Hot tank assembly and purifying and heating all-in-one machine
By setting up a condenser in the hot can assembly of the drinking water equipment, the discharged water vapor condenses into water droplets and flows back to the heating chamber, the problem of improper water vapor disposal in the existing equipment is solved, and the safety and use effect of the equipment are improved.
Patent Information
- Application Number
- CN202510209721.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-24
- Publication Date
- 2025-05-13
AI Technical Summary
The high-temperature water vapor generated by existing drinking water equipment with heating functions during the heating process has not been properly disposed of, affecting the effectiveness of the equipment.
A heat tank assembly is designed, including a tank body, heating piece, exhaust pipe and condensing pipe. The part of the exhaust pipe is arranged in the condensation chamber of the condensation tube, so that the discharged water vapor flows through the condensation chamber through the cooling water to condense into water droplets and flows back to the heating chamber.
Through the installation of the condenser tube, most of the water vapor is condensed into water droplets and flows back to the heating chamber, reducing the impact of water source and water vapor overflow, while improving the safety and use effect of the equipment.
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Figure CN119983544A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of drinking water equipment, and in particular to a hot tank assembly and a heat and water purification integrated machine. Background Art
[0002] In current drinking water equipment with heating function, high-temperature water vapor will be generated during the heating process. In the relevant technology, this part of high-temperature water vapor is not properly handled, which affects the use effect of the drinking water equipment. Summary of the invention
[0003] The embodiments of the present application provide a hot tank assembly and a heat and water purification integrated machine, aiming to improve the use effect of the heat and water purification integrated machine.
[0004] A first aspect of an embodiment of the present application provides a hot tank assembly, which includes a tank body, a heating element, an exhaust pipe and a condenser, wherein the tank body has a heating chamber; the heating element is connected to the tank body for heating the liquid in the heating chamber; the exhaust pipe is connected to the tank body and communicates with the heating chamber, and the exhaust pipe is used to discharge water vapor generated in the heating chamber during the heating process; the condenser has a condensation chamber that can carry cooling water, and a portion of the exhaust pipe is inserted into the condensation chamber so that the water vapor in the exhaust pipe can be cooled and condensed by the cooling water when flowing through the condensation chamber.
[0005] In some of the embodiments, the condenser has a water inlet and a water outlet, both of which are connected to the condensing chamber, and the water inlet is used to connect to the cooling water; the hot tank assembly also includes a water inlet pipe, one end of which is connected to the tank body and connected to the heating chamber, and the other end of the water inlet pipe is connected to the condenser and connected to the water outlet, so that the cooling water in the condensing chamber flows into the heating chamber through the water outlet and the water inlet pipe.
[0006] In some of the embodiments, in the width direction of the condenser, the water inlet and the water outlet are located on the same side or different sides of the condenser, and in the height direction of the condenser, the height of the water outlet is higher than the height of the water inlet; or, in the height direction of the condenser, the water inlet is arranged at the bottom of the condenser, and the water outlet is arranged at the top of the condenser.
[0007] In some of the embodiments, in the height direction of the hot tank assembly, the height of the water inlet pipe is lower than the height of the drain pipe.
[0008] In some embodiments, the condenser includes a condensation section, the condensation section has a first condensation opening and a second condensation opening, and a condensation cavity is formed inside the condensation section, the first condensation opening and the second condensation opening are connected to the condensation cavity, wherein the exhaust pipe passes through the condensation cavity from the first condensation opening and then out from the second condensation opening, so that part of the exhaust pipe is located in the condensation cavity.
[0009] In some of the embodiments, the condenser also includes a supporting pipe section, which is connected to one end of the condenser section close to the tank body, and the supporting pipe section abuts against the tank body, and the supporting pipe section is connected to the first condensation opening, and the exhaust pipe is passed through the supporting pipe section and extends into the condensation chamber.
[0010] In some embodiments, the condenser also includes an air outlet pipe section, which is connected to the end of the condensation section away from the tank body, and the air outlet pipe section is connected to the second condensation opening, wherein the end of the exhaust pipe away from the tank body extends into the air outlet pipe section through the second condensation opening.
[0011] In some of the embodiments, the condensation section, the support pipe section and the air outlet pipe section are an integrated component.
[0012] In some of the embodiments, the support pipe section and the air outlet pipe section are tightly matched with the exhaust pipe, so that the outer pipe wall of the exhaust pipe is sealed with the inner pipe wall of the support pipe section and the inner pipe wall of the air outlet pipe section respectively.
[0013] In some embodiments, the can body includes a can body, a can top cover and a can bottom cover, the can top cover is connected to the top of the can body, the can bottom cover is connected to the bottom of the can body, and the can bottom cover, the can body and the can top cover are arranged to form a heating chamber, wherein the can top cover is provided with a first through hole, the exhaust pipe is connected to the can top cover, and another part of the exhaust pipe extends into the heating chamber through the first through hole.
[0014] In some embodiments, the tank body 21 has a length direction, and the heating element 22 extends along the length direction of the tank body.
[0015] In some embodiments, the hot tank assembly also includes a detection assembly, which includes a water level detection element, a water quality detection element and a temperature control element. The water level detection element is connected to the tank body and communicated with the heating chamber, and the water level detection element is used to detect the water level in the heating chamber; the water quality detection element is connected to the tank body and communicated with the heating chamber, and the water quality detection element is used to detect the quality of the liquid in the heating chamber; the temperature control element is connected to the tank body and communicated with the heating chamber, and the temperature control element is used to detect the temperature of the liquid in the heating chamber.
[0016] In some embodiments, the water level detection element includes a high water level probe and a low water level probe. The high water level probe is used to detect the position of the highest water level in the heating chamber, and the low water level probe is used to detect the position of the lowest water level in the heating chamber.
[0017] In some of the embodiments, the temperature control element includes a temperature control fixed plate and a temperature sensor. The temperature control fixed plate is connected to the tank body. A second through hole communicating with the heating chamber is provided on the temperature control fixed plate. The temperature sensor extends into the heating chamber through the second through hole to detect the temperature of the liquid in the heating chamber.
[0018] A second aspect of an embodiment of the present application provides an all-in-one heat and air purifier, which includes a shell assembly, the above-mentioned hot tank assembly and a filtering system. The shell assembly has an inner cavity, the hot tank assembly is installed in the inner cavity, and the filtering system is installed in the inner cavity. The filtering system is used to provide filtered liquid to the heating cavity of the hot tank assembly.
[0019] In some embodiments, the inner cavity includes a hot tank cavity and a filter cavity, the hot tank assembly is located in the hot tank cavity, and the filter system is located in the filter cavity; the heat and air purifier also includes an insulation structure, which is arranged in the shell assembly and cooperates with the inner wall of the shell assembly to form a heat dissipation cavity, and the heat dissipation cavity is connected to the hot tank cavity.
[0020] In some of the embodiments, the heat dissipation chamber is in communication with the top of the hot tank chamber and is located above the filter chamber.
