Integrated energy-saving water supply equipment
By designing an integrated energy-saving water supply equipment, utilizing a servo motor to drive the shaft rotation and a secondary circulation filtration structure, the problems of high energy consumption and filtrate pore blockage in traditional water supply equipment are solved, achieving efficient wastewater filtration and improved device convenience.
Patent Information
- Application Number
- CN202422752942.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-12
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-11-12
AI Technical Summary
Traditional water supply equipment suffers from high energy consumption, complex maintenance, unstable operation, and easy clogging of filtrate pores during wastewater filtration, which affects purification efficiency and is inconvenient to clean.
The integrated energy-saving water supply equipment includes an energy-saving tank, a filter structure, and a circulation tank. A servo motor drives the rotating shaft to clean the filter screen and agitate the stirring plate. Combined with the secondary circulation filtration structure, it achieves efficient filtration and output of wastewater.
It improves wastewater filtration efficiency, prevents filtrate pore clogging, enhances the convenience and flexibility of the device, and optimizes the user experience and energy-saving effect.
Smart Images

Figure CN223586756U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of water treatment technology, specifically, it relates to an integrated energy-saving water supply device. Background Technology
[0002] Traditional water supply equipment suffers from high energy consumption, complex maintenance, and unstable operation, making it difficult to meet modern society's demands for energy conservation, environmental protection, and intelligent operation. With the rapid development of variable frequency control technology and Internet of Things (IoT) technology, integrated energy-saving water supply equipment has emerged, becoming an important way to solve the above problems.
[0003] Utility model CN210946997U discloses a variable frequency water supply device, including a base, an inlet pipe, at least three booster pumps, an outlet pipe, and a pressure stabilizing tank. The booster pumps are connected in parallel between the inlet and outlet pipes, and the outlet pipe is connected to the inlet of the pressure stabilizing tank. The device also includes a pressure monitoring module, a variable frequency control cabinet, and frequency converters equal in number to the booster pumps. The frequency converter control cabinet connects the pressure monitoring module and each frequency converter to acquire data and regulate device operation. This variable frequency water supply device installs a frequency converter for each booster pump, and the frequency converter control cabinet manages the operation of each booster pump uniformly. Based on this, new variable frequency methods can be optimized to achieve a digitally integrated full variable frequency water supply solution, with balanced efficiency for each booster pump, thus achieving a more ideal energy-saving effect. This utility model is applicable to the field of water supply equipment.
[0004] However, the above-mentioned patent still has the following problems: during the wastewater recycling and filtration process, the dirt in the wastewater will clog the filter holes, affecting the purification effect of the device on the wastewater and the purification efficiency of the device. The device is inconvenient to use, and manual cleaning of the device increases the workload of human labor. During the wastewater filtration process, the size of the filter holes cannot be changed, making it inconvenient to clean different types of sand and gravel. The device is relatively inconvenient to use.
[0005] In view of this, this utility model is proposed. Utility Model Content
[0006] To solve the aforementioned technical problem of filtrate pore blockage, the basic concept of the technical solution adopted by this utility model is as follows:
[0007] An integrated energy-saving water supply device includes:
[0008] Energy-saving canisters are placed on the ground.
[0009] The filtering structure comprises a filtering part and a dredging part, the filtering part comprises a first fixed ring plate arranged in the energy-saving tank, a second fixed ring plate is fixedly arranged at the bottom of the first fixed ring plate, and a first filter screen plate and a second filter screen plate are arranged in the first fixed ring plate and the second fixed ring plate respectively, the dredging part comprises a third fixed ring plate arranged in the first fixed ring plate and the second fixed ring plate, and a group of third filter screen plates are fixedly arranged at the top and the bottom of the third fixed ring plate;
[0010] The circulating tank is arranged outside the energy-saving tank and is placed on the ground.
[0011] As a preferred embodiment of the utility model, the dredging part further comprises a rotating shaft rotatably arranged in the energy-saving tank, a servo motor is fixedly arranged at the top of the energy-saving tank, the output shaft of the servo motor is fixedly connected with one end of the rotating shaft through a shaft coupling, the outer wall of the rotating shaft is fixedly connected with the inner wall of the third fixed ring plate, and a rotating shaft sleeve is arranged in the first filter screen plate and the second filter screen plate.
