Heat purifying and purifying all-in-one machine
By setting up a heating module and a reflow module in the heat purification machine, the control valve group is used to realize the reflow of hot water and raw water, which solves the problem of insufficient hot water temperature in cold areas, and realizes the recycling of heat energy and efficient filtration of the fine filter element.
Patent Information
- Application Number
- CN202422608520.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-28
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-10-28
AI Technical Summary
When the existing heat-cleaning machine is in standby time for a long time in winter or cold areas, the temperature of the hot water flows out is low and it takes a period of time to reach the required use temperature, resulting in waste of water resources and heat energy.
The heating module and the reflow module are set up. By controlling the valve group to conduct the return branch when the outlet water temperature of the heating module is lower than the preset temperature, hot water that has not reached the preset temperature is introduced into the water-making pipeline between the pre-filter element and the fine filter element of the water purification system, to realize the reflow of hot water, and mix it with the raw water to improve the raw water temperature and ensure the filtration performance and heating efficiency of the fine filter element.
It avoids the waste of water resources and heat energy caused by the direct discharge of hot water, improves the raw water temperature, ensures the filtration performance of the fine filter element, reduces the waiting time for water withdrawal, and improves heating efficiency.
Smart Images

Figure CN223271452U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water purification, in particular to a water purification and heating all-in-one machine. Background Art
[0002] While current integrated water purifiers and heat pumps on the market offer both purification and heating functions, they lack effective water temperature control and resource utilization. This is particularly true in winter or cold regions, where a water purifier and heat pump has been idle for an extended period before being used. The hot water flowing from the faucet is often relatively low in temperature and requires a period of time to reach the desired operating temperature. This wastes water resources and underutilizes the water's thermal energy. Utility Model Content
[0003] In view of this, the present invention provides an all-in-one water purifier and heat machine to solve the problem in the prior art that when the all-in-one water purifier and heat machine is put into use after being on standby for a long time, the temperature of the hot water flowing out is low and it takes a while to reach the required usage temperature, which not only wastes water resources but also fails to fully utilize the water heat energy.
[0004] The utility model provides an integrated water purification and heating machine, comprising a water purification system, a heating module, and a reflux module. The water purification system comprises a water production pipeline, and a pre-filter and a fine filter connected in series to the water production pipeline in sequence. The water purification system is used to produce pure water. The heating module is connected to the water outlet of the water production pipeline. The heating module is used to heat the pure water flowing out of the water outlet to a preset temperature value. The water outlet of the heating module is connected to a hot water intake end. The reflux module comprises a reflux branch and a control valve group. One end of the reflux branch is arranged between the heating module and the hot water intake end, and the other end of the reflux branch is connected to the water production pipeline between the pre-filter and the fine filter. The control valve group has a first state that connects the reflux branch and the heating module. When the outlet water temperature of the heating module is lower than the preset temperature value, the control valve group is in the first state to guide the hot water flowing out of the heating module that does not reach the preset temperature value into the water production pipeline between the pre-filter and the fine filter.
[0005] Beneficial effect: The integrated water purifier and heat machine of the present application is provided with a heating module and a reflux module. The heating module can heat the pure water prepared by the water purification system to a preset temperature value so that users can use hot water of the required temperature. When the integrated water purifier and heat machine is in standby for a long time in winter or cold areas and is started up for use, the heating module cannot immediately heat the pure water to the preset temperature value. When the outlet water temperature of the heating module is lower than the preset temperature value, the control valve group of the reflux module is in the first state to conduct the reflux branch and the heating module, thereby directing the hot water flowing out of the heating module that has not reached the preset temperature value into the water production pipeline between the pre-filter element and the fine filter element to realize hot water reflux, thereby avoiding the waste of water resources and heat energy caused by direct discharge of hot water. At the same time, the refluxed hot water can be mixed with the raw water in the water production pipeline to increase the raw water temperature, thereby increasing the raw water temperature entering the fine filter element for filtration, ensuring the filtering performance of the fine filter element, and alleviating the situation where the filtering performance of the fine filter element decreases due to too low temperature. In addition, the raw water heating also helps to improve the heating efficiency of the rear-end heating module.
[0006] In some embodiments, the control valve group further has a second state in which the heating module and the hot water intake end are connected. Based on the outlet water temperature of the heating module being at the preset temperature value, the control valve group is in the second state.
[0007] Beneficial effect: When the outlet water temperature of the heating module is at the preset temperature value, the heating module and the hot water intake end are connected through the control valve group, so that the hot water taken by the user through the hot water intake end is maintained at the required preset temperature value. Therefore, the heat and water purifier of the present application will turn on the reflux mode when the hot water does not meet the water intake demand and will not turn on the hot water intake end until the hot water is at the preset temperature value. It can ensure that the hot water flowing to the hot water intake end is always at the preset temperature value, so that the user can directly take it, reducing the waiting time for water collection.
[0008] In some embodiments, the heating module further includes a temperature detection unit, and the temperature detection unit is capable of controlling the control valve group to switch to the first state when detecting that the outlet water temperature of the heating module is lower than the preset temperature value.
[0009] Beneficial effect: The temperature detection unit can timely detect the hot water temperature of the heating unit. When it is detected that the outlet water temperature of the heating unit is lower than the preset temperature value, the control valve group is controlled to switch to the first state to automatically turn on the hot water reflux mode, thereby improving control efficiency.
[0010] In some embodiments, the temperature detection unit can also control the control valve group to switch to the second state when detecting that the outlet water temperature of the heating module is at the preset temperature value.
[0011] Beneficial effect: When the temperature detection unit detects that the water outlet temperature of the heating unit is at the preset temperature value, the control valve group is controlled to switch to the second state to automatically connect the heating unit and the hot water intake end, which can facilitate users to obtain hot water of the required temperature and improve control efficiency.
