Oil fume and hot water integrated device, control method, electronic device and storage medium
By introducing a water heater cooling and cleaning pipeline into the range hood, the water source of the water heater is used to cool and clean the fan, which solves the cooling and cleaning problems of the fan system in the integrated stove, improves the cleaning efficiency and stability of the device, and extends the service life of the fan.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- NINGBO FOTILE KITCHEN WARE CO LTD
- Filing Date
- 2023-07-03
- Publication Date
- 2026-04-24
AI Technical Summary
The cooling and cleaning effects of the range hood fan system in existing integrated cooktops are not good, resulting in serious grease buildup, which affects the user experience and the lifespan of the fan.
Design an integrated oil fume and hot water device. By introducing a water heater cooling pipe and a cleaning pipe into the range hood, the water source of the water heater is used to cool and clean the fan. Combined with a control module, the device can achieve automated operation.
It improves cleaning efficiency and ease of use, extends the service life of the fan, enhances the stability and safety of the device, and achieves efficient energy utilization.
Smart Images

Figure CN116624908B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to kitchen equipment, and more particularly to an integrated device for combining a water heater and a range hood, as well as a control method, electronic equipment, and storage medium for hot and cold water systems. Background Technology
[0002] Integrated cooktops are modern kitchen appliances that combine a range hood, cooktop, disinfection cabinet, storage cabinet, and kitchen cabinets into one unit. Using an integrated cooktop can increase the space in the kitchen's wall cabinets and improve aesthetics. However, existing integrated cooktops, after absorbing fumes, first send them into the fan system inside the cabinet, and then exhaust them into the exhaust pipe. Because the fumes are not completely separated, prolonged use of the integrated cooktop will cause oil droplets to accumulate in the fan system, causing secondary pollution to the kitchen air. The accumulated grease is also very difficult to clean, affecting the user experience. Furthermore, the cooling solution for the range hood's fan system is not well addressed.
[0003] Therefore, the issues of cooling the fan system in range hoods and cleaning integrated cooktops have become the focus. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to overcome the defects of the internal fan system of the existing range hood in terms of poor cooling effect and cleaning effect, and to provide an integrated oil fume hot water device and control method, electronic equipment and storage medium.
[0005] The present invention solves the above-mentioned technical problems through the following technical solution:
[0006] An integrated fume and hot water device includes a water heater and a range hood. The water heater includes hot water piping, and the range hood includes a fan. The integrated fume and hot water device further includes:
[0007] A cooling pipeline, wherein the cooling pipeline is connected to the hot water pipeline and the fan;
[0008] The cleaning pipeline is connected to the hot water pipeline and the fan;
[0009] Adjustment device to switch the state of the pipeline;
[0010] The control module is electrically connected to the regulating device;
[0011] The control module controls the regulating device to connect to the cooling pipeline based on the temperature of the fan; the control module also controls the regulating device to connect to the cleaning pipeline based on the operating status of the water heater, range hood, and cooling pipeline.
[0012] This technical solution utilizes a water source from a water heater to clean the range hood by adding a cleaning pipeline. This achieves efficient energy use and avoids the cumbersome process of using a separate cleaning source, improving cleaning efficiency and ease of use. Simultaneously, using the water heater to cool the operating fan not only improves energy efficiency but also, due to water's high specific heat capacity, provides a much better cooling effect than air convection heat exchange, extending the fan's lifespan and ensuring the range hood's normal operation. Furthermore, the device automatically adjusts the connection between the cooling and cleaning pipelines based on relevant operating conditions via a control module, achieving automated operation, simplifying the process, and enhancing user convenience.
[0013] Preferably, the integrated oil fume and hot water device further includes a detection device, which is electrically connected to the control module.
[0014] The detection device includes a flow sensor and / or a temperature sensor, and the flow sensor and / or the temperature sensor is installed on the hot water pipe;
[0015] And / or, the temperature sensor is mounted on the fan.
[0016] In this technical solution, by setting up flow and temperature sensors, the flow rate and temperature of the hot water pipes and fan can be monitored and detected in real time. This enables real-time monitoring of the operating status of the integrated oil fume and hot water system. When the flow rate or temperature exceeds a certain threshold, the detection device can send a signal to the control module. The control module then takes corresponding measures based on this signal, such as connecting the cooling pipes or cleaning the pipes, to ensure the normal operation and safety of the system. By setting up the detection device, the performance and operating status of the integrated oil fume and hot water system can be monitored and regulated, improving the stability and reliability of the system. Simultaneously, by monitoring parameters such as flow rate and temperature in real time, the operating efficiency and energy saving of the system can also be evaluated and adjusted, improving the overall performance and economic benefits of the system.
[0017] Preferably, the regulating device includes a first regulating valve disposed in the inlet pipe of the hot water pipe and near the cooling pipe and the combustion chamber of the water heater, and a second regulating valve disposed at the connection between the cleaning pipe and the cooling pipe.
[0018] The control module controls the first regulating valve to close the hot water pipe entering the combustion chamber based on the temperature of the fan, or when the control module detects that the water heater is in operation based on the temperature of the fan. It also controls the second regulating valve to open the cooling pipe and close the cleaning pipe.
[0019] In this technical solution, the control module controls the first regulating valve to close the hot water pipe entering the combustion chamber based on the fan temperature, thereby controlling the flow rate into the cooling pipe. Simultaneously, the control module also controls the second regulating valve to open the cooling pipe and close the cleaning pipe, allowing fluid to pass through the cooling pipe and further reduce the fan temperature. The control module can control the flow direction of fluid into the combustion chamber and the cooling pipe based on changes in fan temperature, thus regulating the range hood temperature. Through the operation of this regulating device and control module, the range hood temperature can be effectively reduced, improving the safety and stability of the device. Furthermore, because the control module can control the operating status of the regulating device based on the operating conditions of the water heater, range hood, and cooling pipe, the operation of the integrated oil fume and hot water system is more intelligent and automated.
[0020] Preferably, the hot water pipeline includes an outlet pipeline and an outlet branch pipeline, and the regulating device includes a third regulating valve disposed at the connection between the outlet pipeline and the outlet branch pipeline.
[0021] When the control module connects the cooling pipeline according to the temperature of the fan, it controls the third regulating valve to open the water outlet branch and close the water outlet pipeline.
[0022] In this technical solution, since only the cooling mode is activated and the hot water mode is not, the user is not using the water heater's fluid; that is, the water outlet pipe connecting to the user's end is closed. However, the fluid cooling the fan must have an outlet. Therefore, an additional water outlet path is needed to ensure the cooling water source is discharged. The control module controls the third regulating valve to control the flow direction of the cooling water. Thus, when the control module detects that the fan temperature needs to be lowered, it connects the cooling pipe and, by controlling the third regulating valve, opens the outlet branch and closes the outlet pipe, allowing the fluid to be discharged through the outlet branch.
