Water supply assembly and water supply equipment
By designing a series-connected water supply assembly, the difficulties existing in the handling and installation of existing water supply equipment are solved, and more efficient water supply performance and convenient installation process are achieved.
Patent Information
- Application Number
- CN202421504570.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-27
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-06-27
AI Technical Summary
The existing water supply equipment has difficulties in handling and installation, and needs to be disassembled and reassembled, increasing the on-site workload.
A water supply assembly is designed, including a base, a booster device, a water inlet pipe and a water outlet pipe. Connecting components are provided on both sides of the base, allowing adjacent components to be connected in series to form a more powerful water supply equipment.
Through this design, water supply equipment can be convenient for handling and installation, reducing on-site workload and improving water pressure stability and flow of water supply equipment.
Smart Images

Figure CN222878809U_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the technical field of water supply equipment, and in particular, relates to a water supply component and water supply equipment. Background Art
[0002] The existing water supply equipment is larger than the pump room door as a whole. When the equipment enters the factory, the manifold, base and water pump often need to be disassembled, moved to the pump room separately and then reassembled, which will increase the workload of on-site installation. Utility Model Content
[0003] The purpose of this application is to at least solve the problem of difficulty in transporting and installing water supply equipment. This purpose is achieved through the following technical solutions:
[0004] In a first aspect, the present application proposes a water supply assembly, the water supply assembly comprising:
[0005] A base, with connecting components arranged on both sides of the base;
[0006] A pressure boosting device, mounted on the base, the pressure boosting device comprising at least one water pump;
[0007] A water inlet manifold is installed on the base and connected to the water pump, and both ends of the water inlet manifold are formed with a first connecting portion;
[0008] A water outlet manifold is installed on the base and connected to the water pump, and second connecting parts are formed at both ends of the water outlet manifold.
[0009] In the water supply equipment provided by the present application, the water supply assembly provided by the present application has the ability to supply water independently, and the water supply assembly includes a base, a booster device, an inlet manifold and an outlet manifold. Connecting assemblies are provided on both sides of the base, which can facilitate the series connection of adjacent water supply assemblies to form a water supply equipment with stronger water supply capacity. The booster device is installed on the base, and the booster device includes at least one water pump, which is connected to the inlet manifold and the outlet manifold respectively, and is used to pressurize the water entering the water pump through the inlet manifold, thereby improving the stability of the water supply water pressure and meeting the needs of users. The inlet manifold and the outlet manifold are respectively installed on the base to improve the stability of the inlet manifold and the outlet manifold. A first connecting portion is formed at both ends of the inlet manifold, so that the inlet manifolds of adjacent water supply assemblies can be spliced and connected to each other; a second connecting portion is formed at both ends of the outlet manifold, so that the outlet manifolds of adjacent water supply assemblies can be spliced and connected to each other, thereby making adjacent water supply assemblies parallel and spliced to increase the flow of the water supply equipment.
[0010] In some embodiments of the present application, the connecting assembly includes a protruding end, and a connecting hole is formed on the protruding end.
[0011] In some embodiments of the present application, the connecting component includes two protruding ends, which are arranged on both sides of the base along a first direction, and the connecting hole passes through the protruding ends along a second direction, and the first direction, the second direction, and the thickness direction of the base are perpendicular to each other.
[0012] In some embodiments of the present application, both ends of the water inlet manifold are respectively installed on the base through supporting fasteners, and both ends of the water outlet manifold are respectively installed on the base through supporting fasteners, and the supporting fasteners include a supporting part and a clamp, one end of the supporting part is fixed to the base, and the other end is fixed to the clamp, and the clamp is installed on the water inlet manifold or the water outlet manifold.
[0013] In some embodiments of the present application, the first connection portion includes a first groove, which is arranged around the circumference of the water inlet manifold; the second connection portion includes a second groove, which is arranged around the circumference of the water outlet manifold.
[0014] In some embodiments of the present application, an end of the water inlet manifold in the water supply assembly is connected to the groove clamp, and an end of the water outlet manifold is connected to the groove clamp.
[0015] In some embodiments of the present application, the end of the water inlet manifold is connected to a groove blind plate, and the end of the water outlet manifold is connected to a groove blind plate; and / or, the end of the water inlet manifold is connected to a groove flange, and the end of the water outlet manifold is connected to a groove flange.
