Control system of water pump

By setting up a continuous liquid level detection unit and a wireless communication unit on the water pump, the flexibility and adaptability problems of the existing water pump control methods are solved, and the water pump level is remotely adjusted, which improves the detection accuracy and system stability.

CN223305933UActive Publication Date: 2025-09-05ZHEJIANG ELE SMART TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422711462.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-06
Publication Date
2025-09-05
Estimated Expiration
2034-11-06

AI Technical Summary

Technical Problem

The start and stop control method of existing water pumps is susceptible to floating ball jams or corrosion, and has poor flexibility and adaptability, making it difficult for users to adjust the start and stop liquid levels according to actual conditions.

Method used

The continuous liquid level detection unit and wireless communication unit are adopted to detect the real-time liquid level information of the water pump and the user setting information, and the starting and stop liquid level of the water pump is flexibly adjusted remotely. Combined with temperature compensation and anti-interference design, the detection accuracy and system stability are improved.

Benefits of technology

It realizes flexible adjustment of the water pump starting and stopping liquid level, adapts to different environmental needs, improves the flexibility of the product and detection accuracy, avoids component corrosion and external interference, and is simple and convenient to operate.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a control system of a water pump. The control system comprises a continuous liquid level detection unit installed on a pump body of the water pump and used for detecting and obtaining real-time liquid level information of the water pump; the wireless communication unit is used for receiving starting and / or stopping liquid level setting information of the water pump from a user side; the main control unit is connected with the continuous liquid level detection unit and the wireless communication unit and used for receiving the real-time liquid level information and starting and / or stopping the liquid level setting information so as to output corresponding control signals to control starting and stopping of the water pump. A user can remotely, flexibly and linearly adjust the starting liquid level and the stopping liquid level of the water pump at the user side according to the requirement of the actual operation environment of the water pump, the requirements of different seasons and climates can be met, the installation height of the liquid level detection unit on the water pump does not need to be changed, and operation is easy and convenient.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of water pumps, and in particular, to a control system of a water pump. Background Art

[0002] As an important fluid conveying device, water pumps are widely used in agriculture, industry, construction, municipal administration, and daily life. The working principle of a water pump is to transfer the mechanical energy of a prime mover or other external energy to a liquid, thereby increasing the liquid's energy and thus completing the liquid's transportation. Water pumps can be used to transport liquids including water, oil, acids and alkalis, emulsions, suspensoids, and liquid metals. They can also be used to transport liquid-gas mixtures and liquids containing suspended solids.

[0003] Currently, there are two main methods for controlling the start and stop of water pumps. The first uses a float switch to control the start and stop of the pump: when the liquid level rises and the float rises to a certain position, the switch is triggered, starting the pump; when the liquid level drops and the float drops to a certain position, the switch is triggered, stopping the pump. The second method uses an electronic liquid level detection device for single-point liquid level detection. When the liquid level reaches a fixed detection point, the pump is started or stopped.

[0004] However, the existing technology has the following defects: for example, the float in the float switch is easy to get stuck, or the float is easy to get into water and cannot float up; for example, the electronic liquid level detection device may be corroded by the liquid, resulting in detection failure; for example, it is difficult for users to adjust the starting liquid level and stopping liquid level of the water pump according to actual conditions, and the product has low flexibility in use. Utility Model Content

[0005] In order to address at least part of the defects of the prior art, the present disclosure proposes a water pump control system, which allows users to flexibly adjust the start and stop liquid levels of the water pump according to actual conditions, greatly improving the product's flexibility and the breadth of application scenarios.

[0006] Based on this, the present disclosure proposes a control system for a water pump, including: a continuous liquid level detection unit, installed on the pump body of the water pump, for detecting and obtaining real-time liquid level information of the water pump; a wireless communication unit, for receiving start and / or stop liquid level setting information of the water pump from the user end; a main control unit, connected to the continuous liquid level detection unit and the wireless communication unit, for receiving the real-time liquid level information and the start and / or stop liquid level setting information to output corresponding control signals to control the start and stop of the water pump.

