Cooking equipment
By using water control components in the cooking equipment to automatically control the water inlet state in the steam generation chamber, the problems of high noise and slow steam generation in existing equipment are solved, and a more efficient and quiet cooking process is achieved.
Patent Information
- Application Number
- CN202421986377.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-15
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2034-08-15
AI Technical Summary
Existing cooking equipment with steam heating function is noisy during operation and the steam generation speed is slow, resulting in a longer cooking time.
A cooking device is designed, using a water control component to control the water inlet state in the steam generating chamber, and the temperature control valve component of the heating plate opens or closes the passage between the water supply end and the steam generating chamber to realize the automatic water inlet function and avoid manual operation by the user.
It reduces noise during operation of the cooking equipment, improves steam generation speed, shortens cooking time, and enhances the comfort and safety of the equipment.
Smart Images

Figure CN222942131U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of household appliances, and in particular to a cooking device. Background Art
[0002] In the related art, for cooking devices with steam heating function, a water pump is usually required to supply water to the steam generating chamber. When the water pump is running, the noise generated by the water pump will affect the user's living environment. In addition, the current cooking devices generate steam at a slow speed, resulting in a longer cooking time. Utility Model Content
[0003] The present application aims to solve at least one of the technical problems existing in the prior art or related art.
[0004] In view of this, the present application provides a cooking device, which includes: a shell; a steam generating component, which is arranged in the shell, and the steam generating component includes a heating plate and a steam generating chamber, and the heating plate is used to heat water in the steam generating chamber to generate steam; a water control component, which is connected to the shell, and when the temperature of the heating plate reaches a set temperature, the water control component is used to connect the water supply end with the steam generating chamber, and when the temperature of the heating plate is lower than the set temperature, the water control component closes the passage between the water supply end and the steam generating chamber.
[0005] In this technical solution, water from the water supply end can enter the steam generating chamber through a pipeline. The steam generating assembly is located in the housing, and the steam generating assembly includes a heating plate and a steam generating chamber. For example, the heating plate includes a plate body and a heating element, and the heating element can be a heating device such as a heating tube. The heating plate can heat the water to steam by increasing the temperature. The cooking device has a cooking chamber, and the steam in the steam generating chamber can heat the food for cooking.
[0006] The water control component is connected to the shell. When the cooking device is in working state, the heating plate is heated and heated. When the temperature of the heating plate reaches the set temperature, the passage between the water supply end and the steam generating chamber is opened, and the water at the water supply end can enter the steam generating chamber. In this case, the heating plate is in a relatively high temperature state, and the water entering the steam generating chamber is heated and evaporates rapidly to form steam. At the same time, the temperature of the heating plate is gradually reduced through heat exchange of liquid water in the steam generating chamber. When the temperature of the heating plate is lower than the set temperature, the water control component closes the passage between the water supply end and the steam generating chamber, and the water at the water supply end stops entering the steam generating chamber. In this case, the heating plate can continue to heat up until the temperature of the heating plate reaches the set temperature again. The water control component opens the passage between the water supply end and the steam generating chamber again, and the above process is repeated.
[0007] In this way, the water control component can open or close the passage between the water supply end and the steam generating chamber according to the temperature of the heating plate, so that the cooking device can control the water inlet state in the steam generating chamber through the temperature of the heating plate. The cooking device can realize the automatic water inlet function, avoiding the user to manually open or close the water inlet, reducing the risk of the heating plate burning dry for a long time, and improving the convenience and safety of the water supply of the cooking device. In addition, the water control component ensures that a certain amount of water enters the steam generating chamber, and the heating plate heats the certain amount of water, which reduces the time of steam generation, increases the speed of steam generation by the heating plate, improves the steam generation efficiency in the steam generating chamber, and shortens the cooking time.
[0008] By supplying water to the steam generating chamber in the above manner, there is no need to set up a water pump to provide water intake power, thereby reducing the noise of the cooking device during operation and improving the user's comfort in using the cooking device.
[0009] In some technical solutions provided in the present application, optionally, the water control component includes: a valve component and a drive component. The valve component is connected to the housing, and the valve component is used to open or close the passage between the water supply end and the steam generating chamber. The drive component is connected to the heating plate, and when the temperature of the heating plate reaches a set temperature, the drive component is used to push the valve component so that the valve component opens the passage between the water supply end and the steam generating chamber, and when the temperature of the heating plate is lower than the set temperature, the valve component is reset and closes the passage between the water supply end and the steam generating chamber.
[0010] In this technical solution, the drive assembly is connected to the heating plate. When the temperature of the heating plate does not reach the set temperature, the drive assembly can be against the valve assembly, or a distance can be set between the drive assembly and the valve assembly. When the temperature of the heating plate reaches the set temperature, the drive assembly moves toward the valve assembly, so that the drive assembly can push the valve assembly, and the valve assembly opens the passage between the water supply end and the steam generating chamber, so that the water supply end is connected to the steam generating chamber, and the water at the water supply end enters the steam generating chamber. When the temperature of the heating plate is lower than the set temperature, the valve assembly resets and closes the passage between the water supply end and the steam generating chamber, and the water at the water supply end stops entering the steam generating chamber.
[0011] In this way, the movement of the valve assembly is controlled by the movement of the driving assembly. The control method is direct and the structure is flexible, which facilitates the installation of the water control assembly and the maintenance and replacement in subsequent use.
[0012] In some technical solutions provided in the present application, optionally, the valve assembly includes a rubber elastic member or a silicone elastic member.
[0013] In this technical solution, the valve assembly is an elastic member, so that the valve assembly has a stable and highly elastic elastic effect, and the valve assembly is easy to deform. A small driving force can cause the valve assembly to deform, thereby improving the triggering flexibility. When the driving assembly stops pushing the valve assembly, the valve assembly can automatically reset. In addition, the valve assembly is soft in texture, so the valve assembly can fit tightly with the passage, thereby effectively sealing the passage between the water supply end and the steam generation chamber.
[0014] In some technical solutions provided in the present application, optionally, the valve assembly includes: a connecting portion, a deformation portion and a first sealing portion. The connecting portion is connected to the housing. The deformation portion is connected to the connecting portion, and a portion of the deformation portion is bent in a direction away from the drive assembly. The first sealing portion is connected to the deformation portion, and the deformation portion is located between the connecting portion and the first sealing portion. When the temperature of the heating plate reaches a set temperature, the first sealing portion opens the passage between the water supply end and the steam generating chamber. When the temperature of the heating plate is lower than the set temperature, the first sealing portion seals the passage between the water supply end and the steam generating chamber.