[0016] In some embodiments of the present application, the water pump is connected to the water outlet manifold through a water outlet pipe, and the water supply assembly further includes a pressure transmitter, which is installed on the water outlet pipe in the water supply assembly; and / or,
[0017] The water supply assembly further includes an air pressure tank, which is installed on the water outlet manifold in the water supply assembly; and / or,
[0018] The water supply component also includes an ultrasonic water meter, which is installed on the water outlet manifold in the water supply component.
[0019] A second aspect of the present application provides a water supply device, comprising a plurality of any one of the water supply components provided in the first aspect of the present application.
[0020] In some embodiments of the present application, there are multiple water supply assemblies, and the bases in adjacent water supply assemblies are connected by a connecting piece, and the connecting piece cooperates with the connecting assembly to fix two adjacent bases. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Various other advantages and benefits will become apparent to those of ordinary skill in the art by reading the detailed description of the preferred embodiments below. The accompanying drawings are only for the purpose of illustrating the preferred embodiments and are not to be considered as limiting the present application. Moreover, the same reference numerals are used throughout the accompanying drawings to represent the same components. In the accompanying drawings:
[0022] Figure 1 It is a structural schematic diagram of a water supply device provided in an embodiment of the present application;
[0023] Figure 2 yes Figure 1 Enlarged view of area B;
[0024] Figure 3 is a structural schematic diagram of another water supply device provided in an embodiment of the present application;
[0025] Figure 4 yes Figure 3 A magnified image of area A;
[0026] Figure 5 yes Figure 3 Magnified view of area C.
[0027] The reference numerals are as follows:
[0028] 1. Water supply equipment; 10. Water supply assembly; 101. First water supply assembly; 102. Second water supply assembly; 11. Base; 111. Connecting assembly; 1111. Extended end; 1112. Connecting hole; x. First direction; y. Second direction; z. Thickness direction of base; 12. Pressurizing device; 121. Water pump; 13. Inlet manifold; 131. First connecting part; 14. Outlet manifold; 141. Second connecting part; 15. Connecting piece; 16. Grooved clamp; 17. Grooved blind plate; 18. Grooved flange; 19. Pressure transmitter; 20. Air pressure tank; 21. Ultrasonic water meter; 22. Check valve; 23. Wafer butterfly valve; 24. Support fastener; 241. Support part; 242. Hoop; 242. Hoop. DETAILED DESCRIPTION
[0029] The exemplary embodiments of the present disclosure will be described in more detail below with reference to the accompanying drawings. Although the exemplary embodiments of the present disclosure are shown in the accompanying drawings, it should be understood that the present disclosure can be implemented in various forms and should not be limited by the embodiments described herein. On the contrary, these embodiments are provided in order to enable a more thorough understanding of the present disclosure and to fully convey the scope of the present disclosure to those skilled in the art.
[0030] It should be understood that the terms used herein are only for the purpose of describing specific example embodiments and are not intended to be limiting. Unless the context clearly indicates otherwise, the singular forms "one", "an" and "said" as used herein may also be meant to include plural forms. The terms "include", "comprise", "contain", and "have" are inclusive, and therefore specify the existence of stated features, steps, operations, elements and / or parts, but do not exclude the existence or addition of one or more other features, steps, operations, elements, parts, and / or combinations thereof. The method steps, processes, and operations described herein are not interpreted as necessarily requiring them to be performed in the specific order described or illustrated, unless the execution order is clearly indicated. It should also be understood that additional or alternative steps may be used.
[0031] Although the terms first, second, third, etc. can be used in the text to describe multiple elements, components, regions, layers and / or sections, these elements, components, regions, layers and / or sections should not be limited by these terms. These terms can only be used to distinguish an element, component, region, layer or section from another region, layer or section. Unless the context clearly indicates, terms such as "first", "second" and other numerical terms do not imply order or sequence when used in the text. Therefore, the first element, component, region, layer or section discussed below can be referred to as the second element, component, region, layer or section without departing from the teaching of the example embodiments.
[0032] For ease of description, spatial relative terms may be used herein to describe the relationship of one element or feature relative to another element or feature as shown in the figure, such as "inside", "outside", "inner side", "outer side", "below", "below", "above", "above", etc. Such spatial relative terms are intended to include different orientations of the device in use or operation in addition to the orientation depicted in the figure. For example, if the device in the figure is turned over, then the elements described as "below other elements or features" or "below other elements or features" will subsequently be oriented as "above other elements or features" or "above other elements or features". Therefore, the example term "below..." can include both upper and lower orientations. The device can be oriented otherwise (rotated 90 degrees or in other directions) and the spatial relative descriptors used in the text are interpreted accordingly.