[0007] In a preferred embodiment of the present disclosure, the continuous liquid level detection unit includes: a first electrode and a second electrode, the first electrode and the second electrode are parallel to each other and vertically arranged relative to the liquid surface; a detection chip, connected to the first electrode and the second electrode, for detecting the capacitance difference between the first electrode and the second electrode; a processing unit, connected to the detection chip, for receiving the capacitance difference to calculate the real-time liquid level information.

[0008] In a preferred embodiment of the present disclosure, the continuous liquid level detection unit includes a PCB board, the first pole piece and the second pole piece are integrated on the front side of the PCB board, and the detection chip and the processing unit are integrated on the back side of the PCB board.

[0009] In a preferred embodiment of the present disclosure, an anti-interference mesh shielding layer is disposed behind the first pole piece and the second pole piece.

[0010] In a preferred embodiment of the present disclosure, the continuous liquid level detection unit includes: a temperature sensing unit for obtaining temperature information of the measured liquid; the processing unit receives the temperature information and the capacitance difference to calculate the real-time liquid level information after temperature compensation.

[0011] In a preferred embodiment of the present disclosure, the wireless communication unit includes: a WiFi communication unit, a Bluetooth communication unit and / or a ZigBee communication unit.

[0012] In a preferred embodiment of the present disclosure, the main control unit receives a working mode switching instruction of the water pump from the user end via the wireless communication unit, and controls the working mode of the water pump to switch between automatic mode and manual mode in response to the working mode switching instruction.

[0013] In a preferred embodiment of the present disclosure, the wireless communication unit is communicatively connected to the user terminal via a cloud server, and the user terminal includes a mobile terminal.

[0014] In a preferred embodiment of the present disclosure, the system further includes a power detection unit, a leakage detection unit, a zero-crossing detection unit, a mode switching unit and / or an output control unit, which are connected to the main control unit.

[0015] In a preferred embodiment of the present disclosure, the system further includes a power supply unit for supplying power to various units of the control system.

[0016] The water pump control system proposed in the present disclosure, by providing a continuous liquid level detection unit and a wireless communication unit on the water pump, enables the user to remotely and flexibly, continuously, and linearly adjust the starting liquid level and stopping liquid level of the water pump at the user end according to the needs of the actual operating environment of the water pump. It can adapt to the needs of different seasonal climates, and there is no need to change the installation height of the liquid level detection unit on the water pump, and the operation is simple and convenient. Furthermore, the continuous liquid level detection unit is a contactless liquid level detection unit, and each component is encapsulated inside the product to avoid corrosion of the components by liquid. Furthermore, the continuous liquid level detection unit can adopt a bipolar plate detection structure, and calculate the liquid level height based on the capacitance difference between the bipolar plates, which can effectively reduce external interference and improve detection accuracy. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The embodiments are shown and explained with reference to the accompanying drawings, and other features and advantages of the present disclosure will be better understood through the following detailed description of the preferred embodiments in conjunction with the accompanying drawings, in which:

[0018] Figure 1 A block diagram of a water pump control system according to an embodiment of the present disclosure is shown.

[0019] Figure 2 A circuit diagram of a power detection unit according to an embodiment of the present disclosure is shown.

[0020] Figure 3 A circuit diagram of a leakage detection unit according to an embodiment of the present disclosure is shown.

[0021] Figure 4 A circuit diagram of a zero-crossing detection unit according to an embodiment of the present disclosure is shown.

[0022] Figure 5 A circuit diagram of an output control unit according to an embodiment of the present disclosure is shown.

[0023] Figure 6 A schematic structural diagram of a liquid level detection unit according to an embodiment of the present disclosure is shown.

[0024] Figure 7 A schematic diagram of a bipolar structure layout according to an embodiment of the present disclosure is shown.

[0025] Figure 8 A schematic diagram of a water pump control method according to an embodiment of the present disclosure is shown.

