Flushing anti-freezing mechanism of global toilet
By designing a combination of heaters, solenoid valves and temperature sensors in the bathroom, precise temperature control of all-area bathrooms is achieved, solving the problem of freezing of flush structures in low-temperature environments, ensuring the normal operation of the flush system and efficient utilization of resources.
Patent Information
- Application Number
- CN202323527562.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-22
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2033-12-22
AI Technical Summary
The existing bathrooms are prone to freezing in low temperature environments, resulting in failure of the flush structure and low heating control efficiency, serious waste of resources, and lack of a full-region anti-freeze mechanism.
A full-region bathroom flushing and antifreeze mechanism is designed, including a heater, solenoid valve, temperature sensor and control panel. The tap water is accurately controlled through the heater, and the pipeline is protected by the antifreeze heater and insulation cotton to achieve independent temperature control and antifreeze control of each pipeline.
Accurate temperature control of each pipeline in the bathroom is achieved to prevent tap water from freezing, ensure normal operation of flushing, and avoid waste of resources.
Smart Images

Figure CN223135245U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of toilet flushing anti-freezing mechanisms, and more specifically, the utility model relates to a flushing anti-freezing mechanism for a global type toilet. Background Technique
[0002] In winter, the temperature in some areas reaches below zero or even lower, which may cause the toilet flushing structure to freeze, thus affecting people's daily lives, and may also crack items, causing economic losses.
[0003] Most existing toilets do not have anti-freezing mechanisms. Even if some have anti-freezing mechanisms, in areas with extremely low temperatures, the anti-freezing effect is poor, and internal freezing often occurs. Moreover, some heating structures have low temperature control efficiency when heating tap water, which may result in waste of resources. Therefore, a flushing anti-freezing mechanism for a global type toilet is needed. At the same time, the cited patent documents do not propose relevant solutions to solve problems such as toilet flushing anti-freezing and temperature control.
[0004] Therefore, a flushing anti-freezing mechanism for a global type toilet is proposed to solve the above problems. Content of the Utility Model
[0005] In order to overcome the above-mentioned defects of the prior art, an embodiment of the utility model provides a flushing anti-freezing mechanism for a global type toilet to solve the problems raised in the above background technique.
[0006] To achieve the above object, the utility model provides the following technical solution: A flushing anti-freezing mechanism for a global type toilet, including a cabinet body. Inside the cabinet body, there is a heater. On the right side of the heater, there is a water delivery pipe fixedly connected. At the bottom of the heater, there is a solenoid valve I connected by a pipeline. At the bottom of the solenoid valve I, there is a pipeline connection to a shunt valve housing.
[0007] Preferably, inside the shunt valve housing, there is a main pipeline. On the outer side of the main pipeline, there are multiple shunt ports. Inside the main pipeline, there are two temperature sensors I. On the outer side of the shunt port, there is a solenoid valve II fixedly connected.
[0008] Preferably, on the other side of the solenoid valve II, there is a water delivery pipeline housing fixedly connected. On the outer side of the water delivery pipeline housing, there is an anti-freezing heater, and the anti-freezing heater can be disassembled and fixed on the water delivery pipeline housing.
[0009] Preferably, at the other end of the water delivery pipeline housing, there is an anti-freezing pipeline fixedly connected. At the front end of the anti-freezing pipeline, there is a flushing button fixedly connected. At the bottom of the anti-freezing pipeline, there is a squatting toilet fixedly connected.
[0010] Preferably, an anti-freezing insulation cotton is provided inside the outer shell of the conveying pipeline. A polypropylene layer is provided inside the anti-freezing insulation cotton. A pipe core is provided inside the polypropylene layer. Two temperature sensors II are provided inside the pipe core.
[0011] Preferably, a cabinet door is provided at the front end of the cabinet body. A control panel is fixedly connected to the front end of the cabinet door. The control panel can control all the motor components inside the device.
[0012] Preferably, a data converter is provided at the bottom of the solenoid valve I. The data converter is fixedly connected inside the cabinet body, and the data converter is in data connection with the temperature sensor I, the temperature sensor II, etc.
[0013] Preferably, the control panel can separately control the anti-freezing heater, and the data converter can also receive the temperature inside the outer shell of each conveying pipeline at the same time.
