Steam exhaust assembly, cooking device and integrated cooker
By designing a steam exhaust component including a cavity shell structure, exhaust pipe and exhaust shell, the problem of insufficient kinetic energy of water vapor discharged by the cooking device is solved, and the effect of water vapor being effectively blown to a high place and being absorbed by the range hood is improved, and the user experience is improved.
Patent Information
- Application Number
- CN202421323102.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-11
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-06-11
AI Technical Summary
The existing cooking devices lack kinetic energy when emitting water vapor, which makes it difficult for the steam to be effectively absorbed by the range hood and easily condense into water droplets on the wall, affecting the user experience.
A steam exhaust assembly is designed, including a cavity shell structure, a steam exhaust pipe and an exhaust shell, which is connected to the shell of the cooking device through the cavity shell structure. The steam exhaust pipe connects the cooking chamber with the steam exhaust chamber, the exhaust shell defines the exhaust passage, connects the heat dissipation air duct with the steam exhaust chamber, and uses air flow energy to enhance the discharge speed and direction of water vapor.
By enhancing the kinetic energy of water vapor, ensuring that it can be blown to a high place and absorbed by the range hood, avoiding the water vapor condensation on the wall and improving the user experience.
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Figure CN222853674U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of kitchen equipment, and in particular to a steam exhaust component, a cooking device and an integrated stove. Background Art
[0002] At present, the cooking devices widely used in the kitchen include steamers, ovens and steam ovens that combine the functions of the two. Among them, in some integrated stove products, the steam oven is often embedded in the cabinet of the integrated stove and located below the stove.
[0003] Ideally, the steam generated by the steam oven during cooking needs to be discharged in the direction of the integrated stove's range hood to keep the kitchen environment dry and comfortable. However, if the steam is naturally discharged only by the pressure generated inside the steam oven, the kinetic energy of the steam discharge may be insufficient, that is, the steam flow speed is not fast enough or the pressure is not high enough, which will result in a limited steam movement range and difficulty in being effectively absorbed by the range hood. In addition, the air flow in the kitchen may also interfere with the flow direction of the steam, causing the steam to flow toward the wall close to the integrated stove and condense into water droplets on the wall, giving users a poor user experience. Utility Model Content
[0004] The embodiments of the present application provide a steam exhaust component, a cooking device, and an integrated stove, which can solve the technical problem of insufficient kinetic energy of water vapor discharged from the cooking device.
[0005] In a first aspect, an embodiment of the present application provides an exhaust component for a cooking device, the cooking device comprising a shell, a cooking cavity and a heat dissipation duct being arranged in the shell, the exhaust component comprising a cavity shell structure, an exhaust pipe and an exhaust shell, the cavity shell structure being used to be installed to the shell, the cavity shell structure defining an exhaust cavity and an exhaust port and a vent connected to the exhaust cavity, the exhaust pipe being installed on the cavity shell structure, the exhaust pipe comprising a steam inlet and a steam outlet, the steam inlet being used to be connected to the cooking cavity, the steam outlet being connected to the exhaust cavity, the exhaust shell being installed on the cavity shell structure and defining an exhaust channel, the exhaust channel comprising an air inlet and an air outlet, the air inlet being used to be connected to the heat dissipation duct, the air outlet being connected to the vent, wherein water vapor discharged from the steam outlet and air flow blown out from the air outlet meet in the exhaust cavity, and the water vapor is sent out to the outside from the exhaust port driven by the air flow.
[0006] In some embodiments, the cavity shell structure includes a fixed bracket and a steam exhaust box, the fixed bracket is used to be installed on the shell, the steam exhaust box is installed on the fixed bracket, and defines the steam exhaust cavity and has the steam exhaust port and the vent.
[0007] In some embodiments, the top of the exhaust box has the exhaust port, the side wall of the exhaust box has the vent, one end of the exhaust shell is installed on the side wall of the exhaust box, and the other end of the exhaust shell is installed on the fixed bracket.
[0008] In some embodiments, a side wall of the steam exhaust box is provided with a ledge protruding in a direction away from the steam exhaust port, and the ledge is provided around the circumference of the steam exhaust port.
[0009] In some of the embodiments, the exhaust box can be installed in an adjustable position relative to the fixing bracket.
[0010] In some embodiments, one of the exhaust box and the fixed bracket includes a connecting hole, and the other includes an adjustment hole. The cavity shell structure also includes a connecting piece and a fastener. The connecting piece is inserted into the adjusting hole and the connecting hole, and the connecting piece can move relative to the adjusting hole in a direction perpendicular to the axial direction of the adjusting hole. The fastener is assembled on the connecting piece to fasten the exhaust box to the fixed bracket.
[0011] In some embodiments, the adjustment hole includes a first waist-shaped hole and a second waist-shaped hole that are cross-arranged and connected.
[0012] In some embodiments, the fixed bracket is provided with an avoidance groove, and at least a portion of the exhaust pipe is disposed in the avoidance groove and connected to the exhaust box.
[0013] In some embodiments, the steam exhaust assembly further includes a water receiving box, which is detachably disposed in the steam exhaust cavity and defines a water storage cavity, and the water receiving box includes a water receiving port, which is connected to the steam exhaust port.
[0014] In some embodiments, the water receiving box includes a box body and a connecting pipe, the box body defines the water holding chamber, and two opposite sides of the box body respectively have a steam vent and the water receiving port, the connecting pipe is installed on the box body, and one end is inserted into the steam outlet, and the other end is inserted into the steam vent and extends in a direction close to the water receiving port.
[0015] In some embodiments, the vent is located between the water inlet and the steam outlet.
[0016] In some embodiments, the exhaust assembly further includes an exhaust cover, which covers the exhaust port and is provided with a plurality of sub-steam ports, each of which is connected to the exhaust chamber.
[0017] In some embodiments, the flow area of the exhaust passage gradually decreases in the direction from the air inlet toward the air outlet.
[0018] In a second aspect, an embodiment of the present application provides a cooking device, comprising a shell, a door body, a fan and the exhaust assembly as described above, the shell comprising an outer shell and an inner pot arranged in the outer shell, the outer shell forms a heat dissipation duct, a cooking cavity is formed in the inner pot, the door body is rotatably mounted on the outer shell for closing or opening the cooking cavity, the fan is arranged between the outer shell and the inner pot and is connected to the heat dissipation duct, and the air inlet of the exhaust channel is connected to the heat dissipation duct.
