Intelligent urinal liquid separation and collection system

The intelligent urinal liquid collection system controlled by a microprocessor solves the problem of automated urine collection in public restrooms, reducing odor and lowering renovation costs. It is suitable for various urinal types and building structures.

CN223567618UActive Publication Date: 2025-11-18张钦亮
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Patent Information

Application Number
CN202423233332.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-11-18
Estimated Expiration
2034-12-26

AI Technical Summary

Technical Problem

The lack of intelligent urinal liquid collection systems in existing public restrooms means that flushing relies on manual operation, resulting in unpleasant odors, poor hygiene, and the existing devices are complex in structure, have a high failure rate, and have limited scope for renovation.

Method used

The intelligent urinal liquid collection system, controlled by a microprocessor, includes a working status indicator, a wireless communication module, a human body sensor, a solenoid valve, and a three-way valve. Powered by a power supply system, it achieves automated urine collection and flushing and is suitable for different types of urinals.

Benefits of technology

It achieves automated urine collection, reduces odor, is suitable for various urinal types, reduces maintenance difficulty and renovation costs, and is applicable to both single-unit and multi-story buildings.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an intelligent urinal liquid separation and collection system in the field of livelihood public service and medical treatment, which comprises a microprocessor connected with a working state indicating lamp, a wireless communication module, a human body sensor, a control module dial code, an electromagnetic valve for running water flushing, a three-way valve and a debugging interface, the microprocessor, the working state indicating lamp, the wireless communication module, the human body sensor, the control module dial code, the solenoid valve used for running water flushing and the three-way valve are powered by a power supply system. According to the utility model, different types of urinals can be transformed and applied, the application of multiple building states of single toilets and upstairs and downstairs toilets can be met through a wireless communication means, and through wireless transceiving communication and microprocessor control, the whole set of system does not need to be disassembled when the collection barrel is manually replaced and maintained.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the public utilities of people's livelihood, medical field, concretely is a kind of intelligent urinal separation collection system. BACKGROUND

[0002] Most of the existing market public place toilet still does not set up intelligent urinal separation collection system for medical industry purposes;And toilet facility is old and not intelligent enough, and flushing relies on manual operation mode, there is foul odor, poor sanitary environment, causing discomfort when defecating;A small amount of developed or applied urinal separation collection device uses very complex mechanical and intercommunication device to collect urine, the device is complex in structure, and construction is complicated, with the defects of high failure rate, inconvenient for later maintenance, and the original way is to transform pipeline into manual valve, after opening, no longer automatic flushing urinal, causing unpleasant odor, producing urine alkali to destroy urine.This invention is to retain flushing urinal while collecting urine.

[0003] Therefore, the skilled person in the art provides an intelligent urinal separation collection system to solve the problems raised in the background art. CONTENT OF THE UTILITY MODEL

[0004] The utility model aims at providing an intelligent urinal separation collection system to solve the problems raised in the background art.

[0005] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:

[0006] An intelligent urinal separation collection system includes a microprocessor, the microprocessor is connected with working state indicator light, wireless communication module, human body inductor, control module dial code, electromagnetic valve for running water flushing, three-way valve and debugging interface, the microprocessor, working state indicator light, wireless communication module, human body inductor, control module dial code, electromagnetic valve for running water flushing and three-way valve are powered by power supply system.

[0007] As a further scheme of the utility model: the power supply system selects mains and lithium battery self-adaptive power supply, and the power supply system is connected with power conversion module.

[0008] As a further scheme of the utility model: the drive circuit when the electromagnetic valve adopts 6V pulse electromagnetic valve includes paster integrated circuit U7, the fifth and eighth interface of paster integrated circuit U7 ground connection, the sixth and seventh interface of paster integrated circuit U7 respectively connect resistance R20 and resistance R21 after connecting VCC_5V voltage, the first interface of paster integrated circuit U7 connects diode D9 and resistance R22, and the other end of diode D9 has ground connection, the other end of resistance R22 connects light emitting diode D8 after ground connection, the second and third interface of paster integrated circuit U7 connect VCC_6V voltage, and are connected with paster ceramic capacitor C29 and C30 in parallel after ground connection, the fourth interface of paster integrated circuit U7 connects capacitor C27 after being connected with the first interface, and the fourth interface of paster integrated circuit U7 still connects diode D13 after ground connection, the fourth interface of paster integrated circuit U7 still connects resistance R23 and light emitting diode D12 after ground connection.

