Tea art machine
By introducing an instant heating pipe module and a detection component into the tea maker, combined with circulating cooling and temperature detection, the problem of low heating efficiency is solved, achieving rapid heating and precise temperature control, thus improving the user experience.
Patent Information
- Application Number
- CN202521165005.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-09
- Publication Date
- 2026-05-15
- Estimated Expiration
- 2035-06-09
AI Technical Summary
The heating devices in existing tea maker machines have low heating efficiency, which means that the water cannot be heated to the required temperature quickly, resulting in long waiting times for users to brew tea and a poor user experience.
The heating system uses an instant heating pipe module in conjunction with a detection element. The instant heating pipe module preheats the water to a preset temperature and controls the heating when water flow is detected. Combined with a circulating cooling system and temperature detection, precise temperature control is achieved.
It effectively shortens the tea brewing time, improves heating efficiency, and protects the instant heating pipe module through safety testing to ensure a safe and reliable heating process.
Smart Images

Figure CN224235183U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of tea ceremony machine technology, and in particular to a tea ceremony machine. Background Technology
[0002] With the development of technology, the use of tea utensils has become all-encompassing.
[0003] Currently, various tea brewing machines have appeared on the market. Generally, a tea brewing machine mainly consists of a water filling device and a main brewing vessel. The water filling device provides brewing water to the main brewing vessel to complete the tea brewing process. However, current water filling devices mainly use a heating element in the container to heat the water. This heating method is inefficient and cannot quickly heat the water to the required temperature. As a result, it is difficult to obtain brewing water at the required temperature in a short time, leading to a longer waiting time for users to brew tea and a poor user experience.
[0004] Therefore, it is necessary for those skilled in the art to provide a tea-making machine that can effectively shorten the tea-brewing waiting time. Utility Model Content
[0005] The purpose of this application is to provide a tea brewing machine that can effectively shorten the tea brewing waiting time.
[0006] To achieve the above objectives, this application provides a tea ceremony machine, including a water adding device, which includes:
[0007] A container with a heating module, the container is used to hold water, and the heating module is used to heat the water in the container;
[0008] The instantaneous heat pipe module is connected to the container via a third water pipe. The heat pipe module is used to preheat the water entering the container to a preset temperature.
[0009] The water intake pump draws water from the outside through the first water pipe and is connected to the instant heating pipe module through the second water pipe.
[0010] The first detection device is installed on the second water pipe and is used to detect whether water is flowing through the second water pipe.
[0011] The second detection device is installed in the third water pipe and is used to detect whether water is flowing through the third water pipe.
[0012] The control module is communicatively connected to the first detection element, the second detection element, and the instant heating pipe module. It is used to control the instant heating pipe module to work when the first detection element detects water flow through the second water pipe and the second detection element detects water flow through the third water pipe.
[0013] In some embodiments, the water supply device further includes a sealed cavity with an air inlet and an air outlet, and a container is located inside the sealed cavity, while the heat pipe module and the water pump are located outside the sealed cavity.
[0014] In some embodiments, a circulating cooling water pump and a heat dissipation module are provided in the sealed cavity. The circulating cooling water pump draws water from the container through a fourth water pipe, and the circulating cooling water pump is connected to the heat dissipation module through a fifth water pipe. The heat dissipation module is connected to the container through a sixth water pipe. The water in the container is cooled by the heat dissipation module under the power of the circulating cooling water pump and then injected into the container.
[0015] In some embodiments, the container is equipped with a temperature detection device that is communicatively connected to the control module. The temperature detection device is used to detect the temperature of the water inside the container and feeds back the detected temperature to the control module so that the control module can control the operation of the circulating cooling water pump and the heat dissipation module.
[0016] In some embodiments, the heat dissipation module includes:
[0017] The housing is fixed inside the sealed cavity;
[0018] A heat dissipation coil is located inside the casing. One end of the heat dissipation coil is connected to the fifth water pipe, and the other end of the heat dissipation coil is connected to the sixth water pipe.
[0019] The heat dissipation blades are rotatably disposed inside the housing and oriented toward the heat dissipation coil, and are used to rotate relative to the housing to cool the water in the heat dissipation coil.
[0020] In some embodiments, the water supply device further includes:
[0021] A hot water pump draws water from a container through a fourth water pipe.