[0033] like Figure 1As shown, according to the embodiment of the present application, a water supply assembly 10 is proposed, and the water supply assembly 10 includes a base 11, a booster device 12, a water inlet manifold 13 and a water outlet manifold 14. Connecting assemblies 111 are provided on both sides of the base 11. The booster device 12 is mounted on the base 11, and the booster device 12 includes at least one water pump 121. The water inlet manifold 13 is mounted on the base 11 and connected to the water pump 121, and a first connecting portion 131 is formed at both ends of the water inlet manifold 13. The water outlet manifold 14 is mounted on the base 11 and connected to the water pump 121, and a second connecting portion 141 is formed at both ends of the water outlet manifold 14.
[0034] In the above embodiment, the water inlet manifold 13 is connected to the water pump 121 and the water tank, and water enters the water inlet manifold 13 from the water tank; the water outlet manifold 14 is connected to the water pump 121 and the user, thereby providing the user with water with a water pressure that meets the user's needs.
[0035] The water supply assembly 10 provided in the present application has the ability to supply water independently, and the water supply assembly 10 includes a base 11, a booster device 12, an inlet manifold 13 and an outlet manifold 14. Connecting assemblies 111 are provided on both sides of the base 11, which can facilitate the series connection of adjacent water supply assemblies 10 to form a water supply device with stronger water supply capacity. The booster device 12 is installed on the base 11, and the booster device 12 includes at least one water pump 121, which is respectively connected to the inlet manifold 13 and the outlet manifold 14, and is used to pressurize the water entering the water pump 121 through the inlet manifold 13, thereby improving the stability of the water supply pressure and meeting the needs of users. The inlet manifold 13 and the outlet manifold 14 are respectively installed on the base 11 to improve the stability of the inlet manifold 13 and the outlet manifold 14. Both ends of the water inlet manifold 13 are formed with a first connection portion 131, so that the water inlet manifolds 13 of adjacent water supply components 10 can be spliced and connected to each other; both ends of the water outlet manifold 14 are formed with a second connection portion 141, so that the water outlet manifolds 14 of adjacent water supply components 10 can be spliced and connected to each other, thereby enabling adjacent water supply components 10 to be connected in parallel and spliced to increase the flow rate of the water supply equipment 1.
[0036] Specifically, the boosting device 12 in the water supply component 10 may include one or more water pumps 121. Providing a water pump 121 can make the volume of each water supply component 10 smaller and easier to carry. A larger water supply component 10 may also be provided in a large water supply equipment 1, that is, multiple water pumps 121 may be provided in the water supply component 10 to reduce the number of water supply components 10 in the large water supply equipment 1. The present application does not make any special limitation on this.
[0037] In a feasible implementation manner, the connection assembly 111 includes a protruding end 1111 , and a connection hole 1112 is formed on the protruding end 1111 .
[0038] In the above embodiment, a connecting hole 1112 is formed on the protruding end 1111, so that the connecting holes 1112 of the protruding ends 1111 of two adjacent bases 11 are aligned and other connecting parts are passed through the two connecting holes 1112 in sequence to fix the two bases. This fixing method is simple and low-cost.
[0039] In a feasible embodiment, the connecting component 111 includes two protruding ends 1111, and the two protruding ends 1111 are arranged on both sides of the base 11 along the first direction x, and the connecting hole 1112 passes through the protruding ends 1111 along the second direction x, and the first direction x, the second direction y, and the thickness direction of the base 11 are perpendicular to each other.
[0040] In the above embodiment, the extension ends 1111 are provided on both sides of the water supply assembly 10 along the first direction x, so that the bases 11 of multiple water supply assemblies 10 can be spliced along the first direction x to improve the water supply capacity. At the same time, the connection hole 1112 passes through the extension ends 1111 along the second direction x, which, on the one hand, helps the connector for fixing adjacent extension ends 1111 to extend along the first direction x, pass through two adjacent connection holes 1112 in sequence, and then be fixed to the two adjacent connection holes 1112, so that the connector can provide a limit for the base 11 along the first direction x to reduce the position change of the base 11. On the other hand, it can be easily prepared and installed, which helps to save costs.
[0041] In a possible implementation, Figure 1 and Figure 2 As shown, both ends of the water inlet manifold 13 are respectively installed on the base 11 through supporting fasteners 24, and both ends of the water outlet manifold 14 are respectively installed on the base 11 through supporting fasteners 24. The supporting fastener 24 includes a supporting portion 241 and a clamp 242. One end of the supporting portion 241 is fixed to the base 11, and the other end is fixed to the clamp 242. The clamp 242 is installed on the water inlet manifold 13 or the water outlet manifold 14.