[0019] In some embodiments, the shell body also includes a heat dissipation shell, which is arranged on the top of the inner tank and connected to the outer shell, and the heat dissipation shell defines the heat dissipation air duct, and the fan is fixedly connected to the heat dissipation shell, wherein the heat dissipation shell has a first exhaust port and a second exhaust port connected to the heat dissipation air duct, and the first exhaust port is connected to the air inlet, and the second exhaust port is connected to the outside.
[0020] In some embodiments, the heat dissipation shell includes a first shell cover and a second shell cover, the first shell cover is connected to the outer shell and covers the top of the inner shell, the second shell cover is installed on the side of the first shell cover facing away from the inner shell, and together with the first shell cover, defines the heat dissipation duct, and the second shell cover has the first exhaust port.
[0021] In a third aspect, an embodiment of the present application provides an integrated stove, comprising a cabinet, a cooking device as described above, and a stove, wherein the cabinet has an installation space inside, and the cabinet body surface of the cabinet has an embedding hole and a avoidance opening, the embedding hole and the avoidance opening are both connected to the installation space, the shell is arranged in the installation space, and the exhaust port is exposed from the avoidance opening, the stove is installed in the embedding hole and arranged opposite to the shell, and the stove is provided with a avoidance notch, and the exhaust port is exposed from the avoidance notch.
[0022] In some embodiments, the exhaust shell is arranged adjacent to the stove, and the heat dissipation duct is arranged between the stove and the inner pot.
[0023] The exhaust assembly, cooking device and integrated stove according to the embodiments of the present application have at least the following beneficial effects:
[0024] By installing the cavity shell structure on the shell of the cooking device, the exhaust component can be assembled on the cooking device, and the exhaust pipe can connect the cooking cavity of the cooking device with the exhaust cavity of the cavity shell structure, and the exhaust channel defined by the exhaust shell can connect the heat dissipation duct in the cooking device with the exhaust cavity, so that the water vapor discharged by the exhaust pipe and the air flow blown out by the exhaust channel can meet in the exhaust cavity. During the cooking operation of the cooking device, the water vapor in the cooking cavity can be discharged into the exhaust cavity through the exhaust pipe, and at the same time, the heat dissipation duct can blow the water vapor in the exhaust cavity from the exhaust port to the outside through the exhaust channel, so that the water vapor is blown upward until it is sucked away by the range hood. Therefore, the exhaust component can utilize the drainage of the airflow inside the cooking device to flow toward a designated position, for example, the water vapor can be discharged upward to reach the range hood located above it, so that the water vapor can be sucked away by the range hood, preventing the water vapor from condensing on the wall to form water droplets. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For those skilled in the art, other drawings can be obtained based on these drawings without paying any creative work.
[0026] Figure 1 This is a schematic diagram of the three-dimensional structure of the integrated stove according to an embodiment of the present application;
[0027] Figure 2 This is a schematic diagram of the structure of a cooking device according to an embodiment of the present application installed in a cabinet;
[0028] Figure 3 It is a schematic diagram of the three-dimensional structure of the exhaust assembly of an embodiment of the present application;
[0029] Figure 4 This is a schematic diagram of the explosion structure of the exhaust assembly of an embodiment of the present application;
[0030] Figure 5 A schematic diagram of the structure of a cooking device according to an embodiment of the present application;
[0031] Figure 6 for Figure 5 Schematic diagram of the cross-sectional structure of AA;
[0032] Figure 7 This is a schematic diagram of the exploded structure of the cooking device according to an embodiment of the present application;
[0033] Figure 8 This is a schematic diagram of the structure of the heat dissipation shell of an embodiment of the present application;
[0034] Fig. 9This is a schematic diagram of the structure in which a cooking device, a steam exhaust assembly and a stove are installed together in an embodiment of the present application;
[0035] Fig.10 This is a schematic diagram of the structure in which a cooking device and a stove are installed together in an embodiment of the present application.
[0036] Reference numerals:
[0037] 100, integrated stove; 10, cooking device; 1, exhaust assembly; 11, cavity shell structure; 111, fixing bracket; 112, exhaust box; 1121, overlap; 113, connector; 1101, exhaust cavity; 1102, exhaust port; 1103, vent; 1104, adjustment hole; 1105, first waist-shaped hole; 1106, second waist-shaped hole; 1107, avoidance groove; 12, exhaust pipe; 1201, steam inlet; 13, exhaust shell; 1301, exhaust channel; 1302, air inlet; 1303, air outlet; 14, water receiving box; 141, box body; 142, connecting pipe; 1401, water storage cavity; 1402, water inlet; 1403, steam vent; 15, exhaust cover; 1501, sub-steam vent; 2, shell; 21, outer shell; 22, liner; 2201, cooking cavity; 23, heat dissipation shell; 231, first shell cover; 232, second shell cover; 233, flange; 2301, heat dissipation duct; 2302, first exhaust vent; 2303, second exhaust vent; 3, door body; 4, fan; 20, cabinet; 201, installation space; 202, embedded hole; 203, avoidance opening; 30, stove; 301, avoidance gap. DETAILED DESCRIPTION
[0038] In order to make the purpose, technical solution and advantages of the present application more clearly understood, the present application is further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0039] First, see Figure 1 and Figure 2 , an integrated stove 100 provided in an embodiment of the present application includes a cabinet 20, a cooking device 10 and a stove 30.
[0040] The cabinet 20 serves as an appearance component of the integrated stove 100. The overall shape of the cabinet 20 is roughly a cubic structure, for example, it can be a rectangular structure. The interior of the cabinet 20 has an installation space 201, and the top surface of the cabinet 20 has an embedding hole 202 and an avoidance opening 203, and the side of the cabinet has an operation opening. The embedding hole 202, the avoidance opening 203 and the operation opening are all connected to the installation space 201.
[0041] The cooking device 10 can be disposed in the installation space 201 , and a door panel of the cooking device 10 can be exposed from the operation opening, so that a user can open the door panel from the operation opening and click buttons on the door panel to control the cooking device 10 to cook food.
