 330. In this embodiment, the first support platform 310 is spaced apart on the upper side of the chassis 100, thus defining a space between the first support platform 310 and the chassis 100 suitable for the passage of the inlet pipe 2100. The first support platform 310 has a support surface that can be adapted to the water pump 200, thus supporting the water pump 200 and providing a stable supporting force for the water pump 200.

[0030] Continue to refer to Figure 2As shown, in this embodiment of the invention, at least two support legs 320 are spaced apart. In one example, two support legs 320 are provided, respectively located on opposite sides of the first support platform 310. In another example, multiple support legs 320 are provided, spaced apart circumferentially along the first support platform 310. One end of each support leg 320 is connected to the first support platform 310, and the other end is connected to the chassis 100. It can be understood that the support leg 320 is a column structure connecting the first support platform 310 and the chassis 100, allowing the first support platform 310 to be stably suspended above the chassis 100, thereby forming a space between them suitable for the water inlet pipe 2100 to pass through.

[0031] It is understood that the gap between two adjacent support legs 320 forms a channel for the water inlet pipe 2100 to pass through and enter the receiving space. Based on this, in this embodiment of the utility model, part of the structure of the water inlet pipe 2100 can pass through the channel formed between the two support legs 320 and enter the receiving space between the chassis 100 and the first support platform 310, thereby effectively utilizing the height space of the bracket 300 for pipeline layout.

[0032] Continue to refer to Figure 2 As shown, in this embodiment of the present invention, the second support platform 330 is located on one side of the first support platform 310. Its specific position can be adjusted according to the location of the refrigerant pipe 2200, and this embodiment does not limit this. The second support platform 330 is connected to the first support platform 310. The second support platform 330 has a support surface that can adapt to the refrigerant pipe 2200. Therefore, the second support platform 330 can support part of the structure of the refrigerant pipe 2200 and provide a stable support for the refrigerant pipe 2200.

[0033] In this embodiment of the utility model, the water pump assembly 1000 suspends the first support platform 310 above the chassis 100 via the support legs 320. This utilizes the space created by the bracket 300 in the height direction to provide a passage for the inlet pipe 2100, avoiding unnecessary bends and detours in the pipework. This reduces the complexity of pipework layout and prevents increased fluid resistance due to pipe extension. It not only reduces pipe material consumption and saves on the material cost of the water pump assembly 1000, but also lowers the overall installation difficulty of the water pump assembly 1000. This reduces the assembly time of the water pump assembly 1000; the water pump 200 is supported by the first support platform 310, and the refrigerant pipe 2200 is supported by the second support platform 330. Without the need for additional independent support structures, this not only provides stable support for the water pump 200, but also supports the pipeline, preventing the refrigerant pipe 2200 from shaking or sagging due to lack of support, extending the service life of the refrigerant pipe 2200, thereby improving the overall stability of the pipeline and ensuring the reliability of the water pump assembly 1000.

[0034] Reference Figure 3 and Figure 4 As shown, in this embodiment of the invention, the second support platform 330 includes a connecting plate 331 and a platform 332. The connecting plate 331 extends vertically and is connected to the first support platform 310. The platform 332 is formed at the end of the connecting plate 331 away from the first support platform 310. In one example, the connecting plate 331 extends upward so that the platform 332 is higher than the first support platform 310; in another example, the connecting plate 331 extends downward so that the platform 332 is lower than the first support platform 310. In this embodiment, part of the refrigerant pipe 2200 is placed on the platform 332. The platform 332 is horizontally positioned, which provides support for the refrigerant pipe 2200 without affecting its lateral freedom, and can also adapt to different pipe layouts.

[0035] Continue to refer to Figure 3 and Figure 4 As shown, in this embodiment of the invention, the connecting plate 331 is a plate-like structure extending in the vertical direction, and it can be made of bent metal sheet. The connecting plate 331 is used to connect the first support platform 310 and the platform 332, thereby improving the support performance and stability of the platform 332. In this embodiment, the connecting plate 331 can extend upward or downward depending on the layout of the refrigerant pipe 2200. It is understood that when the refrigerant pipe 2200 is placed on the upper surface of the platform 332, the platform 332 can constrain it longitudinally, but the refrigerant pipe 2200 can still move or be adjusted laterally.