[0012] In some embodiments, the control valve group includes a reflux valve and a water intake valve, the reflux valve is arranged in the reflux branch, the water intake valve is arranged between the heating module and the hot water intake end and the water intake valve is located downstream of the reflux branch, in the first state, the reflux valve is in an open state and the water intake valve is in a closed state, in the second state, the reflux valve is in a closed state and the water intake valve is in an open state.
[0013] Beneficial effect: With the above setting, when the control valve group is in the first state, it indicates that the outlet water temperature of the heating module is lower than the preset temperature value. Therefore, the hot water flowing out of the heating module flows back to the water production pipeline through the reflux branch and mixes with the raw water. When the control valve group is in the second state, it indicates that the outlet water temperature of the heating module is at the preset temperature value. At this time, the water intake valve connects the heating module and the hot water intake end. When the user opens the water intake end, the hot water of the preset temperature value flowing out of the heating module can flow to the hot water intake end for user use.
[0014] In some embodiments, the reflux module further includes a check valve, which is disposed in the reflux branch and is located downstream of the reflux valve.
[0015] Beneficial effect: Further setting a check valve in the reflux branch can prevent the hot water in the reflux branch from flowing back, and the check valve located downstream of the reflux valve can protect the reflux valve and prevent hot water from flowing back into the reflux valve and causing damage to the valve.
[0016] In some embodiments, the water purification system further includes a pressure-stabilizing pump, which is disposed on the water production pipeline between the pre-filter element and the fine filter element, and the connection point between the reflux branch and the water production pipeline is located upstream of the pressure-stabilizing pump.
[0017] Beneficial effect: The pressure-stabilizing pump can increase the pressure of the raw water entering the fine filter element. Since the front end (upstream) of the pressure-stabilizing pump is zero pressure or negative pressure, it is more conducive to the return of hot water to the water production pipeline, reducing the difficulty of hot water return.
[0018] In some embodiments, the heating module includes a hot water pipeline and a heating unit arranged in the hot water pipeline, one end of the hot water pipeline is connected to the water outlet end of the water production pipeline, the other end of the hot water pipeline is connected to the hot water intake end, one end of the reflux branch is connected to the hot water pipeline, and the connection point between the reflux branch and the hot water pipeline is located between the heating unit and the hot water intake end.
[0019] Beneficial effect: The pure water flowing out of the water outlet of the water production pipeline flows into the heating unit through the hot water pipeline for heating. If the hot water is heated to the preset temperature value, it flows to the hot water intake end for users to take. If the hot water is not heated to the preset temperature value, it flows into the reflux branch through the hot water pipeline for reflux.
[0020] In some embodiments, the integrated heat and water purification machine further includes a flow regulating device, which is connected to the hot water pipeline and the connection is located upstream of the heating unit. The flow regulating device is used to regulate the flow of pure water entering the heating unit.
[0021] Beneficial effect: A flow regulating device is provided to regulate the flow of pure water entering the heating unit, thereby adjusting the heating temperature of the pure water by the heating unit, and realizing the use of hot water with multiple different preset temperature values to meet different water needs.
[0022] In some embodiments, the flow regulating device includes a controller and a water pump, the controller and the water pump are signal-connected, the water pump is arranged in the hot water pipeline, and the controller can control the reduction of the pump pressure of the water pump when the outlet water temperature of the heating module is lower than the preset temperature value, and can control the increase of the pump pressure of the water pump when the outlet water temperature of the heating module is higher than the preset temperature value.
[0023] Beneficial effect: When the preset temperature value of hot water needs to be adjusted, the temperature detection unit will first feedback the hot water temperature. When the existing hot water temperature is higher than the preset temperature value, the controller controls to increase the water pump pressure and thereby increase the flow of pure water into the heating unit, causing the hot water temperature to drop. When the existing hot water temperature is lower than the preset temperature value, the controller controls to reduce the water pump pressure and thereby reduce the flow of pure water into the heating unit, causing the hot water temperature to rise, thereby realizing the use of hot water in multiple temperature ranges.
[0024] In some embodiments, the integrated heat and water purification machine also includes a pressure relief module, one end of the pressure relief module is connected to the water production pipeline upstream of the fine filter element, and the other end of the pressure relief module is connected to the water production pipeline downstream of the fine filter element. The pressure relief module is used to introduce part of the clean water prepared by the fine filter element into the water production pipeline upstream of the fine filter element when the heating module is running.
[0025] Beneficial effect: The setting of the pressure relief module can guide part of the clean water prepared by the fine filter element into the water production pipeline upstream of the fine filter element when the heating module is running, so that part of the clean water prepared by the fine filter element can flow back to the front end to reduce the pressure at the rear end of the fine filter element, and prevent the water pressure of the water purification system from being too high when taking hot water, causing damage to the pipeline.
[0026] In some embodiments, the water purification system further comprises a post-filter element, wherein the post-filter element is connected in series to the water production pipeline downstream of the fine filter element;
[0027] The pressure relief module includes a pressure relief branch and a pressure relief valve arranged on the pressure relief branch. One end of the pressure relief branch is connected to the water production pipeline between the pre-filter element and the fine filter element, and the other end of the pressure relief branch is connected to the water production pipeline between the post-filter element and the fine filter element. The pressure relief valve is used to open when the heating module is running to conduct the pressure relief branch.
[0028] Beneficial effect: When the heating module is running, the pressure relief valve opens and the pressure relief branch is conducted. Part of the clean water prepared by the fine filter element flows into the pressure relief branch under back pressure and flows into the water production pipeline between the pre-filter element and the fine filter element, mixes with the raw water, and then flows into the fine filter element again for circulation filtration.