[0026] Figure 9 A flow chart of another water pump control method according to an embodiment of the present disclosure is shown. DETAILED DESCRIPTION

[0027] In the following detailed description of the preferred embodiments, reference will be made to the accompanying drawings which form part of this disclosure. The accompanying drawings illustrate, by way of example, specific embodiments in which the present disclosure may be implemented. The illustrated embodiments are not intended to be exhaustive of all embodiments according to the present disclosure. It will be understood that other embodiments may be utilized and structural or logical modifications may be made without departing from the scope of the present disclosure. Therefore, the following detailed description is not restrictive, and the scope of the present disclosure is defined by the appended claims.

[0028] Before introducing the embodiments of the present disclosure, some terms involved in the present disclosure are first explained to facilitate a better understanding of the present disclosure.

[0029] The terms "one", "a group" or "an" and the like used in this disclosure do not indicate a quantitative limitation, but rather indicate the presence of at least one. The terms "include", "comprise" and similar terms used in this disclosure should be understood as open terms, i.e., "include / include but not limited to", indicating that other content may also be included. The term "one embodiment" means "at least one embodiment"; the term "another embodiment" means "at least one other embodiment", and so on. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in a suitable manner in any one or more embodiments or examples. In addition, those skilled in the art may combine and combine the different embodiments or examples described in this specification and the features of the different embodiments or examples, unless they are mutually contradictory.

[0030] like Figure 1 As shown, an embodiment of the present disclosure proposes a control system 100 for a water pump, which includes a main control unit 102, a wireless communication unit 104 and a liquid level detection unit 106. The liquid level detection unit 106 is installed on the pump body of the water pump and is used to detect and obtain real-time liquid level information of the water pump. In some examples, the liquid level detection unit 106 is a continuous liquid level detection unit, which can achieve continuous linear detection of the liquid level within a certain range. The wireless communication unit 104 is used to receive the start and / or stop liquid level setting information of the water pump from the user terminal 108. The main control unit 102 is connected to the continuous liquid level detection unit 106 and the wireless communication unit 104, and is used to receive real-time liquid level information and start and / or stop liquid level setting information to output corresponding control signals to control the start and stop of the water pump.

[0031] In some examples, the control system 100 further includes a power detection unit 110 , a leakage detection unit 112 , a zero-crossing detection unit 114 , a mode switching unit 116 and / or an output control unit 118 , which are connected to the main control unit 102 .

[0032] In some examples, the control system 100 also includes a power supply unit 120 for supplying power to various units of the control system 100, such as the main control unit 102, the wireless communication unit 104, the liquid level detection unit 106, the power detection unit 110, the leakage detection unit 112, the zero-crossing detection unit 114, the mode switching unit 116 and / or the output control unit 118.

[0033] In some examples, the power supply unit 120 further includes an AC-DC unit and a DC-DC unit. In some examples, after receiving 85-230V 50 / 60Hz AC power at the power input terminal of the power supply unit 120, the AC-DC unit first converts the AC power into 12V DC power, and the DC-DC unit then steps down the 12V DC power to 5V and 3.3V DC power, respectively. The 12V power supply voltage is used for the liquid level detection unit 106, the 3.3V power supply voltage is used for the main control unit 102, the power detection unit 110, and the wireless communication unit 104, and the 5V power supply voltage is used for the leakage detection unit 112.

[0034] In some examples, the power detection unit 110 is used to monitor the current operating voltage, current, power, and power factor values ​​of the water pump. The power detection unit 110 is connected to the main control unit 102, and sends the currently acquired voltage, current, power, and power factor values ​​to the main control unit 102 through the serial port so that the main control unit 102 can determine the current operating status of the water pump.

