An electronic water pump controller performance detection device
By designing an electronic water pump controller detection device that includes vibration, temperature, humidity and pressure simulation units, the problem of inability to fully simulate complex environmental factors in the prior art is solved, and comprehensive performance testing and stability verification of water pump controllers are achieved.
Patent Information
- Application Number
- CN202510338691.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2045-03-21
AI Technical Summary
The prior art is difficult to fully simulate the performance of electronic water pump controllers under complex environmental factors, resulting in the inability to effectively verify its reliability and stability.
An electronic water pump controller performance detection device is designed, including a second environmental simulation unit that simulates a vibration environment, a first environmental simulation unit that simulates a usage environment, and a water effluent unit for monitoring the water effluent. By simulating factors such as temperature, humidity, pressure and vibration, the reliability and stability of the water pump controller are tested.
A comprehensive performance test of the electronic water pump controller in complex environments is realized to ensure efficient and reliable operation under different environmental factors.
Smart Images

Figure CN119847126B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of electronic water pump controllers, and particularly to a performance detection device for an electronic water pump controller. Background Art
[0002] Electronic water pump controllers are widely used in various industrial and household devices. Especially in automated control systems, they play a crucial role in starting and stopping water pumps, adjusting speeds, controlling flow rates, etc. With the popularization of electronic water pump controllers used in different working environments, the stability and reliability of the performance of water pump controllers in different environments become particularly important. Especially under some harsh working conditions, such as environmental factors like high temperature, low temperature, high humidity, high pressure, and vibration, these external conditions may have a significant impact on the performance of water pump controllers, thereby affecting their operating effects and service lives.
[0003] Currently, most performance detection methods for electronic water pump controllers mainly rely on standardized test procedures, usually carried out under simple laboratory conditions such as temperature control and voltage regulation. However, these traditional detection methods often cannot fully simulate the complex factors in the actual working environment. Therefore, the reliability, stability, as well as the response ability and adaptability of water pump controllers under different environmental factors, often cannot be comprehensively verified.
[0004] To ensure the long-term stable operation of electronic water pump controllers in complex environments, a more systematic detection method must be adopted to simulate various factors in the actual working environment and ensure that water pump controllers can still maintain efficient and reliable working performance under various environmental changes. Summary of the Invention
[0005] In view of the above technical problems, the present invention discloses a performance detection device for an electronic water pump controller, including a base. A second environment simulation unit for simulating a vibration environment is arranged on the base. A first environment simulation unit for simulating the usage environment of the electronic water pump controller and a pressurizing unit for simulating the working environment of the electronic water pump controller are connected to the second environment simulation unit. An outlet unit for monitoring the operation of the electronic water pump controller under environment simulation is connected to the first environment simulation unit;
[0006] The base includes a bottom plate, a vertical plate is fixedly installed on the bottom plate, and a first pipe connecting plate and two symmetrically distributed second pipe connecting plates are installed on the vertical plate;
[0007] The second environment simulation unit includes a shaking component, and the shaking component is connected to the pressurizing unit;
[0008] The pressurizing unit includes a second motor and a sliding component. The second motor is connected to the shaking component, and a piston component is connected to the sliding component;
[0009] The first environment simulation unit includes a temperature and humidity simulation component for simulating the usage environment temperature and humidity, and a fixing component is connected to the temperature and humidity simulation component.
[0010] Further, the second environment simulation unit further includes a second fixing plate. Symmetrically distributed sliding grooves two are provided on the second fixing plate. A first fixing plate is fixedly installed near the first end of the second fixing plate. A sliding groove one is provided on the first fixing plate. A plurality of uniformly distributed springs are provided on the first fixing plate, and the first ends of the springs are fixedly installed on the first fixing plate.
[0011] Further, the shaking component includes a rotating disc. The rotating disc is rotatably installed on the second fixing plate. A long connecting shaft is fixedly installed on the rotating disc. A second pulley is fixedly installed at one end of the long connecting shaft close to the rotating disc. A first vertical tooth part is fixedly installed on the second pulley.