[0029] In some embodiments, the heat and water purification machine also includes a normal temperature water intake module, which includes a normal temperature water pipeline and a normal temperature water inlet valve. One end of the normal temperature water pipeline is connected to the water outlet end of the water production pipeline, and the other end of the normal temperature water pipeline is connected to the normal temperature water intake end. The normal temperature water inlet valve is arranged on the normal temperature water pipeline.
[0030] Beneficial effect: The normal temperature water intake module makes it convenient for users to take normal temperature water. When the user needs to take normal temperature water, the normal temperature water inlet valve is opened, and the pure water flowing out of the water outlet end of the water pipe flows through the normal temperature water pipe to the normal temperature water intake end for user use.
[0031] In some embodiments, the heat and air purifier further includes a faucet, the faucet includes a water outlet, the heating module and the reflux module are both arranged on the faucet, and the water outlet is provided with the hot water intake end and the normal temperature water intake end.
[0032] Beneficial effect: The heating module and the reflux module are integrated into the faucet, making the entire heat and water purification machine compact and small in size, and the hot water intake end and the normal temperature water intake end are arranged on the water outlet, making it convenient for users to take hot water and normal temperature water at the water outlet. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] In order to more clearly illustrate the specific implementation methods of the utility model or the technical solutions in the prior art, the drawings required for use in the specific implementation methods or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are some implementation methods of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0034] Figure 1It shows a schematic diagram of the overall connection structure of a heat and air conditioning integrated machine according to one embodiment of the present invention;
[0035] Figure 2 A schematic diagram showing the connection structure of a water purification system according to an embodiment of the present invention is shown;
[0036] Figure 3 A schematic diagram of a partial connection structure of a heat and air conditioning integrated machine according to an embodiment of the present invention is shown;
[0037] Figure 4 The figure shows the overall structure of the pre-filter element and the post-filter element according to one embodiment of the present invention;
[0038] Figure 5 The figure shows a structural diagram of a fine filter element according to an embodiment of the present invention.
[0039] Description of reference numerals:
[0040] 1. Water purification system; 11. Water production pipeline; 12. Pre-filter element; 121. First water inlet; 122. First water outlet; 13. Fine filter element; 131. Fine filter element water inlet; 132. Pure water outlet; 133. Wastewater outlet; 14. Post-filter element; 141. Second water inlet; 142. Second water outlet; 15. First water inlet valve; 16. First TDS probe; 17. Second water inlet valve; 18. First flowmeter; 19. Pressure-stabilizing pump; 10. Wastewater pipeline; 101. Wastewater valve; 111. Check valve; 112. Pressure switch; 113. Second TDS probe; 114. Second flowmeter;
[0041] 2. Heating module; 21. Hot water pipeline; 211. Third water inlet valve; 212. Zero pressure valve; 213. Water pump; 22. Heating unit; 23. Temperature detection unit; 24. Water intake valve;
[0042] 3. Reflux module; 31. Reflux branch; 32. Reflux valve; 33. Check valve;
[0043] 4. Pressure relief module; 41. Pressure relief branch; 42. Pressure relief valve; 43. Pressure relief solenoid valve;
[0044] 5. Normal temperature water intake module; 51. Normal temperature water pipeline; 52. Normal temperature water inlet valve;
[0045] 6. Faucet; 61. Water outlet; 611. Hot water inlet; 612. Normal temperature water inlet;
[0046] 7. Pipeline machine branch. DETAILED DESCRIPTION
[0047] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the embodiments described are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without making creative efforts shall fall within the scope of protection of the present invention.
[0048] The following combination Figures 1 to 5 , describing the embodiments of the present utility model.
[0049] According to the embodiment of the present utility model, Figures 1 to 3 As shown, a water purification and heating integrated machine is provided, including a water purification system 1, a heating module 2 and a reflux module 3. The water purification system 1 includes a water production pipeline 11 and a pre-filter element 12 and a fine filter element 13 connected in series to the water production pipeline 11. The water purification system 1 is used to produce pure water. The heating module 2 is connected to the water outlet end of the water production pipeline 11. The heating module 2 is used to heat the pure water flowing out of the water outlet end to a preset temperature value. The water outlet of the heating module 2 is connected to the hot water intake end 611. The reflux module 3 includes a reflux branch 31 and a control valve group. One end of the reflux branch 31 is arranged between the heating module 2 and the hot water intake end 611, and the other end of the reflux branch 31 is connected to the water supply pipeline 11 between the pre-filter element 12 and the fine filter element 13. The control valve group has a first state of connecting the reflux branch 31 and the heating module 2. Based on the outlet water temperature of the heating module 2 being lower than the preset temperature value, the control valve group is in the first state to guide the hot water flowing out of the heating module 2 that has not reached the preset temperature value into the water supply pipeline 11 between the pre-filter element 12 and the fine filter element 13.
[0050] The heat and water purifier of the present application is provided with a heating module 2 and a reflux module 3. The pure water prepared by the water purification system 1 can be heated to a preset temperature value by the heating module 2 so that the user can take hot water of the required temperature. When the heat and water purifier is on standby for a long time in winter or cold areas and is started up, the heating module 2 cannot immediately heat the pure water to the preset temperature value. When the outlet water temperature of the heating module 2 is lower than the preset temperature value, the control valve group of the reflux module 3 is in the first state to conduct the reflux branch 31 and the heating module 2, thereby The hot water that has not reached the preset temperature value is introduced into the water production pipeline 11 between the pre-filter element 12 and the fine filter element 13 to realize the reflux of hot water, which not only avoids the waste of water resources and heat energy caused by the direct discharge of hot water, but also the refluxed hot water is mixed with the raw water in the water production pipeline 11, which can increase the temperature of the raw water, thereby increasing the temperature of the raw water entering the fine filter element 13 for filtration, ensuring the filtering performance of the fine filter element 13, and alleviating the situation where the filtering performance of the fine filter element 13 is reduced due to too low temperature. In addition, the heating of the raw water also helps to improve the heating efficiency of the rear-end heating module 2.