[0035] like Figure 2 As shown, an embodiment of the present disclosure proposes a circuit diagram of a power detection unit 110, wherein the resistors R8, R9, R10, R11, R12, R7 and the capacitor C11 connected to the VP pin of the power detection chip U4 form a voltage detection circuit for detecting the voltage of the water pump, wherein the series connection of R8, R9, R10, R11 and R12 can meet the requirements of ensuring electrical clearance, reducing power and reducing volume. The resistors R13, R14 (sampling resistors), R20 and the capacitors C12 and C14 connected to the TN1 and TP1 pins of the power detection chip U4 form a sampling circuit for detecting the current of the water pump. C9 and C10 are bypass capacitors for filtering the chip U4. The resistors R15, R17, R18 and R19 connected to the TX and RX pins of the power detection chip U4 form an output circuit, which outputs the detection results to the main control unit.

[0036] In some examples, the leakage detection unit 112 is connected to the main control unit 102 to detect whether the entire water pump has leakage. In some examples, when the water pump is operating normally, the leakage detection unit 112 outputs a 3.3V high level. When the leakage current of the water pump is detected to be greater than 6mA, the leakage detection unit outputs a 0V low level. Figure 3As shown, an embodiment of the present disclosure provides a circuit diagram of a leakage detection unit 112, wherein the zero-sequence mutual inductor TA, resistors R2, R3, R6 and capacitors C5, C6, C8 connected to the pins RCI1 and RCI2 of the leakage detection chip U1 form a sampling circuit for detecting leakage current. Resistor R1 and capacitors C3 and C4 form a filter circuit. The DLY pin of the chip U1 is grounded via capacitor C7 to implement a delay function. Pin TRIG of the chip U1 is connected to transistor Q1, and transistor Q1 and resistors R4, R5 and R7 form an output circuit for leakage detection results, which outputs the detection results to the main control unit.

[0037] In some examples, the zero-crossing detection unit 114 is connected to the main control unit 102 and outputs a square wave signal to the main control unit 102 after detecting the AC zero-crossing signal. Figure 4 As shown, an embodiment of the present disclosure proposes a circuit diagram of a zero-crossing detection unit 114, wherein the pin ACIN of the zero-crossing detection chip U3 is connected to the power line L_IN through the current-limiting resistor R6, and the pins ZO and GND of the zero-crossing detection chip U3 form an output circuit with the diode D3, resistors R37, R38 and capacitor C25, and output the AC zero-crossing detection result AC-ZERO to the main control unit, and the voltage dividing effect of R37 and R38 can prevent the voltage input to the main control unit from being too large and damaging the components.

[0038] In some examples, the output control unit 118 is connected to the main control unit 102. When the main control unit outputs a high level, the power of the controlled device is turned on; when the main control unit outputs a low level, the power of the controlled device is turned off. Figure 5 As shown, an embodiment of the present disclosure provides a circuit diagram of an output control unit 118, wherein the left side of the optocoupler thyristor U6 is connected to a bidirectional thyristor TR1, R21, and R40 to form a high-voltage AC controlled circuit and connected to the controlled device; the right side of the optocoupler thyristor U6 is connected to R22 (current limiting resistor), R24, R25, and transistor QH1 to form a low-voltage DC control circuit. When the Motor terminal input is low, transistor QH1 is not conductive, and the left circuit is not conductive, that is, TR1 is not conductive; when the Motor terminal input is high, transistor QH1 is conductive, and the left circuit is conductive, that is, TR1 is conductive. The controlled device is connected to pin 1 of the thyristor TR1.

[0039] In some examples, the mode switching unit 116 is connected to the main control unit 102, and the main control unit 102 receives signals from the mode switching unit 116 to determine the operating mode of the water pump. The operating modes of the water pump include automatic mode and manual mode. In some examples, the mode switching unit 116 includes a magnetic element and a permanent magnet (not shown). The user can control the distance between the magnetic element and the permanent magnet by operating a knob or other type of operating member to change the operating mode of the water pump. When the permanent magnet is not near the magnetic element, the IO port of the main control unit connected to the mode switching unit detects a high level, and the water pump operates in automatic mode. When the permanent magnet is near the magnetic element, the IO port of the main control unit connected to the mode switching unit detects a low level, and the water pump operates in manual mode. In some examples, the user can remotely control the switching of the water pump's operating mode. Specifically, the main control unit receives the water pump's operating mode switching command from the user via the wireless communication unit and controls the water pump's operating mode to switch between automatic mode and manual mode in response to the operating mode switching command.

