Integrated cooker system
The heat of the stove pot bracket is transferred to the oil net through the heat conductor, which solves the problem of time-consuming and labor-intensive cleaning of oil stains on the integrated stove and achieves the energy-saving and environmentally friendly effect of high-temperature oil removal.
Patent Information
- Application Number
- CN202422054181.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-08-23
AI Technical Summary
In existing integrated stoves, oil stains adhere to the oil screen at the air inlet during cooking and require manual cleaning, which is time-consuming and labor-intensive. In addition, the high-temperature steam degreasing solution is expensive and may damage the fan system.
A heat conductor is used to transfer the heat of the stove pot support to the oil net to achieve high-temperature oil removal, and the heat generated by the pot support is used to separate the oil and dirt.
It achieves high-temperature oil removal, has a simple structure, is energy-saving and environmentally friendly, and avoids the defects of manual cleaning and high-temperature steam solutions.
Smart Images

Figure CN223178893U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of kitchen utensils, and particularly relates to an integrated range hood system. Background Art
[0002] Existing integrated range hoods usually include a range hood component and a cooking appliance, and some even integrate other kitchen appliances, such as a steam oven, a disinfection cabinet, etc., so as to reduce the occupied space of these appliances in the kitchen. However, during daily cooking, a large amount of oil stains adhere to the oil mesh at the air inlet of the integrated range hood, and usually manual cleaning is required, which is very time-consuming and laborious. There are also other cleaning solutions that use high-temperature steam to melt the oil stains, and equipment for generating high-temperature steam needs to be manufactured, which is expensive; in addition, the high-temperature steam may damage the fan system. Therefore, there is an urgent need to provide an oil removal solution that is convenient and does not damage the fan system. Summary of the Utility Model
[0003] To solve the above technical problems, the present application discloses an integrated range hood system, which at least includes:
[0004] A range hood component, the range hood component includes an oil mesh, and the oil mesh is used for separating oil fume from the inhaled oil fume;
[0005] A cooking appliance, the cooking appliance includes a pot support;
[0006] A heat conducting member, one end of the heat conducting member is close to the oil mesh, and the other end of the heat conducting member is close to the pot support, and is used for transferring the heat of the pot support to the oil mesh.
[0007] Optionally, the heat conducting member includes a heat conducting main body, a first heat transfer member and a second heat transfer member;
[0008] One end of the first heat transfer member is close to the pot support, and the other end of the first heat transfer member is connected to the heat conducting main body;
[0009] One end of the second heat transfer member is close to the oil mesh, and the other end of the second heat transfer member is connected to the heat conducting main body;
[0010] The first heat transfer member, the heat conducting main body and the second heat transfer member are sequentially connected to form a concave structure.
[0011] Optionally, the range hood component further includes a top shell and a side shell that are sequentially connected;
[0012] The top shell is located above the cooking appliance;
[0013] The side shell is located on one side of the cooking appliance, and an air extraction port is provided on the side shell, and the oil mesh is provided at the air extraction port;
[0014] The end of the heat conducting main body is close to the top shell.
[0015] Optionally, it further includes an integrated household appliance device;
[0016] The integrated household appliance device is located below the cooker;
[0017] The integrated household appliance device is provided with a heating component;
[0018] The heat conducting member further includes a third heat transfer member;
[0019] One end of the third heat transfer member is close to the heating component, and the other end of the third heat transfer member is connected to the heat conducting main body.
[0020] Optionally, the integrated household appliance device is a steam box, an oven or a steam oven.
[0021] Optionally, the integrated household appliance is a disinfection device.
[0022] Optionally, it further includes a thermoelectric power generation battery;
[0023] The thermoelectric power generation battery is electrically connected to the igniter of the cooker for supplying power to the igniter.
[0024] Optionally, the thermoelectric power generation battery includes a hot end and a cold end;
[0025] The hot end is connected to the heat conducting member;
[0026] The cold end is connected to the side shell;
[0027] When the cooker works, the thermoelectric power generation battery is used to charge the thermoelectric power generation battery based on the Seebeck effect.
[0028] Optionally, the material of the heat conducting member includes copper, aluminum or an alloy of the two.
[0029] Optionally, the shape of the heat conducting member includes a cylinder.