[0012] As a preferred embodiment of the utility model, the dredging part further comprises a fourth fixed ring plate fixedly arranged on the outer wall of the rotating shaft, a fourth filter screen plate is fixedly arranged at the top of the fourth fixed ring plate, the outer walls of the two groups of third filter screen plates are tightly arranged on the bottom of the first filter screen plate and the top of the second filter screen plate respectively, a stirring plate is fixedly arranged on the outer wall of the rotating shaft, and the stirring plate is arranged at the top of the first fixed ring plate.
[0013] As a preferred embodiment of the utility model, the bottom of the energy-saving tank is fixedly arranged with a sealing plate, one end of the stirring plate is rotatably arranged at the top of the sealing plate, a hole is arranged at the bottom of the sealing plate, a water outlet is fixedly arranged in the hole, a threaded groove is arranged in the water outlet, and a discharge hopper is arranged at the bottom of the energy-saving tank.
[0014] As a preferred embodiment of the utility model, a threaded sleeve is rotatably arranged at the top of the discharge hopper, the threaded sleeve is screwedly arranged in the threaded groove, and a liquid outlet pipe is fixedly arranged at the bottom of the discharge hopper.
[0015] As a preferred embodiment of the utility model, a water pump is fixedly arranged at the top of the circulating tank, the output end of the water pump is fixedly arranged with a liquid inlet pipe, the liquid inlet pipe is fixedly arranged in the energy-saving tank, a hole is arranged at the top of the energy-saving tank, a water inlet pipe is fixedly arranged in the hole, and a shunt pipe is fixedly arranged on the outer wall of the energy-saving tank.
[0016] As an optimal implementation form of the utility model, one end of the shunt pipe extends to the inside of the circulating tank, the other two ends of the shunt pipe are fixedly installed in the inside of the energy-saving tank, the outer wall of the shunt pipe is provided with a first water valve, a second water valve and a third water valve, the outer wall of the circulating tank is fixedly installed with a liquid discharge pipe, and the outer wall of the liquid discharge pipe is provided with a group of first water valves.
[0017] Compared with the prior art, the utility model has the following beneficial effects:
[0018] 1. The purpose of stirring and filtering wastewater is achieved, the filtering efficiency of wastewater is improved, the sand and gravel blocking the filter hole are cleaned and treated, the condition of the filter hole of the device being blocked is prevented, and the convenience of using the device is improved.
[0019] 2. The purpose of outputting the filtered wastewater is achieved, the filtering effect of the wastewater is improved, the efficiency of energy-saving water supply of the device is improved, the flexibility of using the device is improved, and the device is convenient to disassemble and clean.
[0020] 3. The purpose of twice circulating and filtering the wastewater is achieved, the circulating and filtering efficiency of wastewater treatment is improved, the conveying efficiency of the device is improved, and the use experience of the device is optimized.
[0021] The specific implementation manners of the utility model will be described in further detail in combination with the drawings. BRIEF DESCRIPTION OF DRAWINGS
[0022] In the drawings:
[0023] Figure 1 It is the front view of the utility model;
[0024] Figure 2 It is the structure schematic view of the utility model;
[0025] Figure 3 It is the top view of the utility model;
[0026] Figure 4 It is the pivot structure schematic view of the utility model;
[0027] Figure 5 It is the first fixed ring plate and the second fixed ring plate split view of the utility model;
[0028] Figure 6 It is the sealing plate and the discharge hopper split view of the utility model.
[0029] In the figure: 10, energy-saving tank; 11, water inlet; 12, servo motor; 13, rotating shaft; 14, stirring plate; 15, sealing plate; 16, water outlet; 17, first fixed ring plate; 18, first filter screen plate; 19, second fixed ring plate; 20, second filter screen plate; 21, third fixed ring plate; 22, third filter screen plate; 23, fourth fixed ring plate; 24, fourth filter screen plate; 25, threaded groove; 26, discharge hopper; 27, threaded sleeve; 28, liquid outlet pipe; 29, shunt pipe; 30, circulating tank; 31, water pump; 32, infusion pipe; 33, liquid discharge pipe; 34, first water valve; 35, second water valve; 36, third water valve. DETAILED DESCRIPTION
[0030] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model clearer, the technical scheme in the embodiments will be clearly and completely described below in combination with the drawings in the embodiments of the utility model. The following embodiments are used to illustrate the utility model.