[0023] Preferably, the integrated oil fume and hot water device further includes a detection device for detecting the temperature and flow rate of the hot water pipe. The detection device is electrically connected to the control module. When the regulating device is connected to the cooling pipe, the control module performs negative feedback regulation based on the temperature of the outlet pipe of the hot water pipe detected by the detection device to ensure that the flow rate of the cooling pipe is less than the flow rate entering the combustion chamber of the water heater.
[0024] In this technical solution, when cooling the range hood, it is necessary to ensure that the flow rate entering the cooling pipe does not affect the temperature output at the user end. Specifically, the flow rate in the cooling pipe should be as small as possible less than the flow rate entering the combustion chamber of the water heater. In reality, the flow rate required to cool the range hood is very small, and this portion of the fluid heated by the fan will flow back to the water outlet pipe of the water heater through the cooling pipe. Therefore, the impact on the temperature of the water outlet pipe is not significant. However, considering the user experience, temperature fluctuations should be minimized as much as possible. Therefore, negative feedback regulation of the water outlet pipe temperature is required. The parameters to be considered in this negative feedback regulation are the inlet water temperature and total flow rate of the hot water inlet pipe, the outlet water temperature of the inlet pipe, the flow rate of the hot water inlet pipe into the combustion chamber of the water heater, and the temperature measured at the fan. Using these parameters, the outlet water temperature of the water outlet pipe can be calculated, allowing for initial adjustment of the operating power. Then, based on the actual measured outlet water temperature, negative feedback regulation is performed to achieve stable outlet water temperature.
[0025] Preferably, the fan is equipped with a temperature detection device, which is electrically connected to the control module. When the range hood is running, the control module controls the opening and closing of the cooling pipe based on the preset temperature and the actual temperature of the fan.
[0026] When the detection device detects that the actual temperature of the fan is greater than the preset temperature, the control module controls the regulating device to open the cooling pipeline;
[0027] When the detection device detects that the actual temperature of the fan is less than the preset temperature, the control module controls the regulating device to close the cooling pipeline.
[0028] In this technical solution, the fan is equipped with a temperature detection device, and the control module controls the opening and closing of the cooling pipeline according to the actual temperature of the fan, so as to maintain the temperature of the fan within the preset, normal use and safe range.
[0029] Preferably, the regulating device includes a second regulating valve disposed at the connection between the cleaning pipeline and the cooling pipeline.
[0030] The control module controls the second regulating valve to open the cleaning pipeline and close the cooling pipeline based on the operating status of the water heater, range hood, and cooling pipeline.
[0031] In this technical solution, the cleaning function is an auxiliary function, so it has the lowest priority. Therefore, the control module needs to control the opening and closing of the cleaning function based on the operating status of the water heater, range hood, and cooling pipes.
[0032] Preferably, when the control module detects that at least one of the water heater, range hood, and cooling pipe is in operation, the control module controls the regulating device to close the cleaning pipe.
[0033] In this technical solution, the cleaning function is an auxiliary function and therefore has the lowest priority. Therefore, the cleaning function will not be activated when the control module detects that at least one of the water heater, range hood, or cooling pipe is in operation. The cleaning pipe will only be activated to perform its cleaning function after all these functions have completed their operation.
[0034] Preferably, the integrated oil fume and hot water device further includes a detection device for real-time monitoring of the operating status of the water heater, range hood, and cooling pipeline.
[0035] When the detection device detects that any of the water heater, range hood, or cooling pipe is in operation, the control module controls the regulating device to close the cleaning pipe.
[0036] In this technical solution, the cleaning function is an auxiliary function and therefore has the lowest priority. Therefore, when the control module detects that at least one of the water heater, range hood, or cooling pipe is turned on and in operation, it will shut down the cleaning function to prioritize the operation of these other functions. Only after all these functions have completed their operation will the cleaning pipe be activated to perform its cleaning function.
[0037] A control method for an integrated fume and hot water device, the integrated fume and hot water device comprising a water heater and a range hood, the water heater comprising a hot water pipe, the range hood comprising a fan, and the integrated fume and hot water device further comprising:
[0038] A cooling pipeline, wherein the cooling pipeline is connected to the hot water pipeline and the fan;
[0039] The cleaning pipeline is connected to the hot water pipeline and the fan;
[0040] Adjustment device;
[0041] Detection device;
[0042] The control method for integrated oil fume and hot water devices includes the following steps:
[0043] When the detection device detects that the actual temperature of the fan is higher than the preset temperature, the control module controls the regulating device to connect the cooling pipeline;
[0044] When the detection device detects that the actual temperature of the fan is lower than the preset temperature, the control module controls the regulating device to close the cooling pipeline;
[0045] When the control module detects that any of the water heater, range hood, or cooling pipe is not in operation, the control module controls the regulating device to connect the cleaning pipe.
[0046] In this technical solution, the aforementioned control method allows the control module to control the opening and closing of the cooling pipes based on the actual temperature of the fan, thus maintaining the fan temperature within a preset, normal operating, and safe range. Meanwhile, since the cleaning function is an auxiliary function, it has the lowest priority. Therefore, when the control module detects that at least one of the water heater, range hood, or cooling pipes is running, the cleaning function will not be activated. Only after all these functions have completed their operation will the cleaning pipes be activated to perform the cleaning function.
[0047] Preferably, the regulating device includes a first regulating valve disposed in the inlet pipe of the hot water pipe and near the cooling pipe and the combustion chamber of the water heater, and a second regulating valve disposed at the connection between the cleaning pipe and the cooling pipe. The control method of the integrated oil fume hot water device further includes the following steps:
[0048] When the detection device detects that the actual temperature of the fan is higher than the preset temperature, or when the detection device detects that the actual temperature of the fan is higher than the preset temperature and the control module detects that the water heater is in operation, the first regulating valve is controlled to close the hot water pipe entering the combustion chamber, and the second regulating valve is controlled to open the cooling pipe and close the cleaning pipe.
[0049] In this technical solution, the aforementioned control method is employed. The regulating device adjusts the fluid flow direction by controlling the first and second regulating valves, thereby cooling the range hood and ensuring the normal operation of the water heater. This control method effectively reduces the temperature of the range hood, improving the safety and stability of the device. Furthermore, since the control module can control the operating status of the regulating device based on the operating conditions of the water heater, range hood, and cooling pipes, the operation of the integrated range hood and water heater is made more intelligent and automated.
[0050] Preferably, the hot water pipeline includes an outlet pipeline and an outlet branch pipeline, the regulating device includes a third regulating valve disposed at the connection between the outlet pipeline and the outlet branch pipeline, and the control method of the integrated oil fume hot water device further includes the following steps:
[0051] When the detection device detects that the actual temperature of the fan is higher than the preset temperature, it controls the third regulating valve to open the water outlet branch and close the water outlet pipe.