[0021] In some embodiments, the filtration system includes a booster pump, a filter element, and a pure water outlet pipe connected to the outlet of the filter element; the heat and water purification machine also includes a water outlet assembly, a water pump, a faucet, a first temperature sensor, a second temperature sensor, and a controller, and the water outlet assembly is installed on the shell assembly; the water pump is installed in the inner cavity and is connected to the heating cavity to pump the liquid in the heating cavity to the water outlet assembly; the faucet is connected to both the pure water outlet pipe and the water outlet assembly; the first temperature sensor is used to detect the temperature in the heating cavity; the second temperature sensor is used to detect the temperature in the pure water outlet pipe; the controller is used to receive the detection values of the first temperature sensor and the second temperature sensor, and control the operating power of the water pump and the booster pump to form water with a set temperature value at the faucet.
[0022] The embodiment of the present application sets a portion of the exhaust pipe to pass through the condensation chamber of the condenser tube. In this way, when the water vapor of the exhaust pipe flows through the condensation chamber, most of the water vapor will be cooled by the cooling water in the condensation chamber and condensed into water droplets. In this way, the water droplets will flow back into the heating chamber due to the effect of gravity, so that the water droplets can be reused, thereby reducing the waste of water resources and reducing the impact of water vapor overflow. In particular, when the air-conditioning and heat-integrated machine is connected to a faucet, due to the setting of the condenser tube, not only can the possibility of faucet dripping be reduced, but also the amount of water vapor ejected from the faucet can be greatly reduced to avoid high-temperature water vapor from scalding the user. In this way, the safety of the use of the air-conditioning and heat-integrated machine is improved, so as to enhance the use effect of the air-conditioning and heat-integrated machine. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present application or related technologies, the drawings required for use in the embodiments or descriptions of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without paying any creative work.
[0024] Figure 1 This is a schematic diagram of the structure of a heat and air conditioning machine in one embodiment of the present application;
[0025] Figure 2 This is a schematic diagram of the structure of a part of a heat and air conditioning integrated machine in one embodiment of the present application;
[0026] Figure 3 This is a module block diagram of a heat and air conditioning machine in one embodiment of the present application;
[0027] Figure 4 This is a schematic structural diagram of a hot tank assembly in one embodiment of the present application;
[0028] Figure 5 A schematic structural diagram of a hot tank assembly from another perspective in one embodiment of the present application;
[0029] Figure 6 for Figure 5 Section view along section AA;
[0030] Figure 7 This is a schematic diagram of the structure of a condenser, an exhaust pipe, and a water inlet pipe in one embodiment of the present application;
[0031] Figure 8 for Figure 7 Section view along section BB;
[0032] Fig. 9 A schematic structural diagram of another part of a hot tank assembly in one embodiment of the present application;
[0033] Fig.10 This is a schematic diagram of the exploded structure of a hot tank assembly in one embodiment of the present application;
[0034] Fig.11 This is a schematic structural diagram of a heat and air conditioning machine from another perspective in an embodiment of the present application.
[0035] Description of the accompanying figures: 1-purifier and heat all-in-one machine; 10-housing assembly; 101-inner cavity; 102-hot tank cavity; 103-filter cavity; 20-hot tank assembly; 21-tank body; 21a-heating cavity; 211-tank body; 212-tank top cover; 2121-first through hole; 213-tank bottom cover; 22-heating element; 221-terminal; 23-detection assembly; 232-water level detection element; 233-high water level probe; 234-low water level probe; 237-temperature control element; 2371-temperature control fixing plate; 2372-temperature sensor; 2373-second through hole; 24-exhaust pipe ;25-water inlet pipe;28-condenser;281-condensation chamber;282-water inlet;283-water outlet;284-condensation section;2841-first condensation opening;2842-second condensation opening;285-support pipe section;286-air outlet pipe section;30-water pump;50-filtration system;51-water inlet valve;52-first filter element;53-second filter element;531-waste water pipe;532-waste water solenoid valve;54-boosting pump;55-check valve;70-insulation structure;701-heat dissipation chamber;80-controller;90-water outlet assembly;2-faucet;3-pipeline machine. DETAILED DESCRIPTION
[0036] In order to make the purpose, technical solution and advantages of the present application more clearly understood, the present application is further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0037] See also Figure 1-Figure 2 The embodiment of the present application provides a water purifier and heat all-in-one machine 1, which is a device integrating water purification and heating functions. The water purifier and heat all-in-one machine 1 includes a housing component 10, a hot tank component 20, and a filtering system 50.
[0038] The housing assembly 10 has an inner cavity 101, and the hot tank assembly 20 and the filter system 50 are both installed in the inner cavity 101; that is, the inner cavity 101 can be divided into a hot tank cavity 102 and a filter cavity 103, and the hot tank cavity 102 and the filter cavity 103 are arranged at intervals, wherein the hot tank assembly 20 is installed in the hot tank cavity 102, and the filter system 50 is installed in the filter cavity 103, so as to protect the hot tank assembly 20 and the filter system 50 by the housing assembly 10, and the probability of damage to the hot tank assembly 20 and the filter system 50 can be reduced. It can be understood that the material of the housing assembly 10 can be at least one of metal and plastic. Exemplarily, the material of the housing assembly 10 can be metal, so that the housing assembly 10 has a higher structural strength as a whole, so as to reduce the probability of damage to the housing assembly 10, and then reduce the probability of damage to the hot tank assembly 20 and the filter system 50, so that the heat-purifying integrated machine 1 can have a longer service life. Of course, the material of the housing assembly 10 can also be plastic, so that it has the advantages of high structural strength, lightness, and low cost.
[0039] See also Figure 2-Figure 3 , further, the heat and air purifier 1 also includes a faucet 2, which can be connected to the housing assembly 10 through a pipeline; that is, the water outlet end of the hot tank assembly 20 and the water outlet end of the filter system 50 can be set on the housing assembly 10, and the faucet 2 is connected to the water outlet end of the hot tank assembly 20 and the water outlet end of the filter system 50 on the housing assembly 10 through a pipeline, so that the faucet 2 is connected to the hot tank assembly 20 and the filter system 50. When the faucet 2 is turned on, the hot water in the hot tank assembly 20 or the normal temperature water in the filter system 50 can flow out through the faucet 2 to provide hot water or normal temperature water to the user. It can be understood that the heat and air purifier 1 can have two faucets 2, one faucet 2 is connected to the hot tank assembly 20, and the other faucet 2 is connected to the filter system 50, so that hot water and normal temperature water can be provided to the user separately. In other embodiments, the faucet 2 can also be connected to the hot tank assembly 20 and the filter system 50 respectively, and the faucet 2 is controlled by a switch to flow out hot water or normal temperature water.
[0040] It is understandable that the faucet 2 can also be a smart faucet 2. When the controller 80 detects a signal for taking normal temperature water at the smart faucet 2 or a signal for replenishing water from the hot tank assembly 20, the controller 80 can control the filtration system 50 to start water production to ensure that the user can obtain normal temperature water and hot water from the smart faucet 2 in a timely manner, thereby reducing the user's waiting time and improving the user's experience.