[0012] Further, the shaking component further includes a first pulley and a sliding connecting plate. The first pulley is rotatably installed on the second fixing plate. The first pulley and the second pulley are connected by a belt. The sliding connecting plate is slidably installed in the sliding groove one. A second vertical tooth part is rotatably installed at the first end of the sliding connecting plate. The second vertical tooth part meshes with the first vertical tooth part. The second vertical tooth part is slidably connected to the long connecting shaft. A cam is rotatably installed on the sliding connecting plate. The cam is concentric and fixedly connected to the second vertical tooth part. The cylinder arm of a hydraulic cylinder is fixedly installed at the second end of the sliding connecting plate. The cylinder barrel of the hydraulic cylinder is fixedly installed on the bottom plate.
[0013] Further, the sliding component includes a fixed shell. The fixed shell is fixedly installed on the long connecting shaft. A first motor is fixedly installed on the fixed shell. A lead screw is fixedly installed at the output end of the fixed shell. A sliding block is threadedly connected to the lead screw. The sliding block is connected to the fixed shell. A first connecting rod is fixedly installed on the sliding block.
[0014] Further, the piston component includes a second connecting rod. One end of the second connecting rod is connected to the first connecting rod. A piston is rotatably installed at the other end of the second connecting rod. The piston is slidably connected to a piston housing. The piston housing is fixedly installed on a vertical plate. An intake valve is fixedly installed on one side of the piston housing. An air outlet pipe is fixedly installed at the other end of the piston housing. An air outlet valve is provided on the air outlet pipe.
[0015] Further, the fixing component includes a sliding plate, the sliding plate is connected to the second ends of a plurality of springs, the sliding plate is connected to two second sliding grooves, a box and a third pipeline connecting plate are fixedly installed on the sliding plate, a magnetic door is connected to the box by a magnet, a water inlet pipeline is fixedly installed on one side of the magnetic door, the water inlet pipeline is connected to an air outlet pipe, a first flange is fixedly installed on the water inlet pipeline, the water inlet pipeline is connected to the third pipeline connecting plate, a water outlet pipeline is fixedly installed on the other side of the box, and a second flange is fixedly installed on the water outlet pipeline.
[0016] Further, the temperature and humidity simulation component includes a heater, a humidifier and a spoiler fan. The heater and the humidifier are both fixedly installed on the top of the box, and the spoiler fan is fixedly installed on the other side of the box.
[0017] Further, the water outlet unit includes a water outlet hose and a water inlet hose. The water inlet hose is connected to the water inlet pipeline. A second connecting pipeline is connected to the water inlet hose. A water storage tank is fixedly installed on the second connecting pipeline. The water storage tank is fixedly installed on the vertical plate. One end of the water outlet hose is connected to the water outlet pipeline, and the other end of the water outlet hose is fixedly connected to a first connecting pipeline. The first connecting pipeline is connected to the first pipeline connecting plate. The first connecting pipeline is connected to two second pipeline connecting plates. A flow meter is connected to the first connecting pipeline. A third connecting pipeline is connected to the flow meter. The third connecting pipeline extends into the water storage tank.
[0018] Further, a filtering member is slidably installed in the water storage tank. A filter screen is arranged on the filtering member. Two symmetrically distributed heating wires are fixedly installed in the water storage tank.
[0019] The beneficial effects of the present invention compared with the prior art are as follows: (1) The present invention is provided with a first environment simulation unit to simulate the influence of the actual working environment of humidity and temperature on the performance of the water pump controller through the first environment simulation unit, and to test the reliability and stability of the water pump controller; (2) The present invention is provided with a second environment simulation unit and a pressurizing unit. The influence of different inlet water pressures on the water pump controller is tested through the pressurizing unit, and the influence of the water pump controller in a vibration environment is tested through the second environment simulation unit, and the stability and response ability of the water pump controller are tested; (3) The present invention is provided with a water outlet unit. The water outlet unit includes a heating wire. The temperature of the water entering the water pump is changed through the heating wire, so as to test the influence of the inlet water temperature on the water pump controller, and to test the reliability and stability of the water pump controller. Description of the Drawings
[0020] Figure 1 It is a schematic diagram of the overall structure of the present invention.