[0052] In this technical solution, since only the cooling mode is activated and the hot water mode is not, the user is not using the water heater's fluid; that is, the water outlet pipe connecting to the user's end is closed. However, the fluid cooling the fan must have an outlet. Therefore, the control module needs to control the third regulating valve to control the flow direction of the cooling water source. Thus, when the control module detects that the fan temperature needs to be lowered, it connects the cooling pipe and, by controlling the third regulating valve, opens the outlet branch and closes the outlet pipe, allowing the fluid to be discharged through the outlet branch.
[0053] Preferably, the integrated oil fume and hot water device further includes a detection device for detecting the temperature and flow rate of the hot water pipeline. The detection device is electrically connected to the control module. When the regulating device is connected to the cooling pipeline, the control method of the integrated oil fume and hot water device further includes the following steps:
[0054] When the detection device detects that the actual temperature of the outlet pipe of the hot water pipe is higher than the preset temperature and detects that the flow rate of the cooling pipe is greater than the flow rate of the hot water pipe entering the combustion chamber of the water heater, the control module controls the regulating device to partially close the cooling pipe.
[0055] In this technical solution, when cooling the range hood, it is necessary to ensure that the flow rate entering the cooling pipe does not affect the temperature output at the user end. Specifically, the flow rate in the cooling pipe should be as small as possible less than the flow rate entering the combustion chamber of the water heater. In reality, the flow rate required to cool the range hood is very small, and this portion of the fluid heated by the fan will flow back to the water outlet pipe of the water heater through the cooling pipe. Therefore, the impact on the temperature of the water outlet pipe is not significant. However, considering the user experience, temperature fluctuations should be minimized as much as possible. Therefore, negative feedback regulation of the water outlet pipe temperature is required. The parameters to be considered in this negative feedback regulation are the inlet water temperature and total flow rate of the hot water inlet pipe, the outlet water temperature of the inlet pipe, the flow rate of the hot water inlet pipe into the combustion chamber of the water heater, and the temperature measured at the fan. Using these parameters, the outlet water temperature of the water outlet pipe can be calculated, allowing for initial adjustment of the operating power. Then, based on the actual measured outlet water temperature, negative feedback regulation is performed to achieve stable outlet water temperature.
[0056] Preferably, the integrated oil fume and hot water device further includes a detection device for real-time monitoring of the operating status of the water heater, range hood, and cooling pipeline, and the control method of the integrated oil fume and hot water device further includes the following steps:
[0057] When the detection device detects that any of the water heater, range hood, or cooling pipe is in operation, the control module controls the regulating device to close the cleaning pipe.
[0058] In this technical solution, the cleaning function is an auxiliary function and therefore has the lowest priority. Therefore, the cleaning function will not be activated when the control module detects that at least one of the water heater, range hood, or cooling pipe is in operation. The cleaning pipe will only be activated to perform its cleaning function after all these functions have completed their operation.
[0059] An electronic device includes a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the computer program to implement the control method of the integrated oil fume and hot water device as described above.
[0060] A storage medium, specifically a computer-readable storage medium, having a computer program stored thereon, wherein the computer program, when executed by a processor, implements the control method of the integrated oil fume and hot water device as described in any of the preceding claims.
[0061] The positive and progressive effects of this invention are as follows:
[0062] 1. This integrated range hood cleaning and hot water system, by adding a cleaning pipeline, utilizes the water source from the water heater to clean the range hood. This achieves efficient energy use and avoids the cumbersome process of using a separate cleaning source, improving cleaning efficiency and ease of use. Simultaneously, using the water source from the water heater to cool the operating fan not only improves energy efficiency but also, due to water's high specific heat capacity, provides a much better cooling effect than air convection heat exchange, extending the fan's lifespan and ensuring the normal operation of the range hood. Furthermore, the system's control module automatically adjusts the connection between the cooling and cleaning pipelines based on relevant operating conditions, achieving automated operation, simplifying the process, and improving user convenience.
[0063] 2. The control method of this integrated oil fume and hot water device allows the control module to control the opening and closing of the cooling pipes based on the actual temperature of the fan, thus maintaining the fan temperature within a preset, normal operating, and safe range. Meanwhile, since the cleaning function is an auxiliary function, it has the lowest priority. Therefore, when the control module detects that at least one of the water heater, range hood, and cooling pipes is running, the cleaning function will not be activated. Only after all these functions have completed their operation will the cleaning pipes be activated to perform the cleaning function. Attached Figure Description
[0064] Figure 1 This is a simplified structural diagram of the integrated oil fume and hot water device in Example 1.
[0065] Figure 2 This is a simplified structural diagram of the fluid flow direction in the hot water mode of Example 1.
[0066] Figure 3This is a logic block diagram of the hot water mode in Example 1.
[0067] Figure 4 This is a simplified structural diagram of the fluid flow direction in the cooling mode of Example 1.
[0068] Figure 5 This is a logic block diagram of the cooling mode in Example 1.
[0069] Figure 6 This is a simplified structural diagram showing the fluid flow direction in the hot water mode and cooling mode of Example 1.
[0070] Figure 7 This is a logic block diagram of the hot water mode and cooling mode in Example 1.
[0071] Figure 8 This is a simplified structural diagram of the fluid flow direction in the cleaning mode of Example 1.
[0072] Figure 9 This is a logic block diagram of the cleaning mode in Example 1.
[0073] Figure 10 This is a schematic diagram of the electronic device in Example 3.
[0074] Explanation of reference numerals in the attached figures:
[0075] 100 integrated oil fume and hot water unit
[0076] Water heater 11
[0077] Hot water pipe 111
[0078] Water inlet pipe 1111
[0079] Water outlet pipe 1112
[0080] Water outlet branch 1113
[0081] Combustion chamber 112
[0082] Range hood 12
[0083] Fan 121
[0084] Cleaning pipes 13
[0085] Cleaning fluid box 131
[0086] Cooling pipe 14
[0087] Adjustment device 15
[0088] First regulating valve 151
[0089] Second regulating valve 152
[0090] Third regulating valve 153
[0091] Detection device 16
[0092] Flow sensor 161
[0093] Temperature sensor 162 Detailed Implementation
[0094] The present invention will be further illustrated by way of embodiments below, but the present invention is not limited to the scope of the embodiments.
[0095]
Example 1
[0096] like Figures 1-9 As shown, an integrated oil fume and hot water device 100 is disclosed, which includes a water heater 11 and a range hood 12. The water heater 11 includes a hot water pipe 111, and the range hood 12 includes a fan 121.
[0097] The integrated oil fume and hot water device 100 also includes a cooling pipe 14 connecting the hot water pipe 111 and the fan 121, a cleaning pipe 13 connecting the hot water pipe 111 and the fan 121, an adjustment device 15 for switching the status of the pipe, and a control module electrically connected to the adjustment device 15.