[0042] The stove 30 is installed in the embedding hole 202, so that the stove 30 is at least partially located in the installation space 201, and the stove 30 is arranged opposite to the cooking device 10. The stove 30 is located above the main structure of the cooking device 10. The edge of the stove 30 is provided with an avoidance gap 301, and the avoidance gap 301 can be connected with the avoidance port 203, so that the outlet of the cooking device 10 for discharging water vapor can extend from the avoidance gap 301, so that the cooking device 10 can discharge water vapor to the range hood located above the stove 30, which is convenient for the range hood to absorb water vapor, and convenient for integrating the cooking device 10 and the stove 30 in the installation space 201 of the cabinet 20.
[0043] Second, see Figure 3-Figure 5 The cooking device 10 provided in the embodiment of the present application includes a shell 2, a door body 3, an exhaust assembly 1 and a fan 4.
[0044] Combination Figure 6 and Figure 7 The shell 2 is an appearance component of the cooking device 10 and is used to protect the internal components of the cooking device 10. The shell 2 mainly includes an outer shell 21, an inner liner 22 and a heat dissipation shell 23. The inner liner 22 is usually made of stainless steel. The inner liner 22 is arranged inside the outer shell 21, and the inner liner 22 defines a cooking cavity 2201. The cooking cavity 2201 has an opening. The inner liner 22 made of stainless steel has the characteristics of high temperature resistance, corrosion resistance, and easy cleaning.
[0045] The outer shell 21 serves as the external structure of the shell 2. The outer shell 21 is wrapped around the outer side of the inner pot 22 to protect the inner pot 22 and the electronic components between the outer shell 21 and the inner pot 22. The door body 3 is rotatably installed on the outer shell 21, and the door body 3 is used to open or close the opening of the cooking cavity 2201.
[0046] The heat dissipation shell 23 is arranged on the top of the inner liner 22, and the heat dissipation shell 23 is connected to the outer shell 21, and the heat dissipation shell 23 also defines a heat dissipation duct 2301. The fan 4 is fixedly connected to the heat dissipation shell 23, and the fan 4 is located between the outer shell 21 and the inner liner 22. The air outlet side of the fan 4 is connected to the heat dissipation duct 2301, and the air inlet side of the fan 4 is connected to the space between the outer shell 21 and the inner liner 22, so that the fan 4 can draw the air between the outer shell 21 and the inner liner 22 into the heat dissipation duct 2301, thereby increasing the air flow between the outer shell 21 and the inner liner 22, and can reduce the temperature and humidity between the outer shell 21 and the inner liner 22, and further play a role in protecting electronic components. It can be understood that the heat dissipation shell 23 of the present application can also be partially covered on the top of the inner liner 22, and part of the structure is extended to the side of the inner liner 22, so as to be able to perform heat insulation or heat dissipation at the required position.
[0047] The exhaust component 1 is installed on the heat dissipation shell 23, and the exhaust component 1 defines an exhaust channel 1301, the exhaust channel 1301 includes an air inlet 1302 and an air outlet 1303, the air inlet 1302 is connected to the heat dissipation air duct 2301, the exhaust component 1 also has an exhaust pipe 12, the exhaust pipe 12 includes a steam inlet 1201 and a steam outlet, the steam inlet 1201 is connected to the cooking cavity 2201.
[0048] The fan 4 is arranged between the outer shell 21 and the inner tank 22, and the air outlet side of the fan 4 can be connected to the heat dissipation duct 2301, so that the fan 4 can blow air into the heat dissipation duct 2301, thereby driving the air flow in the heat dissipation duct 2301, thereby providing power to the exhaust channel 1301, so that the air flow velocity blown out from the air outlet 1303 becomes faster and the power becomes stronger.
[0049] Among them, the air flow blown out from the air outlet 1303 is blown toward the water vapor discharged from the steam outlet, so that the water vapor is blown upward under the drive of the air flow until it is sucked away by the range hood. Therefore, the fan 4 of the cooking device 10 can blow the water vapor in the cooking cavity 2201 upward, and the fan 4 is located inside the cooking device 10, and will not occupy the installation space 201 of the cooking device 10, so that the cooking device 10 can be conveniently installed in an embedded manner in the cabinet 20.
[0050] Combination Figure 8Optionally, the heat dissipation shell 23 has a first air outlet 2302 and a second air outlet 2303 connected to the heat dissipation duct 2301. The first air outlet 2302 can be connected to the air inlet 1302, so that the heat dissipation duct 2301 can be connected to the exhaust channel 1301. The fan 4 can blow air into the exhaust channel 1301 through the first air outlet 2302, so that the water vapor discharged from the steam outlet is blown to a high place. The second air outlet 2303 can be connected to the outside, so that the air between the shell 21 and the inner pot 22 can be discharged from the second air outlet 2303 after passing through the heat dissipation duct 2301, thereby further reducing the temperature between the shell 21 and the inner pot 22, so that the internal temperature of the cooking device 10 will not be too high, thereby protecting the electronic components from heat damage and extending their service life. At the same time, good heat dissipation performance can also ensure that the cooking device 10 is more stable and safe during operation.
[0051] Combination Fig. 9 and Fig.10 Optionally, when a stove 30 is provided on the top of the inner pot 22, the heat dissipation duct 2301 located on the top of the inner pot 22 can separate the stove 30 from the inner pot 22, so that the high temperature generated by the stove 30 cannot be directly transmitted to the inner pot 22. The heat dissipation duct 2301 can play a role in isolating high temperature, thereby preventing the inner pot 22 from being damaged by the high temperature of the stove 30, and also preventing the electronic components between the outer shell 21 and the inner pot 22 from being damaged by high temperature.
[0052] See also Figure 8 In some embodiments, the opening area of the first air outlet 2302 is smaller than the opening area of the second air outlet 2303, and the opening shape of the first air outlet 2302 is circular, elliptical, polygonal, etc. Preferably, the first air outlet 2302 is a waist-shaped hole.
[0053] Specifically, when the power of the fan 4 is constant, since the opening area of the first exhaust port 2302 is smaller, the air flow velocity from the first exhaust port 2302 to the exhaust channel 1301 is faster, that is, the air flow velocity blown out of the air outlet 1303 is faster, which can provide higher kinetic energy for the water vapor discharged from the steam outlet, thereby blowing the water vapor to a higher position, so that the water vapor can be better sucked into the range hood.
[0054] Similarly, when the power of the fan 4 is constant, since the opening area of the second exhaust port 2303 is larger, the air flow rate blown out from the second exhaust port 2303 is larger, which can improve the heat dissipation effect of the heat dissipation duct 2301, and the noise generated by the larger exhaust area is lower, which can achieve a noise reduction effect.