[0021] Figure 2 It is a schematic diagram of the structure of the first environment simulation unit of the present invention.
[0022] Figure 3 This is a partial structural schematic diagram of the first environmental simulation unit of the present invention.
[0023] Figure 4 This is a partial structural schematic of the second environmental simulation unit of the present invention Figure 1 .
[0024] Figure 5 It is Figure 4 an enlarged schematic diagram of the structure at position A in
[0025] Figure 6 This is a partial structural schematic of the second environmental simulation unit of the present invention Figure 2 .
[0026] Figure 7 It is Figure 6 an enlarged schematic diagram of the structure at position B in
[0027] Figure 8 This is a structural schematic diagram of the pressurizing unit of the present invention.
[0028] Figure 9 This is a partial structural schematic diagram of the pressurizing unit of the present invention.
[0029] Figure 10 This is a structural schematic diagram of the water outlet unit of the present invention.
[0030] Figure 11 This is a partial structural schematic diagram of the water outlet unit of the present invention.
[0031] Reference numerals in the drawings: 1 - bottom plate; 2 - vertical plate; 3 - first pipe connection plate; 4 - second pipe connection plate; 5 - first environmental simulation unit; 6 - second environmental simulation unit; 7 - pressurizing unit; 8 - water outlet unit; 501 - box; 502 - inlet pipe; 503 - third pipe connection plate; 504 - sliding plate; 505 - magnetic door; 506 - heater; 507 - humidifier; 508 - outlet pipe; 509 - turbulence fan; 510 - first flange; 511 - second flange; 601 - first fixing plate; 602 - first sliding groove; 603 - spring; 604 - second sliding groove; 605 - hydraulic cylinder; 606 - sliding connection plate; 607 - rotating disc; 608 - long connecting shaft; 609 - cam; 610 - first pulley; 611 - belt; 612 - second pulley; 613 - first vertical tooth part; 614 - second vertical tooth part; 615 - second fixing plate; 701 - first motor; 702 - fixed housing; 703 - second motor; 704 - sliding block; 705 - first connecting rod; 706 - lead screw; 707 - second connecting rod; 708 - piston housing; 709 - outlet pipe; 710 - outlet valve; 711 - inlet valve; 801 - water outlet hose; 802 - first connecting pipe; 803 - inlet water hose; 804 - second connecting pipe; 805 - water storage tank; 806 - third connecting pipe; 807 - flow meter; 808 - filter element; 809 - heating wire. Detailed implementation mode
[0032] It should be noted that, without conflict, the embodiments in the present invention and the features in the embodiments can be combined with each other.
[0033] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be understood as a limitation to the present invention. In addition, the terms "first", "second", etc. are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first", "second", etc. may explicitly or implicitly include one or more of such features. In the description of the present invention, unless otherwise specified, the meaning of "a plurality" is two or more.
[0034] In the description of the present invention, it should be noted that, unless otherwise clearly specified and defined, the terms "installed", "connected", and "coupled" shall be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral connection; it may be a mechanical connection or an electrical connection; it may be a direct connection or an indirect connection through an intermediate medium, and it may be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0035] Embodiment: As Figures 1-11 shown, a performance detection device for an electronic water pump controller includes a base. A second environmental simulation unit 6 for simulating a vibration environment is provided on the base. A first environmental simulation unit 5 for simulating the usage environment of the electronic water pump controller and a pressurizing unit 7 for simulating the working environment of the electronic water pump controller are connected to the second environmental simulation unit 6. An outlet unit 8 for monitoring the operation of the electronic water pump controller under environmental simulation is connected to the first environmental simulation unit 5. The base includes a bottom plate 1, a vertical plate 2 is fixedly installed on the bottom plate 1, a pipe connection plate one 3 and two symmetrically distributed pipe connection plates two 4 are installed on the vertical plate 2.