[0042] In the above embodiment, since each water supply assembly 10 has an inlet manifold 13 and an outlet manifold 14, in order to ensure the stability of each inlet manifold 13 and each outlet manifold 14, a plurality of support fasteners 24 are provided in each water supply assembly 10, for example, four support fasteners 24, two of which are fixed to both ends of the inlet manifold 13, and the other two are fixed to both ends of the outlet manifold 14, thereby achieving support and position limiting for the inlet manifold 13 and the outlet manifold 14. Since the inlet manifold 13 and the outlet manifold 14 in each water supply assembly 10 are stably supported, the overall stability of the water supply pipeline and the outlet pipeline formed by splicing multiple water supply assemblies 10 can be improved.
[0043] The supporting fastener 24 includes a supporting portion 241 and a clamp 242. One end of the supporting portion 241 is fixed to the base 11, specifically by bolts, and the other end is fixed to the clamp 242. The clamp 242 is installed on the water inlet manifold 13 or the water outlet manifold 14, and the circumferential limitation of the water inlet manifold 13 or the water outlet manifold 14 is achieved by the clamp 242.
[0044] In a feasible embodiment, the first connection portion 131 includes a first groove, which is arranged around the circumference of the water inlet manifold 13; the second connection portion 141 includes a second groove, which is arranged around the circumference of the water outlet manifold 14. Therefore, after the water supply components 10 are spliced, the first grooves of the water inlet manifolds 13 in adjacent water supply components 10 are respectively connected to the groove clamps 16 to achieve the communication between the adjacent water inlet manifolds 13. The second grooves of the water outlet manifolds 14 of adjacent water supply components 10 are respectively connected to the groove clamps 16 to achieve the connection between the adjacent water outlet manifolds 14.
[0045] In a possible implementation, Figure 1 As shown, the end of the water inlet manifold 13 of the water supply assembly 10 is connected to the groove clamp 16. The end of the water outlet manifold 14 is connected to the groove clamp 16.
[0046] In the above embodiment, the end of the water inlet manifold 13 of the water supply assembly 10 is connected to the groove clamp 16, and the end of the water outlet manifold 14 is connected to the groove clamp 16, so that the water inlet manifold 13 can be connected to other components through the groove clamp 16. For example, when multiple water supply assemblies 10 are arranged adjacent to each other and connected through the connecting assembly 111, in adjacent water supply assemblies 10, two water inlet manifolds 13 are arranged along the second direction y, and the adjacent ends of the two water inlet manifolds 13 along the second direction y can be connected through the groove clamp 16 to achieve the connection between the two water inlet manifolds 13. Since the first connecting portion 131 is formed at the end of the water inlet manifold 13, it is convenient to directly fix the ends of the two water inlet manifolds 13 through the groove clamp 16, so as to achieve the connection between the two adjacent water inlet manifolds 13. The fixing method is simple and convenient, and there is no need to groove the end of the water inlet manifold 13 during the assembly process of the water supply assembly 10, which can reduce the assembly time and improve the assembly efficiency. In adjacent water supply components 10, two water outlet manifolds 14 are arranged along the second direction y, and the adjacent ends of the two water outlet manifolds 14 along the second direction y can be connected by a groove clamp 16 to achieve the communication between the two water outlet manifolds 14. Since the ends of the water outlet manifolds 14 are formed with second connecting portions 141, it is convenient to directly fix the ends of the two water outlet manifolds 14 by the groove clamp 16. The fixing method is simple and convenient, and there is no need to groove the ends of the water outlet manifolds 14 during the assembly process of the water supply component 10, which can reduce the assembly time and improve the assembly efficiency.
[0047] In a possible implementation, Figure 1 and Figure 3 As shown, the end of the inlet manifold 13 is connected to a groove blind plate 17, and the end of the outlet manifold 14 is connected to a groove blind plate 17; and / or, the end of the inlet manifold 13 is connected to a groove flange 18, and the end of the outlet manifold 14 is connected to a groove flange 18.
[0048] In the above embodiment, when the water supply assembly 10 is used alone and not connected to other water supply assemblies 10, one end of the water inlet manifold 13 can be blocked by the groove blind plate 17, and the other end can be used as the water inlet end of the water inlet pipeline and connected to the water outlet of the water tank. The free end can be provided with a groove flange 18 to facilitate direct connection with the water outlet of the water tank, which helps to reduce the assembly time and improve the assembly efficiency during the assembly process of the water supply assembly 10. One end of the water outlet manifold 14 can be blocked by the groove blind plate 17, and the other end can be used as the water outlet end of the water outlet pipeline and connected to the user. The free end can be provided with a groove flange 18 to facilitate direct connection with the pipeline connected to the user, which helps to reduce the assembly time and improve the assembly efficiency during the assembly process of the water supply assembly 10.