[0022] The hot water nozzle is connected to the hot water pump via the seventh water pipe. The hot water nozzle is used to provide hot water.
[0023] The tea-brewing water pump draws water from the container through the fourth water pipe.
[0024] The tea infuser is connected to the tea infuser pump via the eighth water pipe. The tea infuser is used to supply brewing water to the main brewer.
[0025] In some embodiments, the water supply device further includes a steam condenser, one end of which is connected to the container via a ninth water pipe, and the other end of which is connected to a tenth water pipe. The steam condenser is used to condense the water vapor generated in the container and discharge it through the tenth water pipe.
[0026] In some embodiments, the tea maker also includes a recycling device, which includes:
[0027] Wastewater tanks are used to hold wastewater;
[0028] A partition structure is installed in the wastewater tank to prevent tea residue from entering.
[0029] The first trigger and the first sensor are fixed inside the partition structure. The first sensor is located in the tea machine and outside the wastewater tank. The first sensor is communicatively connected to the control module. The first trigger is used to trigger the first sensor to emit a first sensing signal when the wastewater tank reaches a designated position inside the tea machine, and transmit it to the control module.
[0030] The second trigger and the second sensor are movably disposed within the partition structure. The second trigger is used to follow the rise and fall of the water level in the wastewater tank. The second sensor is disposed on the tea machine and located outside the wastewater tank. The second sensor is communicatively connected to the control module. The second trigger is used to trigger the second sensor to emit a second sensing signal when the water level in the wastewater tank reaches a specified level, and transmit it to the control module.
[0031] In some embodiments, the recycling device further includes a prompting module, which is communicatively connected to the control module. The prompting module is used to prompt the user to clean the tea leaves in the main brewer when the control module receives a first sensing signal but does not receive a second sensing signal.
[0032] In some embodiments, the recycling device further includes:
[0033] A water receiving tray, connected to a wastewater tank, is used to collect wastewater;
[0034] A support cover, located on the water receiving tray, is used to hold the fairness cup;
[0035] The tea residue bin is located inside the wastewater tank. The bottom of the tea residue bin is equipped with a filter screen to collect the tea residue.
[0036] Compared to the aforementioned background technology, the tea maker provided in this application includes a water filling device, which comprises a container with a heating module, an instant heating pipe module, a water pump, a first detection element, a second detection element, and a control module. The container holds water, and the heating module heats the water in the container. The instant heating pipe module is connected to the container via a third water pipe and preheats the water entering the container to a preset temperature. The water pump draws water from the outside via the first water pipe and is connected to the instant heating pipe module via a second water pipe. The first detection element is located on the second water pipe and detects whether water flows through it. The second detection element is located on the third water pipe and detects whether water flows through it. The control module is communicatively connected to the first detection element, the second detection element, and the instant heating pipe module, and controls the instant heating pipe module to operate when the first detection element detects water flow in the second water pipe and the second detection element detects water flow in the third water pipe.
[0037] The beneficial effects of this tea maker design mainly include: by installing an instant heating pipe module at the front end of the water inlet, the water entering the container can be preheated to a certain temperature before being poured in for further heating. This effectively shortens the time it takes for the water to boil, thus reducing the waiting time for brewing tea. Simultaneously, a first and second detection element are installed at the front and rear ends of the instant heating pipe module, respectively. When the first detection element detects water flow through the second water pipe, and the second detection element detects water flow through the third water pipe, the control module activates the instant heating pipe module. This not only ensures the safe operation of the instant heating pipe module but also determines whether there is water in the water inlet pipe at the front of the container, thus promptly reminding the operator to change the water. Attached Figure Description
[0038] To more clearly illustrate the technical solutions in the embodiments of this application or related technologies, the drawings used in the description of the embodiments or related technologies will be briefly introduced below. Obviously, the drawings described below are only embodiments of this application. For those skilled in the art, other drawings can be obtained based on the provided drawings without creative effort.
[0039] Figure 1 This is a schematic diagram of the water filling device of the tea machine in the embodiments of this application;
[0040] Figure 2 for Figure 1 The diagram shows the water temperature control block diagram of the water supply device.
[0041] Figure 3 This is a schematic diagram of the recycling device structure of the tea machine in the embodiments of this application;
[0042] Figure 4 This is a schematic diagram of the internal structure of the tea-making machine in the embodiments of this application;
[0043] Figure 5 This is a schematic diagram of the external structure of the tea-making machine in the embodiments of this application.