[0041] The hot tank assembly 20 is in communication with the faucet 2 , and the hot tank assembly 20 is in communication with the filtering system 50 . The hot tank assembly 20 can heat the liquid filtered by the filtering system 50 , and provide hot water to the user after the faucet 2 is turned on.
[0042] See also Figure 3 , the filter system 50 can be connected to the tap water pipe, and the filter system 50 includes a filter element, a booster pump 54, and a water inlet valve 51. The booster pump 54 and the water inlet valve 51 are both electrically connected to the controller 80. When the controller 80 detects a signal of taking normal temperature water at the faucet 2 or a water replenishment signal of the hot tank assembly 20, it controls the filter system 50 to start water production. When these two signals disappear, the controller 80 controls the filter system 50 to stop water production and enter a standby state. The pure water at the water outlet of the filter system 50 can enter the hot tank assembly 20, and can also flow out directly through the faucet 2.
[0043] Exemplarily, the filtration system 50 may include a plurality of filter elements, and the plurality of filter elements may be independently provided or integrated into a composite filter element.
[0044] Please continue reading Figure 3 Specifically, the filtration system 50 may include an inlet valve 51, a first filter element 52, a second filter element 53, a booster pump 54 and a one-way valve 55. The water inlet end of the inlet valve 51 is connected to the raw water inlet, the water outlet end of the inlet valve 51 is connected to the water inlet end of the first filter element 52, the water outlet end of the first filter element 52 is connected to the water inlet end of the booster pump 54, the water outlet end of the booster pump 54 is connected to the water inlet end of the second filter element 53, the water outlet end of the second filter element 53 is connected to the water inlet end of the one-way valve 55, and the water outlet end of the one-way valve 55 is connected to the water outlet end of the filtration system 50.
[0045] The first filter element 52 is used to achieve preliminary filtration of raw water, and can filter out large particles such as mud, rust, insect eggs, and red worms in the raw water. The raw water can be tap water, well water, etc. The first filter element 52 can be a PP cotton filter element (polypropylene melt-blown filter element), a carbon rod filter element, a composite filter element, etc.
[0046] The second filter element 53 has a reverse osmosis membrane, which can be an artificial semipermeable membrane. The pore size of the reverse osmosis membrane is very small, which can effectively remove impurities such as dissolved salts, colloids, microorganisms, and organic matter in the water. The water filtered by the second filter element 53 obtained by the user of the present application through the faucet 2 can be pure water, that is, a pure water outlet pipe is connected between the second filter element 53 and the faucet 1. Of course, a waste water pipe 531 is also connected to the second filter element 53, and a waste water solenoid valve 532 can be provided on the waste water pipe to control the discharge of waste water.
[0047] In other embodiments, the filtration system 50 may further include a third filter element, a water inlet end of the third filter element is connected to a water outlet end of the second filter element 53 , and a water outlet end of the third filter element is connected to a water outlet end of the filtration system 50 .
[0048] The third filter element is used to absorb odor and residual chlorine, and can be used to improve the taste of normal temperature water. The third filter element can be an activated carbon filter element.
[0049] Of course, in other embodiments, the filter system 50 may also be connected to the pipeline machine 3 through a pipeline; that is, the water outlet of the filter system 50 and the pipeline machine 3 are connected through a pipeline to provide normal temperature water to the pipeline machine 3.
[0050] The hot tank assembly 20 will now be described in detail.
[0051] See also Figure 4-Figure 6 The hot tank assembly 20 may include a tank body 21, a heating element 22 and a water pump 30. The tank body 21 has a heating chamber 21a, which can be used to carry liquid; the heating element 22 is connected to the tank body 21 to heat the liquid in the heating chamber 21a. It can be understood that the heating element 22 can be installed on or near the outer wall of the tank body 21 to transfer heat to the liquid in the heating chamber 21a by heat conduction, so that the liquid in the heating chamber 21a can be heated; or, the heating element 22 is installed in the heating chamber 21a and connected to the tank body 21, so that the heating element 22 can directly heat the liquid in the heating chamber 21a, and the embodiment of the present application does not specifically limit this. The water pump 30 is arranged at the bottom of the tank body 21 and is connected to the heating chamber 21a. The water pump 30 is installed in the hot tank chamber 102 or the filter chamber 103. The water pump 30 is used to pump the liquid in the heating chamber 21a out to the faucet 2. The faucet 2 is opened for the user to take hot water.
[0052] See also Figure 2 Furthermore, the air conditioner and heat machine 1 may further include a controller 80, wherein when the heating element 22 is located in the heating chamber 21a, the terminal 221 of the heating element 22 may penetrate the tank body 21 so that the terminal 221 extends out of the outer wall of the tank body 21, so that the controller 80 is electrically connected to the terminal 221, thereby facilitating the controller 80 to control the heating element 22 to work according to a set program, thereby heating the liquid in the heating chamber 21a.
[0053] See also Figure 4 as well as Figure 6The hot tank assembly 20 also includes an exhaust pipe 24, which is connected to the tank body 21 and communicated with the heating chamber 21a. It is understandable that when the heating element 22 is working, the liquid in the heating chamber 21a is heated so that part of the water in the heating chamber 21a is converted into water vapor, thereby causing the internal pressure of the heating chamber 21a to increase. If the water vapor in the heating chamber 21a cannot be discharged in time, it may cause the internal pressure of the hot tank assembly 20 to be too high, thereby causing safety hazards, such as the hot tank assembly 20 rupture or leakage. Therefore, the embodiment of the present application is provided with an exhaust pipe 24 communicated with the heating chamber 21a, and the exhaust pipe 24 can be used to discharge the water vapor generated by the liquid in the heating chamber 21a during the heating process to ensure the safety of the tank body 21. In addition, after the water vapor in the heating chamber 21a is discharged from the exhaust pipe 24, the air content in the heating chamber 21a can be reduced, so that the heat acts more concentratedly on the water molecules, thereby improving the heating efficiency of the tank body 21.
[0054] The material of the exhaust pipe 24 may include silicone; that is, silicone material is widely used in the exhaust pipe 24 of the water dispenser due to its excellent high temperature resistance, corrosion resistance and flexibility. It can not only withstand the impact of high temperature water vapor inside the tank body 21, and is not easily deformed or damaged, but also adapt to the complex structural layout inside the heat and water purifier 1, ensuring a tight connection without air leakage. In addition, the silicone material is non-toxic and tasteless, and meets food safety standards.