[0049] When more than one water supply assembly 10 is connected in series, one end of the water inlet manifold 13 in one water supply assembly 10 at the end can be blocked by a groove blind plate 17, and the water inlet manifold 13 of the water supply assembly 10 at the other end can be used as the water inlet end of the water inlet pipeline, connected to the water outlet of the water tank, and a groove flange 18 can be provided on the free end to facilitate direct connection with the water outlet of the water tank, which helps to reduce the assembly time during the assembly process of the water supply assembly 10 and improve the assembly efficiency. One end of the water outlet manifold 14 of the water supply assembly 10 at the end can be blocked by a groove blind plate 17, and the water supply assembly 10 at the other end can be used as the water outlet end of the water outlet pipeline, connected to the user, and a groove flange 18 can be provided on the free end to facilitate direct connection with the pipeline connected to the user, which helps to reduce the assembly time during the assembly process of the water supply assembly 10 and improve the assembly efficiency.
[0050] In a possible implementation, Figure 1 As shown, the water supply assembly 10 includes a pressure transmitter 19, which is installed on the water outlet pipe in the water supply assembly 10. The pressure transmitter 19 is used to detect the pressure of the outlet water, and convert the pressure of the water in the outlet manifold 14 into an electrical signal, which is transmitted to the intelligent control box in the water supply device 1. The intelligent control box controls the running speed and frequency of the water pump 121 through the electrical signal, and adjusts the pressure and flow output by the water pump 121, so as to maintain a constant water pressure to supply water to users.
[0051] In a possible implementation, Figure 1As shown, the water supply device 1 also includes a pressure tank 20, which is connected to the water outlet manifold 14 and can be used to reduce water pressure fluctuations, and can be used to separate water and air to avoid direct contact between water and air, thereby reducing oxidation and corrosion problems in the water. At the same time, the pressure tank 20 can also play a role in storing water. When the water pump 121 stops working, the water in the pressure tank 20 can still be used by users, thereby reducing the number of starts and stops of the water pump 121, so as to extend the service life of the water pump 121.
[0052] In a possible implementation, Figure 1 As shown, the water supply device 1 also includes an ultrasonic water meter 21 for detecting flow rate. Specifically, each water supply component 10 may include an ultrasonic water meter 21, which is installed on the water outlet manifold 14 in the water supply component 10, so that each water supply component 10 is leak-checked before installation, ensuring the installation yield of the air pressure tank 20, and there is no need to assemble the ultrasonic water meter 21 during the assembly process of multiple water supply components 10, thereby improving assembly efficiency. The present application also provides a water supply device 1, including multiple water supply components 10 of any one of the above embodiments.
[0053] In the water supply equipment 1 provided in the present application, the entire water supply equipment 1 is designed to be divided into blocks to form a plurality of water supply components 10, and each water supply component 10 is small in size, so that it is easy to carry and bring into the house. Therefore, when the entrance door is small, it is possible to avoid disassembling the water pump 121 and the water inlet manifold 13 and the water outlet manifold 14 for bringing into the house and then reassembling them after bringing into the house. On the one hand, it can reduce the workload, and on the other hand, there is a safety risk if the disassembly and reassembly are not passed through leakage inspection. The water supply equipment 1 in the present application can carry each water supply component 10 into the house separately, and there is no need to disassemble the water pump 121 and the water inlet manifold 13 and the water outlet manifold 14, and there is no need to destroy the connection between the water pump 121 and the water inlet manifold 13 and the water pump 121 and the water outlet manifold 14, so that the water pump 121 and the water inlet manifold 13 and the water outlet manifold 14 in the water supply equipment 1 formed after assembly have all passed the leakage inspection, which helps to reduce the risk of water leakage and improve the safety performance of the equipment. At the same time, since the water supply components 10 can be arranged in parallel, multiple water supply components 10 can be directly connected in parallel on a device with weaker water supply performance to increase the equipment flow rate, thereby meeting the water supply demand. There is no need to replace the water supply equipment 1 as a whole, which can reduce the workload and reduce costs. In addition, the operation of the above-mentioned parallel water supply components 10 is simple and time-saving, which can reduce the water outage time caused by replacing the water supply equipment 1 and reduce the inconvenience of users.