[0051] It should be noted that the preset temperature value can be adjusted according to user needs. For example, if a user wants to make tea, the preset temperature value may be 100°C, and if a user wants to make milk, the preset temperature value may be 45°C to 55°C. This embodiment does not impose any specific restrictions.
[0052] The fine filter element 13 is generally any one or more of a reverse osmosis membrane filter element (RO filter element) or a nanofiltration membrane filter element or a ceramic membrane filter element, etc., which has a certain osmotic pressure. According to the principle of thermal expansion and contraction, too low a temperature will cause the osmotic pressure of the fine filter element 13 to be too high, resulting in increased difficulty in filtering water through the fine filter element 13. Therefore, in winter or cold areas, the filtering performance of the fine filter element 13 will be reduced due to the low temperature. The present application can increase the temperature of the raw water entering the fine filter element 13 by introducing hot water that has not reached the preset temperature value into the front end of the fine filter element 13 and mixing it with the raw water, thereby heating the fine filter element 13 through the raw water, thereby improving the activity of the fine filter element 13, ensuring the filtering performance, and realizing the recovery and utilization of heat energy.
[0053] In some embodiments, the control valve group further has a second state of connecting the heating module 2 and the hot water intake end 611 . Based on the outlet water temperature of the heating module 2 being at a preset temperature value, the control valve group is in the second state.
[0054] When the outlet water temperature of the heating module 2 is at the preset temperature value, the heating module 2 and the hot water intake end 611 are connected through the control valve group, so that the hot water taken by the user through the hot water intake end 611 is maintained at the required preset temperature value. Therefore, the heat and water purifier of the present application will turn on the reflux mode when the hot water does not meet the water intake demand and will not turn on the hot water intake end 611 until the hot water is at the preset temperature value. This can ensure that the hot water flowing to the hot water intake end 611 is always at the preset temperature value, so that the user can directly take it, reducing the waiting time for water intake.
[0055] In some embodiments, the control valve group includes a reflux valve 32 and a water intake valve 24, wherein the reflux valve 32 is arranged in the reflux branch 31, and the water intake valve 24 is arranged between the heating module 2 and the hot water intake end 611 and the water intake valve 24 is located downstream of the reflux branch 31. In the first state, the reflux valve 32 is in an open state and the water intake valve 24 is in a closed state. In the second state, the reflux valve 32 is in a closed state and the water intake valve 24 is in an open state.
[0056] In the above setting, when the control valve group is in the first state, it means that the outlet water temperature of the heating module 2 is lower than the preset temperature value, so the hot water flowing out of the heating module 2 flows back to the water production pipeline 11 through the reflux branch 31 and mixes with the raw water. When the control valve group is in the second state, it means that the outlet water temperature of the heating module 2 is at the preset temperature value. At this time, the water intake valve 24 connects the heating module 2 and the hot water intake end 611. When the user opens the water intake end, the hot water of the preset temperature value flowing out of the heating module 2 can flow to the hot water intake end 611 for user use.
[0057] Specifically, the return valve 32 and the water intake valve 24 can be set as solenoid valves, and the on and off can be conveniently controlled by controlling the power supply of the solenoid valves, but it is not limited to this. For example, the return valve 32 and the water intake valve 24 can also be set as stop valves or other valves that can control the on and off of the pipeline.
[0058] In other embodiments, the control valve group includes a pipeline switching valve, which includes an inlet, a first outlet and a second outlet. The inlet is connected to the water outlet of the heating module 2, the first outlet is connected to the reflux branch 31, and the second outlet is connected to the hot water intake end 611. When the control valve group is in the first state, the inlet and the first outlet are connected. At this time, the hot water in the heating module 2 that has not reached the preset temperature value flows through the inlet and the first outlet through the reflux branch 31 and then flows back to the water production pipeline 11. When the control valve group is in the second state, the inlet and the second outlet are connected. At this time, the hot water with the preset temperature value in the heating module 2 flows through the inlet and the second outlet to the hot water intake end 611.
[0059] The pipeline switching valve is specifically a three-way valve.
[0060] In some embodiments, the reflux module 3 further includes a check valve 33 , which is disposed in the reflux branch 31 and is located downstream of the reflux valve 32 .
[0061] A check valve 33 is further provided in the reflux branch 31 to prevent the hot water in the reflux branch 31 from flowing back. The check valve 33 is located downstream of the reflux valve 32 to protect the reflux valve 32 and prevent the hot water from flowing back into the reflux valve 32 and causing damage to the valve.
[0062] Preferably, the check valve 33 is provided close to the return valve 32 , so as to prevent the hot water in the return branch 31 from flowing back to the return valve 32 in time.
[0063] In some embodiments, the water purification system 1 also includes a pressure-stabilizing pump 19, which is arranged on the water production pipeline 11 between the pre-filter element 12 and the fine filter element 13, and the connection point between the reflux branch 31 and the water production pipeline 11 is located upstream of the pressure-stabilizing pump 19.
[0064] The pressure-stabilizing pump 19 can increase the pressure of the raw water entering the fine filter element 13. Since the front end (upstream) of the pressure-stabilizing pump 19 is at zero pressure or negative pressure, it is more conducive to the return of hot water to the water production pipeline 11, reducing the difficulty of hot water return.
[0065] In some embodiments, the heating module 2 includes a hot water pipeline 21 and a heating unit 22 arranged in the hot water pipeline 21, one end of the hot water pipeline 21 is connected to the water outlet end of the water production pipeline 11, the other end of the hot water pipeline 21 is connected to the hot water intake end 611, one end of the return branch 31 is connected to the hot water pipeline 21, and the connection point between the return branch 31 and the hot water pipeline 21 is located between the heating unit 22 and the hot water intake end 611.