[0015] In this technical solution, the connecting portion is connected to the housing. For example, the connecting portion and the housing can be connected by a connecting member, which can be a screw or a pin. Alternatively, the connecting portion and the housing are respectively provided with a buckle and a slot structure, so that the connecting portion is connected to the housing by a snap connection.
[0016] The deformation part is connected to the connecting part, the first sealing part is connected to the deformation part, and the deformation part is located between the connecting part and the first sealing part. Exemplarily, the connecting part can be an annular structure, so that the connecting part is arranged around the outer periphery of the deformation part. Or the number of the connecting parts can be multiple, and the multiple connecting parts are arranged around the outer periphery of the deformation part, and the multiple connecting parts are evenly distributed. A part of the deformation part is bent in the direction away from the drive component, and the bending direction is conducive to the deformation part to provide a pulling force toward the drive component to the first sealing part when it is deformed, so that the first sealing part has a tendency to move in the reset direction.
[0017] The shape of the matching position of the first sealing part and the passage (the passage between the water supply end and the steam generating chamber is hereinafter referred to as the passage) is adapted to the shape of the passage. For example, the end shape of the first sealing part can be conical or umbrella-shaped, so that the end of the first sealing part can cover the passage. When the temperature of the heating plate reaches the set temperature, the first sealing part opens the passage, causing the valve assembly to deform and open the passage, thereby allowing the water at the water supply end to enter the steam generating chamber through the passage. When the temperature of the heating plate is lower than the set temperature, the first sealing part seals the passage, causing the valve assembly to reset and close the passage, thereby stopping the liquid at the water supply end from entering the steam generating chamber.
[0018] In this way, the connecting part ensures the connection effect between the valve assembly and the shell, the deformation part can provide a pulling force in the resetting direction to the first sealing part, thereby ensuring the resetting effect of the valve assembly, and the first sealing part realizes the opening or closing function of the passage, thereby connecting the valve assembly to the shell while improving the flexibility and accuracy of the valve assembly in opening or closing the passage.
[0019] In some technical solutions provided in the present application, optionally, the valve assembly includes: a second sealing part and a spring. When the temperature of the heating plate reaches a set temperature, the second sealing part opens the passage between the water supply end and the steam generating chamber, and when the temperature of the heating plate is lower than the set temperature, the second sealing part seals the passage between the water supply end and the steam generating chamber. One end of the spring is connected to the housing, and the other end of the spring is connected to the second sealing part, and the spring is used to drive the second sealing part to reset and seal the water inlet.
[0020] In this technical solution, the shape of the second sealing part and the water inlet matching position is adapted to the shape of the passage. For example, the end shape of the second sealing part can be conical or umbrella-shaped, so that the end of the second sealing part can cover the passage. When the temperature of the heating plate reaches the set temperature, the second sealing part opens the passage, causing the valve assembly to deform and open the passage, thereby allowing water at the water supply end to enter the steam generating chamber through the water inlet. When the temperature of the heating plate is lower than the set temperature, the second sealing part seals the passage, causing the valve assembly to reset and close the passage, thereby stopping the liquid at the water supply end from entering the steam generating chamber.
[0021] One end of the spring is connected to the housing, and the other end of the spring is connected to the second sealing part. When the driving assembly pushes the valve assembly, the spring is in a deformed state. In this case, the spring can provide a pulling force to the second sealing part to move in the resetting direction, so that the spring can drive the second sealing part to reset and seal the passage, thereby causing the valve assembly to close the passage.
[0022] In this way, the spring not only ensures the connection effect between the valve assembly and the housing, but also provides a pulling force in the resetting direction to the second sealing part, so that the second sealing part can realize the function of opening or closing the passage, simplifying the structure of the valve assembly and improving the flexibility and accuracy of the valve assembly in opening or closing the passage.
[0023] In some technical solutions provided in the present application, optionally, the driving assembly includes: a temperature switch and a push rod assembly. The temperature switch is connected to the heating plate. When the temperature of the heating plate reaches the set temperature, the temperature switch is in a first deformation state. When the temperature of the heating plate is less than the set temperature, the temperature switch is in a second deformation state. The push rod assembly is in contact with the temperature switch. The push rod assembly is used to push the valve assembly. When the temperature switch is in the first deformation state, the push rod assembly is in a driving position so that the valve assembly opens the passage between the water supply end and the steam generating chamber. When the temperature switch is in the second deformation state, the push rod assembly is in an initial position.
[0024] In this technical solution, the temperature switch can deform according to its own temperature change. Exemplarily, the material of the temperature switch can be a temperature-sensitive material, such as a liquid crystal elastomer and a memory metal, or the temperature switch can be a bimetallic material synthesized by pressing two metals with different thermal expansion and contraction coefficients.
[0025] The temperature switch is connected to the heating plate so that the temperature of the heating plate can be transmitted to the temperature switch. When the temperature of the heating plate reaches the set temperature, the temperature switch is in a first deformation state. When the temperature of the heating plate is lower than the set temperature, the temperature switch is in a second deformation state. The temperature switch can freely switch between the first deformation state and the second deformation state according to the temperature of the heating plate.
[0026] The push rod assembly is in contact with the temperature switch, one end of the push rod assembly is connected to the position where the temperature switch can be deformed, and the other end of the push rod assembly can be in contact with the valve assembly, so that the push rod assembly pushes the valve assembly to deform. Specifically, the temperature switch can be a circular plate or a strip plate, and the radial outer end portion of the temperature switch can be deformed under the influence of temperature, so that the radial outer end portion can change its axial position, even if the edge of the temperature switch can be flipped up and down, the end of the push rod assembly overlaps the edge of the temperature switch, so that the deformation of the temperature switch can change the axial position of the push rod assembly.
[0027] When the temperature switch is in the first deformation state, the push rod assembly is in the driving position, and the push rod assembly pushes the valve assembly to open the passage, thereby allowing the water at the water supply end to enter the steam generating chamber through the passage. When the temperature switch is in the second deformation state, the push rod assembly is in the initial position, and the valve assembly seals the passage, thereby stopping the liquid at the water supply end from entering the steam generating chamber.