[0040] In some examples, the wireless communication unit 104 is connected to the user terminal 108 through the cloud server 122. The user terminal 108 can be a mobile terminal, such as a mobile phone, iPad, laptop computer, smart wearable device, etc. In some examples, the wireless communication unit 104 can be a WiFi communication unit, a Bluetooth communication unit (which can be connected to the cloud server through a gateway) and / or a ZigBee communication unit. When the user connects the water pump configuration to the cloud server, the user can view the current operating status of the water pump through the user-side APP, and can also remotely start and stop the water pump. It can also set the water pump's start liquid level, stop liquid level and / or alarm liquid level and other liquid level-related thresholds, and can also set the water pump's operating time period (the device starts and stops according to the set start and stop liquid levels during the operating time period, and the default setting is to run all day).

[0041] In some examples, the wireless communication unit 104 is connected to the main control unit 102 via a serial port, and is connected to the cloud server through a router via a 2.4G / 5G (2.4GHz band or 5GHz band) WIFI signal. When the device is running, when the leakage detection unit detects that the device has a leakage fault, the main control unit will upload the leakage information to the cloud server via the WIFI signal, so that the user can view the relevant information on the APP side. When the device is running, when the power detection unit detects that the device has abnormal operating voltage, no load or stall, etc., the main control unit will upload the relevant information to the cloud server via the WIFI signal, so that the user can view the relevant information on the APP side.

[0042] like Figure 6As shown, in some examples, the liquid level detection unit 106 includes: a first electrode 1068, a second electrode 1069, a detection chip 1066 and a processing unit 1064 (such as an MCU), wherein the first electrode and the second electrode are parallel to each other and arranged vertically relative to the liquid surface; the detection chip is connected to the first electrode and the second electrode, and is used to detect the capacitance difference between the first electrode and the second electrode; the processing unit is connected to the detection chip, and is used to receive the capacitance difference to calculate real-time liquid level information. In some examples, the continuous liquid level detection unit 106 is communicatively connected to the main control unit 102, and the liquid level detection unit 106 senses the liquid level height through multiple sensing electrodes on the circuit board (this example takes two electrodes as an example, but the number of electrodes is not limited to two. When the number of electrodes changes, the deployment method on the circuit board can also be adjusted accordingly). The detection chip 1066 sends a variable frequency pulse signal to the common electrode (1068 or 1069). When the liquid level rises (for example, the electrode is submerged), a charge effect is generated on the sensing electrode, thereby causing a change in capacitance between multiple electrode pieces. The larger the area of ​​the electrode submerged by the liquid, the larger the capacitance value. The processing unit 1064 determines the current liquid level state by calculating the current electrode capacitance value, and sends the relevant information to the main control unit 102 through the serial port level conversion circuit 1062. In this example, the liquid level detection unit 106 implements contactless liquid level detection. The first electrode 1068 and the second electrode 1069 in the liquid level detection unit do not need to be in direct contact with the liquid, but the liquid level is measured by sensing the capacitance between the liquid and the electrode. The various components in the liquid level detection unit can be encapsulated inside the shell, and the encapsulation shell can be optionally a plastic shell, a ceramic shell or an epoxy resin shell, etc., so as to avoid corrosion of the components by the liquid.

[0043] In some examples, the liquid level detection unit 106 adopts a bipolar connection method. This bipolar detection method can further enhance the anti-interference ability of the entire system, that is, the interference of the first electrode and the second electrode on their sensing results can offset each other, thereby ensuring the normal operation of the system and avoiding abnormal operation due to external interference. In some examples, the liquid level detection unit 106 converts the serial port signal containing the detection result from 3.3V to 12V through the serial port level conversion circuit 1062 and sends it out. This serial port level conversion circuit can enhance the anti-interference ability of data during transmission. The liquid level detection unit 106 constantly detects the current capacitance value and sends the detection result to the main control unit 102 through the serial port level conversion circuit 1062. The main control unit 102 determines whether the current liquid level has reached the starting liquid level. When it is determined that the liquid level has reached the starting liquid level, the main control unit 102 controls the water pump to start pumping out the liquid through the output control unit 118.