[0036] Reference Figure 3 As shown, in this embodiment of the invention, the support leg 320 and the connecting plate 331 are bent and formed around the periphery of the first support platform 310. Specifically, the support leg 320 and the connecting plate 331 protrude from the periphery of the first support platform 310. The support leg 320 bends downward, and the connecting plate 331 bends upward or downward as needed. The support leg 320 and the connecting plate 331 are spaced apart along the circumference of the first support platform 310 to avoid interference between them. In this embodiment, the first support platform 310, the support leg 320, and the second support platform 330 are integrally formed. In other words, the bracket 300 is formed into its integral structure through stamping or casting processes, specifically by continuously bending a single piece of metal sheet.

[0037] Reference Figure 5As shown, in this embodiment of the present invention, the hydraulic module 2000 further includes a valve 2300. The valve 2300 is an actuator capable of controlling the opening and closing of the water flow path or the flow rate. The valve 2300 is connected to the inlet pipe 2100 and located on the upper side of the inlet pipe 2100. The second support platform 330 and the valve 2300 are located on the same side of the first support platform 310. For example, referring to... Figure 1 As shown, the second support platform 330 and the valve 2300 are both located to the right of the first support platform 310. In order to avoid interference between the second support platform 330 and the valve 2300, in this embodiment, the connecting plate 331 is bent upward, and the platform 332 and the valve 2300 are spaced apart in the vertical direction, thereby achieving avoidance of the valve 2300.

[0038] Reference Figure 3 and Figure 4 As shown in this embodiment of the utility model, one of the at least two support legs 320 is provided with a marking surface 321 facing away from the water pump 200. Specifically, the marking surface 321 refers to the side surface of the support leg 320 facing away from the water pump 200. The marking surface 321 is provided with a positioning mark 322 for indicating the installation direction of the valve 2300. The positioning mark 322 can be implemented by arrows, text or color blocks, and it is fixed on the marking surface 321 by printing, engraving or pasting.

[0039] Reference Figure 5 As shown in this embodiment of the invention, positioning mark 322 and valve 2300 are spaced apart on a projection surface parallel to marking surface 321. Specifically, positioning mark 322 and valve 2300 are offset in a direction perpendicular to marking surface 321, ensuring that the operator can clearly observe positioning mark 322 and its corresponding valve 2300's predetermined installation area from a single perspective. This avoids mutual obstruction between marking surface 321 and valve 2300's predetermined installation area. Positioning mark 322 facilitates the operator in determining the installation direction of valve 2300, ensuring the accuracy of valve 2300's installation.

[0040] Specifically, during the installation of valve 2300, the operator can directly observe the direction indicated by positioning mark 322 when facing the marking surface 321, and the predetermined installation area of ​​valve 2300 is within the same field of vision as positioning mark 322. For example, when positioning mark 322 is an arrow, the arrow points in the same direction as the installation of valve 2300. When facing the marking surface 321, the operator does not need to adjust the viewing angle and can directly complete the installation direction calibration of valve 2300 according to the arrow indication, thereby improving the convenience and accuracy of the installation process.

[0041] Traditional installation methods for valve 2300 require operators to repeatedly adjust its position or rely on experience, which can easily lead to installation deviations. Compared to existing installation methods, this embodiment of the invention, by setting a positioning mark 322, enables operators to quickly locate and accurately adjust the direction of valve 2300, simplifying the installation process.

[0042] Reference Figure 3 and Figure 4 As shown in the present invention, in the embodiment of the present invention, a portion of the at least two legs 320 is a first leg 323 and the other portion is a second leg 324. The first support platform 310 is provided with the first leg 323 on both sides along the first direction, and the first support platform 310 is provided with the second leg 324 on at least one side along the second direction. The first direction and the second direction are arranged at an angle.

[0043] Reference Figure 2 and Figure 3 As shown, in one example, the first direction is the front-to-back direction, and the second direction is the left-to-right direction. In this embodiment, the first support platform 310 is provided with first legs 323 on both the left and right sides, and a second leg 324 is provided on the front side of the first support platform 310. The two first legs 323 and the one second leg 324 can form a three-point support structure, so that the bracket 300 forms fixed points in three different directions. The geometric characteristics of the triangular layout are used to improve the deformation resistance of the bracket 300, thereby improving the stability of the bracket 300.

[0044] Reference Figure 3 As shown in the embodiment of this utility model, the first leg 323 and the second leg 324 are arranged circumferentially at intervals along the first support platform 310. Based on this, the first leg 323 and the second leg 324 can form a gap 325, which is suitable for the water inlet pipe 2100 to pass through and enter the receiving space under the first support platform 310.