[0098] Furthermore, the control module controls the regulating device 15 to connect to the cooling pipe 14 based on the temperature of the fan 121; the control module controls the regulating device 15 to connect to the cleaning pipe 13 based on the operating status of the water heater 11, the range hood 12, and the cooling pipe 14.
[0099] In this embodiment, by adding a cleaning pipe 13, the range hood 12 can be cleaned using water from the water heater 11. This achieves efficient energy utilization and avoids the cumbersome process of using an additional cleaning source, thus improving cleaning efficiency and ease of use. Simultaneously, using water from the water heater 11 to cool the operating fan 121 not only improves energy efficiency but also, due to water's high specific heat capacity, provides a much better cooling effect than air convection heat exchange, extending the lifespan of the fan 121 and ensuring the normal operation of the range hood 12. Furthermore, the device automatically adjusts the connection between the cooling pipe 14 and the cleaning pipe 13 based on relevant operating conditions through a control module, achieving automated operation, simplifying the operation process, and improving ease of use.
[0100] Preferably, the integrated oil fume and hot water device 100 further includes a detection device 16, which is electrically connected to the control module. The detection device 16 includes a flow sensor 161 and a temperature sensor 162, which are installed on the hot water pipe 111. The temperature sensor 162 is also installed on the fan 121.
[0101] Specifically, in this embodiment, a temperature sensor 162 and a flow sensor 161 are provided on the inlet pipe 1111 of the hot water pipe 111. A flow sensor 161 is also provided on the inlet pipe 1111 near the combustion chamber 112. A temperature sensor 162 is provided at the fan 121 to detect the temperature of the fan 121. A temperature sensor 162 is provided on the outlet pipe 1112 of the hot water pipe 111.
[0102] By setting up flow sensor 161 and temperature sensor 162, the flow rate and temperature of hot water pipe 111 and fan 121 can be monitored and detected in real time. This enables real-time monitoring of the operating status of the integrated oil fume and hot water device 100. When the flow rate or temperature exceeds a certain threshold, the detection device 16 can send a signal to the control module. The control module takes corresponding measures based on the signal, such as connecting the cooling pipe 14 or cleaning the pipe 13, to ensure the normal operation and safety of the device. The detection device 16 allows for monitoring and regulation of the performance and operating status of the integrated oil fume and hot water device 100, improving the stability and reliability of the device. Simultaneously, by monitoring parameters such as flow rate and temperature in real time, the device's working efficiency and energy saving can be evaluated and adjusted, improving the overall performance and economic benefits of the device.
[0103] In this embodiment, the integrated oil fume and hot water device 100 includes a hot water only mode, an oil fume only mode, a cleaning mode, and a cooling mode. These modes can operate simultaneously with each other. For example, the cooling mode can be activated at the same time as the hot water mode; or the oil fume extraction mode can be activated at the same time as the hot water mode; or the oil fume extraction mode and the cooling mode can be activated at the same time as the hot water mode.
[0104] Therefore, in this embodiment, the hot water pipe 111 includes an inlet pipe 1111 and an outlet pipe 1112, and the water heater 11 also includes a combustion chamber 112. Therefore, when the integrated oil fume and hot water device 100 is only in hot water mode, such as... Figure 2 As shown, the direction of fluid flow can be found in the appendix. Figure 2 As shown. After the fluid enters the water heater 11, it flows through the inlet pipe 1111 in sequence, enters the combustion chamber 112, and is finally discharged from the outlet pipe 1112.
[0105] When the flow sensor 161 located on the hot water pipe 111 near the combustion chamber 112 detects that the flow rate Q is greater than or equal to the starting flow rate Q0, the water heater 11 starts to work and can output hot water at the corresponding temperature according to the user's needs (set temperature).
[0106] Preferably, the water heater 11 further includes an inlet pipe 1111 and an inlet branch (not shown in the figure), the inlet branch and the inlet pipe 1111 are connected, and the outlet of the inlet branch is located near the combustion chamber 112 of the water heater 11. The inlet branch extends to the exhaust port of the range hood 12, and a heat-conducting plate (not shown in the figure) is provided near the exhaust port of the inlet branch to absorb the heat of the flue gas at the exhaust port for the fluid in the inlet branch. The regulating device 15 further includes a fourth regulating valve (not shown in the figure), which is located at the inlet of the inlet pipe 1111 and the inlet branch.
[0107] When the oil fume hot water integrated device 100 starts the hot water mode, the control module simultaneously starts the waste heat recovery mode, and the control module drives the fourth regulating valve to open the water inlet branch.
[0108] In this embodiment, when the oil fume hot water integrated device 100 is only in the oil fume extraction mode, no fluid enters the hot water pipe 111.
[0109] Therefore, when the integrated oil fume and hot water device 100 is in both hot water and oil fume extraction modes, the fluid flow direction can be referenced to the fluid flow direction in the hot water only mode, as detailed in the attached diagram. Figure 2 As shown.
[0110] In this embodiment, as Figures 4-7 As shown, when the cooling mode is activated for the integrated oil fume and hot water device 100, at least the following implementation methods are included:
[0111] The regulating device 15 includes a first regulating valve 151 located in the inlet pipe 1111 of the hot water pipe 111 and near the cooling pipe 14 and the combustion chamber 112 of the water heater 11, and a second regulating valve 152 located at the connection between the cleaning pipe 13 and the cooling pipe 14.
[0112] like Figures 4-5 As shown, when only the cooling mode is activated, the control module controls the first regulating valve 151 to close the hot water pipe 111 entering the combustion chamber 112 according to the temperature of the fan 121, and controls the second regulating valve 152 to open the cooling pipe 14 and close the cleaning pipe 13.
[0113] In this embodiment, the control module controls the first regulating valve to close the hot water pipe 111 entering the combustion chamber 112 based on the temperature of the fan 121, thereby controlling the flow rate into the cooling pipe 14. Simultaneously, the control module also controls the second regulating valve to open the cooling pipe 14 and close the cleaning pipe 13, allowing fluid to pass through the cooling pipe 14 to further reduce the temperature of the fan 121. The control module can control the flow direction of fluid into the combustion chamber 112 and the cooling pipe 14 based on changes in the fan 121 temperature, thus regulating the temperature of the range hood 12. Through the operation of this regulating device 15 and the control module, the temperature of the range hood 12 can be effectively reduced, improving the safety and stability of the device. Furthermore, since the control module can control the operating state of the regulating device 15 based on the operating conditions of the water heater 11, the range hood 12, and the cooling pipe 14, the operation of the integrated oil fume and hot water device 100 becomes more intelligent and automated.
[0114] Preferably, such as Figure 1 As shown, the hot water pipe 111 includes an outlet pipe 1112 and an outlet branch pipe 1113, and the regulating device 15 includes a third regulating valve 153 disposed at the connection between the outlet pipe 1112 and the outlet branch pipe 1113.