[0014] The technical effects and advantages of the present utility model:
[0015] 1. Compared with the prior art, the flushing and anti-freezing mechanism of the all-region type toilet can heat the tap water input by the water delivery pipe through the heater provided inside the cabinet body. Then, the solenoid valve I can control the amount of tap water input into the outer shell of the shunt valve. At the same time, the temperature of the tap water is monitored by the temperature sensor I provided inside the outer shell of the shunt valve. Then, data conversion is carried out through the data converter. Then, the control panel can also adjust the heater to heat and adjust the input tap water. Then, the heated tap water is input into the main pipeline provided inside the outer shell of the shunt valve through the outer pipeline. Then, the temperature of the internal tap water is monitored by the two temperature sensors I provided inside the main pipeline. Then, the water is shunted and output through the multiple shunt ports provided on the outer side of the main pipeline. Then, the solenoid valve II provided on the outer side of the shunt port can control the water delivery speed of each shunt port to the tap water inside the outer shell of each conveying pipeline. Then, the anti-freezing heater provided on the outer side of each conveying pipeline outer shell can adjust and heat the temperature of a single conveying pipeline outer shell to prevent the tap water from freezing and affecting flushing. The device can separately control the temperature and detection of each internal pipeline, making the anti-freezing effect more comprehensive. Moreover, the device can supply water to multiple devices that need flushing.
[0016] 2. Compared with the prior art, the flushing and anti-freezing mechanism of the global toilet protects the entire pipeline through the outer shell of the conveying pipeline, then insulates the pipe core through the anti-freezing insulation cotton and the polypropylene layer, and then is provided with two groups of temperature sensors II inside the pipe core. Then, through the data converter, all the data inside the device can be summed up, and then transmitted to the control panel through the circuit, so as to facilitate the control panel to control the electrical components inside the device. Then, through the cooperation of the data converter and the control panel, the anti-freezing of tap water can be made more accurate, and at the same time, the waste of resources caused by continuous heating is prevented. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is the front view of the present utility model.
[0018] Figure 2 This is a schematic diagram of the internal structure of the cabinet body of the present utility model.
[0019] Figure 3 This is a schematic diagram of the structure of the outer shell of the flow dividing valve of the present utility model.
[0020] Figure 4 This is a schematic diagram of the structure of the outer shell of the conveying pipeline of the present utility model.
[0021] The reference numerals are: 1, water delivery pipe; 2, cabinet body; 3, cabinet door; 4, control panel; 5, heater; 6, solenoid valve I; 7, outer shell of the flow dividing valve; 8, main pipeline; 9, temperature sensor I; 10, flow dividing port; 11, solenoid valve II; 12, anti-freezing heater; 13, outer shell of the conveying pipeline; 14, anti-freezing insulation cotton; 15, polypropylene layer; 16, pipe core; 17, temperature sensor II; 18, data converter; 19, flushing button; 20, squatting pan; 21, anti-freezing pipeline. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0022] The technical solutions in the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0023] Embodiment 1
[0024] As shown in Figure 1 、 Figure 2 and Figure 3 a flushing and anti-freezing mechanism of a global toilet includes a cabinet body 2, a heater 5 is arranged inside the cabinet body 2, a water delivery pipe 1 is fixedly connected to the right side of the heater 5, a pipeline of the heater 5 is connected to a solenoid valve I 6 at the bottom, and a pipeline of the solenoid valve I 6 is connected to an outer shell of the flow dividing valve 7 at the bottom.
[0025] Wherein: the heater 5 provided inside the cabinet body 2 can heat the tap water input by the water delivery pipe 1, and then the solenoid valve 6 can control the quantity of the tap water input into the inside of the shunt valve housing 7. Meanwhile, the temperature sensor 9 provided inside the shunt valve housing 7 monitors the temperature of the tap water, then the data converter 18 performs data conversion, and then the control panel 4 can also adjust the heater 5 to heat and adjust the input tap water.
