Intelligent box-type variable-frequency water supply equipment

By installing a water inlet mechanism inside the water pipe, the problems of inaccurate detection data and easy damage to the circuit in intelligent box-type variable frequency water supply equipment are solved, realizing water filtration and simplified detection, and improving the reliability and accuracy of the equipment.

CN224133849UActive Publication Date: 2026-04-17JIANGXI ZHONGLI WATER CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANGXI ZHONGLI WATER CO LTD
Filing Date
2025-01-06
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing intelligent box-type variable frequency water supply equipment does not provide accurate data when detecting water quality inside water pipes, and requires long-distance wiring, resulting in large equipment size and susceptibility to damage.

Method used

An inlet mechanism is installed inside the water pipe, including components such as an inlet pipe, a combination pipe, a filter core, and a sealing cap. Through a sliding sealing connection, the water is initially filtered, and the collection and testing of water resources are facilitated by the operation of a lever and an adjusting ring.

Benefits of technology

It achieves simple water filtration, avoids scale formation in the water tank, simplifies water quality testing, reduces the risk of line damage, and improves the overall reliability and accuracy of the equipment.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224133849U_ABST
Patent Text Reader

Abstract

The utility model discloses an intelligent box type variable frequency water supply equipment, including water tank, water pump, pipeline system and variable frequency control cabinet, the outside of water tank bottom is welded with the drain pipe, and the frame bottom surface of drain pipe is provided with the collection hole, the end bolt of drain pipe is sealed with the water pump, and the water pump is connected with the pipeline system. A pipeline system is installed on the top of the water pump in a sealed mode through bolts, a frequency conversion control cabinet is installed on the left side of the water pump and electrically connected with the water pump through a wire, a water inlet mechanism is installed on the top face of the water tank, and a collecting frame is installed on the outer side of a drainage pipe in a surrounding mode. According to the intelligent box-type variable-frequency water supply equipment, when water supply work is carried out on the whole, water drained out of the water tank can be extracted and detected according to needs, the collecting container can collect water resources and then cut off the water resources through operation of the shifting rod on the adjusting ring, the seepage phenomenon is avoided, and the collecting container is taken out subsequently to carry out detailed data detection work on the internal water resources.
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Description

Technical Field

[0001] This utility model relates to the field of water supply equipment technology, specifically to an intelligent box-type variable frequency water supply equipment. Background Technology

[0002] Water supply equipment is used for supplying water, and can be used in four main categories according to its purpose: fire protection, domestic use, industrial use, and sewage treatment. Water supply equipment includes intelligent box-type variable frequency water supply equipment, which has intelligent adjustment function. Intelligent box-type variable frequency water supply equipment for domestic use is combined with water tank, water pump, variable frequency control cabinet and piping system.

[0003] Reference document: An energy-saving intelligent variable frequency water supply device, publication number: CN216304796U. This utility model can connect to water source quality problems in a timely manner by installing a water quality sensor inside the water inlet pipe. When the water source quality does not meet the standards, it is introduced into the purification tank and mixed with a purification agent using a cylindrical adsorption net to achieve water purification.

[0004] When testing water resources supplied through water pipes, the current method involves installing water quality sensors and electronic devices inside the pipes. However, the test data is not accurate enough, and the need for wiring connections results in an excessively large overall water supply equipment with long wiring distances, making it prone to damage. Therefore, an innovative design was developed based on the existing intelligent box-type variable frequency water supply equipment. Utility Model Content

[0005] The purpose of this utility model is to provide an intelligent box-type variable frequency water supply device to solve the problems mentioned in the background art. Currently, the common intelligent box-type variable frequency water supply devices on the market detect water resources supplied from inside water pipes by installing water quality sensors and electronic devices inside the water pipes. However, the detection data is not accurate enough, and the need for wiring connections results in an excessively large overall water supply device size, long wiring distances, and susceptibility to damage.