[0031] Embodiment one: an integrated energy-saving water supply equipment, specifically as shown in Figure 1 , Figure 4 and Figure 5 , comprising an energy-saving tank 10, the energy-saving tank 10 is placed on the ground; a filtering structure, the filtering structure comprises a filtering part and a dredging part, the filtering part comprises a first fixed ring plate 17 arranged in the interior of the energy-saving tank 10, the bottom of the first fixed ring plate 17 is fixedly installed with a second fixed ring plate 19, the interiors of the first fixed ring plate 17 and the second fixed ring plate 19 are respectively provided with a first filter screen plate 18 and a second filter screen plate 20, the dredging part comprises a third fixed ring plate 21 arranged in the interiors of the first fixed ring plate 17 and the second fixed ring plate 19, the top and the bottom of the third fixed ring plate 21 are fixedly installed with a group of third filter screen plates 22; a circulating tank 30, the circulating tank 30 is arranged outside the energy-saving tank 10, and the circulating tank 30 is placed on the ground. The waste water is filtered and treated through the filtering structure.
[0032] Specifically as shown in Figure 1 , Figure 4 and Figure 5 , the dredging part further comprises a rotating shaft 13 rotatably installed in the interior of the energy-saving tank 10, the top of the energy-saving tank 10 is fixedly installed with a servo motor 12, the output shaft of the servo motor 12 is fixedly connected with one end of the rotating shaft 13 through a shaft coupling, the outer wall of the rotating shaft 13 is fixedly connected with the inner wall of the third fixed ring plate 21, and the rotating shaft 13 is sleeved and installed in the interiors of the first filter screen plate 18 and the second filter screen plate 20. The servo motor 12 is started, the rotating shaft 13 is driven to rotate, the third fixed ring plate 21 is driven to rotate in the interiors of the first fixed ring plate 17 and the second fixed ring plate 19, and the first filter screen plate 18 and the second filter screen plate 20 are stirred and cleaned through the third filter screen plate 22.
[0033] Specifically asFigure 1 、 Figure 4 and Figure 5 As shown in
[0034] According to the above, through the structure of the energy-saving tank 10, the rotating shaft 13, the stirring plate 14, the sealing plate 15, the water outlet 16, the first fixed ring plate 17, the first filter screen plate 18, the second fixed ring plate 19, the second filter screen plate 20, the third fixed ring plate 21, the third filter screen plate 22, the fourth fixed ring plate 23, and the fourth filter screen plate 24, the purpose of agitating and filtering wastewater is achieved, the filtering efficiency of wastewater is improved, the sand and gravel that block the filter holes are cleaned, the condition of filter hole blockage of the device is prevented, and the convenience of using the device is improved.
[0035] Example Two: Based on Example One, as shown in Figure 1 、 Figure 4 and Figure 6 The bottom of the energy-saving tank 10 is fixedly installed with a sealing plate 15, one end of the stirring plate 14 is rotatably installed on the top of the sealing plate 15, the bottom of the sealing plate 15 is provided with a hole, the hole is fixedly installed with a water outlet 16, the inside of the water outlet 16 is provided with a threaded groove 25, and the bottom of the energy-saving tank 10 is provided with a discharge hopper 26. The bottom of the energy-saving tank 10 is fixed by the sealing plate 15.
[0036] As shown in Figure 1 、 Figure 4 and Figure 6 The top of the discharge hopper 26 is rotatably installed with a threaded sleeve 27, the threaded sleeve 27 is screwedly installed in the inside of the threaded groove 25, and the bottom of the discharge hopper 26 is fixedly installed with a liquid outlet pipe 28. The threaded sleeve 27 is screwedly installed in the inside of the threaded groove 25 by rotating the threaded sleeve 27, and the filtered wastewater is output through the water outlet 16, the discharge hopper 26, and the liquid outlet pipe 28.
[0037] According to the above, through the structure of the stirring plate 14, the sealing plate 15, the water outlet 16, the threaded groove 25, the discharge hopper 26, the threaded sleeve 27, and the liquid outlet pipe 28, the purpose of outputting the filtered wastewater is achieved, the filtering effect of the wastewater is improved, the energy-saving water supply efficiency of the device is improved, the flexibility of using the device is improved, and the device is convenient to disassemble and clean.