[0030] An integrated cooker system provided by an embodiment of the present application at least includes a range hood assembly, a cooker and a heat conducting member; the range hood assembly includes an oil net for separating oil fume from the inhaled oil fume; the cooker includes a pot support; one end of the heat conducting member is close to the oil net, and the other end of the heat conducting member is close to the pot support for transferring the heat of the pot support to the oil net. Thus, when the cooker works, the heat generated by the pot support can be transferred to the oil net by the heat conducting member to achieve high-temperature oil removal, and the whole structure also has the advantage of simple structure. Description of the Drawings
[0031] To more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the accompanying drawings required for the description of the embodiments. Obviously, the accompanying drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, other accompanying drawings can be obtained based on these drawings without creative efforts.
[0032] Figure 1 It is a schematic structural diagram of an exemplary integrated stove system of the present application;
[0033] Figure 2 It is a schematic structural diagram of another exemplary integrated stove system of the present application;
[0034] Figure 3 It is a schematic connection diagram of an exemplary thermoelectric power generation battery of the present application.
[0035] The following is a supplementary description of the accompanying drawings:
[0036] 1 - Range hood assembly; 101 - Oil mesh; 102 - Top shell; 103 - Side shell; 2 - Cooker; 201 - Pot support; 3 - Heat conducting member; 301 - Heat conducting main body; 302 - First heat transfer member; 303 - Second heat transfer member; 304 - Third heat transfer member; 4 - Integrated household appliance device; 401 - Heating assembly. Specific embodiments
[0037] The following will clearly and completely describe the technical solutions in the embodiments of the present application with reference to the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only some embodiments of the present application, rather than all embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present application without creative efforts belong to the scope of protection of the present application.
[0038] As used herein, the term "one embodiment" or "embodiment" refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present application. In the description of the present application, it should be understood that the orientation or positional relationship indicated by terms such as "upper", "lower", "top", "bottom", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present 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, and therefore should not be construed as a limitation of the present application. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of such features. Moreover, the terms "first", "second", etc. are used to distinguish similar objects and do not necessarily have to be used to describe a specific order or sequence. It should be understood that such data can be interchanged under appropriate circumstances so that the embodiments of the present application described herein can be implemented in an order other than those illustrated or described herein.
[0039] When a numerical range is disclosed herein, the above range is considered continuous and includes the minimum and maximum values of the range, as well as each value therebetween. Further, when the range refers to integers, it includes each integer between the minimum and maximum values of the range. In addition, when multiple ranges are provided to describe features or characteristics, the ranges can be combined. In other words, unless otherwise specified, all ranges disclosed herein should be understood to include any and all sub-ranges subsumed therein. For example, the specified range from "1 to 10" should be considered to include any and all sub-ranges between the minimum value 1 and the maximum value 10. Exemplary sub-ranges of the range 1 to 10 include, but are not limited to, 1 to 6.1, 3.5 to 7.8, 5.5 to 10, etc.
[0040] Embodiment 1
[0041] Please refer to Figure 1 , which shows a schematic structural diagram of an exemplary integrated cooking stove system of the present application. The integrated cooking stove system at least includes: an oil fume machine assembly 1, the oil fume machine assembly 1 includes an oil mesh 101, and the oil mesh 101 is used for separating oil fume from the inhaled oil fume; a cooking stove 2, the cooking stove 2 includes a pot support 201; a heat conducting member 3, one end of the heat conducting member 3 is close to the oil mesh 101, and the other end of the heat conducting member 3 is close to the pot support 201, and is used for transferring the heat of the pot support 201 to the oil mesh 101.
[0042] Compared with the oil removal methods in the prior art that involve setting up complex high-temperature treatment devices or manual cleaning, the integrated stove system provided in this application can utilize the heat-conducting member 3 to transfer the heat generated by the pot support 201 when the stove 2 is working to the oil screen 101, achieving high-temperature oil removal. Not only is the entire oil removal structure simple, but it also recycles the heat of the pot support 201 that is usually wasted, realizing energy conservation and environmental protection.
[0043] The above integrated stove system may further include a stove top. One stove 2 may be provided on the stove top, or two or three stoves 2 may be provided. The number of stoves 2 is not limited herein. Each stove 2 includes a pot support 201 for placing cookware.