[0066] The pure water flowing out of the water outlet end of the water production pipeline 11 flows into the heating unit 22 through the hot water pipeline 21 for heating. If the hot water is heated to a preset temperature value, it flows to the hot water intake end 611 for user use. If the hot water is not heated to the preset temperature value, it flows into the reflux branch 31 through the hot water pipeline 21 for reflux.
[0067] In this embodiment, the water intake valve 24 is provided in the hot water pipeline 21 and is located between the reflux branch 31 and the hot water intake end 611 . Closing the water intake valve 24 does not affect the conduction between the reflux branch 31 and the heating unit 22 .
[0068] Preferably, the heating unit 22 is configured as a rare earth thick film heater, which can achieve instant and rapid heating of water and more uniform heating, but is not limited thereto. For example, in other embodiments, the heating unit 22 can also be an electric heating wire or a heating rod.
[0069] In some embodiments, the heating module 2 further includes a temperature detection unit 23 , which can control the control valve group to switch to the first state when detecting that the outlet water temperature of the heating unit 22 is lower than a preset temperature value.
[0070] The temperature detection unit 23 can timely detect the hot water temperature of the heating unit 22. When it is detected that the outlet water temperature of the heating unit 22 is lower than the preset temperature value, the control valve group is controlled to switch to the first state to automatically turn on the hot water reflux mode to improve control efficiency.
[0071] In some embodiments, the temperature detection unit 23 can also control the control valve group to switch to the second state when it detects that the outlet water temperature of the heating module 2 is at a preset temperature value.
[0072] When the temperature detection unit 23 detects that the water outlet temperature of the heating unit 22 is at a preset temperature value, the control valve group is controlled to switch to the second state to automatically connect the heating unit 22 and the hot water intake end 611, which can facilitate users to obtain hot water of the required temperature and improve control efficiency.
[0073] Specifically, the controller controls the switching of the control valve group, the temperature detection unit 23 feeds back the information that the outlet water temperature of the detected heating unit 22 is lower than the preset temperature value to the controller, and the controller controls the control valve group to switch to the first state based on the feedback information, the temperature detection unit 23 feeds back the information that the outlet water temperature of the detected heating unit 22 is at the preset temperature value to the controller, and the controller controls the control valve group to switch to the second state based on the feedback information.
[0074] In some embodiments, the temperature detection unit 23 can be set as a temperature sensing bag, which is set in the heating unit 22 to detect the water outlet temperature of the heating unit 22 in real time, but is not limited to this. For example, in other embodiments, the temperature detection unit 23 can also be set as a temperature sensor, or the temperature detection unit 23 can also be set in the hot water pipe 21.
[0075] In some embodiments, the air conditioner and heat integrated machine further includes a flow regulating device, which is connected to the hot water pipeline 21 and the connection is located upstream of the heating unit 22. The flow regulating device is used to regulate the flow of pure water entering the heating unit 22.
[0076] A flow regulating device is provided to regulate the flow of pure water entering the heating unit 22, thereby adjusting the heating temperature of the pure water by the heating unit 22, and realizing the use of hot water with multiple different preset temperature values to meet different water needs.
[0077] Specifically, when the preset temperature value of the hot water needs to be adjusted, the temperature detection unit 23 first feeds back the hot water temperature. When the existing hot water temperature is higher than the preset temperature value, the flow regulating device increases the flow of pure water entering the heating unit 22, so that the hot water temperature drops. When the existing hot water temperature is lower than the preset temperature value, the flow regulating device reduces the flow of pure water entering the heating unit 22, so that the hot water temperature rises, thereby realizing the use of hot water in multiple temperature ranges.
[0078] In some embodiments, the flow regulating device includes a controller and a water pump 213, the controller and the water pump 213 are signal-connected, the water pump 213 is arranged in the hot water pipe 21, and the controller can control the reduction of the pump pressure of the water pump 213 when the outlet water temperature of the heating module 2 is lower than the preset temperature value, and can control the increase of the pump pressure of the water pump 213 when the outlet water temperature of the heating module 2 is higher than the preset temperature value.
[0079] When the preset temperature value of the hot water needs to be adjusted, the temperature detection unit 23 first feeds back the hot water temperature. When the existing hot water temperature is higher than the preset temperature value, the controller controls to increase the pump pressure of the water pump 213 and thereby increase the flow rate of pure water flowing into the heating unit 22, so that the hot water temperature drops. When the existing hot water temperature is lower than the preset temperature value, the controller controls to reduce the pump pressure of the water pump 213 and thereby reduce the flow rate of pure water flowing into the heating unit 22, so that the hot water temperature rises, thereby realizing the use of hot water in multiple temperature ranges.
[0080] In some embodiments, the integrated heat and purification machine also includes a pressure relief module 4, one end of the pressure relief module 4 is connected to the water production pipeline 11 upstream of the fine filter element 13, and the other end of the pressure relief module 4 is connected to the water production pipeline 11 downstream of the fine filter element 13. The pressure relief module 4 is used to introduce part of the clean water prepared by the fine filter element 13 into the water production pipeline 11 upstream of the fine filter element 13 when the heating module 2 is running.
[0081] The setting of the pressure relief module 4 can introduce part of the clean water prepared by the fine filter element 13 into the water production pipeline 11 upstream of the fine filter element 13 when the heating module 2 is running, so that part of the clean water prepared by the fine filter element 13 can be refluxed to the front end to reduce the pressure at the rear end of the fine filter element 13, and prevent the water pressure of the water purification system 1 from being too high when taking hot water, causing damage to the pipeline.