[0044] in:
[0045] 10-Water supply device, 11-Container, 12-Heating module, 13-Instantaneous heating pipe module, 14-Water pump, 15-First detection component, 16-Second detection component, 17-First water pipe, 18-Second water pipe, 19-Third water pipe, 110-Sealed cavity, 111-Air inlet, 112-Air outlet, 113-Circulating cooling water pump, 114-Heat dissipation module, 1141-Housing shell, 1142-Heat dissipation coil, 1143-Heat dissipation blade, 1 15-Fourth water pipe, 116-Fifth water pipe, 117-Sixth water pipe, 118-Temperature detection component, 119-Boiling water pump, 120-Boiling water nozzle, 121-Tea brewing water pump, 122-Tea brewing nozzle, 123-Seventh water pipe, 124-Eighth water pipe, 125-Steam condenser, 126-Ninth water pipe, 127-Tenth water pipe, 128-First water level sensor, 129-Second water level sensor, 130-Control module;
[0046] 20-Recycling device, 21-Wastewater tank, 22-Partition structure, 23-First trigger, 24-First sensor, 25-Second trigger, 26-Second sensor, 27-Water receiving tray, 271-Water outlet, 28-Support cover, 29-Tea residue box, 210-Filter screen;
[0047] 30-Main bubbler;
[0048] 40 - Sports equipment;
[0049] 50-Fair Cup;
[0050] 60-Water bottle storage cabinet;
[0051] 70 - Outer shell. Detailed Implementation
[0052] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0053] To enable those skilled in the art to better understand the present application, the present application will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0054] It should be noted that the directional terms such as "upper end," "lower end," "left side," and "right side" mentioned below are defined based on the accompanying drawings in the instruction manual.
[0055] Please see Figure 1 and Figure 2The tea maker provided in this application includes a water filling device 10, which includes a container 11 with a heating module 12, an instant heating pipe module 13, a water pump 14, a first detection element 15, a second detection element 16, and a control module 130.
[0056] Container 11 is a stainless steel container used to hold water for brewing tea, and heating module 12 is used to heat the water in container 11.
[0057] The heat pipe module 13 is connected to the container 11 via the third water pipe 19, and the heat pipe module 13 is used to preheat the water entering the container 11 to a preset temperature.
[0058] The water pump 14 draws water from the outside through the first water pipe 17. The water pump 14 is connected to the instant heating pipe module 13 through the second water pipe 18 so as to pump water into the instant heating pipe module 13 through the second water pipe 18, and then inject water into the container 11 through the third water pipe 19.
[0059] The first detection element 15 is installed on the second water pipe 18 and is used to detect whether water flows through the second water pipe 18; the second detection element 16 is installed on the third water pipe 19 and is used to detect whether water flows through the third water pipe 19.
[0060] The control module 130 is communicatively connected to the first detection element 15, the second detection element 16 and the instant heating pipe module 13. The control module 130 is used to control the instant heating pipe module 13 to work when the first detection element 15 detects that water is flowing through the second water pipe 18 and the second detection element 16 detects that water is flowing through the third water pipe 19.
[0061] In other words, the control module 130 controls the heat pipe module 13 to work only when both the first detection element 15 and the second detection element 16 detect water flow. If neither detection element detects water flow, the heat pipe module 13 will not work.
[0062] In this way, by setting the instant heating pipe module 13 at the front end of the water inlet of container 11, the water entering container 11 can be preheated to a certain temperature before being injected into container 11 for further heating. This can effectively shorten the time it takes for the heating container 11 to boil the water, thereby shortening the waiting time for brewing tea. At the same time, a first detection element 15 and a second detection element 16 are respectively set at the front and rear ends of the instant heating pipe module 13. When the first detection element 15 detects water flowing through the second water pipe 18 and the second detection element 16 detects water flowing through the third water pipe 19, the control module 130 controls the instant heating pipe module 13 to work. This can both protect the working safety of the instant heating pipe module 13 and determine whether there is water in the water inlet pipe at the front end of container 11, thus reminding the operator to change the water in time.
[0063] In some embodiments, the water supply device 10 further includes a sealed cavity 110, which has an air inlet 111 and an air outlet 112. The container 11 is located inside the sealed cavity 110, while the heat pipe module 13 and the water pump 14 are located outside the sealed cavity 110.