[0044] like Figure 7The figure shows a schematic diagram of the structural layout of bipolar plates 1068 and 1069. The continuous liquid level detection unit 106 includes a PCB board 1060. The first pole piece 1068 and the second pole piece 1069 are integrated on the front side of the PCB board 1060 (shown), and the detection chip 1066 and the processing unit 1064 are integrated on the back side of the PCB board 1060 (not shown). In this example, the double-sided layout of the PCB board can more efficiently utilize the PCB space; reduce or eliminate the need for jumpers; reduce the number of required components and external connections, thereby reducing product costs; reduce signal attenuation and interference caused by long traces or crowded layouts, thereby improving circuit reliability; allow certain components and circuits to be arranged on different sides, thereby facilitating maintenance and testing; and better adapt to the requirements of high-density circuit design.

[0045] In some examples, an anti-interference mesh shielding layer 1061 is disposed behind the first pole piece 1068 and the second pole piece 1069 , which can further enhance the anti-interference capability of the liquid level detection unit and allow the system to operate more safely.

[0046] In some examples, the continuous liquid level detection unit 106 includes: a temperature sensing unit for obtaining temperature information of the measured liquid; a processing unit 1064 receiving the temperature information and the capacitance difference to calculate the real-time liquid level information after temperature compensation. In some examples, when the temperature compensation program is executed, the temperature of the current capacitor module accessories (such as the first electrode and the second electrode) is collected, and the correction coefficient at different temperatures is selected based on this temperature. The coefficient, temperature and capacitance value are corrected and calculated to calculate a capacitance value closer to the actual liquid level height. The liquid level height is determined based on the corrected capacitance value, thereby realizing the operation of real-time detection of the liquid level height, so that the start and stop of the water pump and other functional operations can be controlled according to the liquid level height.

[0047] In some examples, the main control unit 102 includes an MCU and some signal processing circuits. The MCU of the main control unit receives a signal from the mode switching unit and determines whether the current mode is automatic mode or manual mode by identifying the high and low level changes of the signal. When the current mode is determined to be automatic mode, the water pump operates based on the set start and / or stop liquid levels; when the current mode is determined to be manual mode, the water pump starts immediately and stops after the preset shutdown conditions are met. The preset shutdown conditions include: the water pump liquid level reaches the shutdown level or below, the water pump operating power reaches the shutdown power, or the water pump fails.

[0048] In some examples, the main control unit 102 receives data from the liquid level detection unit, namely, real-time liquid level information. When the real-time liquid level is greater than or equal to the start level, the water pump starts; when the real-time liquid level is less than the stop level, the water pump stops. In some examples, the water pump shutdown control process is as follows: the water pump speed is adjusted based on the zero-crossing detection signal, gradually reducing the speed until the power supply to the water pump is disconnected. This can avoid water hammer and abnormal vibration caused by a sudden stop of the water pump.

[0049] In some examples, the main control unit 102 monitors the leakage and operation of the water pump at the same time. The main control unit monitors the leakage of the water pump through the leakage detection unit, and actively disconnects the live wire of the water pump when the leakage current of the water pump is greater than 6mA. The main control unit monitors the operation of the water pump through the power detection unit, such as monitoring the power supply voltage and operating power of the water pump. When the voltage of the water pump is not within the normal operating voltage range, the water pump cannot be started. The main control unit uploads the relevant information to the cloud server through the wireless communication unit and reminds the user through the user-side APP. After the water pump is started, the main control unit obtains the current operating status of the water pump. When the operating power of the water pump is lower than the normal power, it can be regarded as a waterless state in the cavity of the water pump. The main control unit controls the disconnection of the live wire of the water pump, and uploads the relevant information to the cloud server through the wireless communication unit and reminds the user through the user-side APP.