[0045] Combination Figure 2 and Figure 5 It is understood that in this embodiment of the invention, the water pump 200 is constructed as a columnar structure. Specifically, the water pump 200 is cylindrical in shape and employs a segmented housing, specifically including a first housing segment 210 and a second housing segment 220 arranged coaxially. The axial direction of the water pump 200 is horizontal. In one example, the first housing segment 210 and the second housing segment 220 are arranged sequentially in the left-right direction. Based on the horizontal axial arrangement of the water pump 200, the outer diameter of the second housing segment 220 is larger than the outer diameter of the first housing segment 210. In other words, the lowest point of the second housing segment 220 is lower than the lowest point of the first housing segment 210. Therefore, a portion of the structure of the second housing segment 220 protrudes downwards from the first housing segment 210, forming a stepped profile.

[0046] Based on this, refer to Figure 3 and Figure 4 As shown, in this embodiment of the present invention, the first support platform 310 includes a first support portion 311 and a second support portion 312 arranged sequentially along the axial direction of the water pump 200. The first support portion 311 corresponds to the first shell section 210, and the second support portion 312 corresponds to the second shell section 220. In this embodiment, the first support portion 311 and the second support portion 312 have a height difference, with the upper end face of the first support portion 311 protruding above the upper end face of the second support portion 312 in the vertical direction. The first support portion 311 and the second support portion 312 are transitioned by a stepped surface 313. Specifically, the second support portion 312 is lowered to a lower position to match the radial dimension of the second shell section 220, so that the upper end face of the second support portion 312 is lower than the upper end face of the first support portion 311.

[0047] Reference Figure 5 As shown, in this embodiment of the invention, a portion of the structure of the first shell segment 210 is placed on the first support portion 311, and a portion of the structure of the second shell segment 220 is placed on the second support portion 312. This embodiment uses a stepped design to provide corresponding support surfaces for different diameter sections of the water pump 200 shell, ensuring effective support for all shell segments of different diameters. This avoids partial suspension of the water pump 200, improves its stability, and enhances the versatility of the first support platform 310, allowing it to adapt to water pumps 200 of different sizes.

[0048] Reference Figure 3 and Figure 4 As shown in this embodiment of the invention, the end of the support leg 320 away from the first support platform 310 is bent to form a flange 326 that fits against the surface of the chassis 100. The flange 326 can increase the contact area between the support leg 320 and the chassis 100, improving the connection stability between the two. In this embodiment, the flange 326 is provided with a downwardly protruding protrusion 327, and the chassis 100 is provided with a corresponding locking hole 110. The shape and size of the locking hole 110 match those of the protrusion 327. Based on this, the protrusion 327 is locked in the locking hole 110, thereby realizing the interlocking between the flange 326 and the chassis 100.

[0049] Reference Figure 3 As shown in this embodiment of the invention, the flange 326 is provided with a first connecting hole 328, and the chassis 100 is provided with a second connecting hole. The first connecting hole 328 and the second connecting hole are connected by fasteners. Specifically, the first connecting hole 328 can be a through hole, and the second connecting hole can be a screw hole or a rivet hole. Correspondingly, the fastener can be a screw or a rivet.

[0050] In one example, the sidewall of the flange 326 protrudes downward to form a protrusion 327, and the flange 326 also has a first connecting hole 328 extending through it. Correspondingly, the chassis 100 has a locking hole 110 and a second connecting hole. During assembly, the protrusion 327 is first aligned with the locking hole 110 and pressed down to form initial positioning; then, fasteners are used to pass through the first connecting hole 328 and the second connecting hole in sequence to achieve locking. This double fixing ensures both installation accuracy and structural stability.

[0051] An embodiment of this utility model also proposes a hydraulic module 2000, which includes the water pump assembly 1000 described in the above embodiment.

[0052] The hydraulic module 2000 of this embodiment adopts the water pump assembly 1000 of the above embodiment. By optimizing the structural design of the water pump assembly 1000, the complex bends and length of the internal pipes of the hydraulic module 2000 are reduced, and the internal pipe arrangement of the hydraulic module 2000 is made more compact, reducing the complexity of pipe laying. This not only improves the overall assembly efficiency of the hydraulic module 2000, but also saves the material cost of the hydraulic module 2000. In addition, the pipes in the hydraulic module 2000 are effectively supported, improving the sealing performance of the pipes, thereby extending the service life of the hydraulic module 2000 and improving the operational reliability of the hydraulic module 2000.

[0053] Since the hydraulic module 2000 adopts all the technical solutions of the water pump assembly 1000 in the above embodiments, it has at least all the beneficial effects brought about by the technical solutions in the above embodiments, which will not be repeated here.