[0006] To achieve the above objectives, this utility model provides the following technical solution: an intelligent box-type variable frequency water supply device, comprising a water tank, a water pump, a piping system, and a variable frequency control cabinet. A drain pipe is welded and installed on the outer bottom of the water tank, and a collection hole is opened on the bottom surface of the frame of the drain pipe. The water pump is bolted and sealed at the end of the drain pipe, and the piping system is bolted and sealed at the top of the water pump. A variable frequency control cabinet is installed on the left side of the water pump, and the variable frequency control cabinet and the water pump are electrically connected by wires. A water inlet mechanism is installed on the top surface of the water tank, and a collection frame is installed around the outer side of the drain pipe.

[0007] The water inlet mechanism includes an inlet pipe, a combination pipe, a sealing ring, a filter element, a sealing cover, and a pull rod. The inlet pipe is provided on the bottom surface of the water inlet mechanism and is welded and fixed to the top surface of the water tank. The combination pipe is provided on the outer curved surface of the water inlet mechanism, and a sealing ring is installed on the top surface of the frame of the water inlet mechanism. The filter element is installed inside the water inlet mechanism, and a sealing cover is installed on the top of the filter element. A pull rod is provided on the top surface of the sealing cover, and the sealing cover is connected to the top opening of the water inlet mechanism.

[0008] Preferably, the water inlet mechanism, water inlet pipe, and combined pipe are integrated into a single structure, and the internal spaces of the water inlet mechanism, water inlet pipe, and combined pipe are interconnected. The water inlet mechanism is interconnected with the internal space of the water tank through the water inlet pipe. The connection between the water inlet mechanism and the filter core is a sliding seal, and the height of the filter core is lower than the internal height of the water inlet mechanism.

[0009] Preferably, the sealing cover is connected to the pull rod by welding, the sealing cover is connected to the water inlet mechanism by threaded connection, the sealing cover is connected to the sealing ring by compression sealing, and the sealing ring is connected to the water inlet mechanism by adhesive bonding.

[0010] Preferably, the collection frame includes a first water inlet, a combination hole, a storage ring groove, an adjusting arc groove, an adjusting ring, a sealing ring, a lever, a second water inlet, and a collection container. The bottom edge of the collection frame has a first water inlet and a combination hole, with the first water inlet located above the combination hole. The inner wall of the collection frame has a storage ring groove, and the top edge of the collection frame has an adjusting arc groove. An adjusting ring is installed inside the storage ring groove, and a sealing ring is installed between the adjusting ring and the inner wall of the collection frame. A lever is installed on the top surface of the edge of the adjusting ring, and the lever passes through the adjusting arc groove. The bottom edge of the adjusting ring has a second water inlet. A collection container is installed below the collection frame, and the top connector of the collection container is connected to the combination hole.

[0011] Preferably, the diameter of the combined hole is larger than the diameter of the first water inlet hole, and the axis of the first water inlet hole is aligned with the axis of the collection hole and the second water inlet hole. The diameter of the first water inlet hole is equal to the diameter of the second water inlet hole and the collection hole. The combined hole is connected to the collection container by a threaded connection.

[0012] Preferably, the adjusting ring and the lever are connected by welding, and the inner walls of the adjusting ring are equal to the inner walls of the collecting frame. The adjusting ring is connected to the collecting frame and the drain pipe by rotation, and the lever is connected to the adjusting groove by sliding.

[0013] Compared with the prior art, the beneficial effects of this utility model are: this intelligent box-type variable frequency water supply equipment,

[0014] 1. The water inlet mechanism and its components installed at the water tank inlet can easily perform simple filtration of the water during the water tank inlet process, avoiding the generation of a large amount of scale inside the water tank, which would affect the use and make cleaning troublesome.

[0015] 2. When the water supply is in operation, the water discharged from the water tank can be extracted and tested as needed. By operating the adjustment ring with the lever, the water collection container can be cut off after collecting the water to prevent leakage. The collection container can then be removed for detailed data testing of the internal water. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall assembled three-dimensional structure of this utility model;

[0017] Figure 2 This is a schematic diagram of the three-dimensional structure of the water inlet mechanism of this utility model;

[0018] Figure 3 This is a three-dimensional structural diagram of the drainage pipe of this utility model;

[0019] Figure 4 This is a three-dimensional cross-sectional view of the drainage pipe of this utility model;

[0020] Figure 5 This is a three-dimensional structural diagram of the separation of the collection frame and the collection container of this utility model;

[0021] Figure 6 This is a cross-sectional three-dimensional structural diagram of the collection frame of this utility model.