[0055] See also Figure 7In some embodiments, the first air outlet 2302 can be opened on the top surface of the heat dissipation shell 23 facing away from the inner tank 22, so that the first air outlet 2302 can blow air upward, or in other words, the first air outlet 2302 can blow air in the direction of the range hood, so that the air flow blowing into the exhaust channel 1301 is blown in the direction of the range hood, and the exhaust channel 1301 can better blow the water vapor discharged from the steam outlet to a higher place.
[0056] Optionally, the first exhaust port 2302 is opened on the top surface of the heat dissipation shell 23 facing away from the inner tank 22, which can facilitate the installation of the exhaust shell 13. The exhaust shell 13 only needs to be fixed to the top surface of the heat dissipation shell 23 to connect the exhaust channel 1301 with the heat dissipation air duct 2301.
[0057] See also Figure 8 In some embodiments, the fan 4 and the second air outlet 2303 can be respectively arranged on two opposite sides of the heat dissipation shell 23, so that the distance between the air inlet side and the air outlet side of the heat dissipation duct 2301 is long enough, thereby increasing the heat dissipation area of the heat dissipation duct 2301 and further improving the heat dissipation effect.
[0058] To be more specific, the second air outlet 2303 is arranged toward the side where the opening of the inner liner 22 is located, and the fan 4 is arranged on the side of the inner liner 22 facing away from the opening thereof. Such a layout arrangement can facilitate the installation of the fan 4, and the fan 4 can draw the air between the inner liner 22 and the outer shell 21 into the heat dissipation duct 2301, and then blow it out from the side where the opening of the inner liner 22 is located, so that when part of the water vapor in the inner liner 22 is discharged from the opening of the inner liner 22, the second air outlet 2303 can blow the water vapor away from the inner liner 22 to prevent the water vapor from condensing into water droplets near the opening of the inner liner 22.
[0059] Optionally, the first exhaust outlet 2302 is arranged closer to the fan 4 than the second exhaust outlet 2303, or it can be said that the first exhaust outlet 2302 is closer to the air inlet side of the heat dissipation duct 2301 than the second exhaust outlet 2303, so that the airflow in the heat dissipation duct 2301 sucked by the fan 4 is first blown from the first exhaust outlet 2302 to the exhaust channel 1301, which can reduce the flow loss of the airflow entering the exhaust channel 1301, so that the exhaust channel 1301 can provide greater power for the water vapor discharged from the steam outlet.
[0060] Optionally, the first exhaust port 2302 is arranged closer to the fan 4 than the second exhaust port 2303, so that the exhaust shell 13 is installed on the edge of the heat dissipation shell 23, so that the top surface of the heat dissipation shell 23 can reserve enough area to install the stove 30. When installing the integrated stove 100, the exhaust shell 13 can be prevented from interfering with the stove 30, thereby facilitating the integration of the cooking device 10 and the stove 30 in the cabinet 20.
[0061] See also Figure 7 In some embodiments, the top of the housing 21 may be open, and the heat dissipation shell 23 is covered at the open position and connected to the housing 21 .
[0062] Specifically, the outer shell 21 includes a bottom plate and side plates that are connected to each other. The inner liner 22 is arranged above the bottom plate, and the side plates are arranged around the inner liner 22. The heat dissipation shell 23 is arranged on the top of the inner liner 22, and the heat dissipation shell 23 is connected to the side plates, so that the heat dissipation shell 23 and the outer shell 21 are wrapped around the outside of the inner liner 22, so that the heat dissipation shell 23 and the outer shell 21 jointly play a role in protecting the inner liner 22 and the electronic components between the outer shell 21 and the inner liner 22.
[0063] See also Figure 8 In some embodiments, the heat dissipation shell 23 includes a first shell cover 231 and a second shell cover 232 , and the first shell cover 231 and the second shell cover 232 are both plate-shaped structures.
[0064] Specifically, the first shell cover 231 can be covered on the open part of the outer shell 21, and the first shell cover 231 can be connected to the outer shell 21, so that the first shell cover 231 covers the top of the inner liner 22, and the second shell cover 232 is installed on the side of the first shell cover 231 facing away from the inner liner 22, and the second shell cover 232 can define a heat dissipation duct 2301 together with the first shell cover 231, and the second shell cover 232 has a first exhaust port 2302, so that the first exhaust port 2302 is located at the top of the heat dissipation shell 23.
[0065] Optionally, the second shell cover 232 can be made of a heat-insulating material with a heat-insulating effect, so that the second shell cover 232 can play a heat-insulating role, that is, the second shell cover 232 can isolate the high temperature generated by the stove 30, and there can also be a gap between the first shell cover 231 and the inner pot 22, so that a heat-insulating area can be formed between the first shell cover 231 and the inner pot 22, further increasing the heat-insulating effect.
[0066] See also Figure 8 In some embodiments, a flange 233 is protruding from the surface of the second shell cover 232 facing away from the first shell cover 231, and the flange 233 is arranged around the first air outlet 2302, so that the cross-sectional shape formed by the flange 233 is the same as the opening shape of the first air outlet 2302, and the flange 233 can be inserted into the air inlet 1302.
[0067] Specifically, when installing the exhaust shell 13, it is only necessary to insert the flange 233 into the air inlet 1302. At this time, the first exhaust port 2302 is connected with the air inlet 1302, so that the exhaust channel 1301 is connected with the heat dissipation duct 2301, which can facilitate the installation of the exhaust shell 13 and the docking of the air inlet 1302 with the first exhaust port 2302. Optionally, the exhaust shell 13 can be fixed to the second shell cover 232 by bolts, so that the exhaust shell 13 is installed more firmly.
[0068] At the same time, the flange 233 can increase the air tightness between the air inlet 1302 and the first air outlet 2302 to prevent air leakage between the air inlet 1302 and the first air outlet 2302 .
[0069] Third, see Figure 3-Figure 5 , is an exhaust component 1 provided in an embodiment of the present application, the exhaust component 1 is used to be assembled on a cooking device 10 to exhaust the water vapor in the cooking device 10 to a higher place, and the exhaust component 1 includes a cavity shell structure 11, an exhaust pipe 12, and an exhaust shell 13.
[0070] The cavity shell structure 11 can be used to be detachably installed on the housing 2 , and the top of the cavity shell structure 11 can define a steam exhaust cavity 1101 , and the cavity shell structure 11 also has a steam exhaust port 1102 and a vent 1103 communicated with the steam exhaust cavity 1101 .