[0055] In the related art, the exhaust port of the exhaust pipe 24 is connected to the faucet 2; that is, when the user needs to use hot water, the user opens the faucet 2, and the water vapor will be discharged first or the water vapor will be discharged together with the hot water. At this time, since the temperature of the water vapor is too high, it is easy to scald the user when the water vapor is sprayed out from the faucet 2; at the same time, when the user does not use the heat and water purification machine 1 and a large amount of water vapor is generated in the heating chamber 21a, a large amount of water vapor will flow from the exhaust pipe 24 to the faucet 2, and the temperature at the faucet 2 is lower than the temperature in the heating chamber 21a, so that a large amount of water vapor will become water droplets and be discharged from the faucet 2, resulting in a waste of water resources and causing the faucet 2 to drip frequently.
[0056] Please continue reading Figure 4 as well as Figure 6In order to solve the above problems, the hot tank assembly 20 also includes a condenser 28, which has a condenser chamber 281 capable of carrying cooling water, and a portion of the exhaust pipe 24 is passed through the condenser chamber 281, so that a portion of the exhaust pipe 24 is located in the condenser chamber 281, so that the water vapor in the exhaust pipe 24 can be cooled and condensed by the cooling water during the process of flowing through the condenser chamber 281. At this time, the water vapor flowing through the condenser chamber 281 will be condensed into water droplets, and under the action of gravity, the water droplets will flow back from the exhaust pipe 24 to the heating chamber 21a; that is, by extending a portion of the exhaust pipe 24 into the condenser chamber 281 of the condenser 28, so that the cooling water in the condenser chamber 281 can condense the water vapor flowing through the condenser chamber 281, so that most of the water vapor is condensed into water droplets. In this way, the amount of water vapor sprayed from the faucet 2 can be greatly reduced to avoid scalding the user with high-temperature water vapor, thereby improving the safety of the use of the heat and water purification machine 1. Furthermore, since the water vapor in the exhaust pipe 24 can be cooled and condensed by the cooling water during the process of flowing through the condensation chamber 281, the water vapor will be condensed into water droplets, and under the action of gravity, the water droplets will flow back from the exhaust pipe 24 to the heating chamber 21a, so that the possibility of frequent dripping of the faucet 2 can be reduced to reduce the waste of water. The material of the condenser 28 can include stainless steel, copper, and aluminum, etc., and the embodiment of the present application does not specifically limit the material of the condenser 28.
[0057] It should be noted that the cooling water may be water at room temperature after being filtered by the filter system 50 .
[0058] The embodiment of the present application sets a portion of the exhaust pipe 24 to pass through the condensation chamber 281 of the condensation pipe 28. In this way, when the water vapor of the exhaust pipe 24 flows through the condensation chamber 281, most of the water vapor will be cooled by the cooling water in the condensation chamber 281 and condensed into water droplets. In this way, the water droplets will flow back into the heating chamber 21a due to the effect of gravity, so that the water droplets can be reused, thereby reducing the waste of water resources and reducing the impact of water vapor overflow. In particular, when the air-conditioning and heat-integrated machine 1 is connected to the faucet 2, due to the setting of the condensation pipe 28, not only can the possibility of dripping from the faucet 2 be reduced, but also the amount of water vapor ejected from the faucet 2 can be greatly reduced to avoid scalding the user with high-temperature water vapor. In this way, the safety of the use of the air-conditioning and heat-integrated machine 1 is improved, so as to enhance the use effect of the air-conditioning and heat-integrated machine 1.
[0059] It should be noted that the embodiment of the present application does not specifically limit the type of the heating element 22. For example, the heating element 22 can be an electric heating wire heating element 22, a positive temperature coefficient (PTC) ceramic sheet heating element 22, etc. The electric heating wire heating element 22 utilizes the thermal effect of electric current to convert electrical energy into thermal energy to heat the liquid in the heating chamber 21a; the PTC ceramic sheet heating element 22 utilizes the constant temperature heating characteristics of the PTC thermistor to achieve constant temperature heating of the liquid in the heating chamber 21a.
[0060] Furthermore, the tank body 21 has a length direction AA, and the heating element 22 extends along the length direction AA of the tank body 21 , so that the heating element 22 occupies more area of the heating cavity 21 a to improve the heating efficiency of the heating element 22 .
[0061] See also Figure 6 In some embodiments, the condenser 28 has a water inlet 282 and a water outlet 283 . Both the water inlet 282 and the water outlet 283 are connected to the condensation chamber 281 . The water inlet 282 is used to receive cooling water.
[0062] Furthermore, the hot tank assembly 20 further includes a water inlet pipe 25, one end of which is connected to the tank body 21 and communicated with the heating chamber 21a; the other end of the water inlet pipe 25 is connected to the condensing pipe 28 and communicated with the water outlet 283. It can be understood that in order to facilitate the injection of liquid into the heating chamber 21a, the hot tank assembly 20 is further provided with a water inlet pipe 25 connected to the tank body 21, and one end of the water inlet pipe 25 is communicated with the heating chamber 21a, and the other end of the water inlet pipe 25 is communicated with the water outlet 283. In this way, when it is necessary to replenish water to the tank body 21, after the cooling water enters the condensing chamber 281 from the water inlet 282, the cooling water flows into the heating chamber 21a from the water outlet 283 and through the water inlet pipe 25, so as to replenish the water to the heating chamber 21a.
[0063] Furthermore, since the other end of the water inlet pipe 25 is connected to the water outlet 283, and the water outlet 283 is connected to the condensation chamber 281, after the water replenishment of the heating chamber 21a is completed, the controller 80 controls the heating element 22 to heat. After the heating element 22 heats the cooling water in the heating chamber 21a for a period of time, water vapor is generated in the heating chamber 21a, and the water vapor is discharged from the exhaust pipe 24. Since part of the exhaust pipe 24 is located in the condensation chamber 281 at this time, and the condensation chamber 281 carries cooling water at this time, the cooling water can condense the water vapor flowing through the condensation chamber 281 and in the exhaust pipe 24, so as to greatly reduce the amount of water vapor sprayed from the faucet 2.
[0064] It should be noted that the cooling water remaining in the condensation chamber 281 last time will flow, and when the heating chamber 21a is replenished with water next time, it will flow into the heating chamber 21a through the water outlet 283 and the water inlet pipe 25. In this way, the cooling water in the condensation chamber 281 is replaced to ensure the durability of the condensation effect of the condensation chamber 281.
[0065] In some embodiments, in the width direction of the condenser 28, the water inlet 282 and the water outlet 283 are located on the same side or different sides of the condenser 28, and in the height direction of the condenser 28, the height of the water outlet 283 is higher than the height of the water inlet 282. It can be understood that in the height direction of the condenser 28, the position of the water outlet 283 on the condenser 28 needs to be higher than the position of the water inlet 282, so that part of the cooling water entering from the water inlet 282 can be retained in the condensation chamber 281, so that part of the exhaust pipe 24 is immersed in the cooling water, thereby improving the condensation effect of the condenser 28.
[0066] It should be noted that, in the height direction of the condenser 28, the height from the position of the water inlet 282 on the condenser 28 to the position of the water outlet 283 is not specifically limited. And the width direction of the condenser 28 is perpendicular to the height direction of the condenser 28.