[0028] In this way, the push rod assembly controls the deformation of the valve assembly through the deformation of the temperature switch, and then controls the opening and closing state of the passage. The control method is simple and direct, and the control effect is flexible and accurate, which improves the flexibility and accuracy of the driving assembly in opening and closing the passage.
[0029] In some technical solutions provided in the present application, optionally, the push rod assembly includes: a paddle and a push rod. The paddle contacts the temperature switch, and the temperature switch is used to push the paddle. One end of the push rod contacts the paddle, and the paddle is used to push the push rod, and the push rod is used to push the valve assembly.
[0030] In this technical solution, the paddle is in contact with the temperature switch, and the paddle is overlapped at a position where the temperature switch can be deformed. The temperature switch is used to push the paddle, and when the temperature switch is deformed, the paddle can move following the deformation of the temperature switch.
[0031] One end of the push rod contacts the paddle, and the other end of the push rod contacts the valve assembly. For example, the paddle can be a strip plate, and the two ends of the paddle are respectively connected to the temperature switch and the push rod, so that the paddle can push the push rod to move when following the movement of the temperature switch, and then the push rod can push the valve assembly to move, so as to open or close the passage, thereby controlling the connection state between the water supply end and the steam generating chamber.
[0032] In this way, the paddle extends the distance between the temperature switch and the top rod, which facilitates the reasonable layout of the internal structure of the cooking device.
[0033] In some technical solutions provided in the present application, optionally, the temperature switch is fitted with the heating plate. Or the cooking device further includes a heat conducting member, and the heat of the heating plate is transferred to the temperature switch through the heat conducting member.
[0034] In this technical solution, the temperature switch is fitted with the heating plate, so that the temperature of the heating plate is directly transmitted to the temperature switch, thereby improving the transmission efficiency and accuracy of the temperature of the heating plate.
[0035] The cooking device also includes a heat conducting member, through which the heat of the heating plate is transferred to the temperature switch, thereby extending the distance between the heating plate and the temperature switch, expanding the position range of the temperature switch, and facilitating the reasonable layout of the temperature switch position.
[0036] In some technical solutions provided in the present application, optionally, a water inlet and a water supply pipeline are provided on the shell, a first end of the water supply pipeline is connected to the water inlet, and a second end of the water supply pipeline is connected to the steam generating chamber. The water supply end includes: a water tank and a water inlet pipeline. The water tank is connected to the shell. One end of the water inlet pipeline is connected to the water tank, and the second end of the water inlet pipeline is connected to the water inlet, and the water control component is used to open or close the water inlet.
[0037] In this technical solution, when the water control component opens the water inlet, the passage between the water tank and the steam generating chamber is opened, and when the water control component closes the water inlet, the passage between the water tank and the steam generating chamber is closed. One end of the water inlet pipeline is connected to the water tank, and the second end of the water inlet pipeline is connected to the water inlet, so that the water tank and the water inlet are connected through the water inlet pipeline, which extends the distance between the water tank and the water inlet, expands the position range of the water tank, and facilitates the reasonable layout of the water tank.
[0038] In some technical solutions provided in the present application, optionally, taking the bottom wall of the shell as a reference plane, the water outlet of the water tank is higher than the water inlet.
[0039] In this technical solution, the bottom wall of the shell is used as the reference plane, and the water outlet of the water tank is higher than the water inlet, that is, the water outlet of the water tank is higher than the water inlet, so that after the water in the water tank flows out of the water tank, it can directly enter the water inlet under the action of gravity, reducing auxiliary components such as water pumps, saving components required for water supply, and simplifying the structure of the water supply end.
[0040] In some technical solutions provided in the present application, optionally, the second end of the water supply pipeline is connected to the side wall of the steam generating chamber.
[0041] The steam generating chamber adopts the side water inlet method, which can avoid the problem of water splashing into the steam generating chamber. Moreover, the side water inlet method makes it difficult for the water supply pipeline to interfere with other components near the steam generating chamber, which is conducive to improving the rationality of the layout.
[0042] In some technical solutions provided in the present application, optionally, the cooking device further includes: a connecting pipe, a first end of the connecting pipe is connected to the water inlet, and a second end of the connecting pipe is connected to the first end of the water supply pipeline.
[0043] The water control component is arranged near the water inlet. The structure near the water inlet is relatively complex, and the water supply pipeline is difficult to be directly connected to the water inlet. A connecting pipe can be pre-installed on the water inlet, and then the water supply pipeline is connected to the connecting pipe, which facilitates the installation of the water supply pipeline.
[0044] In some technical solutions provided in the present application, optionally, the set temperature is set to T, and T satisfies 100°C<T<150°C.
[0045] When the preset temperature is within the above range, the steam generating component can achieve dry burning to a certain extent, and the water control component can ensure that a certain amount of water enters the steam generating chamber. The heating plate heats the certain amount of water, which reduces the steam generation time and increases the speed at which the heating plate generates steam.
[0046] In some technical solutions, optionally, the cooking device further includes: a bracket, located in the shell; and a container, located on the bracket, wherein the bracket is used to support the container.
[0047] When other components are arranged in the shell, the container may be difficult to be stably placed in the shell, so a bracket is placed in the shell to support the container. The upper surface of the bracket is matched with the bottom of the container, so that the stability of the container can be ensured.
[0048] Additional aspects and advantages of the present application will be given in part in the description below, and in part will become apparent from the description below, or will be learned through the practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0049] The above and / or additional aspects and advantages of the present application will become apparent and easily understood from the description of the embodiments in conjunction with the following drawings, in which:
[0050] Figure 1 One of the structural schematic diagrams of the cooking device provided in the embodiment of the present application is shown;
[0051] Figure 2 The second structural schematic diagram of the cooking device provided in the embodiment of the present application is shown;
[0052] Figure 3 The third structural schematic diagram of the cooking device provided in the embodiment of the present application is shown;
[0053] Figure 4 A fourth structural schematic diagram of a cooking device provided in an embodiment of the present application is shown;
[0054] Figure 5 A fifth structural diagram of a cooking device provided in an embodiment of the present application is shown;
[0055] Figure 6 A sixth structural diagram of a cooking device provided in an embodiment of the present application is shown;
[0056] Figure 7 The seventh structural diagram of the cooking device provided in the embodiment of the present application is shown;
[0057] Figure 8 Shows Figure 7 The enlarged view of the circled section A;
[0058] Fig. 9 An eighth structural schematic diagram of a cooking device provided in an embodiment of the present application is shown;
[0059] Fig.10 A ninth structural schematic diagram of the cooking device provided in an embodiment of the present application is shown.