[0009] As a further scheme of the utility model: the drive circuit when the electromagnetic valve adopts 12V pulse electromagnetic valve includes triode Q1, and the three pins of triode Q1 are connected with resistance R29, resistance R24 and resistance R25 respectively, and resistance R24 is connected with 12V power supply, resistance R29 is connected with VCC_5V voltage, and resistance R25 is connected with light emitting diode D14 after ground connection, the pin of resistance R25 connected with triode Q1 is still connected with the first interface of direct insertion relay LS1 and diode D15, the second interface of direct insertion relay LS1 is connected with the other end of diode D15 after ground connection, and is connected with the parallel circuit of capacitor C31 and capacitor C32 simultaneously after being connected with the third and sixth interfaces of direct insertion relay LS1, capacitor C33, capacitor C34 and diode D16 are connected in parallel on the fourth interface of direct insertion relay LS1 after ground connection.

[0010] As a further scheme of the utility model: the drive circuit of three-way electromagnetic valve includes triode Q2, and the three pins of triode Q2 are connected with resistance R28, resistance R26 and resistance R27 respectively, and resistance R26 is connected with power supply, resistance R22 is connected with VCC_5V voltage, and resistance R27 is connected with light emitting diode D17 after ground connection, the pin of resistance R27 connected with triode Q2 is still connected with the first interface of direct insertion relay LS2 and diode D18, the second interface of direct insertion relay LS2 is connected with the other end of diode D18 after ground connection, and is connected with the parallel circuit of capacitor C35 and capacitor C36 simultaneously after being connected with the third and sixth interfaces of direct insertion relay LS2, capacitor C38, capacitor C37 and diode D19 are connected in parallel on the fourth interface of direct insertion relay LS2 after ground connection, the fourth interface of direct insertion relay LS2 is still connected with the first interface of plug-in green wiring terminal socket J8, and the second interface of plug-in green wiring terminal socket J8 is grounded.

[0011] As a further scheme of the utility model: the interface circuit of the human body sensor includes direct insertion micro 2 selects 1 dial switch J5 and plug-in green terminal socket J6, the fourth interface of plug-in green terminal socket J6 is grounded, the third interface of plug-in green terminal socket is connected with the second interface of direct insertion micro 2 selects 1 dial switch J5 and capacitor C28, the other end of capacitor C28 is grounded, the fourth and fifth interfaces of direct insertion micro 2 selects 1 dial switch J5 are grounded, the first interface of direct insertion micro 2 selects 1 dial switch J5 is connected with VCC_12V power supply, the third interface of direct insertion micro 2 selects 1 dial switch J5 is connected with VCC_6V power supply, the second interface of plug-in green terminal socket J6 is connected with diode D6 and diode D10 in parallel, the first interface of plug-in green terminal socket J6 is connected with diode D7 and diode D11 in parallel, the other end of diode D6 and diode D7 is connected with resistance R8 and the first interface of patch optical coupling isolator U8, the other end of diode D10 and diode D11 is connected with the second interface of patch optical coupling isolator U8, the third interface of patch optical coupling isolator U8 is grounded, the fourth interface of patch optical coupling isolator U8 is connected with resistance R19 and then connected with VCC_5V power supply.

[0012] Compared with the prior art, the utility model has the advantages that:

[0013] The utility model can satisfy the application of different types of urinals, and can satisfy the application of single toilet and toilet on different floors through wireless communication means, and can satisfy the application of multiple buildings through wireless transceiving communication and microprocessor control, and does not need to disassemble the whole system when manually replacing and maintaining the collecting barrel. BRIEF DESCRIPTION OF DRAWINGS

[0014] Figure 1 It is system diagram of the utility model;

[0015] Figure 2 It is work flow chart of the utility model;

[0016] Figure 3 It is linkage control scheme diagram of the utility model multilayer building;

[0017] Figure 4 It is circuit diagram of power supply system in the utility model;

[0018] Figure 5 It is circuit diagram of human body sensor in the utility model;

[0019] Figure 6 It is 12V electromagnetic valve drive circuit diagram of the utility model;

[0020] Figure 7The utility model discloses a three -way electromagnetic valve drive circuit diagram for the utility model.