[0044] In some exemplary embodiments, please refer to Figure 2 , which shows a schematic structural diagram of another exemplary integrated stove system of this application. The heat-conducting member 3 includes a heat-conducting main body 301, a first heat-transfer member 302, and a second heat-transfer member 303; one end of the first heat-transfer member 302 is close to the pot support 201, and the other end of the first heat-transfer member 302 is connected to the heat-conducting main body 301; one end of the second heat-transfer member 303 is close to the oil screen 101, and the other end of the second heat-transfer member 303 is connected to the heat-conducting main body 301; the first heat-transfer member 302, the heat-conducting main body 301, and the second heat-transfer member 303 are sequentially connected to form a concave structure. Optionally, one end of the first heat-transfer member 302 may also be in contact with the pot support 201, and one end of the second heat-transfer member 303 may also be in contact with the oil screen 101, so that the heat-conducting member 3 can achieve better heat transfer.
[0045] In some exemplary embodiments, the material of the heat-conducting member 3 includes copper, aluminum, or an alloy of the two. Optionally, the material of the heat-conducting member 3 may also be other heat conductors, as long as it can achieve relatively fast heat transfer, such as silver. However, due to its high price and considering cost issues, it is not a preferred option. For aluminum, it has good heat-conducting performance. However, since it is easily oxidized and the kitchen environment is usually relatively harsh, it can be improved by forming an anti-corrosion coating on the aluminum part. Additionally, considering other reliability issues, a metal alloy can also be used as the material of the heat-conducting member 3, which will not be elaborated here.
[0046] In some exemplary embodiments, the shape of the heat conducting member 3 includes a column, such as a cylinder, a prism (triangular prism, quadrangular prism, etc.) or other irregular column, which is not limited herein. Optionally, the lengths of the heat conducting member 3 and its respective sub-components (such as the above-mentioned heat conducting main body 301, the first heat transfer member 302, the second heat transfer member 303, and the third heat transfer member 304 below) are adaptively designed according to the structure of the specific integrated stove. For example, these sub-components can be linear or bent, and specifically need to be designed according to the space conditions of the integrated stove, in order to achieve the fastest heat transfer speed while satisfying heat transfer.
[0047] Optionally, the specific installation positions of the respective sub-components of the heat conducting member 3 are based on minimizing exposure to the outside, and are designed inside the respective housings of the integrated stove to avoid a decrease in heat conducting performance due to external contamination. Optionally, the range hood assembly 1 further includes a top shell 102 and a side shell 103 connected in sequence; the top shell 102 is located above the cooking appliance 2; the side shell 103 is located on one side of the cooking appliance 2, and an air extraction opening is provided on the side shell 103, and the oil screen 101 is provided at the air extraction opening. The heat conducting main body 301 can be arranged inside the side shell 103.
[0048] In some exemplary embodiments, please continue to refer to Figure 2 , the integrated stove system further includes an integrated household electrical appliance 4; the integrated household electrical appliance 4 is located below the cooking appliance 2; a heating assembly 401 is provided in the integrated household electrical appliance 4; the heat conducting member 3 further includes a third heat transfer member 304; one end of the third heat transfer member 304 is close to the heating assembly 401, and the other end of the third heat transfer member 304 is connected to the heat conducting main body 301. Since the heating assembly 401 is provided in the integrated household electrical appliance 4, another heat source can be provided for the oil screen 101, further improving the efficiency and reliability of oil removal. Optionally, one end of the third heat transfer member 304 can also be in contact with the heating assembly 401.
[0049] The heating assembly 401 can refer to a heating component that directly generates heat, such as a heating tube, or can refer to a component that includes a heating component, such as specifically including a heating component and a metal component (such as a bottom plate, a housing, etc.) very close to the heating component. Therefore, the third heat transfer member 304 can be directly in contact with the heating component, or can be in contact with the above-mentioned metal component, which is not limited herein. Optionally, the third heat transfer member 304, and even the above-mentioned second heat transfer member 303 and the first heat transfer member 302, may not be directly in contact with the corresponding target component, and being very close is sufficient, that is, as long as good heat transfer and oil removal effects can be achieved.
[0050] In fact, the integrated stove system can also include a household electrical appliance that does not have a heating assembly 401, but in this case, it is not necessary to connect it to the heat conducting member 3.
[0051] In some exemplary embodiments, the integrated household appliance device 4 is a steam box, an oven, or a steam oven.
[0052] In some other exemplary embodiments, the integrated household appliance is a disinfection device. Optionally, the integrated household appliance device 4 may also be a device with a heating component 401 such as a dishwasher. There is no limitation here.