[0064] As can be seen, the container 11 is located in the sealed cavity 110, which can ensure the temperature of the brewing water in the container 11, so that the heated brewing water does not easily lose temperature.
[0065] In some embodiments, the sealed cavity 110 is provided with a circulating cooling water pump 113 and a heat dissipation module 114. The circulating cooling water pump 113 draws water from the container 11 through a fourth water pipe 115. The circulating cooling water pump 113 is connected to the heat dissipation module 114 through a fifth water pipe 116. The heat dissipation module 114 is connected to the container 11 through a sixth water pipe 117. The water in the container 11 is cooled by the heat dissipation module 114 under the power of the circulating cooling water pump 113 and then injected into the container 11.
[0066] In order to facilitate the adjustment of the water temperature in container 11 to the set temperature, container 11 is connected to a circulating cooling water pump 113 and a heat dissipation module 114. Under the power of the circulating cooling water pump 113, the water in container 11 is pumped to the heat dissipation module 114. After being cooled by air by the heat dissipation module 114, it is returned to container 11. In this way, the water in container 11 can be cooled by air cooling.
[0067] The control device can control the operation of the circulating cooling water pump 113 and the heat dissipation module 114 according to the temperature of the water in the container 11, until the water temperature in the container 11 reaches the set water temperature and then stops working.
[0068] In some embodiments, the container 11 is provided with a temperature detection element 118, which is communicatively connected to the control module 130. The temperature detection element 118 is used to detect the temperature of the water in the container 11 and feed the detected temperature back to the control module 130 so that the control module 130 can control the operation of the circulating cooling water pump 113 and the heat dissipation module 114.
[0069] Furthermore, considering that different teas require different brewing temperatures—for example, it is generally recommended to use water at 80℃ to 85℃ to brew green tea, while the brewing temperature for black tea is usually 90℃ to 95℃—the control module 130 provided in this application includes a temperature data receiving module, a first control module, and a second control module to achieve more precise temperature control.
[0070] The temperature data receiving module, the first control module, and the second control module are communicatively connected. The temperature data receiving module is communicatively connected to the temperature detection element 118 and is used to receive the temperature data detected by the temperature detection element 118. The first control module is also communicatively connected to the instantaneous heating pipe module 13 and the heating module 12 and is used to control the operation of the instantaneous heating pipe module 13 and the heating module 12. The second control module is also communicatively connected to the circulating cooling water pump 113 and the heat dissipation module 114 and is used to control the operation of the circulating cooling water pump 113 and the heat dissipation module 114 so that the water temperature in the container 11 reaches the set water temperature.
[0071] With this setup, the control module 130 uses the temperature information fed back by the temperature sensor 118 to control the operation of the instant heating pipe module 13, the heating module 12, the circulating cooling water pump 113, and the heat dissipation module 114 until the water temperature in the container 11 reaches the set temperature, at which point the operation stops. This allows for setting different brewing temperatures according to different teas. The correct brewing temperature ensures that the effective components in the tea dissolve appropriately, while preserving the aroma and taste of the tea, thus enhancing the user experience.
[0072] In some embodiments, the heat dissipation module 114 includes a housing 1141, a heat dissipation coil 1142, and heat dissipation blades 1143. The housing 1141 is fixed inside the sealed cavity 110. The heat dissipation coil 1142 is disposed within the housing 1141. One end of the heat dissipation coil 1142 is connected to a fifth water pipe 116, and the other end is connected to a sixth water pipe 117. The heat dissipation coil 1142 can be an S-shaped coil or a spiral coil. The heat dissipation blades 1143 are rotatably disposed within the housing 1141 and oriented towards the heat dissipation coil 1142. The heat dissipation blades 1143 are used to rotate relative to the housing 1141 to cool the water in the heat dissipation coil 1142.
[0073] In this way, the water in the heat dissipation coil 1142 is cooled by air through the rotation of the heat dissipation blades 1143 relative to the housing 1141. At the same time, the sealed cavity 110 has an air inlet 111 and an air outlet 112, which, together with the air cooling module 114, achieves cooling of the water in the container 11 through air circulation.