[0060] in, Figures 1 to 10 The corresponding relationship between the reference numerals and component names in the figure is:
[0061] 10 cooking equipment, 100 shell, 110 water inlet, 120 water supply end, 121 water tank, 122 water inlet pipeline, 130 water supply pipeline, 140 connecting pipe, 200 container, 300 steam generating component, 310 heating plate, 320 steam generating chamber, 400 water control component, 410 valve component, 411 connecting part, 412 deformation part, 413 first sealing part, 414 second sealing part, 415 spring, 420 driving component, 421 temperature switch, 422 push rod assembly, 423 paddle, 424 push rod, 500 heat conducting member, 600 bracket. DETAILED DESCRIPTION
[0062] In order to more clearly understand the above-mentioned purposes, features and advantages of the present application, the present application is further described in detail below in conjunction with the accompanying drawings and specific implementation methods. It should be noted that the embodiments of the present application and the features in the embodiments can be combined with each other without conflict.
[0063] In the following description, many specific details are set forth to facilitate a full understanding of the present application. However, the present application may also be implemented in other ways different from those described herein. Therefore, the scope of protection of the present application is not limited to the specific embodiments disclosed below.
[0064] Refer to the following Figures 1 to 10 A cooking device 10 according to some embodiments of the present application is described.
[0065] The first embodiment of the present application provides a cooking device 10, such as Figure 1 As shown, the cooking device 10 comprises: a housing 100, a steam generating assembly 300 and a water control assembly 400. The steam generating assembly 300 is arranged in the housing 100, and the steam generating assembly 300 comprises a heating plate 310 and a steam generating chamber 320, and the heating plate 310 is used to heat the water in the steam generating chamber 320 to generate steam. The water control assembly 400 is connected to the housing 100, and when the temperature of the heating plate 310 reaches a set temperature, the water control assembly 400 is used to connect the water supply end 120 with the steam generating chamber 320, and when the temperature of the heating plate 310 is lower than the set temperature, the water control assembly 400 closes the passage between the water supply end 120 and the steam generating chamber 320.
[0066] In this embodiment, water from the water supply end 120 can enter the steam generating chamber 320 through a pipeline. The steam generating assembly 300 is located in the housing 100. The steam generating assembly 300 includes a heating plate 310 and a steam generating chamber 320. For example, the heating plate 310 includes a plate body and a heating element. The heating element can be a heating device such as a heating tube. The heating plate 310 can heat the water to steam by increasing the temperature. The cooking device has a cooking chamber, and the steam in the steam generating chamber 320 can heat the food in the cooking chamber.
[0067] The water control component 400 is connected to the housing 100. When the cooking device 10 is in working state, the heating plate 310 is heated and heated. When the temperature of the heating plate 310 reaches the set temperature, the water control component 400 opens the passage between the water supply end 120 and the steam generating chamber 320, and the water of the water supply end 120 enters the steam generating chamber 320. In this case, the heating plate 310 is in a state of high temperature, and the water enters the steam generating chamber 320 and evaporates rapidly to form steam. At the same time, the liquid water gradually reduces the temperature of the heating plate 310 through heat exchange in the steam generating chamber 320. When the temperature of the heating plate 310 is lower than the set temperature, the water control component 400 closes the passage between the water supply end 120 and the steam generating chamber 320, and the water of the water supply end 120 stops entering the steam generating chamber 320. In this case, the heating plate 310 can continue to heat up until the temperature of the heating plate 310 reaches the set temperature again, and the water control component 400 opens the passage between the water supply end 120 and the steam generating chamber 320 again, and repeats the above process.
[0068] Specifically, the set temperature of the heating plate 310 may be greater than 100 degrees Celsius, that is, the set temperature is greater than the vaporization temperature of water, so that the water in the steam generating chamber 320 forms steam.
[0069] In this way, the water control component 400 can open or close the passage between the water supply end 120 and the steam generating chamber 320 according to the temperature of the heating plate 310, so that the cooking device 10 controls the water inlet state in the steam generating chamber 320 through the temperature of the heating plate 310. The cooking device 10 realizes the automatic water inlet function, avoids the user manually opening or closing the water inlet 110, reduces the risk of the heating plate 310 burning dry for a long time, and improves the convenience and safety of the water supply of the cooking device 10. In addition, the water control component 400 ensures that a certain amount of water enters the steam generating chamber 320, and the heating plate 310 heats the certain amount of water, which reduces the time of steam generation, increases the speed of steam generation by the heating plate 310, improves the steam generation efficiency in the steam generating chamber 320, and shortens the cooking time.
[0070] By supplying water to the steam generating chamber 320 in the above manner, there is no need to set up a water pump to provide water intake power, thereby reducing the noise of the cooking device during operation and improving the user's comfort in using the cooking device.
[0071] In some embodiments provided in this application, Figure 5 and Figure 7As shown, optionally, the water control assembly 400 includes: a valve assembly 410 and a drive assembly 420. The valve assembly 410 is connected to the housing 100, and the valve assembly 410 is used to open or close the passage between the water supply end 120 and the steam generating chamber 320. The drive assembly 420 is connected to the heating plate 310. When the temperature of the heating plate 310 reaches the set temperature, the drive assembly 420 is used to push the valve assembly 410 so that the valve assembly 410 opens the passage between the water supply end 120 and the steam generating chamber 320. When the temperature of the heating plate 310 is lower than the set temperature, the valve assembly 410 is reset and closes the passage between the water supply end 120 and the steam generating chamber 320.
[0072] In this embodiment, the driving assembly 420 is connected to the heating plate 310. When the temperature of the heating plate 310 does not reach the set temperature, the driving assembly 420 may abut against the valve assembly 410, or may be spaced apart from the valve assembly 410. When the temperature of the heating plate 310 reaches the set temperature, the driving assembly 420 moves toward the valve assembly 410, so that the driving assembly 420 can push the valve assembly 410, and the valve assembly 410 deforms and opens the passage between the water supply end 120 and the steam generating chamber 320, so that the water supply end 120 is connected to the steam generating chamber 320, and the water at the water supply end 120 enters the steam generating chamber 320. When the temperature of the heating plate 310 is lower than the set temperature, the valve assembly 410 closes the passage between the water supply end 120 and the steam generating chamber 320, and the water at the water supply end 120 stops entering the steam generating chamber 320.