[0053] Embodiment 2
[0054] Please refer to Figure 2 , the integrated stove system provided by the embodiment of the present application includes: an oil fume machine component 1, a stove 2, and a heat conducting member 3; the oil fume machine component 1 includes an oil mesh 101 for separating oil fume from the inhaled oil fume; the stove 2 includes a pot support 201; one end of the heat conducting member 3 is close to the oil mesh 101, and the other end of the heat conducting member 3 is close to the pot support 201 for transferring the heat of the pot support 201 to the oil mesh 101. Among them, the oil fume machine component 1 further includes a top shell 102 and a side shell 103 connected in sequence; the top shell 102 is located above the stove 2; the side shell 103 is located on one side of the stove 2, and an air extraction port is provided on the side shell 103, and the oil mesh 101 is provided at the air extraction port; the other end of the heat conducting main body 301 is also close to the top shell 102. Thus, not only can high-temperature oil removal of the oil mesh 101 be realized, but also the heat preservation function of food can be realized.
[0055] In the embodiment of the present application, a heating plate (specifically a metal container) can be placed on the top shell 102, and food can be placed in the heating plate. When the integrated stove system works, at this time, the pot support 201 can generate heat, and the heat generated by the pot support 201 can be transferred to the oil mesh 101 and the top shell 102 in sequence by using the heat conducting member 3, so that the effects of oil removal and food heat preservation can be realized. The entire heat transfer structure has a simple structure and can make full use of the excess heat of the integrated stove system.
[0056] The above integrated stove system may further include a stove top, and one stove 2 may be provided on the stove top, or two or three stoves 2 may be provided. There is no limitation on the number of stoves 2 here. Each stove 2 includes a pot support 201 for placing cookware.
[0057] In some exemplary embodiments, please continue to refer to Figure 2. The heat-conducting member 3 includes a heat-conducting body 301, a first heat-conducting member 302 and a second heat-conducting member 303; one end of the first heat-conducting member 302 is close to the pot support 201, and the other end of the first heat-conducting member 302 is connected to the heat-conducting body 301; one end of the second heat-conducting member 303 is close to the oil net 101, and the other end of the second heat-conducting member 303 is connected to the heat-conducting body 301; the first heat-conducting member 302, the heat-conducting body 301 and the second heat-conducting member 303 are connected in sequence to form a concave structure. Optionally, one end of the first heat-conducting member 302 can also be in contact with the pot support 201, and one end of the second heat-conducting member 303 can also be in contact with the oil net 101, so that the heat-conducting member 3 can achieve better heat transfer.
[0058] In some exemplary embodiments, the material of the heat conductor 3 includes copper, aluminum, or an alloy thereof. Optionally, the material of the heat conductor 3 can also be other good thermal conductors, as long as they can achieve relatively fast heat transfer. For example, silver can also be used, but due to its high price, it is not a preferred option considering cost issues. As for aluminum, it has good thermal conductivity, but because it is easily oxidized and the kitchen environment is usually relatively harsh, it can be improved by forming an anti-corrosion coating on the surface of the aluminum part. In addition, considering other reliability issues, metal alloys can also be used as the material of the heat conductor 3, which will not be elaborated here.
[0059] In some exemplary embodiments, the shape of the heat conducting member 3 includes a cylinder, such as a cylinder, a prism (triangular prism, quadrangular prism, etc.), or other special-shaped cylinders, without limitation. Optionally, the length of the heat conducting member 3 and its various sub-components (such as the heat conducting body 301, the first heat conducting member 302, the second heat conducting member 303, and the third heat conducting member 304 described below) are all adaptively designed according to the structure of the specific integrated stove. For example, these sub-components can be straight or curved, and the specific design needs to be based on the space conditions of the integrated stove, so as to meet the heat transfer requirements while maximizing the heat transfer speed.
[0060] Optionally, the specific placement of each sub-component of the heat conducting member 3 is based on minimizing exposure to the outside and is designed to be within each housing of the integrated stove to avoid degradation of heat conduction performance due to external contamination. Optionally, the heat conducting body 301 can be disposed within the side housing 103.
[0061] In some exemplary embodiments, please refer to Figure 2, the integrated range hood system further includes an integrated household appliance device 4; the integrated household appliance device 4 is located below the cooking appliance 2; a heating component 401 is provided in the integrated household appliance device 4; the heat conducting member 3 further includes a third heat transfer member 304; one end of the third heat transfer member 304 is close to the heating component 401, and the other end of the third heat transfer member 304 is connected to the heat conducting main body 301. Since the heating component 401 is provided in the integrated household appliance device 4, another heat source can be provided for the oil screen 101, further improving the efficiency and reliability of oil removal. Optionally, one end of the third heat transfer member 304 can also be in contact with the heating component 401.