[0036] As Figures 2-7 shown, the second environmental simulation unit 6 includes a shaking assembly. The shaking assembly is connected to the pressurizing unit 7. The second environmental simulation unit 6 further includes a fixing plate two 615. Symmetrically distributed sliding grooves two 604 are provided on the fixing plate two 615. A fixing plate one 601 is fixedly installed near the first end of the fixing plate two 615. A sliding groove one 602 is provided on the fixing plate one 601. A plurality of uniformly distributed springs 603 are provided on the fixing plate one 601. The first ends of the springs 603 are fixedly installed on the fixing plate one 601.
[0037] The shaking component includes a rotating disc 607 which is rotatably installed on the second fixing plate 615. A long connecting shaft 608 is fixedly installed on the rotating disc 607. At one end of the long connecting shaft 608 close to the rotating disc 607, a second pulley 612 is fixedly installed. A first vertical tooth part 613 is fixedly installed on the second pulley 612. The shaking component further includes a first pulley 610 and a sliding connecting plate 606. The first pulley 610 is rotatably installed on the second fixing plate 615. The first pulley 610 is connected to the second pulley 612 by a belt 611. The sliding connecting plate 606 is slidably installed in the first sliding groove 602. A second vertical tooth part 614 is rotatably installed at the first end of the sliding connecting plate 606. The second vertical tooth part 614 meshes with the first vertical tooth part 613. The second vertical tooth part 614 is slidably connected to the long connecting shaft 608. A cam 609 is rotatably installed on the sliding connecting plate 606. The cam 609 is concentric and fixedly connected to the second vertical tooth part 614. The cylinder arm of a hydraulic cylinder 605 is fixedly installed at the second end of the sliding connecting plate 606. The cylinder barrel of the hydraulic cylinder 605 is fixedly installed on the bottom plate 1.
[0038] As Figure 2 , Figure 3 shown, the electronic water pump is installed in the first environmental simulation unit 5. The second motor 703 is started. The output end of the second motor 703 drives the first pulley 610 to rotate. The first pulley 610 drives the second pulley 612 to rotate through the belt 611. The second pulley 612 drives the first vertical tooth part 613 to rotate. At this time, the first vertical tooth part 613 does not mesh with the second vertical tooth part 614. The second pulley 612 drives the rotating disc 607 to rotate through the long connecting shaft 608. Then the hydraulic cylinder 605 is started. The cylinder arm of the hydraulic cylinder 605 drives the sliding connecting plate 606 to slide. The sliding connecting plate 606 drives the second vertical tooth part 614 to mesh with the first vertical tooth part 613. The second vertical tooth part 614 drives the cam 609 to rotate. The cam 609 drives the first environmental simulation unit 5 to move.
[0039] As Figure 8 , Figure 9 shown, the pressurizing unit 7 includes a second motor 703 and a sliding component. The second motor 703 is connected to the first pulley 610. A piston component is connected to the sliding component. The sliding component includes a fixed shell 702 which is fixedly installed on the long connecting shaft 608. A first motor 701 is fixedly installed on the fixed shell 702. A lead screw 706 is fixedly installed at the output end of the fixed shell 702. A sliding block 704 is threadedly connected to the lead screw 706. The sliding block 704 is connected to the fixed shell 702. A first connecting rod 705 is fixedly installed on the sliding block 704.
[0040] The piston assembly includes a second connecting rod 707. One end of the second connecting rod 707 is connected to the first connecting rod 705. A piston is rotatably mounted at the other end of the second connecting rod 707. A piston housing 708 is slidably connected to the piston. The piston housing 708 is fixedly mounted on the vertical plate 2. An intake valve 711 is fixedly mounted on one side of the piston housing 708. An air outlet pipe 709 is fixedly mounted at the other end of the piston housing 708. An outlet valve 710 is provided on the air outlet pipe 709.