[0071] A steam inlet 1201 and a steam outlet are respectively formed at the opposite ends of the exhaust pipe 12. The end of the exhaust pipe 12 formed with the steam inlet 1201 can be arranged close to the cooking cavity 2201, so that the steam inlet 1201 is connected with the cooking cavity 2201. The end of the exhaust pipe 12 formed with the steam outlet is installed at the bottom of the cavity shell structure 11, so that the steam outlet is connected with the exhaust cavity 1101, so that the water vapor inside the cooking cavity 2201 can be discharged into the exhaust cavity 1101 through the exhaust pipe 12.
[0072] The exhaust shell 13 can be installed on the cavity shell structure 11, and the exhaust shell 13 defines an exhaust channel 1301. The exhaust channel 1301 can include an air inlet 1302 and an air outlet 1303, and the air inlet 1302 and the air outlet 1303 are respectively located at the two ends of the exhaust channel 1301, and the air inlet 1302 can be connected with the heat dissipation air duct 2301, so that the airflow sucked into the heat dissipation air duct 2301 by the fan 4 can be diverted into the exhaust channel 1301, and the air outlet 1303 can be connected with the ventilation port 1103, so that the exhaust channel 1301 is connected with the exhaust chamber 1101, so that the exhaust channel 1301 can blow air into the exhaust chamber 1101, so that the water vapor discharged by the exhaust pipe 12 and the airflow blown out by the exhaust channel 1301 can intersect in the exhaust chamber 1101.
[0073] When the cooking device 10 completes the cooking task, the water vapor in the cooking cavity 2201 can be discharged into the exhaust cavity 1101 through the exhaust pipe 12. At the same time, the heat dissipation duct 2301 can blow the water vapor in the exhaust cavity 1101 out of the exhaust port 1102 through the exhaust channel 1301, so that the water vapor is blown upward until it is sucked away by the range hood. Therefore, the exhaust component 1 can use the airflow inside the cooking device 10 to discharge the water vapor to a high place, so that the water vapor can be sucked away by the range hood, preventing the water vapor from condensing on the wall to form water droplets.
[0074] At the same time, the steam exhaust component 1 can be used as a separate accessory relative to the cooking device 10. The user can purchase the steam exhaust component 1 separately, and the installation process of the steam exhaust component 1 is very simple. The steam exhaust component 1 can be installed on the cooking device 10 by bolts, so that the steam exhaust component 1 can utilize the airflow inside the cooking device 10 to exhaust water vapor to a higher place, so that the steam exhaust component 1 can be compatible with a variety of cooking devices 10, providing users with more flexible and practical choices.
[0075] See also Figure 4 In some embodiments, the cavity shell structure 11 can include a fixing bracket 111 and an exhaust box 112 , the fixing bracket 111 is used to be installed on the shell 2 , and the exhaust box 112 is installed on the fixing bracket 111 .
[0076] Optionally, a plurality of threaded holes are provided at the bottom of the fixing bracket 111 , and the fixing bracket 111 is screwed to the housing 2 by bolts.
[0077] The steam exhaust box 112 is integrally formed with the fixed bracket 111, or the fixed bracket 111 and the steam exhaust box 112 are detachably connected together, and the steam exhaust box 112 can define a steam exhaust chamber 1101, and the side wall of the steam exhaust box 112 has a steam exhaust port 1102 and a vent 1103, so that the steam exhaust pipe 12 and the exhaust channel 1301 can be connected to the steam exhaust chamber 1101. By setting the fixed bracket 111, the steam exhaust box 112 can be easily installed on the shell 2.
[0078] See also Figure 4 In some embodiments, the exhaust box 112 can be shaped as a cubic structure, and the top of the exhaust box 112 has an exhaust port 1102. Preferably, the exhaust pipe 12 has an end with a steam outlet that can be connected to the bottom of the exhaust box 112, and the steam outlet is connected to the bottom of the exhaust cavity 1101, so that the water vapor discharged from the steam outlet can be discharged from the exhaust port 1102 in a vertical direction, so that the water vapor can move upward to a higher position.
[0079] The side wall of the steam exhaust box 112 has a vent 1103, and the exhaust shell 13 has one end of an air outlet 1303 installed on the side wall of the steam exhaust box 112, so that the air outlet 1303 of the exhaust shell 13 is connected with the vent 1103, and the exhaust shell 13 has one end of an air inlet 1302 which can be installed on the fixed bracket 111, and the exhaust shell 13 and the steam exhaust box 112 can be conveniently assembled together through the fixed bracket 111.
[0080] When the fixing bracket 111 is installed on the outer shell 21, the air inlet 1302 can be connected with the first air outlet 2302 of the heat dissipation duct 2301, so that the exhaust channel 1301 is connected with the heat dissipation duct 2301, so that the air flow in the heat dissipation duct 2301 can flow into the exhaust channel 1301 and be blown into the exhaust chamber 1101 from the air outlet 1303, providing power for the upward movement of water vapor, so that the water vapor can move to a higher position.
[0081] See also Figure 4 In some embodiments, the circumferential side wall of the steam exhaust box 112 is provided with a lap 1121, and the lap 1121 is protruded in a direction away from the steam exhaust port 1102, and the lap 1121 is arranged around the circumference of the steam exhaust port 1102. By providing the lap 1121, the structural strength of the steam exhaust port 1102 can be increased.
[0082] At the same time, when the exhaust assembly 1 is installed on the shell 2 and the shell 2 is embedded in the cabinet 20, the overlap 1121 can overlap with the avoidance opening 203 on the top surface of the cabinet 20, so that the exhaust port 1102 is exposed from the cabinet 20, making it convenient for the exhaust port 1102 to discharge water vapor out of the cabinet 20 and to discharge water vapor to the range hood located above the cabinet 20.
[0083] See also Figure 4 In some embodiments, the exhaust box 112 can be installed in an adjustable position relative to the fixing bracket 111 .
[0084] Specifically, during the installation of the exhaust assembly 1, the installation position between the fixed bracket 111 and the housing 2 is fixed, that is, the fixed bracket 111 and the housing 2 cannot be adjusted in installation position. However, when the avoidance opening 203 is opened on the cabinet 20, due to slight differences in operation, a slight error in size may occur, resulting in the exhaust box 112 being unable to smoothly extend from the avoidance opening 203. At this time, the exhaust box 112 is adjusted in installation position relative to the fixed bracket 111, so that the exhaust box 112 can adapt to the actual size of the avoidance opening 203, can be smoothly inserted into and extended from the avoidance opening 203, and can be easily installed.