[0050] like Figure 8 As shown, an embodiment of the present disclosure provides a schematic diagram of a water pump control method 800, the control method 800 comprising the following steps:

[0051] S802: Receive the start and / or stop liquid level setting information of the water pump from the user end via the wireless communication unit.

[0052] S804, obtaining real-time liquid level information of the water pump through continuous liquid level detection unit detection.

[0053] S806 , controlling the start and stop of the water pump based on the real-time liquid level information and the start and / or stop liquid level setting information.

[0054] In some embodiments of this embodiment, the continuous liquid level detection unit includes: a first electrode piece, a second electrode piece, a detection chip and a processing unit, wherein the first electrode piece and the second electrode piece are parallel to each other and vertically arranged relative to the liquid surface; the detection chip is connected to the first electrode piece and the second electrode piece, and is used to detect the capacitance difference between the first electrode piece and the second electrode piece; the processing unit is connected to the detection chip, and is used to receive the capacitance difference to calculate real-time liquid level information.

[0055] In some implementations of this embodiment, the continuous liquid level detection unit further includes: a temperature sensing unit for acquiring temperature information of the measured liquid; and a processing unit receiving the temperature information and the capacitance difference to calculate real-time liquid level information after temperature compensation.

[0056] In some implementations of this embodiment, the main control unit receives a working mode switching instruction of the water pump from the user end via the wireless communication unit, and controls the working mode of the water pump to switch between automatic mode and manual mode in response to the working mode switching instruction; when the water pump is working in automatic mode, the main control unit outputs a corresponding control signal to control the start and stop of the water pump based on the received real-time liquid level information and the start and / or stop liquid level setting information; when the water pump is working in manual mode, the main control unit controls the water pump to start directly until the preset shutdown condition is met and then stops. Among them, the preset shutdown condition can be that the liquid level of the water pump reaches the shutdown liquid level or below, the operating power of the water pump reaches the shutdown power, or the water pump fails, etc. This embodiment is similar to the implementation of the embodiment described above and will not be repeated here.

[0057] like Figure 9As shown, another embodiment of the present disclosure provides a flow chart of a water pump control method, which is described in detail as follows. After the device (water pump) is powered on, it is determined whether the device has been connected to the cloud. When the device has been connected to the cloud, remote start and stop control of the device can be realized to control the start or shutdown of the device. When the device has been connected to the cloud, it is determined whether the start and stop liquid levels of the device need to be set through the cloud. If so, the start and stop liquid levels are set, and after the setting is completed, it is determined whether the device is in the running time period; if not, it is determined whether the device is in the running time period. When the device is in the running time period, the start and stop control of the device is entered: when the start liquid level is reached, the device is controlled to start; after the device is started, it is determined whether the shutdown liquid level is reached or below. When the shutdown liquid level is reached or below, the device is controlled to shut down, and the relevant information is reported to the cloud when the device is connected to the cloud. When the shutdown liquid level is not reached or below, it is determined whether no-load protection is required. If so, the device is controlled to shut down, and the relevant information is reported to the cloud when the device is connected to the cloud. When no-load protection is not required, the system determines whether blocked-load protection is required. If so, the device is shut down and the relevant information is reported to the cloud when the device is connected to the cloud. After the device is shut down, the system returns to the step of determining whether the start-up level has been reached. After the device is powered on and not connected to the cloud, it determines whether it requires network connection. If so, it enters network connection mode. If not, it performs a leakage test. If leakage is detected, the system disconnects the internal power supply and determines whether the device is connected to the cloud. If so, the relevant information is reported to the cloud. If the device is operating normally and without leakage, the system reads the mode to determine whether the device is operating in automatic or manual mode. If it is operating in manual mode, the device is started. When the device is operating in automatic mode, the system starts and stops the device based on the start-up and shutdown levels. After the device is started, it determines whether the shutdown level has been reached or below, whether no-load protection or blocked-load protection is required. If so, the device is shut down. After the device is shut down, it determines whether the device is connected to the cloud. If so, the relevant information is reported to the cloud.