[0041] After the second motor 703 is started, the output end of the second motor 703 drives the first pulley 610 to rotate. The first pulley 610 drives the second pulley 612 to rotate through the belt 611. The second pulley 612 drives the first vertical gear member 613 to rotate. At this time, the first vertical gear member 613 is not engaged with the second vertical gear member 614. The second pulley 612 drives the rotating disc 607 to rotate through the long connecting shaft 608. The rotating disc 607 drives the fixed housing 702 to move. The fixed housing 702 drives the first connecting rod 705 to move through the sliding block 704. The first connecting rod 705 drives the piston to perform a piston motion in the piston housing 708 through the second connecting rod 707, and pushes air into the water inlet pipe 502 through the outlet valve 710 and the air outlet pipe 709. When it is necessary to change the amount of air pushed in, the first motor 701 is started. The output end of the first motor 701 drives the sliding block 704 to slide in the fixed housing 702 through the lead screw 706, thereby changing the motion stroke of the second connecting rod 707.
[0042] The first environmental simulation unit 5 includes a temperature and humidity simulation component for simulating the temperature and humidity of the use environment. A fixing component is connected to the temperature and humidity simulation component. The fixing component includes a sliding plate 504. The second ends of a plurality of springs 603 are connected to the sliding plate 504. The sliding plate 504 is connected to two second sliding grooves 604. A box 501 and a third pipe connecting plate 503 are fixedly mounted on the sliding plate 504. A magnetic door 505 is connected to the box 501 through a magnet. An intake water pipe 502 is fixedly mounted on one side of the magnetic door 505. The intake water pipe 502 is connected to the air outlet pipe 709. A first flange 510 is fixedly mounted on the intake water pipe 502. The intake water pipe 502 is connected to the third pipe connecting plate 503. A water outlet pipe 508 is fixedly mounted on the other side of the box 501. A second flange 511 is fixedly mounted on the water outlet pipe 508. The temperature and humidity simulation component includes a heater 506, a humidifier 507 and a turbulence fan 509. The heater 506 and the humidifier 507 are both fixedly mounted on the top of the box 501. The turbulence fan 509 is fixedly mounted on the other side of the box 501.
[0043] Connect the water inlet end of the electric water pump to flange one 510 with bolts. After connecting the water outlet end of the electric water pump to flange two 511 with bolts, fix the electric water pump in box 501, close the magnetic door 505, start the heater 506 or / and the humidifier 507, and then start the spoiler fan 509 to fully distribute the temperature or humidity in box 501. Then observe the water outlet unit 8 to determine whether the water output of the electric water pump controller is affected under different humidity and temperature conditions, so as to reflect whether the electric water pump affects the performance.
[0044] As Figure 10 , Figure 11 shown, the water outlet unit 8 includes a water outlet hose 801 and a water inlet hose 803. The water inlet hose 803 is connected to the water inlet pipe 502. A connecting pipe two 804 is connected to the water inlet hose 803. A water storage tank 805 is fixedly installed on the connecting pipe two 804. The water storage tank 805 is fixedly installed on the vertical plate 2. One end of the water outlet hose 801 is connected to the water outlet pipe 508. A connecting pipe one 802 is fixedly connected to the other end of the water outlet hose 801. The connecting pipe one 802 is connected to the pipe connecting plate one 3. The connecting pipe one 802 is connected to two pipe connecting plates two 4. A flow meter 807 is connected to the connecting pipe one 802. A connecting pipe three 806 is connected to the flow meter 807. The connecting pipe three 806 extends into the water storage tank 805. A filter element 808 is slidably installed in the water storage tank 805. A filter screen is provided on the filter element 808. Two symmetrically distributed heating wires 809 are fixedly installed in the water storage tank 805.