[0067] In other embodiments, in the height direction of the condenser 28, the water inlet 282 is disposed at the bottom of the condenser 28, and the water outlet 283 is disposed at the top of the condenser 28. It is understandable that the water inlet 282 can be disposed at the top of the condenser 28, and the water outlet 283 is disposed at the top of the condenser 28, so that more cooling water can be retained in the condensation chamber 281, so that part of the exhaust pipe 24 is immersed in the cooling water, thereby improving the condensation effect of the condenser 28.
[0068] See also Figure 7-Figure 9 In some embodiments, in the height direction of the hot tank assembly 20, the height of the water inlet pipe 25 is lower than the height of the exhaust pipe 24. It can be understood that, since part of the exhaust pipe 24 is arranged in the condensing chamber 281, and the other end of the water inlet pipe 25 is connected with the water outlet 283, and the water outlet 283 is connected with the condensing chamber 281, the height of the water inlet pipe 25 is set lower than the height of the exhaust pipe 24, so that the water inlet pipe 25 is closer to the tank body 21, so that on the one hand, the water replenishment efficiency of the heating chamber 21a can be improved, and on the other hand, the height of the other end of the water inlet pipe 25 is lower than the end of the exhaust pipe 24 away from the tank body 21, so that when the condensing chamber 281 is filled with cooling water, the cooling water in the condensing chamber 281 will only flow into the water inlet pipe 25 from the water outlet 283, and will not flow into from the end of the exhaust pipe 24 away from the tank body 21, so as to avoid the cooling water in the condensing chamber 281 from the exhaust pipe 24 into the heating chamber 21a.
[0069] It should be noted that the height direction of the above-mentioned hot tank assembly 20 can be understood as the height direction of the condenser 28.
[0070] See also Figure 6 as well as Figure 8 In some embodiments, the condenser 28 includes a condenser section 284, and the condenser section 284 has a first condenser opening 2841 and a second condenser opening 2842. It is understood that a condenser chamber 281 may be formed inside the condenser section 284, and the condenser chamber 281 is in communication with both the first condenser opening 2841 and the second condenser opening 2842, so that the exhaust pipe 24 passes through the condenser chamber 281 from the first condenser opening 2841 and then passes through the second condenser opening 2842, so that part of the exhaust pipe 24 is located in the condenser chamber 281, so that the cooling water in the condenser chamber 281 can condense the water vapor in the exhaust pipe 24 passing through the condenser chamber 281.
[0071] Furthermore, after the condensation section 284 is partially penetrated through the exhaust pipe 24, the exhaust pipe 24 and the first condensation opening 2841 and the second condensation opening 2842 need to be sealed. On the one hand, water vapor separation can be achieved, and on the other hand, the cooling water in the condensation chamber 281 is prevented from flowing out of the condensation pipe 28 from the first condensation opening 2841 or the second condensation opening 2842.
[0072] Please continue reading Figure 6 as well as Figure 8 Furthermore, in some embodiments, the condenser 28 also includes a supporting pipe section 285, one end of which is connected to one end of the condenser section 284 close to the tank body 21, and the supporting pipe section 285 is connected to the first condenser opening 2841, so that the exhaust pipe 24 passes through the supporting pipe section 285 and extends into the condenser chamber 281; and one end of the supporting pipe section 285 abuts against the tank body 21 to facilitate the support of the condenser section 284.
[0073] Please continue reading Figure 6 as well as Figure 8 Furthermore, in some embodiments, the condenser 28 also includes an air outlet pipe section 286, one end of the air outlet pipe section 286 is connected to an end of the condensation section 284 away from the tank body 21, the other end of the air outlet pipe section 286 is connected to the faucet 2, and the air outlet pipe section 286 is connected to the second condensation opening 2842, so that the end of the exhaust pipe 24 away from the tank body 21 extends into the air outlet pipe section 286 through the second condensation opening 2842, thereby realizing that part of the exhaust pipe 24 is extended into the air outlet pipe section 286.
[0074] It should be noted that the embodiment of the present application does not specifically limit the connection method of the condensation section 284, the support pipe section 285 and the air outlet pipe section 286.
[0075] Please continue reading Figure 6 as well as Figure 8 , exemplarily, the condensation section 284, the support pipe section 285 and the outlet pipe section 286 are an integral component; that is, the condensation section 284, the support pipe section 285 and the outlet pipe section 286 can be formed into an integral component by one-time injection molding. In this way, on the one hand, it is convenient for part of the exhaust pipe 24 to extend into the condenser 28, and on the other hand, it can improve the stability and sealing of the connection between the condensation section 284, the support pipe section 285 and the outlet pipe section 286 to prevent the cooling water in the condensation chamber 281 from flowing out of the condenser 28.
[0076] Exemplarily, the condensation section 284, the support pipe section 285 and the air outlet pipe section 286 are all connected by welding, so that the end of the condensation section 284 close to the tank body 21 is connected to the support pipe section 285, and the end of the condensation section 284 away from the tank body 21 is connected to the air outlet pipe section 286.
[0077] After the exhaust pipe 24 partially extends into the outlet pipe section 286, in order to realize that the support pipe section 285 and the outlet pipe section 286 are both sealed and connected to the exhaust pipe 24, in some embodiments, the support pipe section 285 and the outlet pipe section 286 are closely matched with the exhaust pipe 24; that is, the inner pipe diameter of the support pipe section 285 and the inner pipe diameter of the outlet pipe section 286 are equal to the outer pipe diameter of the exhaust pipe 24, so that the outer pipe wall of the exhaust pipe 24 is sealed and matched with the inner pipe wall of the support pipe section 285 and the inner pipe wall of the outlet pipe section 286, respectively, so as to improve the sealing of the connection between the exhaust pipe 24 and the support pipe section 285 and the outlet pipe section 286, so as to prevent the cooling water in the condensation chamber 281 from flowing out of the condensation pipe 28, and realize water vapor separation. Of course, in other embodiments, the support pipe section 285 and the outlet pipe section 286 can be sealed and connected to the part of the exhaust pipe 24 through a silicone seal.
[0078] See also Fig.10 In some embodiments, the can body 21 includes a can body 211 , a can top cover 212 and a can bottom cover 213 .
[0079] Specifically, the material of the tank body 21 is usually food-grade stainless steel to ensure the safety and hygiene of the liquid. These materials have the characteristics of stable structure, high temperature resistance and rust resistance to meet the use requirements of the tank body 21. The tank top cover 212 is connected to the top of the tank body 211, and the tank bottom cover 213 is connected to the bottom of the tank body 211; that is, the tank top cover 212, the tank body 211 and the tank bottom cover 213 can be connected by welding, screwing, etc. to achieve a sealed connection between the tank top cover 212, the tank body 211 and the tank bottom cover 213, and the tank bottom cover 213, the tank body 211 and the tank top cover 212 are surrounded to form a heating chamber 21a to ensure the sealing of the heating chamber 21a.