[0038] Embodiment three: on the basis of embodiment one and embodiment two, as shown in Figure 1 、 Figure 2 and Figure 3 , the top of the circulating tank 30 is fixedly installed with a water pump 31, the output end of the water pump 31 is fixedly installed with a liquid delivery pipe 32, the liquid delivery pipe 32 is fixedly installed in the inside of the energy-saving tank 10, the top of the energy-saving tank 10 is provided with a hole, the hole is fixedly installed with a water inlet 11, and the outer wall of the energy-saving tank 10 is fixedly installed with a shunt pipe 29. Start the water pump 31, collect the wastewater that is not drained through the liquid outlet pipe 28 to the circulating tank 30 through the shunt pipe 29, and return to the energy-saving tank 10 for secondary filtration through the liquid delivery pipe 32.
[0039] As shown in Figure 1 、 Figure 2 and Figure 3 , one end of the shunt pipe 29 extends to the inside of the circulating tank 30, the other two ends of the shunt pipe 29 are fixedly installed in the inside of the energy-saving tank 10, the outer wall of the shunt pipe 29 is provided with a first water valve 34, a second water valve 35 and a third water valve 36, the outer wall of the circulating tank 30 is fixedly installed with a liquid discharge pipe 33, and the outer wall of the liquid discharge pipe 33 is provided with a group of first water valves 34. The first water valve 34, the second water valve 35 and the third water valve 36 are used to control the delivery of the shunt pipe 29, and the impurities in the secondary filtration wastewater are discharged through the liquid discharge pipe 33.
[0040] As described above, through the structure of the shunt pipe 29, the circulating tank 30, the water pump 31, the liquid delivery pipe 32, the liquid discharge pipe 33, the first water valve 34, the second water valve 35 and the third water valve 36, the purpose of secondary circulation filtration of wastewater is achieved, the circulation filtration efficiency of wastewater treatment is improved, the conveying efficiency of the device is improved, and the use experience of the device is optimized.
[0041] Working principle: the wastewater first enters the energy-saving tank 10, and is preliminarily filtered through the filtering structure. The filtering structure is composed of a filtering part and a dredging part. The filtering part includes a first fixed ring plate 17, a first filtrate mesh plate 18, a second fixed ring plate 19 and a second filtrate mesh plate 20, which are arranged in layers to filter the impurities in the wastewater step by step. The dredging part is driven to rotate by the servo motor 12, and then drives the third fixed ring plate 21 and the third filtrate mesh plate 22 thereon to rotate. This rotating movement not only helps to clean the first filtrate mesh plate 18 and the second filtrate mesh plate 20 to prevent clogging, but also further promotes the uniform mixing of the wastewater and the filtering effect through the stirring action of the fourth fixed ring plate 23, the fourth filtrate mesh plate 24 and the stirring plate 14. The filtered wastewater is discharged through the water outlet 16 at the bottom of the energy-saving tank 10, the discharge hopper 26 and the liquid outlet pipe 28 for subsequent treatment or reuse. The design of the water outlet 16 (including the threaded groove 25 and the threaded sleeve 27) facilitates installation and removal, and facilitates maintenance. The wastewater (which may be wastewater with a high impurity content or wastewater that does not meet the discharge standard) that is not discharged through the liquid outlet pipe 28 is collected into the circulating tank 30. The water pump 31 at the top of the circulating tank 30 pumps this part of the wastewater back to the energy-saving tank 10 for secondary filtration, improving the utilization rate of the wastewater and the filtering effect. The shunt pipe 29 plays a key role in shunting between the energy-saving tank 10 and the circulating tank 30. Through the control of the first water valve 34, the second water valve 35 and the third water valve 36, the flow direction and flow rate of the wastewater can be flexibly adjusted. The liquid discharge pipe 33 on the outer wall of the circulating tank 30 and the first water valve 34 thereon are used to discharge impurities or wastewater that does not meet the standard generated in the secondary filtration process, ensuring the continuous and efficient operation of the equipment.
[0042] It can be understood that the utility model is described through some embodiments, and those skilled in the art know that various changes or equivalent replacements can be made to these features and embodiments without departing from the spirit and scope of the utility model. In addition, under the guidance of the utility model, these features and embodiments can be modified to adapt to specific conditions and materials without departing from the spirit and scope of the utility model. Therefore, the utility model is not limited by the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of the present application belong to the scope protected by the utility model.