[0085] See also Figure 4In some embodiments, one of the exhaust box 112 and the fixed bracket 111 includes a connecting hole, and the other includes an adjusting hole 1104. The cavity shell structure 11 can also include a connecting piece 113 and a fastener. The connecting piece 113 can be inserted into the adjusting hole 1104 and the connecting hole, and the connecting piece 113 can move relative to the adjusting hole 1104 in a direction perpendicular to the axial direction of the adjusting hole 1104. It can also be said that one of the exhaust box 112 and the fixed bracket 111 can move relative to the connecting piece 113, so as to adjust the installation position of the exhaust box 112. When the exhaust box 112 is adjusted to a good position, the fastener is assembled to the connecting piece 113 and the fastener is tightened to fix the exhaust box 112 to the fixed bracket 111. Therefore, by setting the connecting hole and the adjusting hole 1104, the installation position of the exhaust box 112 relative to the fixed bracket 111 can be adjusted.
[0086] Specifically, the exhaust box 112 is installed on the top of the fixed bracket 111, and the bottom of the exhaust box 112 has an extension plate, which can extend to be arranged opposite to the side wall of the fixed bracket 111, or the extension plate and the fixed bracket 111 are stacked, and one of the extension plate and the fixed bracket 111 can include a connecting hole, and the other includes an adjusting hole 1104, and the aperture of the connecting hole matches the outer diameter of the connecting member 113, and the aperture of the adjusting hole 1104 is larger than the outer diameter of the connecting member 113, so that the connecting member 113 can move relative to the adjusting hole 1104 in a direction perpendicular to the axial direction of the adjusting hole 1104.
[0087] Optionally, the extension plate includes an adjustment hole 1104, and the fixed bracket 111 includes a connecting hole. The connecting piece 113 is inserted into the adjustment hole 1104 and the connecting hole in sequence, and the extension plate is moved in a direction perpendicular to the axial direction of the adjustment hole 1104, so that the exhaust box 112 can be moved relative to the fixed bracket 111, thereby adjusting the installation position of the exhaust box 112. Of course, the connecting hole can also be set on the extension plate, and the adjustment hole 1104 can be set on the fixed bracket 111.
[0088] See also Figure 4 In some embodiments, the adjustment hole 1104 can include a first waist-shaped hole 1105 and a second waist-shaped hole 1106 that are cross-arranged, and the first waist-shaped hole 1105 and the second waist-shaped hole 1106 are connected to each other. When the connecting member 113 is inserted into the first waist-shaped hole 1105 or the second waist-shaped hole 1106, the connecting member 113 can move along the first waist-shaped hole 1105 or the second waist-shaped hole 1106, and the connecting member 113 can also move between the first waist-shaped hole 1105 and the second waist-shaped hole 1106. The first waist-shaped hole 1105 and the second waist-shaped hole 1106 can also play a guiding role, which is convenient for adjusting the installation position of the exhaust box 112.
[0089] Specifically, the first waist-shaped hole 1105 and the second waist-shaped hole 1106 can be arranged perpendicular to each other, that is, the adjustment hole 1104 formed by the first waist-shaped hole 1105 and the second waist-shaped hole 1106 is a cross-shaped hole, so that the exhaust box 112 can adjust the installation position along the left and right direction or the up and down direction, which can further facilitate the adjustment of the installation position of the exhaust box 112.
[0090] See also Figure 3 and Figure 4 In some embodiments, the fixed bracket 111 can be provided with an avoidance groove 1107, so that at least a portion of the exhaust pipe 12 can be arranged in the avoidance groove 1107, and the exhaust pipe 12 located in the avoidance groove 1107 can be connected to the exhaust box 112. By providing the avoidance groove 1107 to accommodate the exhaust pipe 12, the space occupied by the exhaust pipe 12 can be reduced, thereby facilitating the installation of the exhaust assembly 1.
[0091] Specifically, the avoidance groove 1107 can be arranged at the bottom of the fixed bracket 111, and the open end of the avoidance groove 1107 is located at the bottom surface of the fixed bracket 111, so that the exhaust pipe 12 can extend into the avoidance groove 1107 from the bottom of the fixed bracket 111, and the exhaust pipe 12 extends in the avoidance groove 1107 to the top of the fixed bracket 111 until it is connected with the exhaust box 112 located at the top of the fixed bracket 111, so that the exhaust pipe 12 can be easily installed.
[0092] Optionally, the shape of the fixing bracket 111 is generally a U-shaped structure, and the opening end of the U-shaped structure is arranged downward, and the U-shaped cavity is the avoidance groove 1107 .
[0093] See also Figure 4 In some embodiments, the steam exhaust component 1 can further include a water receiving box 14, which can be detachably arranged in the steam exhaust chamber 1101, and the water receiving box 14 defines a water storage chamber 1401, and the water receiving box 14 also includes a water receiving port 1402 connected to the water storage chamber 1401, and the water receiving port 1402 is connected to the steam exhaust port 1102.
[0094] The water vapor discharged from the steam exhaust port 1102 condenses to form water, and after flowing back from the steam exhaust port 1102 to the steam exhaust chamber 1101, the water can flow into the water holding chamber 1401 from the water receiving port 1402, and the water vapor inside the steam exhaust chamber 1101 condenses to form water and can also flow into the water holding chamber 1401 from the water receiving port 1402. When the water in the water holding chamber 1401 is almost full, the water receiving box 14 can be removed from the steam exhaust chamber 1101, and after the water in the water holding chamber 1401 is poured out, the water receiving box 14 can be installed in the steam exhaust chamber 1101 to continue to receive water. By setting up the water receiving box 14, it is possible to prevent condensed water from flowing into the steam exhaust chamber 1101 and then flowing back from the steam exhaust pipe 12 to the cooking chamber 2201. The water receiving box 14 is designed to be detachable, which can facilitate the cleaning of accumulated water.
[0095] Specifically, the water receiving box 14 includes a box body 141 and a connecting pipe 142. The shape of the box body 141 can be a cubic shape, a cylindrical shape, etc., and the box body 141 can define a water holding chamber 1401, and the two opposite sides of the box body 141 respectively have a steam vent 1403 and a water receiving port 1402 connected to the water holding chamber 1401, the water receiving port 1402 is connected to the steam exhaust port 1102, and the steam vent 1403 can be connected to the steam outlet.