[0080] Furthermore, due to the effect of heat convection, the water vapor generated in the heating chamber 21a during the heating process will naturally rise, and the embodiment of the present application is achieved by setting the exhaust pipe 24 on the tank top cover 212; that is, the tank top cover 212 is provided with a first through hole 2121, the exhaust pipe 24 is connected to the tank top cover 212, and the other part of the exhaust pipe 24 extends into the heating chamber 21a through the first through hole 2121, so that the exhaust pipe 24 is connected to the heating chamber 21a, so that the water vapor generated in the heating chamber 21a during the heating process is discharged from the exhaust pipe 24.
[0081] Furthermore, the exhaust pipe 24 is arranged on the tank top cover 212 to prevent the liquid in the heating chamber 21a from flowing back; that is, if the exhaust pipe 24 is arranged at the bottom of the hot tank, when the external pressure (the water pressure of the water replenishment) is greater than the pressure of the heating chamber 21a, water may flow back into the heating chamber 21a through the exhaust pipe 24, causing pollution and damage to the heating chamber 21a.
[0082] Please continue reading Fig.10 In some embodiments, in order to ensure the normal operation of the hot tank assembly 20 and the safe heating of the liquid in the heating chamber 21a, the hot tank assembly 20 also includes a detection assembly 23, which includes a water level detection element 232, a water quality detection element and a temperature control element 237.
[0083] Specifically, the water level detection element 232 is connected to the tank body 21, and the water level detection element 232 is connected to the heating chamber 21a, so that the water level detection element 232 can detect the water level in the heating chamber 21a. The embodiment of the present application does not specifically limit the type of the water level detection element 232. Exemplarily, the water level detection element 232 can be one of a float type water level sensor, an electrode type water level sensor and a capacitive water level sensor, wherein the float type water level sensor detects the change of the water level by floating up and down the float. When the water level rises, the float also rises; when the water level drops, the float drops, and the floating of the float triggers the switch inside the float type water level sensor, thereby outputting a corresponding electrical signal to the controller 80, so as to detect the water level in the heating chamber 21a. The electrode type water level sensor detects the water level by setting an electrode in the heating chamber 21a and using the conductivity of water. When the water level rises and contacts the electrode, the circuit will be turned on, thereby outputting an electrical signal to the controller 80, so as to detect the water level in the heating chamber 21a. The capacitive water level sensor detects the water level by measuring the capacitance value formed between the capacitive water level sensor and the water level. When the water level rises, the capacitance value changes, thereby outputting a corresponding electrical signal to the controller 80, so as to detect the water level in the heating chamber 21a.
[0084] Please continue reading Fig.10Further, in some embodiments, the water level detection element 232 includes a high water level probe 233 and a low water level probe 234. It can be understood that the high water level probe 233 is used to detect the position of the highest water level in the heating chamber 21a, and the low water level probe 234 is used to detect the position of the lowest water level in the heating chamber 21a; that is, when the liquid in the heating chamber 21a rises to the highest water level, the water inlet pipe 25 stops replenishing water to the heating chamber 21a to prevent the liquid in the heating chamber 21a from overflowing; when the liquid in the heating chamber 21a drops to the lowest water level, the water inlet pipe 25 replenishes water to the heating chamber 21a to prevent the heating chamber 21a from drying out.
[0085] It should be noted that the embodiment of the present application does not specifically limit the positions at which the high water level probe 233 and the low water level probe 234 are arranged on the tank body 21 .
[0086] Please continue reading Fig.10 In another embodiment, the water level detection element 232 may include two high water level probes 233 and one low water level probe 234, wherein the two high water level probes 233 may be arranged on the tank top cover 212, and the positions of the high water levels detected by the two high water level probes 233 are inconsistent; that is, the heating chamber 21a has a first high water level position and a second high water level position, and in the height direction of the tank body 21, the position of the first high water level is higher than the position of the second high water level. At this time, one high water level probe 233 is used to detect the position of the first high water level, and the other high water level probe 233 is used to detect the position of the second high water level. When the other high water level probe 233 fails, the one high water level probe 233 can still be used for detection to improve the accuracy of the detection of the high water level probe 233. Furthermore, the low water level probe 234 may be arranged on the tank top cover 212 or on the tank bottom cover 213 to detect the position of the lowest water level in the heating chamber 21a.
[0087] The water quality detection element is connected to the tank body 21 and communicated with the heating chamber 21a; that is, the water quality detection element is used to detect the quality of the liquid in the heating chamber 21a to ensure that safe and hygienic liquid is provided to the user. The embodiment of the present application does not specifically limit the type of the water quality detection element. For example, the water quality detection element can be an electrochemical sensor, a biosensor, etc.
[0088] The temperature control element 237 is connected to the tank body 21 and communicates with the heating chamber 21a; that is, part of the temperature control element 237 extends into the heating chamber 21a, so that the temperature control element 237 can detect the temperature of the liquid in the heating chamber 21a. The temperature control element 237 can be set on the tank top cover 212 or on the tank body 211, and this embodiment of the application does not specifically limit this.
[0089] Please continue reading Fig.10Further, in some embodiments, the temperature control element 237 includes a temperature control fixing plate 2371 and a temperature sensor 2372. Specifically, the temperature control fixing plate 2371 is connected to the tank body 21; that is, when the temperature control element 237 is installed on the tank body 211, the temperature control fixing plate 2371 can be fixed to the tank body 211 or the tank top cover 212 or the tank bottom cover 213 by welding, screwing, clamping, bonding, etc. The temperature control fixing plate 2371 is provided with a second through hole 2373 that is connected to the heating chamber 21a, so that the temperature sensor 2372 can extend into the heating chamber 21a through the second through hole 2373, so that the temperature sensor 2372 detects the temperature of the liquid in the heating chamber 21a. When the temperature of the liquid is too high, the controller 80 can control the heating element 22 to stop heating to protect the tank body 21.
[0090] Please continue reading Fig.10 In some embodiments, the heat and air conditioning machine 1 further includes a water outlet component 90 and a water pump 30 .
[0091] Specifically, the water outlet assembly 90 and the water pump 30 are both installed in the shell assembly 10, and the shell assembly 10 serves to protect the water outlet assembly 90 and the water pump 30; the water pump 30 is installed in the inner cavity 101, and the water pump 30 is connected to the heating chamber 21a to pump the water in the heating chamber 21a to the water outlet assembly 90. It can be understood that the water pump 30 is installed in the hot tank chamber 102 or the filter chamber 103, and the working principle of the water pump 30 is based on the conversion of negative pressure and pressure and the drive of the motor; that is, when the user needs to use hot water, the controller 80 controls the motor of the water pump 30 to work, and the motor drives the piston or impeller in the water pump 30 to rotate to form a negative pressure in the pump chamber, and this negative pressure causes the liquid in the heating chamber 21a to be sucked into the pump chamber; and as the piston or impeller continues to rotate, the liquid in the pump chamber is compressed and generates pressure, and this pressure drives the water to flow to the water outlet component 90; and the water outlet component 90 is connected to the faucet 2, so the liquid pumped by pressure is transported to the faucet 2 through the water outlet component 90, and the faucet 2 is opened for the user to use hot water.