[0115] In this embodiment, since only the cooling mode is activated and the hot water mode is not, the user is not using the fluid from the water heater 11. Therefore, the water outlet pipe 1112 connecting to the user is closed. However, the fluid cooling the fan 121 must have an outlet. Therefore, an additional outlet path is needed to ensure the cooling water source is discharged. The control module controls the third regulating valve 153 to control the direction of the cooling water flow. Thus, when the control module detects that the fan 121 needs cooling, it connects the cooling pipe 14 and controls the third regulating valve 153 to open the outlet branch 1113 and close the outlet pipe 1112, allowing the fluid to be discharged through the outlet branch 1113.
[0116] Preferably, such as Figures 6-7 As shown, when the cooling mode and hot water mode are turned on, the control module controls the first regulating valve 151 to open the hot water pipe 111 entering the combustion chamber 112 and the cooling pipe 14 when the temperature of the fan 121 is detected and the water heater 11 is in operation. The control module also controls the second regulating valve 152 to open the cooling pipe 14 and close the cleaning pipe 13.
[0117] In this embodiment, the regulating device 15 regulates the flow direction of fluid by controlling the first regulating valve 151 and the second regulating valve 152, thereby cooling the range hood 12 and ensuring the normal operation of the water heater 11. When the control module detects that the water heater 11 is in operation, it opens the first regulating valve 151 based on the temperature of the fan 121, allowing hot water to enter the combustion chamber 112. Simultaneously, it opens the cooling pipe 14, directing some fluid into the cooling pipe 14 for cooling. Through these control measures, the water heater 11 can be kept in a suitable operating state while the range hood 12 is cooled, improving the efficiency and service life of the integrated range hood and hot water device 100.
[0118] When the cooling mode, hot water mode, and fume extraction function are activated simultaneously, the specific water flow can be referred to the activation of the cooling mode and hot water mode mentioned above, and will not be repeated here.
[0119] Preferably, when the regulating device 15 is connected to the cooling pipe 14, the control module performs negative feedback regulation based on the temperature of the outlet pipe 1112 of the hot water pipe 111 detected by the detection device 16, so as to ensure that the flow rate of the cooling pipe 14 is less than the flow rate entering the combustion chamber 112 of the water heater 11.
[0120] This means that when cooling the range hood 12, it is necessary to ensure that the flow rate entering the cooling pipe 14 does not affect the temperature output at the user end. Specifically, the flow rate in the cooling pipe 14 should be as small as possible less than the flow rate entering the combustion chamber 112 of the water heater 11. In reality, the flow rate required to cool the range hood 12 is very small, and the fluid heated by the fan 121 will flow back to the water outlet pipe 1112 of the water heater 11 through the cooling pipe 14. Therefore, the impact on the temperature of the water outlet pipe 1112 is not significant. However, considering the user experience, temperature fluctuations should be minimized as much as possible. Therefore, negative feedback regulation of the temperature of the water outlet pipe 1112 is required. The parameters to be considered in this negative feedback regulation include the inlet water temperature Ta and total flow rate Q of the inlet water pipe 111 in the hot water pipe 111, the measured outlet water temperature Tb of the outlet pipe 1112, and the inlet water pipe... The flow rate Q1 entering the combustion chamber 112 of the water heater 11 from the outlet pipe 1111 is Q2 = Q - Q1, and the flow rate entering the cooling pipe 14 is Q2 = Q - Q1. Using the temperature T measured at the fan 121, a functional relationship Tb = F(Q, Q1, T, Ta) can be obtained regarding the theoretical outlet temperature of the outlet pipe 1112. This allows for the calculation of the theoretical outlet temperature of the outlet pipe 1112, enabling initial adjustments to the operating power. Then, negative feedback adjustment is performed based on the measured outlet temperature of the outlet pipe 1112 to achieve stable outlet temperature.
[0121] Preferably, when the range hood 12 is in operation, the control module controls the opening and closing of the cooling pipe 14 based on the actual temperature measured by the temperature sensor 162 installed at the fan 121 and the preset temperature of the fan 121.
[0122] When the temperature sensor 162 detects that the actual temperature of the fan 121 is greater than the preset temperature T1, the control module controls the regulating device 15 to open the cooling pipe 14.
[0123] When the temperature sensor 162 detects that the actual temperature of the fan 121 is less than the preset temperature T2, the control module controls the regulating device 15 to close the cooling pipe 14.
[0124] In this embodiment, T1 > T2 and T1 - T2 ≥ C (C is a constant designed to ensure the difference between the start and stop thresholds). Since T1 is the temperature threshold for starting the cooling function, if T2 ≥ T1 or T2 < T1 but the difference is too small, the temperature may reach the stop threshold immediately after starting the cooling function, then quickly rise to T1, restart, and then drop to T2 again before shutting down again. Such repeated start-stop cycles should be considered and avoided in the design. Therefore, the system presets T1 > T2, and the difference C should leave a safe range to avoid repeated start-stop cycles. This setting maintains the temperature of the fan 121 within the preset, normal operating, and safe range.
[0125] Furthermore, the motor cooling function cannot be selected by the user; this is a protective mechanism. In particular, in this embodiment, the range hood 12 and the water heater 11 share a single fan 121. This means that when both the range hood 12 and the water heater 11 are operating under heavy load, the maximum output power of the corresponding fan 121 system is greater than that of a single fan 121 in the water heater 11 or the range hood 12. The temperature rise will also be higher, and excessively high temperatures will cause the fan 121 system to fail. Therefore, it is necessary to cool the fan 121 when the temperature reaches the safety threshold T1 to improve the reliability and service life of the motor.
[0126] In this embodiment, as Figures 8-9 As shown, when the cleaning mode is activated for the integrated oil fume and hot water device 100, at least the following implementation methods are included:
[0127] The integrated oil fume and hot water device 100 also includes a liquid collection pipe. The inlet of the liquid collection pipe is connected to a cleaning liquid box 131 that contains cleaning liquid. The outlets of both the cleaning pipe 13 and the liquid collection pipe are located near the fan 121 and merged into a spray end, with the spray end's outlet facing the fan 121. Simultaneously, the inlet of the cleaning pipe 13 is connected to a water outlet pipe 1112.
[0128] Therefore, when the cleaning function is turned on, the hot water in the water outlet pipe 1112 and the cleaning liquid in the cleaning liquid box 131 in the liquid collection pipe are sprayed out to the inside of the impeller of the fan 121 system. The mixture of hot water and cleaning liquid is thrown out by centrifugal force as the fan 121 rotates and splashes into the liquid collection tray below the fan 121 system so that it flows from the oil tank to the drain pipe and is discharged from the range hood 12.
[0129] In this embodiment, the cleaning function can be activated in two ways: users can set it to automatic mode in advance, or they can quickly select manual mode on the operation panel at any time.
[0130] The manual mode allows users to manually activate the self-cleaning function, which then performs a single cleaning cycle.