[0074] In some embodiments, the water supply device 10 further includes a hot water pump 119, a hot water nozzle 120, a tea-brewing pump 121, and a tea-brewing nozzle 122.
[0075] The boiling water pump 119 draws water from the container 11 through the fourth water pipe 115, and the boiling water nozzle 120 is connected to the boiling water pump 119 through the seventh water pipe 123. The boiling water nozzle 120 is used to provide boiling water. The tea brewing water pump 121 draws water from the container 11 through the fourth water pipe 115, and the tea brewing nozzle 122 is connected to the tea brewing water pump 121 through the eighth water pipe 124. The tea brewing nozzle 122 is used to provide brewing water to the main brewing device 30.
[0076] In some embodiments, the water supply device 10 further includes a steam condenser 125. One end of the steam condenser 125 is connected to the container 11 via a ninth water pipe 126, and the other end of the steam condenser 125 is connected to a tenth water pipe 127. The steam condenser 125 is used to discharge the water vapor generated when the water in the container 11 boils, and to accelerate the condensation of the water vapor, which is then discharged through the tenth water pipe 127.
[0077] To facilitate control of the water volume in container 11, the water supply device 10 also includes a first water level sensor 128 and a second water level sensor 129.
[0078] The first water level sensor 128 is installed on the container 11 and is used to detect whether the water level in the container 11 has reached the first water level. The second water level sensor 129 is installed on the container 11 and is used to detect whether the water level in the container 11 has reached the second water level, which is lower than the first water level.
[0079] Based on the above, the control module 130 is communicatively connected to the first water level sensor 128, the second water level sensor 129, and the water intake pump 14. The control module 130 is used to control the start and stop of the water intake pump 14. Specifically, when the control module 130 receives a signal from the second water level sensor 129, the control module 130 controls the water intake pump 14 to start, thereby pumping water into the container 11. When the control module 130 receives a signal from the first water level sensor 128, the control module 130 controls the water intake pump 14 to stop, thereby stopping the pumping of water into the container 11.
[0080] Please refer to the following: Figure 3 The tea maker also includes a recycling device 20, which is located below the main brewing vessel 30 and is used to collect tea residue and wastewater.
[0081] Specifically, the recycling device 20 includes a wastewater tank 21, a partition structure 22, a first trigger 23, a first sensor 24, a second trigger 25, and a second sensor 26. The wastewater tank 21 is used to hold wastewater. A partition structure 22 is located in the wastewater tank 21 and is used to block tea residue. A first trigger 23 is fixed inside the partition structure 22. A first sensor 24 is located in the tea machine and outside the wastewater tank 21. The first sensor 24 is communicatively connected to the control module 130. The first trigger 23 is used to trigger the first sensor 24 to emit a first sensing signal when the wastewater tank 21 reaches a designated position inside the tea machine, and transmits it to the control module 130. A second trigger 25 is movably located inside the partition structure 22 and is used to follow the rise and fall of the water level in the wastewater tank 21. A second sensor 26 is located in the tea machine and outside the wastewater tank 21. The second sensor 26 is communicatively connected to the control module 130. The second trigger 25 is used to trigger the second sensor 26 to emit a second sensing signal when the water level in the wastewater tank 21 reaches a designated water level, and transmits it to the control module 130.
[0082] It can be seen that the first trigger 23 and the first sensor 24 work together to indicate whether the wastewater tank 21 is in the set position. If the wastewater tank 21 is not in the set position, the sludge cleaning function is not executed. The second trigger 25 and the second sensor 26 work together to indicate the wastewater level. When the second trigger 25 is sensed by the second sensor 26, the sludge cleaning function is not executed.
[0083] In other words, when the wastewater tank 21 reaches the designated position inside the tea brewing machine (the wastewater tank 21 is pushed into place), and when the water level in the wastewater tank 21 has not reached the designated water level, the tea residue can be cleaned. That is, at this time, the tea residue in the main brewer 30 can be poured into the tea residue box 29 in the wastewater tank 21. Alternatively, when the control module 130 receives the first sensing signal but does not receive the second sensing signal, it can prompt the user to clean the tea residue in the main brewer 30.
[0084] Of course, depending on actual needs, the first sensing element 24 and the second sensing element 26 can both be reed switches. Correspondingly, the first trigger element 23 and the second trigger element 25 are both magnetic elements. The reed switch is configured to send a signal to the control module 130 under the triggering action of the corresponding magnetic element, so that the control module 130 reminds the user to clean the tea leaves in the main brewer 30.