[0092] See also Figure 1 Furthermore, the shell assembly 10 has an air outlet interface 104 and a hot water interface 105, wherein the end of the condenser 28 away from the tank body 21 is connected to the air outlet interface 104, and the water outlet assembly 90 is connected to the hot water interface 105. In this way, the faucet 2 can be connected to the air outlet interface 104 and the hot water interface 105 through the pipeline, thereby realizing the connection between the faucet 2 and the condenser 28 and the water outlet assembly 29, so that both water vapor and hot water can flow out of the faucet 2.
[0093] Based on the inner cavity 101, it is divided into a hot tank cavity 102 and a filter cavity 103. Fig.11In some embodiments, the heat purifier 1 further includes a heat insulation structure 70, which is disposed in the housing assembly 10 and cooperates with the inner wall of the housing assembly 10 to form a heat dissipation cavity 701. The heat dissipation cavity 701 is communicated with the hot tank cavity 102. The heat generated by the hot tank assembly 20 when working and accumulated in the hot tank cavity 102 can flow into the heat dissipation cavity 701, and then dissipated through the heat insulation structure 70, thereby increasing the heat dissipation area and improving the heat dissipation efficiency. The heat generated by the hot tank cavity 102 can be effectively collected and dissipated, thereby improving the heat dissipation efficiency. The heat insulation structure 70 and the housing assembly 10 separate the heat dissipation cavity 701 from the filter cavity 103, thereby ensuring that the air between the filter cavity 103 and the hot tank cavity 102 does not convect, thereby preventing the heat radiation of the hot tank assembly 20 from causing a temperature rise on the filter system 50 in the filter cavity 103 when working, thereby preventing the normal temperature water in the filter system 50 from being heated and causing the water temperature to rise too much, and at the same time, preventing the filter element in the filter system 50 from being affected by heat radiation and causing the service life to be reduced.
[0094] In addition, the integrated air conditioner and heat machine 1 of the present application can also enable the user to obtain the set water temperature; that is, the user can also obtain warm water with a temperature between normal temperature water and the hot water discharged from the hot tank assembly 20 from the faucet 2.
[0095] Specifically, the air purifier and heat integrated machine 1 of this embodiment also includes a first temperature sensor and a second temperature sensor; the filter assembly 50 also includes a pure water outlet pipe, one end of which is connected to the second filter element 53, and the other end has two branches, one branch transports pure water to the heating chamber 21a, and the other branch directly transports pure water to the faucet 2, and intersects with the water outlet assembly 90 at the faucet 2.
[0096] Among them, the booster pump 54 is connected to the pure water outlet pipe, and controls the operating power by adjusting its own duty cycle, thereby outputting different pure water flow rates. The duty cycle can be determined by the warm water gear selected by the user.
[0097] The faucet 2 serves as a water use terminal, and is used to receive pure water from the pure water outlet pipe and hot water from the water outlet assembly 90, and mix the two to form warm water of a set temperature.
[0098] The first temperature sensor can be installed in the tank body 21 or in the water outlet assembly 90 to monitor the temperature of the hot water in the heating chamber 20 a and feed the data back to the controller 80 .
[0099] The second temperature sensor is installed on the pure water outlet pipe to detect the temperature of the pure water in the pure water outlet pipe and feed back the data to the controller 80.
[0100] The controller 80 is used to receive data from the first temperature sensor and the second temperature sensor, and based on the temperature data, control the operating power of the water pump 30 and the booster pump 54, so as to adjust the flow of hot water and pure water, and finally form water with a user-set temperature value at the faucet 2. In this embodiment, the controller 80 controls the operating power of the water pump 30 and the booster pump 54 by controlling their duty cycle.
[0101] For example, the user selects a specific warm water level, such as the common 45° C. or 55° C., on the operation interface of the air conditioner and heat generator 1 according to the water temperature requirement.
[0102] When the user selects the warm water gear, the controller 80 will control the duty cycle of the booster pump 54 according to the preset corresponding relationship. For example, when the user selects the 45°C warm water gear, the duty cycle of the booster pump 54 is set to 85%; if the 55°C warm water gear is selected, the duty cycle of the booster pump 54 is set to 75%. Through the adjustment of this duty cycle, the booster pump 54 can deliver pure water to the faucet 2 at a corresponding pure water flow rate. The adjustment of the duty cycle is actually to control the working time ratio of the booster pump 54, and then control the flow rate of pure water, to ensure that an appropriate amount of low-temperature pure water participates in the mixing process.
[0103] When the booster pump 54 starts to deliver pure water, the first temperature sensor continuously monitors the temperature of the hot water in the heating chamber 20a, and the second temperature sensor synchronously detects the temperature of the pure water in the pure water outlet pipe. The two temperature sensors obtain temperature data in real time and transmit it to the controller 80 to provide temperature data for subsequent calculation and control of the duty cycle of the water pump 30.
[0104] After receiving the detection values of the pure water temperature and the hot water temperature, the controller 80 calculates the duty cycle required by the water pump 30 according to the internal preset control algorithm. According to the calculated duty cycle of the water pump 30, the controller 80 controls the water pump 30 so that the water pump 30 delivers hot water to the faucet 2 at the corresponding hot water flow rate. In this way, the flow rate of hot water can match the determined pure water flow rate, so that the two can reach the user-set temperature after mixing at the faucet 2.
[0105] The pure water delivered from the pure water outlet pipe and the hot water delivered from the water outlet assembly 80 meet at the faucet and are fully mixed. Since in the previous steps, the flow rates of pure water and hot water are adjusted by controlling the duty cycle of the booster pump 54 and the water pump 30, the two can form warm water of the set temperature according to the heat transfer and mixing principle when mixed. For example, at the 45°C warm water gear, after the pure water of the appropriate flow rate is mixed with the hot water of the corresponding flow rate, warm water of 45°C is finally stably output at the faucet 2, thereby meeting the needs of users.
[0106] Please continue reading Fig.11Furthermore, in some embodiments, the heat dissipation cavity 701 is connected to the top of the hot tank cavity 102 and is located above the filter cavity 103. The heat generated by the hot tank assembly 20 can be transferred to the heat dissipation cavity 701 through the connecting portion at the top, thereby achieving effective heat dissipation and reducing the impact of heat accumulation in the hot tank cavity 102 on the performance of the hot tank assembly 20. At the same time, the connection between the heat dissipation cavity 701 and the top of the hot tank cavity 102 also facilitates the flow of hot air above the hot tank assembly 20, avoiding excessive impact of the hot air on the hot tank assembly 20 itself. In this way, smooth airflow is ensured, heat dissipation efficiency is improved, and heat radiation from the hot tank assembly 20 to other electrical components in the heat and air purifier 1 is avoided when the hot tank assembly 20 is working.