[0058] This document is described with reference to various exemplary embodiments. However, those skilled in the art will recognize that changes and modifications may be made to the exemplary embodiments without departing from the scope of this document. Although the principles of this document have been illustrated in various embodiments, many modifications of the structure, arrangement, proportions, elements, materials, and components that are particularly suitable for specific environments and operational requirements may be used without departing from the principles and scope of this disclosure. The above modifications and other changes or modifications are intended to be included within the scope of this document. The foregoing detailed description has been described with reference to various embodiments. However, those skilled in the art will recognize that various modifications and changes may be made without departing from the scope of this disclosure. Therefore, consideration of this disclosure will be in an illustrative rather than a restrictive sense, and all such modifications are intended to be included within its scope. Similarly, the advantages, other advantages, and solutions to problems of the various embodiments have been described above. However, the benefits, advantages, solutions to problems, and any elements that produce these, or make them more specific, should not be interpreted as critical, required, or essential. As used herein, the term "comprise" and any other variations thereof are intended to be non-exclusive, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not expressly listed or not part of the process, method, system, article, or apparatus. Additionally, as used herein, the term "couple" and any other variations thereof refer to a physical, electrical, magnetic, optical, communicative, functional, and / or any other connection.

[0059] Those skilled in the art will recognize that many changes can be made to the details of the above embodiments without departing from the basic principles of the present disclosure. Therefore, the scope of the present disclosure should be determined solely by the claims.

Claims

1. A water pump control system, comprising: The continuous liquid level detection unit is installed on the pump body of the water pump and is used to detect and obtain real-time liquid level information of the water pump; A wireless communication unit, configured to receive start and / or stop liquid level setting information of the water pump from a user terminal; The main control unit is connected to the continuous liquid level detection unit and the wireless communication unit, and is used to receive the real-time liquid level information and the start and / or stop liquid level setting information to output corresponding control signals to control the start and stop of the water pump.

2. The water pump control system according to claim 1, wherein: The continuous liquid level detection unit comprises: a first pole piece and a second pole piece, wherein the first pole piece and the second pole piece are parallel to each other and vertically arranged relative to the liquid surface; a detection chip connected to the first pole piece and the second pole piece, and configured to detect a capacitance difference between the first pole piece and the second pole piece; A processing unit is connected to the detection chip and is used to receive the capacitance difference to calculate the real-time liquid level information.

3. The water pump control system according to claim 2, wherein: The continuous liquid level detection unit includes a PCB board, the first pole piece and the second pole piece are integrated on the front side of the PCB board, and the detection chip and the processing unit are integrated on the back side of the PCB board.

4. The water pump control system according to claim 3, wherein: An anti-interference mesh shielding layer is disposed behind the first pole piece and the second pole piece.

5. The water pump control system according to claim 2, wherein: The continuous liquid level detection unit comprises: A temperature sensing unit, used to obtain temperature information of the liquid being measured; The processing unit receives the temperature information and the capacitance difference to calculate real-time liquid level information after temperature compensation.

6. The water pump control system according to claim 1, wherein: The wireless communication unit includes: a WiFi communication unit, a Bluetooth communication unit and / or a ZigBee communication unit.

7. The water pump control system according to claim 1, wherein: The main control unit receives a working mode switching instruction of the water pump from the user end via the wireless communication unit, and controls the working mode of the water pump to switch between the automatic mode and the manual mode in response to the working mode switching instruction.

8. The water pump control system according to claim 1, wherein: The wireless communication unit is connected to the user terminal through a cloud server, and the user terminal includes a mobile terminal.

9. The water pump control system according to claim 1, wherein: The system further comprises a power detection unit, a leakage detection unit, a zero-crossing detection unit, a mode switching unit and / or an output control unit, which are connected to the main control unit.

10. The water pump control system according to claim 9, wherein: The system further comprises a power supply unit for supplying power to various units of the control system.