[0073] In this way, the movement of the valve assembly 410 is controlled by the movement of the driving assembly 420, so that the valve assembly 410 can open or close the passage between the water supply end 120 and the steam generating chamber 320. The control method is direct and the structure is flexible, which facilitates the installation of the water control assembly 400 and the maintenance and replacement in subsequent use.
[0074] In some embodiments provided in the present application, optionally, the valve assembly 410 includes a rubber elastic member or a silicone elastic member.
[0075] In this embodiment, the valve assembly 410 can be an elastic member, so that the valve assembly 410 has a stable and highly elastic elastic effect, and the valve assembly 410 is easy to deform, and a small driving force can cause the valve assembly 410 to deform, thereby improving the triggering flexibility, and when the driving assembly 420 stops pushing the valve assembly 410, the valve assembly 410 can automatically reset. In addition, the valve assembly 410 is soft in texture, so the valve assembly 410 can fit tightly with the passage, thereby effectively sealing the passage between the water supply end 120 and the steam generation chamber 320.
[0076] In some embodiments provided in this application, Figure 8As shown, optionally, the valve assembly 410 includes: a connecting portion 411, a deforming portion 412 and a first sealing portion 413. The connecting portion 411 is connected to the housing 100. The deforming portion 412 is connected to the connecting portion 411, and a portion of the deforming portion 412 is bent in a direction away from the driving assembly 420. The first sealing portion 413 is connected to the deforming portion 412, and the deforming portion 412 is located between the connecting portion 411 and the first sealing portion 413. When the temperature of the heating plate 310 reaches the set temperature, the first sealing portion 413 opens the passage between the water supply end 120 and the steam generating chamber 320. When the temperature of the heating plate 310 is lower than the set temperature, the first sealing portion 413 seals the passage between the water supply end 120 and the steam generating chamber 320.
[0077] In this embodiment, the connection portion 411 is connected to the housing 100. For example, the connection portion 411 and the housing 100 may be connected by a connection member, which may be a screw or a pin. Alternatively, the connection portion 411 and the housing 100 are respectively provided with a buckle and a slot structure, so that the connection portion 411 is connected to the housing 100 by a snap connection.
[0078] The deformation part 412 is connected to the connecting part 411, the first sealing part 413 is connected to the deformation part 412, and the deformation part 412 is located between the connecting part 411 and the first sealing part 413. Exemplarily, the connecting part 411 can be an annular structure, so that the connecting part 411 is arranged around the outer periphery of the deformation part 412. Or the number of the connecting parts 411 can be multiple, and the multiple connecting parts 411 are arranged around the outer periphery of the deformation part 412, and the multiple connecting parts 411 are evenly distributed. A part of the deformation part 412 is bent in a direction away from the drive assembly 420, and the bending direction is conducive to the deformation part 412 to provide a pulling force toward the drive assembly 420 to the first sealing part 413 when it is deformed, so that the first sealing part 413 has a tendency to move in the reset direction.
[0079] The shape of the matching position of the first sealing portion 413 and the passage (the passage between the water supply end 120 and the steam generating chamber 320 is hereinafter referred to as the passage) is adapted to the shape of the passage. For example, the end shape of the first sealing portion 413 can be conical or umbrella-shaped, so that the end of the first sealing portion 413 can cover the passage. When the temperature of the heating plate 310 reaches the set temperature, the first sealing portion 413 opens the passage, causing the valve assembly 410 to deform and open the passage, thereby allowing the water from the water supply end 120 to enter the steam generating chamber 320. When the temperature of the heating plate 310 is lower than the set temperature, the first sealing portion 413 seals the passage, causing the valve assembly 410 to reset and close the passage, thereby stopping the water from the water supply end 120 from entering the steam generating chamber 320.
[0080] In this way, the connecting portion 411 ensures the connection effect between the valve assembly 410 and the shell 100, the deformation portion 412 can provide a pulling force in the resetting direction to the first sealing portion 413, thereby ensuring the resetting effect of the valve assembly 410, and the first sealing portion 413 realizes the opening or closing function of the passage, thereby connecting the valve assembly 410 to the shell 100 while improving the flexibility and accuracy of the valve assembly 410 in opening or closing the passage.
[0081] In some embodiments provided in this application, Fig. 9 As shown, optionally, the valve assembly 410 includes: a second sealing portion 414 and a spring 415. When the temperature of the heating plate 310 reaches a set temperature, the second sealing portion 414 opens the passage between the water supply end 120 and the steam generating chamber 320. When the temperature of the heating plate 310 is lower than the set temperature, the second sealing portion 414 seals the passage between the water supply end 120 and the steam generating chamber 320. One end of the spring 415 is connected to the housing 100, and the other end of the spring 415 is connected to the second sealing portion 414. The spring 415 is used to drive the second sealing portion 414 to reset and seal the water inlet 110.
[0082] In this embodiment, the shape of the second sealing portion 414 and the water inlet 110 match the shape of the passage. For example, the end of the second sealing portion 414 may be conical or umbrella-shaped, so that the end of the second sealing portion 414 can cover the passage. When the temperature of the heating plate 310 reaches the set temperature, the second sealing portion 414 opens the passage, causing the valve assembly 410 to deform and open the passage, thereby allowing the water at the water supply end 120 to enter the steam generating chamber 320. When the temperature of the heating plate 310 is lower than the set temperature, the second sealing portion 414 seals the passage, causing the valve assembly 410 to reset and close the passage, thereby stopping the water at the water supply end 120 from entering the steam generating chamber 320.
[0083] One end of the spring 415 is connected to the housing 100, and the other end of the spring 415 is connected to the second sealing portion 414. When the driving assembly 420 pushes the valve assembly 410, the spring 415 is in a deformed state. In this case, the spring 415 can provide a pulling force to the second sealing portion 414 to move in the resetting direction, so that the spring 415 can drive the second sealing portion 414 to reset and seal the passage, thereby causing the valve assembly 410 to close the passage.
[0084] In a possible embodiment, the upper end of the spring 415 is connected to the housing 100, and the lower end of the spring 415 is connected to the second sealing portion 414. When the driving assembly 420 pushes the valve assembly 410, the spring 415 is in a compressed state, so that the spring 415 can provide a pulling force to the second sealing portion 414 to move in the reset direction.