[0022] In the diagram: 1. Water tank; 2. Drain pipe; 3. Collection hole; 4. Water pump; 5. Piping system; 6. Wire; 7. Variable frequency control cabinet; 8. Water inlet mechanism; 81. Water inlet pipe; 82. Combination pipe; 83. Sealing ring; 84. Filter core; 85. Sealing cover; 86. Pull rod; 9. Collection frame; 91. First water inlet; 92. Combination hole; 93. Collection ring groove; 94. Adjustment arc groove; 95. Adjustment ring; 96. Sealing ring; 97. Lever; 98. Second water inlet; 99. Collection container. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0024] Please see Figures 1 to 6This utility model provides a technical solution: an intelligent box-type variable frequency water supply device, including a water tank 1, a water pump 4, a piping system 5, and a variable frequency control cabinet 7. A drain pipe 2 is welded and installed on the bottom outer side of the water tank 1, and a collection hole 3 is opened on the bottom surface of the frame of the drain pipe 2. The water pump 4 is bolted and sealed at the end of the drain pipe 2, and the piping system 5 is bolted and sealed at the top of the water pump 4. The variable frequency control cabinet 7 is installed on the left side of the water pump 4, and the variable frequency control cabinet 7 and the water pump 4 are electrically connected by a wire 6. A water inlet mechanism 8 is installed on the top surface of the water tank 1, and a collection frame 9 is installed around the outside of the drain pipe 2.

[0025] The water inlet mechanism 8 includes an inlet pipe 81, a combination pipe 82, a sealing ring 83, a filter element 84, a sealing cover 85, and a pull rod 86. The inlet pipe 81 is located on the bottom surface of the water inlet mechanism 8 and is welded and fixed to the top surface of the water tank 1. The combination pipe 82 is located on the outer curved surface of the water inlet mechanism 8. A sealing ring 83 is installed on the top surface of the frame of the water inlet mechanism 8. The filter element 84 is installed inside the water inlet mechanism 8. A sealing cover 85 is installed above the filter element 84, and a pull rod 86 is located on the top surface of the sealing cover 85. The sealing cover 85 is connected to the top opening of the water inlet mechanism 8. The inlet pipe 8, the water inlet pipe 81, and the combined pipe 82 are integrated into one structure. The internal spaces of the inlet mechanism 8, the water inlet pipe 81, and the combined pipe 82 are interconnected. The inlet mechanism 8 is interconnected with the internal space of the water tank 1 through the water inlet pipe 81. The connection between the inlet mechanism 8 and the filter core 84 is a sliding seal. The height of the filter core 84 is lower than the internal height of the inlet mechanism 8. This facilitates the initial delivery of external water resources to the water tank 1 through the pipe. At the same time, the filter core 84 installed inside the inlet mechanism 8 performs preliminary filtration, thus preventing the subsequent generation of a large amount of scale inside the water tank 1.

[0026] The sealing cover 85 is connected to the pull rod 86 by welding, and the sealing cover 85 is connected to the water inlet mechanism 8 by threaded connection. The sealing cover 85 is connected to the sealing ring 83 by compression sealing, and the sealing ring 83 is connected to the water inlet mechanism 8 by adhesive fixing. The sealing cover 85 can be manually operated through the pull rod 86. The sealing cover 85 seals the top opening of the water inlet mechanism 8 through the sealing ring 83.