[0026] Embodiment 2
[0027] On the basis of Embodiment 1, the solution in Embodiment 1 is further refined and introduced in combination with the following specific working modes, as Figures 1 to 4 shown, and the details are described below:
[0028] As a preferred embodiment, a main pipeline 8 is provided inside the shunt valve housing 7, multiple shunt ports 10 are provided on the outer side of the main pipeline 8, two groups of temperature sensors 9 are provided inside the main pipeline 8, and a solenoid valve 11 is fixedly connected to the outer side of the shunt port 10; further, the heated tap water is input into the main pipeline 8 provided inside the shunt valve housing 7 through the outer pipeline, then the two groups of temperature sensors 9 provided inside the main pipeline 8 monitor the temperature of the tap water inside, then the water is shunted and output through the multiple shunt ports 10 provided on the outer side of the main pipeline 8, and then the solenoid valve 11 provided on the outer side of the shunt port 10 can control the water delivery speed of each shunt port 10 into the inside of each conveying pipeline housing 13. This device can supply water to multiple devices that need to be flushed, so as to realize anti-freezing for multiple devices that need to be flushed by one anti-freezing device and keep the flushing in normal use.
[0029] As a preferred embodiment, a conveying pipeline housing 13 is fixedly connected to the other side of the solenoid valve 11, an anti-freezing heater 12 is provided on the outer side of the conveying pipeline housing 13, and the anti-freezing heater 12 can be disassembled and fixed on the conveying pipeline housing 13; further, the anti-freezing heater 12 provided on the outer side of each conveying pipeline housing 13 can adjust the temperature and heat a single conveying pipeline housing 13 to prevent the tap water from freezing and affecting the flushing. Moreover, the conveying pipeline housings 13 all penetrate through the side surface of the cabinet body 2, and the cabinet body 2 can fix and limit the conveying pipeline housings 13 and the whole.
[0030] As a preferred embodiment, the other end of the outer shell 13 of the conveying pipeline is fixedly connected to an anti-freezing pipeline 21. The front end of the anti-freezing pipeline 21 is fixedly connected to a flushing button 19, and the bottom of the anti-freezing pipeline 21 is fixedly connected to a squatting toilet 20. Further, through the anti-freezing pipeline 21 provided at the other end of the outer shell 13 of the conveying pipeline, the tap water inside the anti-freezing pipeline 21 can be kept warm, further ensuring normal flushing. Then, whether to flush the inside of the squatting toilet 20 can be controlled through the flushing button 19.
[0031] As a preferred embodiment, an anti-freezing heat-insulating cotton 14 is provided inside the outer shell 13 of the conveying pipeline. A polypropylene layer 15 is provided inside the anti-freezing heat-insulating cotton 14. A pipe core 16 is provided inside the polypropylene layer 15. Two groups of temperature sensors II 17 are provided inside the pipe core 16. Further, the entire pipeline is protected by the outer shell 13 of the conveying pipeline. Then, the pipe core 16 is insulated by the anti-freezing heat-insulating cotton 14 and the polypropylene layer 15. Then, through the two groups of temperature sensors II 17 provided inside the pipe core 16, the temperature of the tap water inside is monitored, and at the same time, the signal is transmitted to the data converter 18 inside.
[0032] As a preferred embodiment, a cabinet door 3 is provided at the front end of the cabinet body 2. A control panel 4 is fixedly connected to the front end of the cabinet door 3. The control panel 4 can control all the motor elements inside the device. Further, through the cabinet door 3, it is convenient for the staff to maintain and repair the inside. Then, through the control panel 4, it can be adjusted so that the tap water inside will be heated when it is lower than the lowest set temperature value and will stop heating when it is higher than the highest set temperature value.
[0033] As a preferred embodiment, a data converter 18 is provided at the bottom of the solenoid valve I 6. The data converter 18 is fixedly connected inside the cabinet body 2, and the data converter 18 is data-connected to the temperature sensor I 9, the temperature sensor II 17, etc. Further, through the data converter 18, all the data inside the device can be totaled, and then transmitted to the control panel 4 through the line, so as to facilitate the control panel 4 to control the electrical components inside the device, prevent overload at the same time, and can also display the internal temperature.
[0034] As a preferred embodiment, the control panel 4 can independently control the anti-freezing heater 12, and the data converter 18 can also receive the temperature inside each outer shell 13 of the conveying pipeline at the same time. Further, through the cooperation of the data converter 18 and the control panel 4, the anti-freezing of the tap water can be made more accurate, and at the same time, the waste of resources caused by continuous heating is prevented. Through the control panel 4, the anti-freezing heaters 12 provided on the outside of each outer shell 13 of the conveying pipeline can be independently controlled.