[0082] In some embodiments, the water purification system 1 also includes a post-filter element 14, which is connected in series to the water supply pipeline 11 downstream of the fine filter element 13. The pressure relief module 4 includes a pressure relief branch 41 and a pressure relief valve 42 arranged on the pressure relief branch 41. One end of the pressure relief branch 41 is connected to the water supply pipeline 11 between the pre-filter element 12 and the fine filter element 13, and the other end of the pressure relief branch 41 is connected to the water supply pipeline 11 between the post-filter element 14 and the fine filter element 13. The pressure relief valve 42 is used to open when the heating module 2 is running to conduct the pressure relief branch 41.
[0083] When the heating module 2 is running, the pressure relief valve 42 is opened and the pressure relief branch 41 is conducted. Part of the clean water prepared by the fine filter element 13 flows into the pressure relief branch 41 under back pressure and flows into the water production pipeline 11 between the pre-filter element 12 and the fine filter element 13, mixes with the raw water, and then flows into the fine filter element 13 again for circulation filtration.
[0084] Preferably, the connection point between the pressure relief branch 41 and the water production pipeline 11 between the pre-filter element 12 and the fine filter element 13 is located upstream of the pressure-stabilizing pump 19, so as to facilitate the reflux of pure water under the action of zero pressure or negative pressure at the front end of the pressure-stabilizing pump 19.
[0085] The pressure relief module 4 further includes a pressure relief solenoid valve 43 , which is provided in the pressure relief pipeline. The pressure relief solenoid valve 43 is used to automatically control the on-off of the pressure relief pipeline.
[0086] In some embodiments, the heat and water purification machine also includes a normal temperature water intake module 5, which includes a normal temperature water pipeline 51 and a normal temperature water inlet valve 52. One end of the normal temperature water pipeline 51 is connected to the water outlet end of the water production pipeline 11, and the other end of the normal temperature water pipeline 51 is connected to the normal temperature water intake end 612. The normal temperature water inlet valve 52 is arranged on the normal temperature water pipeline 51.
[0087] The room temperature water intake module 5 facilitates users to take room temperature water. When the user needs to take room temperature water, the room temperature water inlet valve 52 is opened, and the pure water flowing out of the water outlet end of the water production pipeline 11 flows through the room temperature water pipeline 51 to the room temperature water intake end 612 for user use.
[0088] In some embodiments, the heat and air purifier further includes a faucet 6, which includes a water outlet 61. The heating module 2 and the reflux module 3 are both arranged on the faucet 6, and the water outlet 61 is provided with a hot water intake end 611 and a normal temperature water intake end 612.
[0089] The heating module 2 and the reflux module 3 are integrated in the faucet 6, so that the entire heat and water purification machine has a compact structure and a small size, and the hot water intake end 611 and the normal temperature water intake end 612 are arranged on the water outlet 61, which is convenient for users to take hot water and normal temperature water at the water outlet 61.
[0090] like Figure 2 and Figure 4 、 Figure 5As shown, it should be noted that the water inlet end of the water system pipeline 11 has a raw water inlet, the water outlet end of the water system pipeline 11 has a purified water outlet, the purified water outlet is connected in parallel with the hot water pipeline 21 and the normal temperature water pipeline 51, the fine filter element 13 has a fine filter element water inlet 131, a pure water outlet 132 and a waste water outlet 133, the pre-filter element 12 and the post-filter element 14 are integrated into a composite filter element, the pre-filter element 12 has a first water inlet 121, a first water outlet 122, and a post-filter element 14. The filter element 14 has a second water inlet 141 and a second water outlet 142. The first water inlet 121 is connected to the water production pipeline 11, the first water outlet 122 is connected to the fine filter element water inlet 131, the pure water inlet 132 is connected to the second water inlet 141, the wastewater outlet 133 is connected to the wastewater pipeline 10, and a wastewater valve 101 is provided on the wastewater pipeline 10 to control the on and off of the wastewater pipeline 10. The second water outlet 142 is connected to the water outlet end of the water production pipeline 11. The pre-filter element 12 is a PAC filter element or PP+pre-activated carbon or other filter element form, the post-filter element 14 is an activated carbon filter element or ultrafiltration+post-activated carbon or other filter element form, and the composite filter element water channel is set to a two-inlet and two-outlet form. The raw water flows in from the raw water inlet and first passes through the pre-filter element 12 for pre-treatment to filter out impurities such as mud, rust, and solid pollutants in the water. Then it flows into the fine filter element 13 through the water production pipeline 11 for filtration treatment to filter out bacteria, viruses and other fine pollutants in the water. After filtration, the clean water flows out from the pure water port 132 and is further filtered through the post-filter element 14 to absorb residual odor, discoloration, etc. in the water, improve the taste, and obtain pure water. Finally, it is discharged from the water outlet end of the water production pipeline 11 into the heating module 2 or the normal temperature water intake module 5 for user use.
[0091] In addition to the above configuration, in some embodiments, the water purification system 1 further includes the following structures:
[0092] The first water inlet valve 15 is provided on the water supply pipe 11 upstream of the pre-filter 12 and is used to control the on-off of the water supply end of the water supply pipe 11;
[0093] The first TDS probe 16, the second water inlet valve 17, and the first flow meter 18 are all installed in the water supply pipeline 11 between the pre-filter 12 and the fine filter 13. The first TDS probe 16 is used to detect the quality of the raw water, so as to facilitate timely understanding of the raw water quality. The second water inlet valve 17 is used to control the on-off of the water supply pipeline 11 in this section, thereby controlling the flow of raw water into the fine filter 13. The first flow meter 18 is used to detect the flow rate of raw water, so as to facilitate understanding of the flow rate of raw water into the fine filter 13.