[0054] Specifically, the number of water supply components 10 in the water supply equipment 1 can be selected according to actual water supply needs, with better flexibility.
[0055] In a possible implementation, Figure 3 and Figure 4As shown, there are multiple water supply components 10 , and the bases 11 in adjacent water supply components 10 are connected by a connector 15 , and the connector 15 cooperates with the connecting component 111 to fix two adjacent bases 11 .
[0056] In the above embodiment, the bases 11 of adjacent water supply assemblies 10 are connected by a connector 15. Specifically, the connector 111 may include two protruding ends 1111, which are installed on both sides of the base 11 along the first direction x. Two adjacent water supply assemblies 10 may be arranged along the second direction y, and two adjacent water supply assemblies 10 may be connected by two connectors 15, which are located on both sides of the base 11 along the first direction x. Two adjacent bases 11 along the second direction y have two groups of protruding ends 1111 adjacent to each other along the second direction y, and each group of protruding ends 1111 includes two protruding ends 1111 adjacent to each other along the second direction y, one of the protruding ends 1111 is located on one of the bases 11, and the other protruding end 1111 is located on the other base 11. The connector 15 sequentially passes through the connection hole 1112 of one of the two adjacent bases 11 and the connection hole 1112 of the other base 11, thereby realizing the connection of the adjacent bases 11.
[0057] Specifically, the connection member 15 may include a bolt.
[0058] In a possible implementation, Figure 3 As shown, in adjacent water supply assemblies 10, the water inlet manifold 13 in one water supply assembly 10 is connected to the end adjacent to the water inlet manifold 13 in another water supply assembly 10 via a groove clamp 16. In adjacent water supply assemblies 10, the water outlet manifold 14 in one water supply assembly 10 is connected to the end adjacent to the water outlet manifold 14 in another water supply assembly 10 via a groove clamp 16.
[0059] In the above embodiment, in the adjacent water supply components 10, the two water inlet manifolds 13 are arranged along the second direction y, and the adjacent ends of the two water inlet manifolds 13 along the second direction y can be connected to achieve the connection between the two water inlet manifolds 13. Since the end of the water inlet manifold 13 is formed with a first connecting portion 131, it is convenient to directly fix the two ends through a channel clamp, and the fixing method is simple and convenient, and there is no need to perform a groove operation on the end during the assembly process of the water supply component 10, which can reduce the assembly time and improve the assembly efficiency. In the adjacent water supply components 10, the two water outlet manifolds 14 are arranged along the second direction y, and the adjacent ends of the two water outlet manifolds 14 along the second direction y can be connected to achieve the connection between the two water outlet manifolds 14. Since the end of the water outlet manifold 14 is formed with a second connecting portion 141, it is convenient to directly fix the two ends through a channel clamp, and the fixing method is simple and convenient, and there is no need to perform a groove operation on the end during the assembly process of the water supply component 10, which can reduce the assembly time and improve the assembly efficiency.
[0060] In a possible implementation, Figure 3 As shown, there are multiple water supply components 10, and the base 11 in the water supply component 10 is provided with connecting components 111 on both sides along the first direction x. The multiple water supply components 10 are arranged along the second direction y. The multiple water supply components 10 include a first water supply component 101 and a second water supply component 102 arranged at the end along the second direction y. In the first water supply component 101, the end of the water inlet manifold 13 away from the second water supply component 102 is connected with a groove blind plate 17, and the end of the water outlet manifold 14 away from the second water supply component 102 is connected with a groove blind plate 17; in the second water supply component 102, the end of the water inlet manifold 13 away from the first water supply component 101 is connected with a groove flange 18, and the end of the water outlet manifold 14 away from the first water supply component 101 is connected with a groove flange 18, wherein the first direction x, the second direction y, and the thickness direction z of the base are perpendicular to each other.