[0131] Automatic mode: After selecting the automatic self-cleaning mode, the user needs to set the cleaning interval, such as H hours. The interval here refers to the cumulative working time of the range hood 12 since its first use or the last cleaning. After H hours, the program will enter the automatic self-cleaning mode.
[0132] For details, please refer to Figure 9 The logic block diagram of the cleaning mode shown does not include the selection of the start method. Instead, it is determined from the device's control module whether the self-cleaning module has been triggered.
[0133] After entering self-cleaning mode, the program will first determine the current status of the device. If other functions (a, b, c) are not enabled, self-cleaning will begin. If other functions are enabled, self-cleaning will begin after the other functions are enabled. If other modes are enabled during the cleaning process, self-cleaning will be paused, other modes will be executed first, and the cleaning mode will continue to be executed after the other functions are enabled, until the cleaning time Si of this round is greater than or equal to the cleaning time S set for a single round.
[0134] The specific execution of the cleaning mode is as follows:
[0135] Preferably, the regulating device 15 includes a second regulating valve 152 disposed at the connection between the cleaning pipeline 13 and the cooling pipeline 14.
[0136] Based on the operating status of the water heater 11, the range hood 12, and the cooling pipe 14, the control module controls the second regulating valve 152 to open the cleaning pipe 13 and close the cooling pipe 14.
[0137] In this embodiment, since the cleaning function is an auxiliary function, it has the lowest priority. Therefore, the control module needs to control the opening and closing of the cleaning function based on the operating status of the water heater 11, the range hood 12, and the cooling pipe 14.
[0138] Specifically, when the control module detects that at least one of the water heater 11, range hood 12, and cooling pipe 14 is in operation, the control module controls the regulating device 15 to close the cleaning pipe 13.
[0139] In this embodiment, the cleaning function will not be activated when the control module detects that at least one of the water heater 11, the range hood 12 and the cooling pipe 14 is in operation. The cleaning pipe 13 will only be activated to achieve its cleaning function after all these functions have been completed.
[0140] Furthermore, the integrated oil fume and hot water device 100 also includes a detection device 16 for real-time monitoring of the operating status of the water heater 11, the range hood 12, and the cooling pipe 14.
[0141] When the detection device 16 detects that any of the water heater 11, range hood 12, and cooling pipe 14 are in operation, the control module controls the regulating device 15 to close the cleaning pipe 13.
[0142] In this embodiment, when the control module detects that at least one of the water heater 11, range hood 12, and cooling pipe 14 is turned on and in operation, it will turn off the cleaning function to prioritize the operation of these functions. Only after all these functions have been completed will the cleaning pipe 13 be turned on to perform its cleaning function.
[0143]
Example 2
[0144] Example 2 discloses a control method for an integrated oil fume and hot water device 100. The integrated oil fume and hot water device 100 includes a water heater 11 and a range hood 12. The water heater 11 includes a hot water pipe 111, and the range hood 12 includes a fan 121.
[0145] The integrated oil fume and hot water device 100 also includes a cooling pipe 14 connecting the hot water pipe 111 and the fan 121, a cleaning pipe 13 connecting the hot water pipe 111 and the fan 121, an adjustment device 15 for switching the status of the pipe, a control module electrically connected to the adjustment device 15, and a detection device 16.
[0146] The control method for the integrated oil fume and hot water device 100 includes the following steps:
[0147] When the detection device 16 detects that the actual temperature of the fan 121 is higher than the preset temperature, the control module controls the regulating device 15 to connect the cooling pipe 14.
[0148] When the detection device 16 detects that the actual temperature of the fan 121 is lower than the preset temperature, the control module controls the regulating device 15 to close the cooling pipe 14.
[0149] When the control module detects that any of the water heater 11, range hood 12, or cooling pipe 14 is not in operation, the control module controls the regulating device 15 to connect the cleaning pipe 13.
[0150] In this embodiment, the above-described control method is used so that the control module controls the opening and closing of the cooling pipe 14 according to the actual temperature of the fan 121, thus maintaining the temperature of the fan 121 within a preset, normal operating, and safe range. Meanwhile, since the cleaning function is an auxiliary function, it has the lowest priority. Therefore, when the control module detects that at least one of the water heater 11, range hood 12, and cooling pipe 14 is in operation, the cleaning function will not be activated. Only after all these functions have completed their operation will the cleaning pipe 13 be activated to perform its cleaning function.
[0151] In this embodiment, the control method for the cooling mode includes at least the following implementation methods:
[0152] The regulating device 15 includes a first regulating valve 151 installed in the inlet pipe 1111 of the hot water pipe 111 and near the cooling pipe 14 and the combustion chamber 112 of the water heater 11, and a second regulating valve 152 installed at the connection between the cleaning pipe 13 and the cooling pipe 14. The control method of the oil fume hot water integrated device 100 further includes the following steps:
[0153] When the detection device 16 detects that the actual temperature of the fan 121 is higher than the preset temperature, or when the detection device 16 detects that the actual temperature of the fan 121 is higher than the preset temperature and the control module detects that the water heater 11 is in operation, it controls the first regulating valve 151 to close the hot water pipe 111 entering the combustion chamber 112, and controls the second regulating valve 152 to open the cooling pipe 14 and close the cleaning pipe 13.
[0154] In this embodiment, using the above-described control method, the regulating device 15 adjusts the flow direction of the fluid by controlling the first regulating valve 151 and the second regulating valve 152, thereby cooling the range hood 12 and ensuring the normal operation of the water heater 11. This control method effectively reduces the temperature of the range hood 12, improving the safety and stability of the device. Simultaneously, since the control module can control the operating status of the regulating device 15 based on the operating conditions of the water heater 11, the range hood 12, and the cooling pipe 14, the operation of the integrated range hood and water heater 100 becomes more intelligent and automated.
[0155] Preferably, the hot water pipe 111 includes an outlet pipe 1112 and an outlet branch pipe 1113, and the regulating device 15 includes a third regulating valve 153 disposed at the connection between the outlet pipe 1112 and the outlet branch pipe 1113. The control method of the integrated oil fume hot water device 100 further includes the following steps:
[0156] When the detection device 16 detects that the actual temperature of the fan 121 is higher than the preset temperature, it controls the third regulating valve 153 to open the water outlet branch 1113 and close the water outlet pipe 1112.
[0157] In this embodiment, since only the cooling mode is activated and the hot water mode is not activated, the user is not using the fluid from the water heater 11. That is, the water outlet pipe 1112 connecting to the user's end is closed. However, the fluid cooling the fan 121 must have an outlet. Therefore, the control module needs to control the third regulating valve 153 to control the flow direction of the cooling water. Thus, when the control module detects that the fan 121 needs cooling, it connects the cooling pipe 14 and, by controlling the third regulating valve 153, opens the water outlet branch 1113 and closes the water outlet pipe 1112, allowing the fluid to be discharged through the water outlet branch 1113.