[0085] In some embodiments, the recycling device 20 further includes a prompting module, which is communicatively connected to the control module 130. The prompting module is used to prompt the user to clean the tea residue in the main brewer 30 when the control module 130 receives a first sensing signal but does not receive a second sensing signal.
[0086] In addition, the recycling device 20 also includes a water receiving tray 27, a support cover 28, and a tea residue box 29. The water outlet 271 of the water receiving tray 27 is connected to the wastewater tank 21. The water outlet 271 is used to guide the wastewater from the water receiving tray into the wastewater tank 21. The water receiving tray 27 is used to collect the wastewater. The support cover 28 is provided on the water receiving tray 27 and is used to place the fairness cup 50. The tea residue box 29 is provided inside the wastewater tank 21. The bottom of the tea residue box 29 is provided with a filter screen 210, which is used to collect tea residue.
[0087] Using the aforementioned large-capacity recycling device 20 makes it easier to collect tea residue wastewater.
[0088] Please refer to the following: Figure 4 and Figure 5 The tea maker also includes a motion device 40, which is located within the outer casing 70. The motion device 40 controls the posture of the main brewing vessel 30 to adapt to the corresponding tea brewing program, such as loading tea, brewing, pouring, and rinsing. Specifically:
[0089] Filling the tea: The first motion mechanism of the motion device 40 controls the gaiwan of the main brewer 30 to be in a horizontal position, and the second motion mechanism of the motion device 40 controls the top cover of the main brewer 30 to be in an open state. In this way, the tea leaves to be brewed can be filled from the top of the gaiwan.
[0090] Brewing: The first motion mechanism of the motion device 40 controls the gaiwan of the main brewer 30 to be in a horizontal position, and the second motion mechanism of the motion device 40 controls the top cover of the main brewer 30 to be in a closed state. Water is poured into the main brewer 30, and the brewing water flows into the gaiwan to brew the tea.
[0091] Pouring tea: The first motion mechanism of the motion device 40 controls the gaiwan of the main brewer 30 to be in a vertical position, and the second motion mechanism of the motion device 40 controls the top cover of the main brewer 30 to be in a closed state, so as to pour the tea soup (or water) in the main brewer 30 into the fairness cup 50.
[0092] Cleaning: The first motion mechanism of the motion device 40 controls the gaiwan of the main brewer 30 to be in the tilting position, and the second motion mechanism of the motion device 40 controls the top cover of the main brewer 30 to be in the open state, so as to pour the tea mixture in the main brewer 30 into the waste bin.
[0093] As can be seen, this application specifically includes a motion device 40 for controlling the posture of the main brewer 30 in the tea brewing program of a tea maker. Thus, the first and second motion mechanisms of the motion device 40 control the movements of the gaiwan and the lid respectively, thereby adapting to the tea brewing program of a tea maker, which includes loading tea, brewing, dispensing, and cleaning. Furthermore, the aforementioned tea brewing device has a simple structure, is easy to operate, and has a low cost, making it suitable for tea makers with increasingly demanding tea brewing requirements.
[0094] In addition, the tea maker also includes a housing 70, in which a water-filling device 10 is housed. A water bottle storage cabinet 60 is located below the housing 70, used to store water bottles that supply water to the water-filling device 10. This design, which accommodates water bottles, eliminates the hassle of frequent refilling.
[0095] It should be noted that in this specification, relational terms such as first and second are used only to distinguish one entity from several other entities, and do not necessarily require or imply any such actual relationship or order between these entities.
[0096] The tea ceremony machine provided in this application has been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of this application. The descriptions of the embodiments above are only for the purpose of helping to understand the solution and core ideas of this application. It should be noted that those skilled in the art can make several improvements and modifications to this application without departing from the principles of this application, and these improvements and modifications also fall within the protection scope of this application.