[0061] In the above embodiment, when there are multiple water supply assemblies 10, the multiple water supply assemblies 10 are sequentially arranged along the second direction y to achieve the connection of adjacent bases 11, the communication of adjacent water inlet manifolds 13, and the communication of adjacent water outlet manifolds 14. The water inlet manifolds 13 arranged along the second direction y are connected to form a longer water inlet pipeline, one end of the water inlet pipeline along the second direction y is connected to the water outlet of the water tank, and the other end along the second direction y does not need to be connected to other water inlet manifolds 13, so it can be blocked by the groove blind plate 17. Specifically, the plurality of water supply components 10 include a first water supply component 101 and a second water supply component 102 arranged at the end along the second direction y. The water inlet manifold 13 in the second water supply component 102 has a free end, which does not need to be connected to the end of other water inlet manifolds 13. The free end can be used as the water inlet end of the water inlet pipeline and connected to the water outlet of the water tank. The free end can be provided with a groove flange 18 to facilitate direct connection with the water outlet of the water tank, which helps to reduce the assembly time and improve the assembly efficiency during the assembly process of the water supply component 10. The water inlet manifold 13 in the first water supply component 101 also has a free end, which does not need to be connected to the end of other water inlet manifolds 13, so that it can be blocked by a groove blind plate 17. The free end has a first connecting portion 131, which can be directly fixed by a groove clamp 16 during the installation process with the groove blind plate 17. The installation is simple and convenient, and there is no need to groove the end during the assembly process of the water supply component 10, which can reduce the assembly time and improve the assembly efficiency. The position where the water inlet manifold 13 is connected to the water pump 121 may be located between the two ends arranged along the second direction y. The water inlet manifold 13 may be connected to the water pump 121 through a water inlet pipe.
[0062] The water outlet manifolds 14 arranged along the second direction y are connected to form a longer water outlet pipeline. One end of the water outlet pipeline along the second direction y is connected to the user, and the other end along the second direction y does not need to be connected to other water outlet manifolds 14, so it can be blocked by the groove blind plate 17. Specifically, the multiple water supply components 10 include a first water supply component 101 and a second water supply component 102 arranged at the end along the second direction y. The water outlet manifold 14 in the second water supply component 102 has a free end, which does not need to be connected to the ends of other water outlet manifolds 14. The free end can be used as the water outlet end of the water outlet pipeline and connected to the user. The free end can be provided with a groove flange 18 to facilitate direct connection with the pipeline connected to the user, which helps to reduce the assembly time and improve the assembly efficiency during the assembly process of the water supply component 10. The water outlet manifold 14 in the first water supply assembly 101 also has a free end, which does not need to be connected to the ends of other water inlet manifolds 13, so that it can be blocked by the groove blind plate 17. The free end has a first connecting portion 131, which can be directly fixed by the groove clamp 16 during the installation process with the groove blind plate 17. The installation is simple and convenient, and there is no need to groove the end during the assembly process of the water supply assembly 10, which can reduce the assembly time and improve the assembly efficiency. The position where the water outlet manifold 14 is connected to the water pump 121 can be located between the two ends arranged along the second direction y. The water outlet manifold 14 can be connected to the water pump 121 through the water outlet pipe.
[0063] In a possible implementation, Figure 5 As shown, the water supply device 1 includes a pressure transmitter 19, which is installed on the water outlet pipe in the water supply assembly 10. The pressure transmitter 19 is used to detect the pressure of the outlet water, and convert the water pressure in the outlet manifold 14 into an electrical signal, which is transmitted to the intelligent control box in the water supply device 1. The intelligent control box controls the running speed and frequency of the water pump 121 through the electrical signal, and adjusts the pressure and flow output by the water pump 121, so as to maintain a constant water pressure to supply water to users.
[0064] Specifically, each water supply assembly 10 may include a pressure transmitter 19, so that each water supply assembly 10 is leak-checked before installation, ensuring the installation yield of the pressure transmitter 19, and there is no need to assemble the pressure transmitter 19 during the assembly process of multiple water supply assemblies 10, thereby improving assembly efficiency. Alternatively, the water supply device 1 includes only one pressure transmitter 19, and the pressure transmitter 19 is installed on the water outlet pipe of any water supply assembly 10 in the water supply device 1, thereby simplifying the overall structure of the water supply device 1 and reducing costs.
[0065] In a possible implementation, Figure 1 and Figure 3As shown, the water supply device 1 also includes a pressure tank 20, which is connected to the water outlet manifold 14 and can be used to reduce water pressure fluctuations, and can be used to separate water and air to avoid direct contact between water and air, thereby reducing oxidation and corrosion problems in the water. At the same time, the pressure tank 20 can also play a role in storing water. When the water pump 121 stops working, the water in the pressure tank 20 can still be used by users, thereby reducing the number of starts and stops of the water pump 121, so as to extend the service life of the water pump 121.
[0066] Specifically, Figure 1 As shown, each water supply assembly 10 includes a pressure tank 20, which is installed on the water outlet manifold 14 in the water supply assembly 10, so that each water supply assembly 10 is leak-checked before installation, ensuring the installation yield of the pressure tank 20, and in the assembly process of multiple water supply assemblies 10, it is not necessary to assemble the pressure tank 20, thereby improving the assembly efficiency. Or, as Figure 3 As shown, the water supply device 1 includes an air pressure tank 20, which is installed on the water outlet manifold 14 of any water supply component 10 in the water supply device 1, thereby simplifying the overall structure of the water supply device 1 and reducing costs.