[0158] Furthermore, the integrated oil fume and hot water device 100 also includes a detection device 16 for detecting the temperature and flow rate of the hot water pipe 111. The detection device 16 is electrically connected to the control module. When the regulating device 15 is connected to the cooling pipe 14, the control method of the integrated oil fume and hot water device 100 also includes the following steps:
[0159] When the detection device 16 detects that the actual temperature of the outlet pipe 1112 of the hot water pipe 111 is higher than the preset temperature and detects that the flow rate of the cooling pipe 14 is greater than the flow rate of the hot water pipe 111 entering the combustion chamber 112 of the water heater 11, the control module controls the regulating device 15 to partially close the cooling pipe 14.
[0160] This means that when cooling the range hood 12, it is necessary to ensure that the flow rate entering the cooling pipe 14 does not affect the temperature output at the user end. Specifically, the flow rate in the cooling pipe 14 should be as small as possible less than the flow rate entering the combustion chamber 112 of the water heater 11. In reality, the flow rate required to cool the range hood 12 is very small, and the fluid heated by the fan 121 will flow back to the water outlet pipe 1112 of the water heater 11 through the cooling pipe 14. Therefore, the impact on the temperature of the water outlet pipe 1112 is not significant. However, considering the user experience, temperature fluctuations should be minimized as much as possible. Therefore, negative feedback regulation of the temperature of the water outlet pipe 1112 is required. The parameters to be considered in this negative feedback regulation include the inlet water temperature Ta and total flow rate Q of the inlet water pipe 111 in the hot water pipe 111, the measured outlet water temperature Tb of the outlet pipe 1112, and the inlet water pipe... The flow rate Q1 entering the combustion chamber 112 of the water heater 11 from the outlet pipe 1111 is Q2 = Q - Q1, and the flow rate entering the cooling pipe 14 is Q2 = Q - Q1. Using the temperature T measured at the fan 121, a functional relationship Tb = F(Q, Q1, T, Ta) can be obtained regarding the theoretical outlet temperature of the outlet pipe 1112. This allows for the calculation of the theoretical outlet temperature of the outlet pipe 1112, enabling initial adjustments to the operating power. Then, negative feedback adjustment is performed based on the measured outlet temperature of the outlet pipe 1112 to achieve stable outlet temperature.
[0161] In this embodiment, the control method for the cleaning mode includes at least the following implementation methods:
[0162] The integrated oil fume and hot water device 100 also includes a detection device 16 for real-time monitoring of the operating status of the water heater 11, the range hood 12, and the cooling pipe 14. The control method of the integrated oil fume and hot water device 100 also includes the following steps:
[0163] When the detection device 16 detects that any of the water heater 11, range hood 12, and cooling pipe 14 are in operation, the control module controls the regulating device 15 to close the cleaning pipe 13.
[0164] Since the cleaning function is an auxiliary function, it has the lowest priority. Therefore, the cleaning function will not be activated when the control module detects that at least one of the water heater 11, range hood 12, and cooling pipe 14 is in operation. The cleaning pipe 13 will only be activated to perform its cleaning function after all these functions have been completed.
[0165]
Example 3
[0166] An electronic device includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, it implements the control method of the integrated oil fume and hot water device 100 of Embodiment 2.
[0167] Figure 10 This is a schematic diagram of the structure of an electronic device provided in this embodiment. Figure 10 A block diagram is shown of an exemplary electronic device 90 suitable for implementing embodiments of the present invention. Figure 10 The electronic device 90 shown is merely an example and should not impose any limitations on the functionality and scope of use of the embodiments of the present invention.
[0168] like Figure 10 As shown, the electronic device 90 can be represented in the form of a general-purpose computing device, such as a server device. The components of the electronic device 90 may include, but are not limited to: at least one processor 91, at least one memory 92, and a bus 93 connecting different system components (including memory 92 and processor 91).
[0169] Bus 93 includes a data bus, an address bus, and a control bus.
[0170] The memory 92 may include volatile memory, such as random access memory (RAM) 921 and / or cache memory 922, and may further include read-only memory (ROM) 923.
[0171] The memory 92 may also include a program tool 925 having a set (at least one) of program modules 924, including but not limited to: an operating system, one or more application programs, other program modules, and program data, each or some combination of these examples may include an implementation of a network environment.
[0172] The processor 91 performs various functional applications and data processing by running computer programs stored in the memory 92.
[0173] Electronic device 90 can also communicate with one or more external devices 94 (e.g., keyboard, pointing device, etc.). This communication can be performed through input / output (I / O) interface 95. Furthermore, electronic device 90 can also communicate with one or more networks (e.g., local area network (LAN), wide area network (WAN), and / or public network, such as the Internet) via network adapter 96. Network adapter 96 communicates with other modules of electronic device 90 via bus 93. It should be understood that, although not shown in the figures, other hardware and / or software modules can be used in conjunction with electronic device 90, including but not limited to: microcode, device drivers, redundant processors, external disk drive arrays, RAID (disk array) systems, tape drives, and data backup storage systems.
[0174] It should be noted that although several units / modules or sub-units / modules of the electronic device have been mentioned in the detailed description above, this division is merely exemplary and not mandatory. In fact, according to the embodiments of this application, the features and functions of two or more units / modules described above can be embodied in one unit / module. Conversely, the features and functions of one unit / module described above can be further divided and embodied by multiple units / modules.
[0175]
Example 4
[0176] A computer-readable storage medium having a computer program stored thereon, wherein the computer program, when executed by a processor, implements the control method of the integrated oil fume and hot water device 100 of Embodiment 2.
[0177] The readable storage medium may be more specifically adopted, including but not limited to: portable disk, hard disk, random access memory, read-only memory, erasable programmable read-only memory, optical storage device, magnetic storage device, or any suitable combination thereof.
[0178] In a possible implementation, the present invention can also be implemented as a program product comprising program code, which, when the program product is run on a terminal device, causes the terminal device to execute the control method for implementing the integrated oil fume and hot water device 100 of Embodiment 2.
[0179] The program code for executing the present invention can be written in any combination of one or more programming languages. The program code can be executed entirely on the user device, partially on the user device, as a standalone software package, partially on the user device and partially on a remote device, or entirely on a remote device.
[0180] While specific embodiments of the present invention have been described above, those skilled in the art should understand that these are merely illustrative examples, and the scope of protection of the present invention is defined by the appended claims. Those skilled in the art can make various changes or modifications to these embodiments without departing from the principles and essence of the present invention, but all such changes and modifications fall within the scope of protection of the present invention.
Claims
1. An integrated oil fume and hot water device, comprising a water heater and a range hood, wherein the water heater includes hot water piping and the range hood includes a fan, characterized in that, The integrated oil fume hot water device also includes: A cooling pipeline, wherein the cooling pipeline is connected to the hot water pipeline and the fan; The cleaning pipeline is connected to the hot water pipeline and the fan; Adjustment device to switch the state of the cooling pipeline, and / or to switch the state of the cleaning pipeline; The control module is electrically connected to the regulating device; The control module controls the regulating device to connect to the cooling pipeline based on the temperature of the fan; the control module also controls the regulating device to connect to the cleaning pipeline based on the operating status of the water heater, range hood, and cooling pipeline.