[0021] Figure 8 The utility model discloses a 6V pulse electromagnetic valve drive circuit diagram. DETAILED DESCRIPTION

[0022] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments of the utility model, all other embodiments obtained by those skilled in the art without creative labor belong to the protection scope of the utility model.

[0023] Please refer to Figures 1-8 In the embodiments of the utility model, an intelligent urinal distribution and collection system comprises a microprocessor, which is connected with a working state indicator lamp, a wireless communication module, a human body sensor, a control module dial code, an electromagnetic valve for water flushing, a three-way valve and a debugging interface. The microprocessor, the working state indicator lamp, the wireless communication module, the human body sensor, the control module dial code, the electromagnetic valve for water flushing and the three-way valve are powered by a power supply system.

[0024] The power supply system is adapted to power supply from a commercial power supply and a lithium battery, and is connected with a power conversion module.

[0025] The above technical solution can ensure that it is suitable for different types of urinal modification, and can meet the application of single toilet and toilet on different floors through wireless communication means.

[0026] When the electromagnetic valve is a 6V pulse electromagnetic valve, the driving circuit comprises a patch integrated circuit U7, the fifth and eighth interfaces of the patch integrated circuit U7 are grounded, the sixth and seventh interfaces of the patch integrated circuit U7 are connected with resistors R20 and R21 respectively and then connected with a VCC_5V voltage, the first interface of the patch integrated circuit U7 is connected with a diode D9 and a resistor R22, the other end of the diode D9 is grounded, the other end of the resistor R22 is connected with a light emitting diode D8 and then grounded, the second and third interfaces of the patch integrated circuit U7 are connected with a VCC_6V voltage, and are connected in parallel with a patch ceramic capacitor C29 and C30 and then grounded, the fourth interface of the patch integrated circuit U7 is connected with a capacitor C27 and then connected with the first interface, and the fourth interface of the patch integrated circuit U7 is also connected with a diode D13 and then grounded, and the fourth interface of the patch integrated circuit U7 is also connected with a resistor R23 and a light emitting diode D12 and then grounded.

[0027] The driving circuit of the electromagnetic valve when the electromagnetic valve adopts a 12V pulse electromagnetic valve comprises a triode Q1, three pins of the triode Q1 are respectively connected with a resistor R29, a resistor R24 and a resistor R25, the resistor R24 is connected with a 12V power supply, the resistor R29 is connected with a VCC_5V voltage, the resistor R25 is connected with a light emitting diode D14 and then grounded, a first interface of a direct insertion relay LS1 and a diode D15 are further connected to the pin of the resistor R25 connected with the triode Q1, a second interface of the direct insertion relay LS1 is connected with the other end of the diode D15 and then grounded, and a parallel circuit of a capacitor C31 and a capacitor C32 is further connected to the third and sixth interfaces of the direct insertion relay LS1, and a capacitor C33, a capacitor C34 and a diode D16 are connected in parallel to a fourth interface of the direct insertion relay LS1 and then grounded.

[0028] By adopting the technical scheme, the system can be adapted to electromagnetic valves and inductors of different control modes, has low cost and is easy to replace.

[0029] The driving circuit of the three-way electromagnetic valve comprises a triode Q2, three pins of the triode Q2 are respectively connected with a resistor R28, a resistor R26 and a resistor R27, the resistor R26 is connected with a power supply, the resistor R22 is connected with a VCC_5V voltage, the resistor R27 is connected with a light emitting diode D17 and then grounded, a first interface of a direct insertion relay LS2 and a diode D18 are further connected to the pin of the resistor R27 connected with the triode Q2, a second interface of the direct insertion relay LS2 is connected with the other end of the diode D18 and then grounded, a parallel circuit of a capacitor C35 and a capacitor C36 is further connected to the third and sixth interfaces of the direct insertion relay LS2, a capacitor C38, a capacitor C37 and a diode D19 are connected in parallel to a fourth interface of the direct insertion relay LS2 and then grounded, the fourth interface of the direct insertion relay LS2 is further connected with a first interface of a plug-in green terminal socket J8, and a second interface of the plug-in green terminal socket J8 is grounded.