[0096] The connecting pipe 142 can be installed on the box body 141. To be more specific, one end of the connecting pipe 142 is inserted into the steam outlet, and the other end of the connecting pipe 142 is inserted into the steam vent, so that the exhaust pipe 12 can be connected with the water holding chamber 1401. Since the water inlet 1402 is connected to the exhaust port 1102, the exhaust pipe 12 can be connected with the exhaust chamber 1101 through the connecting pipe 142. The water vapor discharged from the steam outlet passes through the water holding chamber 1401 and the exhaust chamber 1101 and is discharged from the exhaust port 1102. By setting the connecting pipe 142, the exhaust pipe 12 can be connected with the exhaust chamber 1101, and the water vapor first passes through the water holding chamber 1401 and then enters the exhaust chamber 1101 and is discharged from the exhaust port 1102, which can facilitate the water holding chamber 1401 to receive water and prevent water from flowing into the exhaust chamber 1101.
[0097] Optionally, the portion of the connecting tube 142 located in the water chamber 1401 is extended toward the water receiving port 1402 so that the mouth of the connecting tube 142 is higher than the bottom of the water chamber 1401, thereby preventing the water in the water chamber 1401 from flowing back from the connecting tube 142 to the exhaust pipe 12.
[0098] Optionally, the vent 1103 is located between the water receiving port 1402 and the steam exhaust port 1102, so that the air flow blown into the steam exhaust chamber 1101 by the exhaust channel 1301 is located above the water receiving box 14, and the air flow can be blown out from the steam exhaust port 1102, which can prevent the air flow from blowing toward the water receiving box 14, thereby preventing the water in the water receiving box 14 from being blown up and splashing, and at the same time can facilitate the air flow to blow water vapor out of the steam exhaust port 1102.
[0099] See also Figure 3 and Figure 4 In some embodiments, the exhaust component 1 can further include an exhaust cover 15, which can cover the exhaust port 1102. The exhaust cover 15 serves as a protective barrier to prevent dust, small insects or other foreign objects from entering the exhaust chamber 1101, thereby ensuring the normal operation of the exhaust component 1.
[0100] The exhaust cover 15 is provided with a plurality of sub-steam ports 1501, each of which is connected to the exhaust chamber 1101, so that water vapor can be discharged from the plurality of sub-steam ports 1501. By providing a plurality of sub-steam ports 1501, water vapor can be discharged into the environment more evenly, thereby preventing local high temperature or high-speed airflow that may be caused by a single large-diameter exhaust port 1102. Since water vapor is discharged through the sub-steam ports 1501 with a plurality of small holes, the noise during discharge can be reduced, making the cooking device 10 run more quietly.
[0101] Specifically, the sub-steam outlet 1501 can be a long strip-shaped opening, and the exhaust cover 15 is provided with a total of six sub-steam outlets 1501, which are symmetrically arranged in two groups. The three sub-steam outlets 1501 in each group are parallel to each other, and the lengths of the three sub-steam outlets 1501 vary sequentially, so that the water vapor is more evenly distributed during discharge, thereby preventing the generation of local high temperature or high-speed airflow during the discharge process.
[0102] See also Figure 6 In some embodiments, the flow area of the exhaust channel 1301 gradually decreases from the air inlet 1302 toward the air outlet 1303, so that when the air flow passes through the exhaust channel 1301, the flow area of the air flow gradually decreases. The exhaust channel 1301 can accelerate the flow rate of the air flow, so that a higher wind speed can be formed at the air outlet 1303, and the water vapor can be blown to a higher position.
[0103] Optionally, the opening area of the air inlet 1302 is larger than the opening area of the air outlet 1303, so that the air inlet 1302 can inhale more air into the exhaust channel 1301, thereby helping to inhale the air flow from the air inlet 1302 and discharge it through the air outlet 1303, and can better blow the water vapor to a higher place.
[0104] See also Fig. 9 and Fig.10 In some embodiments, the exhaust shell 13 can be arranged adjacent to the stove 30 , and the heat dissipation duct 2301 is arranged between the stove 30 and the inner pot 22 .
[0105] Specifically, the exhaust shell 13 can be arranged around the stove 30, so that the exhaust channel 1301 is arranged adjacent to the stove 30, so that the airflow inside the exhaust channel 1301 can reduce the temperature around the stove 30 and reduce the impact of the high temperature of the stove 30 on the user.
[0106] The heat dissipation duct 2301 can be arranged between the stove 30 and the inner pot 22, so that the heat dissipation duct 2301 plays a role of heat insulation, which can prevent the high temperature generated by the stove 30 from being transmitted to the inner pot 22 and the electronic components between the outer shell 21 and the inner pot 22, thereby protecting the cooking device 10.
[0107] The same or similar numbers in the drawings of this embodiment correspond to the same or similar parts; in the description of this application, it should be understood that if the terms "upper", "lower", "left", "right", etc. indicate an orientation or position relationship based on the orientation or position relationship shown in the drawings, it is only for the convenience of describing this application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, the terms describing the position relationship in the drawings are only used for illustrative purposes and cannot be understood as a limitation on this patent. For ordinary technicians in this field, the specific meanings of the above terms can be understood according to specific circumstances.
[0108] The above description is only a preferred embodiment of the present application and is not intended to limit the present application. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present application should be included in the protection scope of the present application.
Claims
1. A steam exhaust assembly for a cooking device, the cooking device comprising a housing (2), a cooking cavity (2201) and a heat dissipation duct (2301) being arranged in the housing (2), characterized in that: The exhaust assembly (1) comprises: A cavity shell structure (11) used for being mounted on the housing (2), the cavity shell structure (11) defining a steam exhaust cavity (1101) and a steam exhaust port (1102) and a vent (1103) communicating with the steam exhaust cavity (1101); an exhaust pipe (12) installed on the cavity shell structure (11), the exhaust pipe (12) comprising a steam inlet (1201) and a steam outlet, the steam inlet (1201) being used to communicate with the cooking cavity (2201), and the steam outlet being communicated with the exhaust cavity (1101); An exhaust shell (13) is installed on the cavity shell structure (11) and defines an exhaust channel (1301), wherein the exhaust channel (1301) comprises an air inlet (1302) and an air outlet (1303), wherein the air inlet (1302) is used to communicate with the heat dissipation air duct (2301), and the air outlet (1303) is communicated with the vent (1103); The water vapor discharged from the steam outlet and the air flow blown out from the air outlet (1303) meet in the steam exhaust chamber (1101), and the water vapor is sent out from the steam exhaust port (1102) to the outside driven by the air flow.