[0085] In another possible embodiment, the lower end of the spring 415 is connected to the housing 100, and the upper end of the spring 415 is connected to the second sealing portion 414. When the driving assembly 420 pushes the valve assembly 410, the spring 415 is in a stretched state, so that the spring 415 can provide a pulling force to the second sealing portion 414 to move in the reset direction.
[0086] In this way, the spring 415 not only ensures the connection effect between the valve assembly 410 and the shell 100, but also can provide a pulling force in the resetting direction to the second sealing part 414, so that the second sealing part 414 can realize the opening or closing function of the water inlet 110, simplifying the structure of the valve assembly 410, and improving the flexibility and accuracy of the valve assembly 410 in opening or closing the passage.
[0087] In some embodiments provided in this application, Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 and Fig.10 As shown, optionally, the driving assembly 420 includes: a temperature switch 421 and a push rod assembly 422. The temperature switch 421 is connected to the heating plate 310. When the temperature of the heating plate 310 reaches the set temperature, the temperature switch 421 is in a first deformation state. When the temperature of the heating plate 310 is less than the set temperature, the temperature switch 421 is in a second deformation state. The push rod assembly 422 is in contact with the temperature switch 421. The push rod assembly 422 is used to push the valve assembly 410. When the temperature switch 421 is in the first deformation state, the push rod assembly 422 is in the driving position so that the valve assembly 410 opens the passage between the water supply end 120 and the steam generating chamber 320. When the temperature switch 421 is in the second deformation state, the push rod assembly 422 is in the initial position.
[0088] In this embodiment, the temperature switch 421 can deform according to its own temperature change. Exemplarily, the material of the temperature switch 421 can be a temperature-sensitive material, such as a liquid crystal elastomer and a memory metal, or the temperature switch 421 uses a bimetallic material synthesized by pressing two metals with different thermal expansion and contraction coefficients.
[0089] The temperature switch 421 is connected to the heating plate 310 so that the temperature of the heating plate 310 can be transmitted to the temperature switch 421. When the temperature of the heating plate 310 reaches the set temperature, the temperature switch 421 is in the first deformation state. When the temperature of the heating plate 310 is lower than the set temperature, the temperature switch 421 is in the second deformation state. The temperature switch 421 can freely switch between the first deformation state and the second deformation state according to the temperature of the heating plate 310.
[0090] The push rod assembly 422 is in contact with the temperature switch 421, one end of the push rod assembly 422 is connected to the position where the temperature switch 421 can be deformed, and the other end of the push rod assembly 422 can be in contact with the valve assembly 410, so that the push rod assembly 422 pushes the valve assembly 410 to deform. Specifically, the temperature switch 421 can be a circular plate or a strip plate, and the radial outer end portion of the temperature switch 421 can be deformed under the influence of temperature, so that the radial outer end portion can change its axial position, even if the edge of the temperature switch 421 can be flipped up and down, the end of the push rod assembly 422 overlaps the edge of the temperature switch 421, so that the deformation of the temperature switch 421 can change the axial position of the push rod assembly 422.
[0091] When the temperature switch 421 is in the first deformation state, the push rod assembly 422 is in the driving position, and the push rod assembly 422 pushes the valve assembly 410, so that the valve assembly 410 opens the passage, thereby allowing the water at the water supply end 120 to enter the steam generating chamber 320. When the temperature switch 421 is in the second deformation state, the push rod assembly 422 is in the initial position, and the valve assembly 410 seals the passage, thereby stopping the water at the water supply end 120 from entering the steam generating chamber 320.
[0092] In this way, the push rod assembly 422 controls the deformation of the valve assembly 410 through the deformation of the temperature switch 421, and then controls the opening and closing state of the passage. The control method is simple and direct, and the control effect is flexible and accurate, which improves the flexibility and accuracy of the driving assembly 420 in opening and closing the passage.
[0093] In some embodiments provided in this application, Figure 5 , Figure 6 , Figure 7 and Fig.10 As shown, optionally, the push rod assembly 422 includes: a paddle 423 and a push rod 424. The paddle 423 contacts the temperature switch 421, and the temperature switch 421 is used to push the paddle 423. One end of the push rod 424 contacts the paddle 423, and the paddle 423 is used to push the push rod 424, and the push rod 424 is used to push the valve assembly 410.
[0094] In this embodiment, the paddle 423 contacts the temperature switch 421, and the paddle 423 overlaps the position where the temperature switch 421 can be deformed. The temperature switch 421 is used to push the paddle 423. When the temperature switch 421 is deformed, the paddle 423 can move following the deformation of the temperature switch 421.
[0095] like Figure 3 As shown, when the temperature of the heating plate 310 is lower than the set temperature, the temperature switch 421 is in the second deformation state, and the outer edge of the temperature switch 421 extends downwardly. Figure 4As shown, when the temperature of the heating plate 310 reaches the set temperature, the temperature switch 421 is in the first deformation state, the outer edge of the temperature switch 421 extends upwardly and tilted, the paddle 423 is lifted by the outer edge of the temperature switch 421, and then the paddle 423 moves upward driven by the temperature switch 421.
[0096] One end of the push rod 424 contacts the paddle 423, and the other end of the push rod 424 contacts the valve assembly 410. Exemplarily, the paddle 423 may be a strip plate, and the two ends of the paddle 423 are respectively connected to the temperature switch 421 and the push rod 424, so that the paddle 423 can push the push rod 424 to move when following the movement of the temperature switch 421, and then the push rod 424 can push the valve assembly 410 to move, so as to open or close the passage, and then control the communication state between the water supply end 120 and the steam generation chamber 320.
[0097] In this way, the paddle 423 extends the distance between the temperature switch 421 and the top rod 424, which facilitates the reasonable layout of the internal structure of the cooking device 10.
[0098] In some embodiments provided in this application, Figure 5 and Figure 7 As shown, optionally, the temperature switch 421 is attached to the heating plate 310 . Alternatively, the cooking device 10 further includes a heat conducting member 500 , and the heat of the heating plate 310 is transferred to the temperature switch 421 through the heat conducting member 500 .
[0099] In this embodiment, the temperature switch 421 is fitted with the heating plate 310 , so that the temperature of the heating plate 310 is directly transferred to the temperature switch 421 , thereby improving the transfer efficiency and accuracy of the temperature of the heating plate 310 .