[0045] Working principle: Connect the water inlet end of the electronic water pump to flange one 510 with bolts. After connecting the water outlet end of the electronic water pump to flange two 511 with bolts, fix the electronic water pump in box 501, close the magnetic suction door 505, start the heater 506 or / and the humidifier 507, and then start the turbulence fan 509 to fully distribute the temperature or humidity in box 501. Then, based on the data of the flowmeter 807, it can be obtained whether the water output of the electronic water pump controller is affected under different humidity and temperature conditions, so as to reflect whether the electronic water pump affects the performance. After closing the heater 506 and the humidifier 507, when the second motor 703 starts, the output end of the second motor 703 drives the first pulley 610 to rotate. The first pulley 610 drives the second pulley 612 to rotate through the belt 611. The second pulley 612 drives the first vertical gear part 613 to rotate. At this time, the first vertical gear part 613 does not mesh with the second vertical gear part 614. The second pulley 612 drives the rotating disc 607 to rotate through the long connecting shaft 608. The rotating disc 607 drives the fixed housing 702 to move. The fixed housing 702 drives the first connecting rod 705 to move through the sliding block 704. The first connecting rod 705 drives the piston to move in the piston housing 708 through the second connecting rod 707, and pushes the air into the water inlet pipe 502 through the air outlet valve 710 and the air outlet pipe 709, thereby changing the pressure of the water inlet pipe 502 entering the electronic water pump. When it is necessary to change the amount of air pushed in, start the first motor 701. The output end of the first motor 701 drives the sliding block 704 to slide in the fixed housing 702 through the lead screw 706, thereby changing the movement stroke of the second connecting rod 707, so as to change the amount of air more or less entering the water inlet pipe 502. Then, based on the data of the flowmeter 807, it can be obtained whether the water output is affected under different water inlet pressures, so as to reflect whether the electronic water pump affects the performance. Start the hydraulic cylinder 605. The cylinder arm of the hydraulic cylinder 605 drives the sliding connecting plate 606 to slide. The sliding connecting plate 606 drives the second vertical gear part 614 to mesh with the first vertical gear part 613. The second vertical gear part 614 drives the cam 609 to rotate. The cam 609 drives the sliding plate 504 to move up and down. The sliding plate 504 is reset through multiple springs 603. Then, based on the data of the flowmeter 807, it can be obtained whether the water output is affected under the water inlet pressure and vibration conditions, so as to reflect whether the electronic water pump affects the performance.
[0046] Those skilled in the art can make various corresponding changes or deformations to the above technical methods and concepts, and all these changes or deformations should fall within the protection scope of the claims of the present invention.
Claims
1. An electronic water pump controller performance detection device, comprising a base, characterized in that: A second environmental simulation unit (6) for simulating a vibration environment is provided on the base. A first environmental simulation unit (5) for simulating the usage environment of the electronic water pump controller and a pressurizing unit (7) for simulating the working environment of the electronic water pump controller are connected to the second environmental simulation unit (6). An outlet unit (8) for monitoring the operation of the electronic water pump controller under environmental simulation is connected to the first environmental simulation unit (5). The base includes a bottom plate (1). A vertical plate (2) is fixedly installed on the bottom plate (1). A first pipe connecting plate (3) and two symmetrically distributed second pipe connecting plates (4) are installed on the vertical plate (2). The second environmental simulation unit (6) includes a shaking assembly, and the shaking assembly is connected to the pressurizing unit (7). The pressurizing unit (7) includes a second motor (703) and a sliding assembly. The second motor (703) is connected to the shaking assembly, and a piston assembly is connected to the sliding assembly. The first environmental simulation unit (5) includes a temperature and humidity simulation assembly for simulating the usage environment temperature and humidity, and a fixing assembly is connected to the temperature and humidity simulation assembly. The second environmental simulation unit (6) further includes a second fixing plate (615). Symmetrically distributed second sliding grooves (604) are provided on the second fixing plate (615). A first fixing plate (601) is fixedly installed near the first end of the second fixing plate (615). A first sliding groove (602) is provided on the first fixing plate (601). A plurality of uniformly distributed springs (603) are provided on the first fixing plate (601), and the first ends of the springs (603) are fixedly installed on the first fixing plate (601). The sliding assembly includes a fixed shell (702). The fixed shell (702) is fixedly installed on a long connecting shaft (608). A first motor (701) is fixedly installed on the fixed shell (702). A lead screw (706) is fixedly installed at the output end of the fixed shell (702). A sliding block (704) is threadedly connected to the lead screw (706). The sliding block (704) is connected to the fixed shell (702), and a first connecting rod (705) is fixedly installed on the sliding block (704). The fixing assembly includes a sliding plate (504). The sliding plate (504) is connected to the second ends of the plurality of springs (603), and the sliding plate (504) is connected to the two second sliding grooves (604).