2. The exhaust assembly according to claim 1, characterized in that: The cavity shell structure (11) comprises: A fixing bracket (111) used for being installed on the housing (2); The steam exhaust box (112) is mounted on the fixing bracket (111) and defines the steam exhaust chamber (1101) and has the steam exhaust port (1102) and the ventilation port (1103).
3. The exhaust assembly according to claim 2, characterized in that: The top of the steam exhaust box (112) is provided with the steam exhaust port (1102), the side wall of the steam exhaust box (112) is provided with the ventilation port (1103), one end of the exhaust shell (13) is mounted on the side wall of the steam exhaust box (112), and the other end of the exhaust shell (13) is mounted on the fixed bracket (111).
4. The exhaust assembly according to claim 2 or 3, characterized in that: A ledge (1121) is protruding from the side wall of the steam exhaust box (112) in a direction away from the steam exhaust port (1102), and the ledge (1121) is arranged around the circumference of the steam exhaust port (1102).
5. The exhaust assembly according to claim 2, characterized in that: The exhaust box (112) can be installed in an adjustable position relative to the fixing bracket (111).
6. The exhaust assembly according to claim 5, characterized in that: One of the exhaust box (112) and the fixed bracket (111) includes a connecting hole, and the other includes an adjusting hole (1104). The cavity shell structure (11) also includes a connecting piece (113) and a fastener. The connecting piece (113) is inserted into the adjusting hole (1104) and the connecting hole, and the connecting piece (113) can move relative to the adjusting hole (1104) in a direction perpendicular to the axial direction of the adjusting hole (1104). The fastener is assembled on the connecting piece (113) to fasten the exhaust box (112) to the fixed bracket (111).
7. The exhaust assembly according to claim 6, characterized in that: The adjustment hole (1104) comprises a first waist-shaped hole (1105) and a second waist-shaped hole (1106) which are cross-arranged and connected.
8. The exhaust assembly according to claim 2, characterized in that: The fixed bracket (111) is provided with an avoidance groove (1107), and at least a portion of the exhaust pipe (12) is arranged in the avoidance groove (1107) and connected to the exhaust box (112).
9. The exhaust assembly according to claim 1, characterized in that: The exhaust assembly (1) further comprises: The water receiving box (14) is detachably arranged in the exhaust chamber (1101) and defines a water storage chamber (1401). The water receiving box (14) comprises a water receiving port (1402), and the water receiving port (1402) is connected to the exhaust port (1102).
10. The exhaust assembly according to claim 9, characterized in that: The water receiving box (14) comprises: A box body (141) defines the water storage chamber (1401), and two opposite sides of the box body (141) are respectively provided with a steam vent (1403) and the water receiving port (1402); The connecting pipe (142) is installed on the box body (141), and one end of the connecting pipe is inserted into the steam outlet, and the other end of the connecting pipe is inserted into the steam vent (1403) and extends in a direction close to the water inlet (1402).
11. The exhaust assembly according to claim 9, characterized in that: The ventilation port (1103) is located between the water receiving port (1402) and the steam exhaust port (1102).
12. The exhaust assembly according to claim 1, characterized in that: The exhaust assembly (1) further comprises: The exhaust cover (15) covers the exhaust port (1102) and is provided with a plurality of sub-steam ports (1501), each of the sub-steam ports (1501) being in communication with the exhaust chamber (1101).
13. The exhaust assembly according to claim 1, characterized in that: In the direction from the air inlet (1302) toward the air outlet (1303), the flow area of the exhaust passage (1301) gradually decreases.
14. A cooking device, characterized in that: include: The housing (2) comprises an outer shell (21) and an inner pot (22) arranged in the outer shell (21), wherein the outer shell (21) is formed with a heat dissipation duct (2301), and a cooking cavity (2201) is formed in the inner pot (22); A door body (3) rotatably mounted on the housing (21) and used for closing or opening the cooking cavity (2201); A fan (4) is arranged between the outer shell (21) and the inner liner (22), and is connected to the heat dissipation duct (2301); And according to the exhaust component (1) as described in any one of claims 1 to 13, the air inlet (1302) of the exhaust channel (1301) is connected to the heat dissipation duct (2301).
15. The cooking device according to claim 14, characterized in that The housing (2) further comprises a heat dissipation shell (23), wherein the heat dissipation shell (23) is arranged on the top of the inner tank (22) and connected to the outer shell (21), and the heat dissipation shell (23) defines the heat dissipation air duct (2301), and the fan (4) is fixedly connected to the heat dissipation shell (23); The heat dissipation shell (23) has a first air outlet (2302) and a second air outlet (2303) which are connected to the heat dissipation air duct (2301), and the first air outlet (2302) is connected to the air inlet (1302), and the second air outlet (2303) is connected to the outside.
16. The cooking device according to claim 15, characterized in that The heat dissipation shell (23) comprises: A first shell cover (231), connected to the outer shell (21) and covering the top of the inner container (22); The second shell cover (232) is installed on a side of the first shell cover (231) facing away from the inner liner (22), and defines the heat dissipation duct (2301) together with the first shell cover (231), and the second shell cover (232) has the first exhaust port (2302).
17. An integrated stove, characterized in that: include: A cabinet (20) having an installation space (201) therein, and a cabinet body surface of the cabinet (20) having an embedding hole (202) and an escape opening (203), wherein both the embedding hole (202) and the escape opening (203) are in communication with the installation space (201); The cooking device (10) according to any one of claims 14 to 16, wherein the housing (2) is arranged in the installation space (201), and the steam exhaust port (1102) is exposed from the avoidance port (203); The cooker (30) is installed in the embedding hole (202) and is arranged opposite to the shell (2), and has an avoidance gap (301), and the steam exhaust port (1102) is exposed from the avoidance gap (301).
18. The integrated stove according to claim 17, characterized in that: The exhaust shell (13) is arranged adjacent to the stove (30), and the heat dissipation duct (2301) is arranged between the stove (30) and the inner pot (22).