[0027] The collection frame 9 includes a first water inlet 91, a combination hole 92, a receiving ring groove 93, an adjusting arc groove 94, an adjusting ring 95, a sealing ring 96, a lever 97, a second water inlet 98, and a collection container 99. The bottom edge of the collection frame 9 has the first water inlet 91 and the combination hole 92, with the first water inlet 91 located above the combination hole 92. The inner wall of the collection frame 9 has a receiving ring groove 93, and the top edge of the collection frame 9 has an adjusting arc groove 94. An adjusting ring 95 is installed inside the receiving ring groove 93, and a sealing ring 96 is installed between the adjusting ring 95 and the inner wall of the collection frame 9. A lever 97 is installed on the top surface of the edge of the adjusting ring 95, and the lever 97 passes through the adjusting arc groove 94. The bottom edge of the adjusting ring 95 has a second water inlet 98. 8. A collection container 99 is installed below the collection frame 9, and the top connector of the collection container 99 is connected to the combination hole 92. The diameter of the combination hole 92 is larger than the diameter of the first water inlet hole 91, and the axis of the first water inlet hole 91 is aligned with the axis of the collection hole 3 and the second water inlet hole 98. The diameter of the first water inlet hole 91 is equal to the diameter of the second water inlet hole 98 and the collection hole 3. The combination hole 92 and the collection container 99 are connected by a threaded connection. The collection container 99 can be disassembled and assembled through the threaded connection with the combination hole 92. When the collection hole 3 is aligned with the second water inlet hole 98 and the first water inlet hole 91, water can be collected. Otherwise, the work is interrupted, which facilitates the separation of the collection container 99.

[0028] The adjusting ring 95 is connected to the lever 97 by welding, and the inner walls of the adjusting ring 95 are equal to the inner walls of the collection frame 9. The adjusting ring 95 is connected to the collection frame 9 and the drain pipe 2 by rotation. The lever 97 is connected to the adjusting groove 94 by sliding. The adjusting ring 95 can be rotated by lever 97, which facilitates the adjustment ring 95 to rotate and misalign the second water inlet hole 98, thus facilitating the sealing and opening adjustment.

[0029] Working principle: According to Figures 1 to 6First, the water inlet mechanism 8 can be sealed with the external water pipe through the combination pipe 82 to allow water to enter the tank 1 for storage. Water can pass through the combination pipe 82, the filter core 84 inside the water inlet mechanism 8, and the water inlet pipe 81 to enter the tank 1. The filter core 84 can perform preliminary filtration of the water, reducing scale buildup inside the tank 1. Subsequently, intelligent frequency conversion control can be implemented through the frequency converter control cabinet 7, the piping system 5, and the collection port 3. The collection port 3 can extract water from the tank 1 through the drain pipe 2, allowing the water to enter the piping system 5 for transportation and distribution. When it is necessary to test the water supply, the lever 97 can be moved. The lever 97 slides through the adjusting groove 94, and simultaneously, the lever 97 drives the adjusting ring 95 to rotate within the collection frame 9 through the receiving ring groove 93, adjusting the water supply. The ring 95 maintains its sealing performance during rotation through the sealing rings 96 on both sides. At the same time, the adjusting ring 95 drives the second water inlet hole 98 to rotate and adjust its angle, so that the second water inlet hole 98 is aligned with the collection hole 3 and the first water inlet hole 91. Water inside the drain pipe 2 can flow into the collection container 99 through the collection hole 3, the second water inlet hole 98 and the first water inlet hole 91 for collection. Then, the adjusting arc groove 94 is turned back. According to the above principle, the rotation of the adjusting ring 95 drives the second water inlet hole 98 to be misaligned with the collection hole 3 and the first water inlet hole 91 for sealing, which facilitates the rotation of the collection container 99. The collection container 99 rotates and separates from the combination hole 92, and the water resources inside the collection container 99 can be tested for water quality using professional equipment. The above is the working process of the entire device. All contents not described in detail in this specification are existing technologies known to those skilled in the art.

[0030] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A smart tank-type variable frequency water supply device comprising a water tank (1), a water pump (4), a piping system (5) and a variable frequency control cabinet (7), characterized in that: A drain pipe (2) is welded to the bottom outer side of the water tank (1), and a collection hole (3) is opened on the bottom surface of the frame of the drain pipe (2). A water pump (4) is bolted to the end of the drain pipe (2), and a pipeline system (5) is bolted to the top of the water pump (4). A frequency converter control cabinet (7) is installed on the left side of the water pump (4), and the frequency converter control cabinet (7) and the water pump (4) are electrically connected by a wire (6). A water inlet mechanism (8) is installed on the top surface of the water tank (1), and a collection frame (9) is installed around the outside of the drain pipe (2).