2. The integrated oil fume and hot water device as described in claim 1, characterized in that, The integrated oil fume and hot water device also includes a detection device, which is electrically connected to the control module. The detection device includes a flow sensor and / or a temperature sensor, and the flow sensor and / or the temperature sensor is installed on the hot water pipe; And / or, the temperature sensor is mounted on the fan.
3. The integrated oil fume and hot water device as described in claim 1, characterized in that, The regulating device includes a first regulating valve located in the inlet pipe of the hot water pipe and near the cooling pipe and the combustion chamber of the water heater, and a second regulating valve located at the connection between the cleaning pipe and the cooling pipe. The control module controls the first regulating valve to close the hot water pipe entering the combustion chamber based on the temperature of the fan, or when the control module detects that the water heater is in operation based on the temperature of the fan. It also controls the second regulating valve to open the cooling pipe and close the cleaning pipe.
4. The integrated oil fume and hot water device as described in claim 1 or 3, characterized in that, The hot water pipeline includes an outlet pipe and an outlet branch pipe, and the regulating device includes a third regulating valve disposed at the connection between the outlet pipe and the outlet branch pipe. When the control module connects the cooling pipeline according to the temperature of the fan, it controls the third regulating valve to open the water outlet branch and close the water outlet pipeline.
5. The integrated oil fume and hot water device as described in claim 1, characterized in that, The integrated oil fume and hot water device also includes a detection device for detecting the temperature and flow rate of the hot water pipe. The detection device is electrically connected to the control module. When the regulating device is connected to the cooling pipe, the control module performs negative feedback regulation based on the temperature of the outlet pipe of the hot water pipe detected by the detection device to ensure that the flow rate of the cooling pipe is less than the flow rate entering the combustion chamber of the water heater.
6. The integrated oil fume and hot water device as described in claim 1, characterized in that, The fan is equipped with a temperature detection device, which is electrically connected to the control module. When the range hood is running, the control module controls the opening and closing of the cooling pipe based on the preset temperature and the actual temperature of the fan. When the detection device detects that the actual temperature of the fan is greater than the preset temperature, the control module controls the regulating device to open the cooling pipeline; When the detection device detects that the actual temperature of the fan is less than the preset temperature, the control module controls the regulating device to close the cooling pipeline.
7. The integrated oil fume and hot water device as described in claim 1, characterized in that, The regulating device includes a second regulating valve disposed at the connection between the cleaning pipeline and the cooling pipeline. The control module controls the second regulating valve to open the cleaning pipeline and close the cooling pipeline based on the operating status of the water heater, range hood, and cooling pipeline.
8. The integrated oil fume and hot water device as described in claim 1, characterized in that, When the control module detects that at least one of the water heater, range hood, and cooling pipe is in operation, the control module controls the regulating device to close the cleaning pipe.
9. The integrated oil fume and hot water device as described in claim 1, characterized in that, The integrated oil fume and hot water device also includes a detection device for real-time monitoring of the operating status of the water heater, range hood, and cooling pipeline. When the detection device detects that any of the water heater, range hood, or cooling pipe is in operation, the control module controls the regulating device to close the cleaning pipe.
10. A control method for an integrated oil fume and hot water device, the integrated oil fume and hot water device comprising a water heater and a range hood, the water heater comprising hot water pipes, and the range hood comprising a fan, characterized in that, The integrated oil fume hot water device also includes: A cooling pipeline, wherein the cooling pipeline is connected to the hot water pipeline and the fan; The cleaning pipeline is connected to the hot water pipeline and the fan; Adjustment device; Detection device; The control method for integrated oil fume and hot water devices includes the following steps: When the detection device detects that the actual temperature of the fan is higher than the preset temperature, the control module controls the regulating device to connect the cooling pipeline; When the detection device detects that the actual temperature of the fan is lower than the preset temperature, the control module controls the regulating device to close the cooling pipeline; When the control module detects that any of the water heater, range hood, or cooling pipe is not in operation, the control module controls the regulating device to connect the cleaning pipe.
11. The control method for the integrated oil fume and hot water device as described in claim 10, characterized in that, The regulating device includes a first regulating valve located in the inlet pipe of the hot water pipe and close to the cooling pipe and the combustion chamber of the water heater, and a second regulating valve located at the connection between the cleaning pipe and the cooling pipe. The control method of the integrated oil fume hot water device further includes the following steps: When the detection device detects that the actual temperature of the fan is higher than the preset temperature, or when the detection device detects that the actual temperature of the fan is higher than the preset temperature and the control module detects that the water heater is in operation, the first regulating valve is controlled to close the hot water pipe entering the combustion chamber, and the second regulating valve is controlled to open the cooling pipe and close the cleaning pipe.
12. The control method for the integrated oil fume and hot water device as described in claim 10 or 11, characterized in that, The hot water pipeline includes an outlet pipeline and an outlet branch pipeline. The regulating device includes a third regulating valve disposed at the connection between the outlet pipeline and the outlet branch pipeline. The control method of the integrated oil fume hot water device further includes the following steps: When the detection device detects that the actual temperature of the fan is higher than the preset temperature, it controls the third regulating valve to open the water outlet branch and close the water outlet pipe.
13. The control method for the integrated oil fume and hot water device as described in claim 10, characterized in that, The integrated oil fume and hot water device further includes a detection device for detecting the temperature and flow rate of the hot water pipeline. The detection device is electrically connected to the control module. When the regulating device is connected to the cooling pipeline, the control method of the integrated oil fume and hot water device further includes the following steps: When the detection device detects that the actual temperature of the outlet pipe of the hot water pipe is higher than the preset temperature and detects that the flow rate of the cooling pipe is greater than the flow rate of the hot water pipe entering the combustion chamber of the water heater, the control module controls the regulating device to partially close the cooling pipe.
14. The control method for the integrated oil fume and hot water device as described in claim 10, characterized in that, The integrated oil fume and hot water device also includes a detection device for real-time monitoring of the operating status of the water heater, range hood, and cooling pipeline. The control method of the integrated oil fume and hot water device further includes the following steps: When the detection device detects that any of the water heater, range hood, or cooling pipe is in operation, the control module controls the regulating device to close the cleaning pipe.
15. An electronic device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that, When the processor executes a computer program, it implements the control method of the integrated oil fume and hot water device according to any one of claims 10-14.
16. A storage medium, specifically a computer-readable storage medium, having a computer program stored thereon, characterized in that, When the computer program is executed by the processor, it implements the control method of the integrated oil fume and hot water device according to any one of claims 10-14.
Citation Information
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