Claims
1. A tea ceremony machine, characterized in that, Includes a water supply device, the water supply device comprising: A container with a heating module, the container being used to hold water, the heating module being used to heat the water in the container; The instant heating pipe module is connected to the container via a third water pipe and is used to preheat the water entering the container to a preset temperature. A water intake pump, which draws water from the outside through a first water pipe, and is connected to the instant heating pipe module through a second water pipe; The first detection element is installed in the second water pipe and is used to detect whether water is flowing through the second water pipe. The second detection device is installed in the third water pipe and is used to detect whether water is flowing through the third water pipe. The control module is communicatively connected to the first detection element, the second detection element, and the instant heating pipe module, and is used to control the instant heating pipe module to work when the first detection element detects that water is flowing through the second water pipe and the second detection element detects that water is flowing through the third water pipe.
2. The tea ceremony machine as described in claim 1, characterized in that, The water supply device also includes a sealed cavity, which has an air inlet and an air outlet. The container is located inside the sealed cavity, and the instant heating pipe module and the water pump are located outside the sealed cavity.
3. The tea ceremony machine as described in claim 2, characterized in that, The sealed cavity is equipped with a circulating cooling water pump and a heat dissipation module. The circulating cooling water pump draws water from the container through a fourth water pipe. The circulating cooling water pump is connected to the heat dissipation module through a fifth water pipe. The heat dissipation module is connected to the container through a sixth water pipe. The water in the container is cooled by the heat dissipation module under the power of the circulating cooling water pump and then injected into the container.
4. The tea ceremony machine as described in claim 3, characterized in that, The container is equipped with a temperature detection device, which is communicatively connected to the control module. The temperature detection device is used to detect the temperature of the water in the container and feeds back the detected temperature to the control module so that the control module can control the operation of the circulating cooling water pump and the heat dissipation module.
5. The tea ceremony machine as described in claim 3, characterized in that, The heat dissipation module includes: The housing is fixed inside the sealed cavity; A heat dissipation coil is disposed inside the housing, one end of the heat dissipation coil is connected to the fifth water pipe, and the other end of the heat dissipation coil is connected to the sixth water pipe; The heat dissipation blades are rotatably disposed inside the housing and oriented toward the heat dissipation coil, and are used to rotate relative to the housing to cool and dissipate heat from the water in the heat dissipation coil.
6. The tea ceremony machine as described in claim 1, characterized in that, The water supply device also includes: A hot water pump, which draws water from the container through a fourth water pipe; A hot water nozzle is connected to the hot water pump via a seventh water pipe. The hot water nozzle is used to provide hot water. A tea-brewing water pump, which draws water from the container through the fourth water pipe; The tea infuser is connected to the tea infuser pump via an eighth water pipe and is used to supply brewing water to the main brewer.
7. The tea ceremony machine as described in claim 1, characterized in that, The water supply device also includes a steam condenser. One end of the steam condenser is connected to the container via a ninth water pipe, and the other end of the steam condenser is connected to a tenth water pipe. The steam condenser is used to condense the water vapor generated in the container and discharge it through the tenth water pipe.
8. The tea ceremony machine as described in any one of claims 1-7, characterized in that, The tea ceremony machine also includes a recycling device, which comprises: Wastewater tanks are used to hold wastewater; A partition structure is provided in the wastewater tank to prevent tea residue from entering. A first trigger and a first sensor, wherein the first trigger is fixed inside the partition structure, and the first sensor is disposed in the tea machine and located outside the wastewater tank, the first sensor is communicatively connected to the control module, and the first trigger is used to trigger the first sensor to emit a first sensing signal when the wastewater tank reaches a designated position inside the tea machine, and transmit it to the control module. The second trigger and the second sensor are movably disposed within the partition structure. The second trigger is used to follow the rise and fall of the water level in the wastewater tank. The second sensor is disposed on the tea machine and located outside the wastewater tank. The second sensor is communicatively connected to the control module. The second trigger is used to trigger the second sensor to emit a second sensing signal when the water level in the wastewater tank reaches a specified level, and transmit it to the control module.
9. The tea ceremony machine as described in claim 8, characterized in that, The recycling device also includes a prompting module, which is communicatively connected to the control module. The prompting module is used to prompt the user to clean the tea leaves in the main brewer when the control module receives the first sensing signal but does not receive the second sensing signal.
10. The tea ceremony machine as described in claim 8, characterized in that, The recycling device also includes: A water receiving tray, connected to the wastewater tank, is used to collect wastewater; A support cover, located on the water receiving tray, is used to hold the fairness cup; A tea residue box is located inside the wastewater tank. The bottom of the tea residue box is equipped with a filter screen, which is used to collect tea residue.