2. The performance detection device for an electronic water pump controller according to claim 1, wherein: The shaking assembly includes a rotating disc (607). The rotating disc (607) is rotatably installed on the second fixing plate (615). A long connecting shaft (608) is fixedly installed on the rotating disc (607). A second pulley (612) is fixedly installed at one end of the long connecting shaft (608) close to the rotating disc (607). A first vertical toothed member (613) is fixedly installed on the second pulley (612).
3. The performance detection device for an electronic water pump controller according to claim 2, wherein: The shaking component further includes a first pulley (610) and a sliding connection plate (606). The first pulley (610) is rotatably installed on the second fixed plate (615). The first pulley (610) is connected to a second pulley (612) by a belt (611). The sliding connection plate (606) is slidably installed in the first sliding groove (602). A second vertical tooth part (614) is rotatably installed at the first end of the sliding connection plate (606). The second vertical tooth part (614) meshes with the first vertical tooth part (613). The second vertical tooth part (614) is slidably connected to the long connecting shaft (608). A cam (609) is rotatably installed on the sliding connection plate (606). The cam (609) is concentric and fixedly connected to the second vertical tooth part (614). The cylinder arm of a hydraulic cylinder (605) is fixedly installed at the second end of the sliding connection plate (606). The cylinder barrel of the hydraulic cylinder (605) is fixedly installed on the bottom plate (1).
4. The performance detection device of an electronic water pump controller according to claim 3, wherein: The piston component includes a second connecting rod (707). One end of the second connecting rod (707) is connected to the first connecting rod (705). A piston is rotatably installed at the other end of the second connecting rod (707). A piston housing (708) is slidably connected to the piston. The piston housing (708) is fixedly installed on the vertical plate (2). An intake valve (711) is fixedly installed on one side of the piston housing (708). An outlet pipe (709) is fixedly installed at the other end of the piston housing (708). An outlet valve (710) is arranged on the outlet pipe (709).
5. An electronic water pump controller performance detection device according to claim 4, characterized in that: A box (501) and a third pipe connection plate (503) are fixedly installed on the sliding plate (504). A magnetic door (505) is connected to the box (501) by a magnet. A water inlet pipe (502) is fixedly installed on one side of the magnetic door (505). The water inlet pipe (502) is connected to the outlet pipe (709). A first flange (510) is fixedly installed on the water inlet pipe (502). The water inlet pipe (502) is connected to the third pipe connection plate (503). A water outlet pipe (508) is fixedly installed on the other side of the box (501). A second flange (511) is fixedly installed on the water outlet pipe (508).
6. The performance detection device for an electronic water pump controller according to claim 5, characterized in that: The temperature and humidity simulation component includes a heater (506), a humidifier (507) and a turbulence fan (509). The heater (506) and the humidifier (507) are both fixedly installed at the top of the box (501). The turbulence fan (509) is fixedly installed on the other side of the box (501).
7. The performance detection device for an electronic water pump controller according to claim 6, characterized in that: The water outlet unit (8) includes a water outlet hose (801) and a water inlet hose (803). The water inlet hose (803) is connected to the water inlet pipe (502). A second connecting pipe (804) is connected to the water inlet hose (803). A water storage tank (805) is fixedly installed on the second connecting pipe (804). The water storage tank (805) is fixedly installed on the vertical plate (2). One end of the water outlet hose (801) is connected to the water outlet pipe (508), and a first connecting pipe (802) is fixedly connected to the other end of the water outlet hose (801). The first connecting pipe (802) is connected to the first pipe connecting plate (3), and the first connecting pipe (802) is connected to two second pipe connecting plates (4). A flow meter (807) is connected to the first connecting pipe (802). A third connecting pipe (806) is connected to the flow meter (807), and the third connecting pipe (806) extends into the water storage tank (805).
8. An electronic water pump controller performance detection device according to claim 7, characterized in that: A filter element (808) is slidably installed in the water storage tank (805). A filter screen is provided on the filter element (808). Two symmetrically distributed heating wires (809) are fixedly installed in the water storage tank (805).
Citation Information
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