[0107] The same or similar numbers in the drawings of this embodiment correspond to the same or similar parts; in the description of this application, it should be understood that if the terms "up", "down", "left", "right", etc. indicate directions or positional relationships based on the directions or positional relationships shown in the drawings, it is only for the convenience of describing this application and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, the terms describing the positional relationship in the drawings are only used for illustrative purposes and cannot be understood as limitations on this application. For ordinary technicians in this field, the specific meanings of the above terms can be understood according to specific circumstances.
[0108] The above are only preferred embodiments of the present application and are not intended to limit the present application. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present application should be included in the protection scope of the present application.
Claims
1. A hot tank assembly, characterized in that: The hot tank assembly comprises: A tank body having a heating chamber; A heating element, connected to the tank body, for heating the liquid in the heating chamber; A water pump, disposed at the bottom of the tank body and connected to the heating chamber, for pumping out the liquid in the heating chamber; an exhaust pipe connected to the tank body and in communication with the heating chamber, for exhausting water vapor generated in the heating chamber during the heating process; and The condenser has a condensation chamber capable of carrying cooling water, and part of the exhaust pipe is passed through the condensation chamber so that the water vapor in the exhaust pipe can be cooled and condensed by the cooling water when flowing through the condensation chamber.
2. The hot pot assembly of claim 1, wherein: The condenser has a water inlet and a water outlet, the water inlet and the water outlet are both connected to the condensation chamber, and the water inlet is used to receive the cooling water; The hot tank assembly also includes a water inlet pipe, one end of which is connected to the tank body and communicated with the heating chamber, and the other end of the water inlet pipe is connected to the condensing pipe and communicated with the water outlet, so that the cooling water in the condensing chamber flows into the heating chamber through the water outlet and the water inlet pipe.
3. The hot pot assembly of claim 2, wherein: In the width direction of the condenser tube, the water inlet and the water outlet are located on the same side or different sides of the condenser tube, and in the height direction of the condenser tube, the height of the water outlet is higher than the height of the water inlet; or, In the height direction of the condenser, the water inlet is arranged at the bottom of the condenser, and the water outlet is arranged at the top of the condenser.
4. The hot pot assembly of claim 2, wherein: In the height direction of the hot tank assembly, the height of the water inlet pipe is lower than the height of the exhaust pipe.
5. The hot pot assembly of claim 1, wherein: The condenser comprises: A condensation section, having a first condensation opening and a second condensation opening, and forming the condensation cavity inside, wherein the first condensation opening and the second condensation opening are in communication with the condensation cavity; The exhaust pipe passes through the condensation chamber from the first condensation opening and then passes through the second condensation opening, so that part of the exhaust pipe is located in the condensation chamber.
6. The hot pot assembly of claim 5, wherein: The condenser also includes: The support pipe section is connected to one end of the condensation section close to the tank body and abuts against the tank body. The support pipe section is communicated with the first condensation opening. The exhaust pipe is passed through the support pipe section and extends into the condensation chamber.
7. The hot pot assembly of claim 6, wherein: The condenser also includes: an air outlet pipe section connected to an end of the condensation section away from the tank body, the air outlet pipe section being in communication with the second condensation opening; Wherein, one end of the exhaust pipe away from the tank body extends into the exhaust pipe section through the second condensation opening.
8. The hot pot assembly of claim 7, wherein: The condensation section, the support pipe section and the air outlet pipe section are integrated components.
9. The hot pot assembly of claim 7, wherein: The support pipe section and the air outlet pipe section are tightly matched with the exhaust pipe, so that the outer pipe wall of the exhaust pipe is sealed with the inner pipe wall of the support pipe section and the inner pipe wall of the air outlet pipe section respectively.
10. The hot pot assembly of claim 1, wherein: The tank body comprises: Can body; a tank top cover connected to the top of the tank body; and A tank bottom cover is connected to the bottom of the tank body, and the tank bottom cover, the tank body and the tank top cover are arranged to form the heating chamber; Wherein, the tank top cover is provided with a first through hole, the exhaust pipe is connected to the tank top cover, and another part of the exhaust pipe extends into the heating chamber through the first through hole.
11. The hot pot assembly of claim 1, wherein: The tank body has a length direction, and the heating element extends along the length direction of the tank body.
12. The hot tank assembly according to any one of claims 1 to 11, characterized in that: The hot tank assembly also includes a detection assembly, which includes: A water level detection element, connected to the tank body and in communication with the heating chamber, for detecting the water level in the heating chamber; a water quality detection element connected to the tank body and in communication with the heating chamber, so as to detect the quality of the liquid in the heating chamber; and A temperature control element is connected to the tank body and communicated with the heating chamber to detect the temperature of the liquid in the heating chamber.
13. The hot pot assembly of claim 12, wherein: The water level detection element comprises a high water level probe and a low water level probe. The high water level probe is used to detect the position of the highest water level in the heating chamber, and the low water level probe is used to detect the position of the lowest water level in the heating chamber.
14. The hot pot assembly of claim 12, wherein: The temperature control element includes a temperature control fixing plate and a temperature sensor. The temperature control fixing plate is connected to the tank body, and a second through hole communicating with the heating chamber is provided on the temperature control fixing plate. The temperature sensor extends into the heating chamber through the second through hole to detect the temperature of the liquid in the heating chamber.
15. A heat and air conditioning machine, characterized in that: include: a housing assembly having an inner cavity; The hot tank assembly according to any one of claims 1 to 14, mounted in the inner cavity; as well as, A filtering system is installed in the inner cavity and is used to provide filtered liquid into the heating cavity of the hot pot assembly.
16. The heat and air conditioning machine according to claim 15, characterized in that: The inner cavity comprises a hot tank cavity and a filter cavity, the hot tank assembly is located in the hot tank cavity, and the filter system is located in the filter cavity; The heat and air purifier also includes: The heat-insulating structure is arranged in the shell component and cooperates with the inner wall of the shell component to form a heat-dissipating cavity, and the heat-dissipating cavity is communicated with the hot tank cavity.
17. The integrated heat and air conditioner according to claim 16, characterized in that: The heat dissipation cavity is communicated with the top of the hot tank cavity and is located above the filter cavity.
18. The integrated heat and air conditioner according to claim 15, characterized in that: The filtration system includes a booster pump, a filter element, and a pure water outlet pipe connected to the outlet of the filter element; the heat and water purifier also includes: A water outlet assembly, mounted on the housing assembly; A water pump, installed in the inner cavity and connected to the heating cavity, so as to pump the liquid in the heating cavity to the water outlet assembly; A faucet connected to the pure water outlet pipe and the water outlet assembly; A first temperature sensor, used to detect the temperature in the heating chamber; A second temperature sensor is used to detect the temperature in the pure water outlet pipe; and The controller is used to receive the detection values of the first temperature sensor and the second temperature sensor, and control the operating power of the water pump and the booster pump to form water of a set temperature value at the faucet.