[0030] The interface circuit of the human body sensor comprises a direct insertion micro 2-select-1 dialing switch J5 and a plug-in green terminal socket J6, the fourth interface of the plug-in green terminal socket J6 is grounded, the third interface of the plug-in green terminal socket is connected with the second interface of the direct insertion micro 2-select-1 dialing switch J5 and the capacitor C28, the other end of the capacitor C28 is grounded, the fourth and fifth interfaces of the direct insertion micro 2-select-1 dialing switch J5 are grounded, the first interface of the direct insertion micro 2-select-1 dialing switch J5 is connected with a VCC_12V power supply, the third interface of the direct insertion micro 2-select-1 dialing switch J5 is connected with a VCC_6V power supply, the second interface of the plug-in green terminal socket J6 is connected with the diode D6 and the diode D10 in parallel, the first interface of the plug-in green terminal socket J6 is connected with the diode D7 and the diode D11 in parallel, the other end of the diode D6 and the diode D7 is connected with the resistor R8 and the first interface of the patch optical coupling isolator U8, the other end of the diode D10 and the diode D11 is connected with the second interface of the patch optical coupling isolator U8, the third interface of the patch optical coupling isolator U8 is grounded, and the fourth interface of the patch optical coupling isolator U8 is connected with the resistor R19 and then connected with a VCC_5V power supply.

[0031] The working principle of the utility model is: when the system is installed, two ports of the three-way valve are connected with the electromagnetic valve in series, and the other port is connected with an external urine collecting device; after the system is installed, when the human body sensor senses that a person enters, a wireless signal instruction is sent to the microprocessor; the microprocessor controls the three-way valve to open, urine is collected, and if the signal can still be sensed, a wireless signal instruction is continuously sent to the microprocessor; the microprocessor controls the three-way valve to open, urine is collected, if the signal cannot be sensed, the three-way valve is closed after a delay of 4s, the water valve is opened, and after a delay of 6s, if the sensing signal is received, a wireless signal instruction is sent to the microprocessor again; the microprocessor controls the three-way valve to open, urine is collected, if the signal is not received, the water valve is closed by sending an instruction to the microprocessor; the urine can be automatically collected, the flushing effect is retained, different types of urinals can be transformed and applied, the wireless communication means can meet the application of single-type toilets and toilets on different floors, and the wireless transceiving communication and the microprocessor control are used for manually replacing and maintaining the collecting barrel without disassembling the whole system.

[0032] In the embodiment, when the multi-layer equipment is used, the multi-layer equipment cannot send signals to the one-layer equipment due to distance, so the middle equipment can be used as a relay to transmit signals, in order to prevent signal pollution from affecting the operation of the equipment, signal encryption and the same mode are not sent again, at the same time, the equipment is placed in layers, but is an integral whole, and is used for controlling the three-way valve of the one layer, so that when the sensing signal of any layer enters, the wireless signal is sent to other floors at the same time, and the mode is unified.

[0033] The above merely describes a preferred embodiment of the present application, and the protection scope of the present application is not limited thereto, and any skilled person in the art, according to the technical scheme and the inventive concept of the present application, makes equivalent replacement or change within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.

Claims

1. An intelligent urinal distribution and collection system comprising a microprocessor, characterized in that: The microprocessor is connected with a working state indicating lamp, a wireless communication module, a human body sensor, a control module dial code, an electromagnetic valve for water flushing, a three-way valve and a debugging interface, and the microprocessor, the working state indicating lamp, the wireless communication module, the human body sensor, the control module dial code, the electromagnetic valve for water flushing and the three-way valve are powered by a power supply system.

2. The intelligent urinal distribution and collection system of claim 1, wherein: The power supply system is powered by a power supply conversion module.