[0100] The cooking device 10 also includes a heat conductor 500 , through which the heat of the heating plate 310 is transferred to the temperature switch 421 , thereby extending the distance between the heating plate 310 and the temperature switch 421 , expanding the position range of the temperature switch 421 , and facilitating the reasonable layout of the position of the temperature switch 421 .
[0101] In some embodiments provided in this application, Figure 1 As shown, optionally, a water inlet 110 and a water supply pipeline 120 are provided on the housing 100, a first end of the water supply pipeline 120 is connected to the water inlet 110, and a second end of the water supply pipeline 120 is connected to the steam generating chamber 320. The water supply end 120 includes: a water tank 121 and a water inlet pipeline 122. The water tank 121 is connected to the housing 100. One end of the water inlet pipeline 122 is connected to the water tank 121, and a second end of the water inlet pipeline 122 is connected to the water inlet 110. The water control component 400 is used to open or close the water inlet 110, so that the passage between the water supply end 120 and the steam generating chamber 320 is opened or closed.
[0102] In this embodiment, when the water control component 400 opens the water inlet 110, the passage between the water tank 121 and the steam generating chamber 320 is opened, and when the water control component 400 closes the water inlet, the passage between the water tank 121 and the steam generating chamber 320 is closed.
[0103] One end of the water inlet pipe 122 is connected to the water tank 121, and the second end of the water inlet pipe 122 is connected to the water inlet 110, so that the water tank 121 and the water inlet 110 are connected through the water inlet pipe 122, thereby extending the distance between the water tank 121 and the water inlet 110, expanding the position range of the water tank 121, and facilitating the reasonable layout of the water tank 121.
[0104] Of course, in other embodiments, the water inlet may also be connected to an external water source through the water inlet pipe 122 .
[0105] In some embodiments provided in this application, Figure 1 As shown, optionally, taking the bottom wall of the housing 100 as a reference plane, the water outlet of the water tank 121 is higher than the water inlet 110 .
[0106] In this embodiment, with the bottom wall of the shell 100 as the reference plane, the water outlet of the water tank 121 is higher than the water inlet 110, that is, the water outlet of the water tank 121 is higher than the water inlet 110, so that after the water in the water tank 121 flows out of the water tank 121, it can directly enter the water inlet 110 under the action of gravity, reducing auxiliary components such as water pumps, saving components required for water supply, and simplifying the structure of the water supply end 120.
[0107] In some technical solutions provided in the present application, optionally, the second end of the water supply pipeline 130 is connected to the side wall of the steam generating chamber 320 .
[0108] The steam generating chamber 320 adopts the side water inlet method, which can avoid the problem of water splashing into the steam generating chamber 320. Moreover, the side water inlet method makes it difficult for the water supply pipeline 130 to interfere with other components near the steam generating chamber 320, which is conducive to improving the rationality of the layout.
[0109] In some technical solutions provided in the present application, optionally, the cooking device further includes: a connecting pipe 140 , a first end of the connecting pipe 140 is connected to the water inlet 110 , and a second end of the connecting pipe 140 is connected to a first end of the water supply pipeline 130 .
[0110] The water control component 400 is arranged near the water inlet 110. The structure near the water inlet 110 is relatively complex, and it is difficult to directly connect the water supply pipe 130 to the water inlet 110. A connecting pipe 140 can be pre-installed on the water inlet 110, and then the water supply pipe 130 is connected to the connecting pipe 140, which facilitates the installation of the water supply pipe 130.
[0111] In some technical solutions provided in the present application, optionally, the set temperature is set to T, and T satisfies 100°C<T<150°C.
[0112] When the preset temperature is within the above range, the steam generating component 300 can achieve dry burning to a certain extent, and the water control component 400 can ensure that a certain amount of water enters the steam generating chamber 320, and the heating plate 310 heats the certain amount of water, thereby reducing the time for steam generation and increasing the speed at which the heating plate generates steam.
[0113] In some embodiments, optionally, the cooking device further includes: a bracket 600 and a container 200 , wherein the bracket 600 is located in the shell 100 , and the container 200 is located on the bracket 600 , and the bracket 600 is used to support the container 200 .
[0114] In the case where other components are arranged in the housing 100, the container 200 may be difficult to be stably placed in the housing 100, therefore, a bracket 600 is placed in the housing 100 to support the container 200. The upper surface of the bracket 600 is adapted to the bottom of the container 200, so that the container 200 can be placed stably.
[0115] The support 600 in this embodiment is located above the steam generating assembly, and the steam generated by the steam generating assembly 300 passes over the support 600, thereby heating the container 200 above the support 600. A hollow structure is provided on the support 600, so that the steam can pass through the support 600.
[0116] The container 200 in this embodiment may be a stew pot. Of course, in other embodiments, other types of containers 200 may also be used.
[0117] In a possible embodiment, the cooking device 10 may be a steam stew pot, and the cooking device 10 is mainly composed of a water supply end 120, a water control component 400, and a steam generating component 300. The water control component 400 has a switch structure that can respond to temperature changes (a switch in a broad sense that can control the water in and out of the water supply end 120 due to temperature changes).
[0118] The steam generating assembly 300 may be Figure 1 As shown, the structure has a certain water storage function, with a heat source at the bottom, and the heating plate 310 heats the liquid to generate steam when working. The main function of the water tank 121 is to store water, and it needs to be placed at a higher position. The steam generating chamber 320 is located above the heating plate 310, and the steam enters the steam generating chamber 320 to cook food after being generated. The water supply end 120, the water control component 400 and the steam generating component 300 are connected by pipelines.
[0119] The temperature switch 421 of the water control assembly 400 may be Figure 2In the structure shown (the driving component 420 is divided into a temperature switch 421 and a push rod component 422), when the temperature reaches the set temperature, the deformation zone of the temperature switch 421 is deformed, the position of the paddle 423 changes to push the push rod 424, and the push rod 424 pushes the valve component 410 of the flexible structure, the valve component 410 is deformed, the water inlet 110 of the sealing water is opened, and the water at the water supply end 120 enters the steam generating component 300 through the water inlet pipe 122.