Claims
1. An integrated energy-saving water supply apparatus, characterized by comprising: The utility model relates to an energy-saving tank (10) is placed on the ground, a filter structure, a dredging part, a circulating tank (30) is arranged outside the energy-saving tank (10), and the circulating tank (30) is placed on the ground. The filter structure comprises a filter part and a dredging part, the filter part comprises a first fixed ring plate (17) arranged inside the energy-saving tank (10), the bottom of the first fixed ring plate (17) is fixedly installed with a second fixed ring plate (19), the inside of the first fixed ring plate (17) and the second fixed ring plate (19) is respectively provided with a first filtrate screen plate (18) and a second filtrate screen plate (20), the dredging part comprises a third fixed ring plate (21) arranged inside the first fixed ring plate (17) and the second fixed ring plate (19), and the top and the bottom of the third fixed ring plate (21) are fixedly installed with a group of third filtrate screen plates (22). The circulating tank (30) is arranged outside the energy-saving tank (10), and the circulating tank (30) is placed on the ground. The dredging part further comprises a rotating shaft (13) rotatably installed inside the energy-saving tank (10), the top of the energy-saving tank (10) is fixedly installed with a servo motor (12), the output shaft of the servo motor (12) is fixedly connected with one end of the rotating shaft (13) through a shaft coupling, the outer wall of the rotating shaft (13) is fixedly connected with the inner wall of the third fixed ring plate (21), and the rotating shaft (13) is sleeved and installed inside the first filtrate screen plate (18) and the second filtrate screen plate (20).
2. The integrated energy-saving water supply apparatus according to claim 1, wherein The dredging part further comprises a fourth fixed ring plate (23) fixedly installed on the outer wall of the rotating shaft (13), the top of the fourth fixed ring plate (23) is fixedly installed with a fourth filtrate screen plate (24), the outer walls of the two groups of third filtrate screen plates (22) are respectively tightly attached to the bottom of the first filtrate screen plate (18) and the top of the second filtrate screen plate (20), the outer wall of the rotating shaft (13) is fixedly installed with an agitator plate (14), and the agitator plate (14) is arranged at the top of the first fixed ring plate (17).
3. The integrated energy-saving water supply apparatus according to claim 1, wherein The bottom of the energy-saving tank (10) is fixedly installed with a sealing plate (15), one end of the agitator plate (14) is rotatably installed at the top of the sealing plate (15), the bottom of the sealing plate (15) is provided with a hole, the hole is fixedly installed with a water outlet (16), the inside of the water outlet (16) is provided with a threaded groove (25), and the bottom of the energy-saving tank (10) is provided with a discharge hopper (26).
4. The integrated energy-saving water supply apparatus according to claim 1, wherein The top of the discharge hopper (26) is rotatably installed with a threaded sleeve (27), the threaded sleeve (27) is screwedly installed inside the threaded groove (25), and the bottom of the discharge hopper (26) is fixedly installed with a liquid outlet pipe (28).
5. The integrated energy-saving water supply apparatus according to claim 4, wherein The top of the circulating tank (30) is fixedly installed with a water pump (31), the output end of the water pump (31) is fixedly installed with a liquid inlet pipe (32), the liquid inlet pipe (32) is fixedly installed inside the energy-saving tank (10), the top of the energy-saving tank (10) is provided with a hole, the hole is fixedly installed with a water inlet (11), and the outer wall of the energy-saving tank (10) is fixedly installed with a shunt pipe (29).
6. The integrated energy-saving water supply apparatus according to claim 1, wherein 7. The integrated energy-saving water supply apparatus according to claim 6, wherein One end of the shunt pipe (29) extends to the inside of the circulating tank (30), the other two ends of the shunt pipe (29) are fixedly installed in the inside of the energy-saving tank (10), the outer wall of the shunt pipe (29) is provided with the first water valve (34), the second water valve (35) and the third water valve (36), the outer wall of the circulating tank (30) is fixedly installed with the liquid discharge pipe (33), and the outer wall of the liquid discharge pipe (33) is provided with a group of first water valves (34).
Citation Information
Patent Citations
Variable-frequency water supply equipment
CN210946997U