[0094] The one-way valve 111, the pressure switch 112, the second TDS probe 113 and the second flow meter 114 are connected in series to the water production pipeline 11 downstream of the post-filter 14 in sequence. The one-way valve 111 can prevent the pure water at the water outlet end of the water production pipeline 11 from flowing back. The pressure switch 112 is used to monitor the pressure at the water outlet end of the water production pipeline 11 in real time to prevent damage to the pipeline caused by excessive pressure. The second TDS probe 113 is used to detect the quality of pure water to facilitate users to understand the quality of pure water and be careful of water quality exceeding the standard. The second flow meter 114 is used to detect the pure water flow rate to facilitate understanding of the total water production volume of the water purification system 1, which helps to judge the service life of the water purification system 1.
[0095] In addition to the above configuration, in some embodiments, the heating module 2 further includes the following structures:
[0096] The third water inlet valve 211 is provided in the hot water pipeline 21 and is located upstream of the water pump 213. It is used to control the hot water pipeline 21. When the third water inlet valve 211 is opened, the heating module 2 is started, and pure water flows through the hot water pipeline 21 and flows into the heating unit 22 for heating.
[0097] The zero-pressure valve 212 is disposed in the hot water pipeline 21 and is located downstream of the water pump 213 .
[0098] In addition to the above settings, in some embodiments, the heat and water purification machine also includes a pipeline machine branch 7, which is connected to the water outlet end of the water production pipeline 11. The pipeline machine branch 7 is used to connect the pipeline machine to facilitate the introduction of pure water flowing out of the water production pipeline 11 into the pipeline machine for user use.
[0099] To facilitate understanding of the integrated heat and air purifier of this embodiment, the following describes its usage process:
[0100] When the heating module 2 or the normal temperature water intake module 5 is in operation, the water purification system 1 operates to produce water, so as to purify the raw water into pure water, which then flows to the heating module 2 or the normal temperature water intake module 5 for users to take;
[0101] When the water purification system 1 is in operation, raw water flows in from the raw water inlet, first passes through the pre-filter element 12 for pre-treatment, filtering out impurities such as mud, rust, and solid pollutants in the water, and then flows through the water production pipeline 11 into the fine filter element 13 for filtration treatment, filtering out fine pollutants such as bacteria and viruses in the water. The purified water after filtration flows out from the pure water outlet 132 and is further filtered through the post-filter element 14 to absorb residual odor and color in the water, improve the taste, and obtain pure water. Finally, it is discharged from the water outlet end of the water production pipeline 11 into the heating module 2 or the normal temperature water intake module 5;
[0102] When the user needs to take hot water, the heating module 2 is operated, the third water inlet valve 211 is opened, and the normal temperature water inlet valve 52 is closed, and pure water flows from the water production pipeline 11 into the hot water pipeline 21, and flows through the third water inlet valve 211, the water pump 213, and the zero-pressure valve 212 in sequence to flow into the heating unit 22 for heating. The temperature detection unit 23 detects the hot water temperature in real time. When the hot water temperature is lower than the preset temperature value, the return valve 32 is opened and the water intake valve 24 is closed. The hot water that does not reach the preset temperature value flows into the water production pipeline 11 at the front end of the pressure-stabilizing pump 19 through the return branch 31, mixes with the raw water, and then flows into the fine filter element 13 for further filtration. After filtration, the pure water enters the heating unit 22 for further heating. When the hot water temperature reaches the preset temperature value, the return valve 32 is closed and the water intake valve 24 is opened. The hot water of the preset temperature value flows into the hot water intake end 611 through the hot water pipeline 21 for the user to take;
[0103] During the operation of the heating module 2, the pressure relief module 4 is in operation, that is, the pressure relief valve 42 and the pressure relief solenoid valve 43 are both open, and a portion of the clean water filtered out of the fine filter element 13 flows back to the water production pipeline 11 at the front end of the pressure-stabilizing pump 19 through the pressure relief branch 41, and is mixed with the raw water before flowing into the fine filter element 13 for further filtration, thereby avoiding damage to the water production pipeline 11 due to excessive pressure at the water outlet end;
[0104] When the preset temperature value needs to be adjusted, the hot water temperature is detected by the temperature detection unit 23. If the hot water temperature is higher than the preset temperature value, the controller controls the increase of the pump pressure of the water pump 213 and thereby increases the flow rate of pure water into the heating unit 22, causing the hot water temperature to drop. When the hot water temperature is lower than the preset temperature value, the controller controls the decrease of the pump pressure of the water pump 213 and thereby reduces the flow rate of pure water into the heating unit 22, causing the hot water temperature to rise, thereby realizing the use of hot water in multiple temperature ranges.
[0105] When the user needs to take normal temperature water, the normal temperature water intake module 5 is in operation, the normal temperature water inlet valve 52 is opened and the third water inlet valve 211 is closed, and the pure water flowing out of the outlet end of the water production pipeline 11 flows through the normal temperature water pipeline 51 to the normal temperature water intake end 612 for user use.
[0106] Although the embodiments of the present invention are described in conjunction with the accompanying drawings, those skilled in the art may make various modifications and variations without departing from the spirit and scope of the present invention, and such modifications and variations are all within the scope defined by this application.
Claims
1. A heat and air purifier, characterized in that: include: A water purification system (1) comprises a water production pipeline (11) and a pre-filter element (12) and a fine filter element (13) sequentially connected in series to the water production pipeline (11), wherein the water purification system (1) is used to produce pure water; A heating module (2) is connected to the water outlet of the water production pipeline (11), and the heating module (2) is used to heat the pure water flowing out of the water outlet to a preset temperature value. The water outlet of the heating module (2) is connected to the hot water intake end (611); A reflux module (3) comprises a reflux branch (31) and a control valve group, wherein one end of the reflux branch (31) is arranged between the heating module (2) and the hot water intake end (611), and the other end of the reflux branch (31) is connected to the water production pipeline (11) between the pre-filter element (12) and the fine filter element (13), and the control valve group has a first state for conducting the reflux branch (31) and the heating module (2). Based on the outlet water temperature of the heating module (2) being lower than the preset temperature value, the control valve group is in the first state to guide the hot water flowing out of the heating module (2) that does not reach the preset temperature value into the water production pipeline (11) between the pre-filter element (12) and the fine filter element (13).