[0120] Working principle: When the steam generating component 300 is working, the heating plate 310 is heated and the temperature is transmitted to the temperature switch 421. The temperature switch 421 is deformed to change the state of the water control component 400 from closed to open. Water flows from the water tank 121 to the water control component 400 through the water inlet pipe 122, and then flows to the heating plate 310. At this time, the heating plate 310 is in a hot state. After the water enters the steam generating chamber 320, it is heated and evaporates rapidly to produce steam. At the same time, after the liquid water enters the steam generating chamber 320, the heat exchange reduces the temperature of the heating plate 310. After the temperature of the heating plate 310 is reduced, the temperature switch 421 will be closed, and the water control component 400 will be further closed, ensuring that only a certain amount of water enters the heating plate 310, thereby improving the steam generation efficiency. The heating plate 310 continues to heat, and after all the quantitative water is converted into steam, the heating plate starts to heat up again, the temperature switch 421 is turned on, the water control component 400 is turned on, and the water enters the heating plate 310 again, and the above process is repeated, so that only an appropriate amount of water is heated each time to quickly produce steam, and the water inlet is controlled by the temperature change of the heating plate 310.
[0121] In the claims, specification and drawings of the present application, the term "multiple" refers to two or more than two. Unless otherwise clearly defined, the terms "upper" and "lower" indicate positions or positional relationships based on the positions or positional relationships shown in the drawings. They are only for the purpose of more conveniently describing the present application and making the description process easier, and are not intended to indicate or imply that the device or element referred to must have the specific orientation described, be constructed and operated in a specific orientation. Therefore, these descriptions cannot be understood as limitations on the present application. The terms "connect", "install", "fix" and the like should be understood in a broad sense. For example, "connection" can be a fixed connection between multiple objects, or a detachable connection between multiple objects, or an integral connection; it can be a direct connection between multiple objects, or an indirect connection between multiple objects through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood based on the specific circumstances of the above data.
[0122] In the claims, specification and drawings of the present application, the description of the terms "one embodiment", "some embodiments", "specific embodiments" and the like means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the present application. In the claims, specification and drawings of the present application, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described may be combined in any one or more embodiments or examples in a suitable manner.
[0123] The above description is only the preferred embodiment of the present application and is not intended to limit the present application. For those skilled in the art, the present application may have various modifications and variations. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A cooking device, characterized in that: include: case; A steam generating assembly is disposed in the housing, the steam generating assembly comprises a heating plate and a steam generating chamber, the heating plate is used to heat water in the steam generating chamber to generate steam; A water control component is connected to the shell. When the temperature of the heating plate reaches a set temperature, the water control component is used to connect the water supply end with the steam generating chamber. When the temperature of the heating plate is lower than the set temperature, the water control component closes the passage between the water supply end and the steam generating chamber.
2. The cooking device according to claim 1, characterized in that: The water control component comprises: A valve assembly connected to the housing, the valve assembly being used to open or close a passage between the water supply end and the steam generating chamber; A drive assembly is connected to the heating plate. When the temperature of the heating plate reaches a set temperature, the drive assembly is used to push the valve assembly so that the valve assembly opens the passage between the water supply end and the steam generating chamber. When the temperature of the heating plate is lower than the set temperature, the valve assembly closes the passage between the water supply end and the steam generating chamber.
3. The cooking device according to claim 2, characterized in that: The valve assembly comprises: Rubber elastic member or silicone elastic member.
4. The cooking device according to claim 2, characterized in that: The valve assembly comprises: A connecting portion connected to the housing; A deformation portion connected to the connection portion, wherein a portion of the deformation portion is bent in a direction away from the driving assembly; A first sealing portion is connected to the deformation portion, and the deformation portion is located between the connection portion and the first sealing portion. When the temperature of the heating plate reaches a set temperature, the first sealing portion opens the passage between the water supply end and the steam generating chamber. When the temperature of the heating plate is lower than the set temperature, the first sealing portion seals the passage between the water supply end and the steam generating chamber.
5. The cooking device according to claim 2, characterized in that: The valve assembly comprises: a second sealing portion, which opens the passage between the water supply end and the steam generating chamber when the temperature of the heating plate reaches a set temperature, and seals the passage between the water supply end and the steam generating chamber when the temperature of the heating plate is lower than the set temperature; A spring, one end of which is connected to the shell, and the other end of which is connected to the second sealing part, and the spring is used to drive the second sealing part to reset and seal the passage between the water supply end and the steam generating chamber.
6. The cooking device according to any one of claims 2 to 5, characterized in that: The drive assembly comprises: a temperature switch connected to the heating disk, wherein when the temperature of the heating disk reaches a set temperature, the temperature switch is in a first deformation state, and when the temperature of the heating disk is lower than the set temperature, the temperature switch is in a second deformation state; A push rod assembly is in contact with the temperature switch, and is used to push the valve assembly. When the temperature switch is in a first deformation state, the push rod assembly is in a driving position so that the valve assembly opens the passage between the water supply end and the steam generating chamber. When the temperature switch is in a second deformation state, the push rod assembly is in an initial position.
7. The cooking device according to claim 6, characterized in that The ejector assembly comprises: a paddle, in contact with the temperature switch, the temperature switch being used to push the paddle; A push rod, one end of which is in contact with the paddle, the paddle is used to push the push rod, and the push rod is used to push the valve assembly.
8. The cooking device according to claim 6, characterized in that The temperature switch is fitted with the heating plate; or The cooking device further comprises a heat conducting member, through which the heat of the heating plate is transferred to the temperature switch.
9. The cooking device according to any one of claims 1 to 5, characterized in that: The shell is provided with a water inlet and a water supply pipeline, the first end of the water supply pipeline is connected to the water inlet, and the second end of the water supply pipeline is connected to the steam generating chamber; The water supply end comprises: A water tank connected to the shell; A water inlet pipeline, one end of which is connected to the water tank, a second end of which is connected to the water inlet, and the water control component is used to open or close the water inlet.
10. The cooking device according to claim 9, characterized in that Taking the bottom wall of the shell as a reference plane, the water outlet of the water tank is higher than the water inlet.
11. The cooking device according to claim 9, characterized in that The second end of the water supply pipeline is connected to the side wall of the steam generating chamber.
12. The cooking device according to claim 9, characterized in that The cooking device also includes: A connecting pipe, wherein a first end of the connecting pipe is connected to the water inlet, and a second end of the connecting pipe is connected to the first end of the water supply pipeline.
13. The cooking device according to any one of claims 1 to 5, characterized in that: The set temperature is set to T, and T satisfies 100°C<T<150°C.
14. The cooking device according to any one of claims 1 to 5, characterized in that: The cooking device also includes: A bracket, located in the housing; The container is located on the bracket, and the bracket is used to support the container.