[0035] The working process of the present utility model is as follows:
[0036] First, tap water is transported to the heater 5 inside the cabinet 2 through the water supply pipe 1. Then, the solenoid valve 6 can control the amount of tap water input into the housing 7 of the flow dividing valve. At the same time, the temperature sensor 9 inside the housing 7 of the flow dividing valve monitors the temperature of the tap water. Then, data conversion is carried out through the data converter 18. Then, the control panel 4 can also adjust the heater 5 to heat and adjust the incoming tap water. Then, the heated tap water is input into the main pipe 8 inside the housing 7 of the flow dividing valve through the outer pipe. Then, the two groups of temperature sensors 9 inside the main pipe 8 monitor the temperature of the tap water inside. Then, the water is divided and output through the multiple flow dividing ports 10 on the outside of the main pipe 8. Then, the solenoid valve 11 on the outside of the flow dividing port 10 can control the conveying speed of the tap water in each group of the conveying pipe housing 13 for each group of flow dividing ports 10. Then, the anti-freezing heater 12 on the outside of each group of conveying pipe housings 13 can adjust the temperature and heat a single conveying pipe housing 13. Then, the anti-freezing pipe 21 at the other end of the conveying pipe housing 13 can keep the tap water inside the anti-freezing pipe 21 warm, further ensuring normal flushing. Then, the flushing button 19 can control whether to flush inside the squat toilet 20. Then, the control panel 4 can be adjusted so that when the internal tap water is lower than the lowest set temperature value, it will be heated, and when it is higher than the highest set temperature value, it will stop heating. The data converter 18 can sum up all the data inside the device and then transmit it to the control panel 4 through the line, thus facilitating the control panel 4 to control the electrical components inside the device. Moreover, the control panel 4 can individually control the anti-freezing heaters 12 on the outside of each group of conveying pipe housings 13, while preventing overload and displaying the internal temperature, further ensuring normal flushing. This is the working principle of the device.
[0037] Finally: The above is only the preferred embodiment of the present invention and is not used to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A flushing and anti-freezing mechanism for a global-type toilet, comprising a cabinet body (2), characterized in that; Inside the cabinet body (2), there is a heater (5). On the right side of the heater (5), a water delivery pipe (1) is fixedly connected. At the bottom of the heater (5), a solenoid valve I (6) is connected by a pipeline. At the bottom of the solenoid valve I (6), a shunt valve housing (7) is connected by a pipeline. Inside the shunt valve housing (7), there is a main pipeline (8). Outside the main pipeline (8), there are multiple shunt ports (10). Inside the main pipeline (8), there are two temperature sensors I (9). Outside the shunt port (10), a solenoid valve II (11) is fixedly connected. On the other side of the solenoid valve II (11), a conveying pipeline housing (13) is fixedly connected. Outside the conveying pipeline housing (13), there is an anti-freezing heater (12), and the anti-freezing heater (12) can be disassembled and fixed on the conveying pipeline housing (13). At the other end of the conveying pipeline housing (13), an anti-freezing pipeline (21) is fixedly connected. At the front end of the anti-freezing pipeline (21), a flushing button (19) is fixedly connected. At the bottom of the anti-freezing pipeline (21), a squatting toilet (20) is fixedly connected. Inside the conveying pipeline housing (13), there is an anti-freezing heat preservation cotton (14). Inside the anti-freezing heat preservation cotton (14), there is a polypropylene layer (15). Inside the polypropylene layer (15), there is a pipe core (16). Inside the pipe core (16), there are two temperature sensors II (17).
2. The flushing and anti-freezing mechanism of a global toilet according to claim 1, characterized in that: At the front end of the cabinet body (2), there is a cabinet door (3). At the front end of the cabinet door (3), a control panel (4) is fixedly connected. The control panel (4) can control all the motor components inside.
3. The flushing and anti-freezing mechanism of a global bathroom according to claim 1, characterized in that: At the bottom of the solenoid valve I (6), there is a data converter (18). The data converter (18) is fixedly connected inside the cabinet body (2), and the data converter (18) is data-connected to both the temperature sensor I (9) and the temperature sensor II (17).
4. The flushing and anti-freezing mechanism of a global toilet according to claim 2, characterized in that: The control panel (4) can independently control the anti-freezing heater (12), and the data converter (18) can simultaneously receive the temperature inside each conveying pipeline housing (13).