2. The heat and air conditioning unit according to claim 1, characterized in that: The control valve group also has a second state for conducting the heating module (2) and the hot water intake end (611), and the control valve group is in the second state based on the outlet water temperature of the heating module (2) being at the preset temperature value.
3. The heat and air conditioning integrated machine according to claim 2, characterized in that: The heating module (2) further comprises a temperature detection unit (23), and the temperature detection unit (23) is capable of controlling the control valve group to switch to the first state when detecting that the outlet water temperature of the heating module (2) is lower than the preset temperature value.
4. The heat and air conditioning integrated machine according to claim 3, characterized in that: The temperature detection unit (23) is also capable of controlling the control valve group to switch to the second state when detecting that the outlet water temperature of the heating module (2) is at the preset temperature value.
5. The heat and air conditioning integrated machine according to any one of claims 2 to 4, characterized in that: The control valve group comprises a reflux valve (32) and a water intake valve (24), wherein the reflux valve (32) is arranged in the reflux branch (31), and the water intake valve (24) is arranged between the heating module (2) and the hot water intake end (611), and the water intake valve (24) is located downstream of the reflux branch (31). In the first state, the reflux valve (32) is in an open state and the water intake valve (24) is in a closed state. In the second state, the reflux valve (32) is in a closed state and the water intake valve (24) is in an open state.
6. The heat and air conditioning integrated machine according to claim 5, characterized in that: The reflux module (3) further comprises a check valve (33), which is arranged in the reflux branch (31) and is located downstream of the reflux valve (32).
7. The integrated heat and air conditioner according to any one of claims 1 to 4, characterized in that: The water purification system (1) further comprises a pressure-stabilizing pump (19), which is arranged on the water production pipeline (11) between the pre-filter element (12) and the fine filter element (13), and the connection point between the reflux branch (31) and the water production pipeline (11) is located upstream of the pressure-stabilizing pump (19).
8. The heat and air conditioning integrated machine according to any one of claims 1 to 4, characterized in that: The heating module (2) comprises a hot water pipeline (21) and a heating unit (22) arranged on the hot water pipeline (21); one end of the hot water pipeline (21) is connected to the water outlet end of the water production pipeline (11); the other end of the hot water pipeline (21) is connected to the hot water intake end (611); one end of the reflux branch (31) is connected to the hot water pipeline (21); and the connection point between the reflux branch (31) and the hot water pipeline (21) is located between the heating unit (22) and the hot water intake end (611).
9. The integrated heat and air conditioner according to claim 8, characterized in that: The integrated heat and water purification machine further comprises a flow regulating device, the flow regulating device being connected to the hot water pipeline (21) and the connection being located upstream of the heating unit (22), and the flow regulating device being used to regulate the flow of pure water entering the heating unit (22).
10. The integrated heat and air conditioner according to claim 9, characterized in that: The flow regulating device comprises a controller and a water pump (213), wherein the controller and the water pump (213) are signal-connected, and the water pump (213) is arranged in the hot water pipeline (21). The controller can control the reduction of the pump pressure of the water pump (213) when the outlet water temperature of the heating module (2) is lower than the preset temperature value, and can control the increase of the pump pressure of the water pump (213) when the outlet water temperature of the heating module (2) is higher than the preset temperature value.
11. The heat and air conditioning integrated machine according to any one of claims 1 to 4, characterized in that: The heat and clean machine further comprises a pressure relief module (4), one end of the pressure relief module (4) being in communication with the water production pipeline (11) upstream of the fine filter element (13), and the other end of the pressure relief module (4) being in communication with the water production pipeline (11) downstream of the fine filter element (13), and the pressure relief module (4) being used to guide part of the purified water prepared by the fine filter element (13) into the water production pipeline (11) upstream of the fine filter element (13) when the heating module (2) is in operation.
12. The integrated heat and air conditioner according to claim 11, characterized in that: The water purification system (1) further comprises a post-filter element (14), wherein the post-filter element (14) is connected in series to the water production pipeline (11) downstream of the fine filter element (13); The pressure relief module (4) comprises a pressure relief branch (41) and a pressure relief valve (42) arranged on the pressure relief branch (41); one end of the pressure relief branch (41) is in communication with the water production pipeline (11) between the pre-filter element (12) and the fine filter element (13); the other end of the pressure relief branch (41) is in communication with the water production pipeline (11) between the post-filter element (14) and the fine filter element (13); the pressure relief valve (42) is used to open when the heating module (2) is in operation to conduct the pressure relief branch (41).
13. The integrated heat and air conditioner according to any one of claims 1 to 4, characterized in that: The heat and water purification integrated machine further comprises a normal temperature water intake module (5), the normal temperature water intake module (5) comprising a normal temperature water pipeline (51) and a normal temperature water inlet valve (52), one end of the normal temperature water pipeline (51) being connected to the water outlet end of the water production pipeline (11), and the other end of the normal temperature water pipeline (51) being connected to the normal temperature water intake end (612), and the normal temperature water inlet valve (52) being arranged on the normal temperature water pipeline (51).
14. The integrated heat and air conditioner according to claim 13, characterized in that: The integrated heat and water purifier further comprises a faucet (6), the faucet (6) comprising a water outlet (61), the heating module (2) and the reflux module (3) are both arranged on the faucet (6), and the water outlet (61) is provided with the hot water intake end (611) and the normal temperature water intake end (612).