2. The intelligent box-type variable frequency water supply device according to claim 1, characterized in that: The water inlet mechanism (8) includes an inlet pipe (81), a combination pipe (82), a sealing ring (83), a filter core (84), a sealing cover (85), and a pull rod (86). The bottom surface of the water inlet mechanism (8) is provided with an inlet pipe (81), and the inlet pipe (81) is welded and fixed to the top surface of the water tank (1). The outer side of the curved surface of the water inlet mechanism (8) is provided with a combination pipe (82), and the top surface of the frame of the water inlet mechanism (8) is provided with a sealing ring (83). The inside of the water inlet mechanism (8) is provided with a filter core (84), and the top of the filter core (84) is provided with a sealing cover (85). The top surface of the sealing cover (85) is provided with a pull rod (86), and the sealing cover (85) is connected to the top opening of the water inlet mechanism (8).

3. The intelligent box-type variable frequency water supply device according to claim 2, characterized in that: The water inlet mechanism (8), water inlet pipe (81) and combined pipe (82) are integrated into one structure. The internal spaces of the water inlet mechanism (8), water inlet pipe (81) and combined pipe (82) are interconnected. The water inlet mechanism (8) is interconnected with the internal space of the water tank (1) through the water inlet pipe (81). The connection between the water inlet mechanism (8) and the filter core (84) is a sliding seal. The height of the filter core (84) is lower than the internal height of the water inlet mechanism (8).

4. The intelligent box-type variable frequency water supply device according to claim 2, characterized in that: The sealing cover (85) is connected to the pull rod (86) by welding, and the sealing cover (85) is connected to the water inlet mechanism (8) by threaded connection. The sealing cover (85) is connected to the sealing ring (83) by compression sealing, and the sealing ring (83) is connected to the water inlet mechanism (8) by adhesive bonding.

5. The intelligent cabinet-type variable frequency water supply apparatus according to claim 1, characterized in that: The collection frame (9) includes a first water inlet (91), a combination hole (92), a storage ring groove (93), an adjustment arc groove (94), an adjustment ring (95), a sealing ring (96), a lever (97), a second water inlet (98), and a collection container (99). The bottom edge of the collection frame (9) is provided with the first water inlet (91) and the combination hole (92), and the first water inlet (91) is located above the combination hole (92). The inner wall of the collection frame (9) is provided with a storage ring groove (93), and the top edge of the collection frame (9) is provided with a... There is an adjusting arc groove (94), an adjusting ring (95) is installed inside the receiving ring groove (93), and a sealing ring (96) is installed between the adjusting ring (95) and the inner wall of the collecting frame (9). A lever (97) is installed on the top surface of the frame of the adjusting ring (95), and the lever (97) passes through the adjusting arc groove (94). A second water inlet hole (98) is opened on the bottom frame of the adjusting ring (95). A collecting container (99) is installed below the collecting frame (9), and the top connector of the collecting container (99) is connected to the combination hole (92).

6. The intelligent cabinet-type variable frequency water supply apparatus according to claim 5, characterized in that: The diameter of the combined hole (92) is larger than the diameter of the first water inlet hole (91), and the axis of the first water inlet hole (91) is aligned with the axis of the collection hole (3) and the second water inlet hole (98). The diameter of the first water inlet hole (91) is equal to the diameter of the second water inlet hole (98) and the collection hole (3). The combined hole (92) is connected to the collection container (99) by a threaded connection.

7. The intelligent cabinet-type variable frequency water supply apparatus according to claim 5, characterized in that: The adjustment ring (95) and the lever (97) are connected by welding, and the inner walls of the adjustment ring (95) are equal to the inner walls of the collection frame (9). The adjustment ring (95) is connected to the collection frame (9) and the drain pipe (2) by rotation, and the lever (97) is connected to the adjustment groove (94) by sliding.

Citation Information

Patent Citations

  • Energy-saving intelligent variable-frequency water supply equipment

    CN216304796U