3. The intelligent urinal distribution and collection system of claim 1, wherein: When the electromagnetic valve adopts a 6V pulse electromagnetic valve, the driving circuit comprises a patch integrated circuit U7, the fifth and eighth interfaces of the patch integrated circuit U7 are grounded, the sixth and seventh interfaces of the patch integrated circuit U7 are connected with resistors R20 and R21 respectively and then connected with a VCC_5V voltage, the first interface of the patch integrated circuit U7 is connected with a diode D9 and a resistor R22, the other end of the diode D9 is grounded, the other end of the resistor R22 is connected with a light-emitting diode D8 and then grounded, the second and third interfaces of the patch integrated circuit U7 are connected with a VCC_6V voltage and are connected with patch ceramic capacitors C29 and C30 in parallel and then grounded, the fourth interface of the patch integrated circuit U7 is connected with a capacitor C27 and then connected with the first interface, and the fourth interface of the patch integrated circuit U7 is also connected with a diode D13 and then grounded, and the fourth interface of the patch integrated circuit U7 is also connected with a resistor R23 and a light-emitting diode D12 and then grounded.

4. The intelligent urinal distribution and collection system of claim 1, wherein: When the electromagnetic valve adopts a 12V pulse electromagnetic valve, the driving circuit comprises a transistor Q1, the three pins of the transistor Q1 are connected with resistors R29, R24 and R25 respectively, the resistor R24 is connected with a 12V power supply, the resistor R29 is connected with a VCC_5V voltage, and the resistor R25 is connected with a light-emitting diode D14 and then grounded, the pin of the transistor Q1 connected with the resistor R25 is also connected with a first interface of a direct-insertion relay LS1 and a diode D15, the second interface of the direct-insertion relay LS1 is connected with the other end of the diode D15 and then grounded, and is also connected with a parallel circuit of a capacitor C31 and a capacitor C32 and then connected with the third and sixth interfaces of the direct-insertion relay LS1, and the fourth interface of the direct-insertion relay LS1 is connected with a capacitor C33, a capacitor C34 and a diode D16 in parallel and then grounded.

5. The intelligent urinal distribution and collection system of claim 1, wherein: The drive circuit of the three-way electromagnetic valve includes a triode Q2, three pins of the triode Q2 are respectively connected with a resistor R28, a resistor R26 and a resistor R27, the resistor R26 is connected with a power supply, the resistor R22 is connected with a VCC_5V voltage, the resistor R27 is connected with a light emitting diode D17 and then grounded, a first interface of a plug-in relay LS2 and a diode D18 are further connected to the pin of the resistor R27 connected with the triode Q2, a second interface of the plug-in relay LS2 is connected with another end of the diode D18 and then grounded, a parallel circuit of a capacitor C35 and a capacitor C36 is further connected to the third and sixth interfaces of the plug-in relay LS2, a capacitor C38, a capacitor C37 and a diode D19 are connected in parallel to a fourth interface of the plug-in relay LS2 and then grounded, the fourth interface of the plug-in relay LS2 is further connected with a first interface of a plug-in green terminal socket J8, and a second interface of the plug-in green terminal socket J8 is grounded.

6. The intelligent urinal distribution and collection system of claim 1, wherein: The interface circuit of the human body sensor includes a plug-in micro 2-to-1 toggle switch J5 and a plug-in green terminal socket J6, a fourth interface of the plug-in green terminal socket J6 is grounded, a third interface of the plug-in green terminal socket is connected with a second interface of the plug-in micro 2-to-1 toggle switch J5 and a capacitor C28, another end of the capacitor C28 is grounded, fourth and fifth interfaces of the plug-in micro 2-to-1 toggle switch J5 are grounded, a first interface of the plug-in micro 2-to-1 toggle switch J5 is connected with a VCC_12V power supply, a third interface of the plug-in micro 2-to-1 toggle switch J5 is connected with a VCC_6V power supply, a second interface of the plug-in green terminal socket J6 is connected in parallel with a diode D6 and a diode D10, a first interface of the plug-in green terminal socket J6 is connected in parallel with a diode D7 and a diode D11, another ends of the diode D6 and the diode D7 are connected with a resistor R8 and a first interface of a patch optical coupling isolator U8, another ends of the diode D10 and the diode D11 are connected with a second interface of the patch optical coupling isolator U8, a third interface of the patch optical coupling isolator U8 is grounded, and a fourth interface of the patch optical coupling isolator U8 is connected with a resistor R19 and then connected with a VCC_5V power supply.