[0054] An embodiment of this utility model also proposes a heating, ventilation, and air conditioning (HVAC) device, including the hydraulic module 2000 described in the above embodiment. In one example, the HVAC device may be a heat pump device or a heating device, etc., and this embodiment does not limit it in this way.

[0055] The HVAC equipment of this utility model adopts the hydraulic module 2000 of the above embodiment. By reducing unnecessary bends and detours in the pipeline, it helps to reduce the energy consumption of the entire HVAC equipment and save its operating costs. Furthermore, by ensuring that the water pump 200 and the pipeline are firmly supported, the risk of HVAC equipment failure is reduced, the service life of HVAC equipment is extended, and the operational stability and reliability of HVAC equipment are improved.

[0056] Since the HVAC equipment adopts all the technical solutions of the hydraulic module 2000 in the above embodiments, it has at least all the beneficial effects brought about by the technical solutions in the above embodiments, which will not be repeated here.

[0057] Of course, this utility model is not limited to the above-described embodiments. Those skilled in the art can make equivalent modifications or substitutions without departing from the spirit of this utility model. All such equivalent modifications or substitutions are included within the scope defined by the claims of this application.

Claims

1. A water pump assembly, used in a hydraulic module, characterized in that, The hydraulic module includes a first pipeline and a second pipeline, and the water pump assembly includes: Chassis; Water pump; The bracket includes a first support platform, legs, and a second support platform. At least two legs are spaced apart. One end of each leg is connected to the first support platform, and the other end is connected to the chassis. The first support platform is spaced apart on the upper side of the chassis and is configured to support the water pump. A portion of the first pipeline structure passes through the chassis and the first support platform. The second support platform is connected to the first support platform and is configured to support a portion of the second pipeline structure.

2. The water pump assembly according to claim 1, characterized in that, The second support platform includes a connecting plate and a platform. The connecting plate extends vertically and is connected to the first support platform. The platform is formed at the end of the connecting plate away from the first support platform and is horizontally positioned. A portion of the structure of the second pipeline is placed on the platform.

3. The water pump assembly according to claim 2, characterized in that, The support leg and the connecting plate are bent and formed around the periphery of the first support platform. The support leg and the connecting plate are spaced apart around the periphery of the first support platform. The first support platform, the support leg and the second support platform are integrally formed.

4. The water pump assembly according to claim 2, characterized in that, The hydraulic module also includes a valve, which is connected to the first pipeline and located on the upper side of the first pipeline. The second support platform and the valve are located on the same side of the first support platform. The connecting plate is bent upward, and the platform and the valve are spaced apart in the vertical direction.

5. The water pump assembly according to claim 4, characterized in that, At least one of the two support legs is provided with a marking face facing away from the water pump. The marking face is provided with a positioning mark for indicating the installation direction of the valve. The positioning mark and the valve are spaced apart on a projection plane parallel to the marking face.

6. The water pump assembly according to claim 1, characterized in that, At least one of the two support legs is a first support leg and the other part is a second support leg. The first support platform is provided with the first support leg on both sides along the first direction, and the second support leg is provided on at least one side along the second direction. The first direction and the second direction are arranged at an angle. The first support leg and the second support leg are arranged circumferentially around the first support platform to form a space for the first pipeline to pass through.

7. The water pump assembly according to claim 1, characterized in that, The water pump includes a first shell section and a second shell section arranged coaxially. The axial direction of the water pump is horizontal. The outer diameter of the second shell section is larger than the outer diameter of the first shell section. The first support platform includes a first support part and a second support part arranged sequentially along the axial direction of the water pump. The upper end face of the first support part protrudes from the upper end face of the second support part in the vertical direction. The first support part and the second support part are connected by a stepped surface. Part of the structure of the first shell section is placed in the first support part, and part of the structure of the second shell section is placed in the second support part.

8. The water pump assembly according to claim 1, characterized in that, The end of the support leg away from the first support platform is bent to form a flange that fits against the surface of the chassis. The flange is provided with a protrusion, and the chassis is provided with a locking hole corresponding to the protrusion. The protrusion is locked in the locking hole. And / or, the flange is provided with a first connecting hole, the chassis is provided with a second connecting hole, and the first connecting hole and the second connecting hole are connected by fasteners.

9. A hydraulic module, characterized in that, Includes the water pump assembly as described in any one of claims 1 to 8.

10. Heating, ventilation, and air conditioning equipment, characterized in that, Includes the hydraulic module as described in claim 9.