[0067] In a possible implementation, Figure 1 As shown, the water supply device 1 also includes an ultrasonic water meter 21 for detecting flow rate. Specifically, each water supply component 10 may include an ultrasonic water meter 21, which is installed on the water outlet manifold 14 in the water supply component 10, so that each water supply component 10 is leak-checked before installation, ensuring the installation yield of the air pressure tank 20, and there is no need to assemble the ultrasonic water meter 21 during the assembly process of multiple water supply components 10, thereby improving assembly efficiency. Alternatively, the water supply device 1 includes an ultrasonic water meter 21, which is installed on the water outlet manifold 14 of any water supply component 10 in the water supply device 1, thereby simplifying the overall structure of the water supply device 1 and reducing costs.
[0068] In a possible implementation, Figure 5 As shown, the water pump 121 is connected to the water outlet manifold 14 through the water outlet pipe, and the water supply assembly 10 also includes a check valve 22 and a wafer butterfly valve 23 installed on the water outlet pipe. The check valve 22 is used to maintain the unidirectional flow of water, and the wafer butterfly valve 23 can be used to realize the control of the water outlet flow rate and the on-off control of the water outlet pipe.
[0069] The above are only preferred specific implementations of the present application, but the protection scope of the present application is not limited thereto. Any changes or substitutions that can be easily thought of by a person skilled in the art within the technical scope disclosed in the present application should be included in the protection scope of the present application. Therefore, the protection scope of the present application shall be based on the protection scope of the claims.
Claims
1. A water supply assembly, characterized in that , the water supply component comprises: A base, with connecting components arranged on both sides of the base; A pressure boosting device, mounted on the base, the pressure boosting device comprising at least one water pump; A water inlet manifold is installed on the base and connected to the water pump, and both ends of the water inlet manifold are formed with a first connecting portion; A water outlet manifold is installed on the base and connected to the water pump, and second connecting parts are formed at both ends of the water outlet manifold.
2. The water supply assembly according to claim 1, characterized in that: The connecting component comprises a protruding end, and a connecting hole is formed on the protruding end.
3. The water supply assembly according to claim 2, characterized in that: The connecting component includes two protruding ends, which are arranged on both sides of the base along a first direction, and the connecting hole passes through the protruding ends along a second direction. The first direction, the second direction, and the thickness direction of the base are perpendicular to each other.
4. The water supply assembly according to claim 1, characterized in that: The two ends of the water inlet manifold are respectively installed on the base through supporting fasteners, and the two ends of the water outlet manifold are respectively installed on the base through the supporting fasteners. The supporting fasteners include a supporting part and a clamp. One end of the supporting part is fixed to the base, and the other end is fixed to the clamp. The clamp is installed on the water inlet manifold or the water outlet manifold.
5. The water supply assembly according to claim 1, characterized in that: The first connection portion includes a first groove, and the first groove is arranged around the circumference of the water inlet manifold; the second connection portion includes a second groove, and the second groove is arranged around the circumference of the water outlet manifold.
6. The water supply assembly according to claim 1, characterized in that: The end of the water inlet manifold in the water supply assembly is connected to the groove clamp, and the end of the water outlet manifold is connected to the groove clamp.
7. The water supply assembly according to claim 1, characterized in that: The end of the water inlet manifold is connected with a groove blind plate, and the end of the water outlet manifold is connected with a groove blind plate; and / or, the end of the water inlet manifold is connected with a groove flange, and the end of the water outlet manifold is connected with a groove flange.
8. The water supply assembly according to claim 1, characterized in that: The water pump is connected to the water outlet manifold via a water outlet pipe, the water supply assembly further includes a pressure transmitter, and the pressure transmitter is installed on the water outlet pipe in the water supply assembly; and / or, The water supply assembly further includes an air pressure tank, which is installed on the water outlet manifold in the water supply assembly; and / or, The water supply component also includes an ultrasonic water meter, which is installed on the water outlet manifold in the water supply component.
9. A water supply device, characterized in that: The invention comprises a plurality of water supply components according to any one of claims 1 to 8.
10. The water supply equipment according to claim 9, characterized in that: There are multiple water supply components, and the bases in adjacent water supply components are connected by a connecting piece, and the connecting piece cooperates with the connecting component to fix two adjacent bases.