[0062] The heating component 401 can refer to a heating part that directly generates heat, such as a heating tube, or can refer to a component that includes a heating part, such as specifically including a heating part and metal parts (such as a bottom plate, a housing, etc.) very close to the heating part. Therefore, the third heat transfer member 304 can be directly in contact with the heating part, or can be in contact with the above-mentioned metal parts, which is not limited herein. Optionally, the third heat transfer member 304, and even the above-mentioned second heat transfer member 303 and the first heat transfer member 302, may not be directly in contact with the corresponding target parts, as long as they are very close, that is, as long as good heat transfer and oil removal effects can be achieved.
[0063] In fact, the integrated range hood system can also include household appliance devices that do not have a heating component 401, but in this case, there is no need to connect them to the heat conducting member 3.
[0064] In some exemplary embodiments, the integrated household appliance device 4 is a steamer, an oven, or a steam oven.
[0065] In some other exemplary embodiments, the integrated household appliance is a disinfection device. Optionally, the integrated household appliance device 4 can also be a device with a heating component 401 such as a dishwasher, etc., which is not limited herein.
[0066] Embodiment 3
[0067] Please refer to Figure 2, the integrated stove system provided by the embodiments of the present application includes: an oil fume machine component 1, a stove 2, a thermoelectric generation battery, and a heat conducting member 3; the oil fume machine component 1 includes an oil mesh 101 for separating oil fume from the inhaled oil fume; the stove 2 includes a pot support 201; the thermoelectric generation battery is electrically connected to the igniter of the stove 2 for supplying power to the igniter; the thermoelectric generation battery includes a hot end and a cold end; the hot end is connected to the heat conducting member 3; the cold end is connected to the housing of the integrated stove system; when the stove 2 operates, the thermoelectric generation battery is used to charge the thermoelectric generation battery based on the Seebeck effect, one end of the heat conducting member 3 is close to the oil mesh 101, and the other end of the heat conducting member 3 is close to the pot support 201 and the hot end for transferring the heat of the pot support 201 to the oil mesh 101 and the hot end. Thus, not only can high-temperature oil removal of the oil mesh 101 be achieved, but also charging of the thermoelectric generation battery can be realized.
[0068] Since the hot end of the thermoelectric generation battery is connected to the heat conducting member 3 and the cold end is connected to the housing of the integrated stove system, when the entire integrated stove system operates, the temperature of the pot support 201 will rise, and the temperature of the hot end will also increase through the heat transfer of the heat conducting member 3. Although the housing of the integrated stove system may also have a certain temperature after the integrated stove system operates for a period of time, compared with the pot support 201, its temperature is still lower, so that a large temperature difference value can be formed between the hot end and the cold end. Based on the Seebeck effect, the thermoelectric phenomenon generated by the temperature difference can be used to charge the thermoelectric generation battery. The utilization of energy is improved and energy is saved.
[0069] The above integrated stove system may further include a stove top, and one stove 2, two or three stoves 2 may be provided on the stove top, and the number of stoves 2 is not limited herein. Each stove 2 includes a pot support 201 for placing cookware.
[0070] In some exemplary embodiments, please continue to refer to Figure 2 . The heat conducting member 3 includes a heat conducting main body 301, a first heat transfer member 302, and a second heat transfer member 303; one end of the first heat transfer member 302 is close to the pot support 201, and the other end of the first heat transfer member 302 is connected to the heat conducting main body 301; one end of the second heat transfer member 303 is close to the oil mesh 101, and the other end of the second heat transfer member 303 is connected to the heat conducting main body 301; the first heat transfer member 302, the heat conducting main body 301, and the second heat transfer member 303 are sequentially connected to form a concave structure. Optionally, one end of the first heat transfer member 302 may also be in contact with the pot support 201, and one end of the second heat transfer member 303 may also be in contact with the oil mesh 101 so that the heat conducting member 3 can achieve better heat transfer.
[0071] In some exemplary embodiments, the material of the heat conducting member 3 includes copper, aluminum or an alloy of the two. Optionally, the material of the heat conducting member 3 can also be other good heat conductors, as long as they can achieve relatively fast heat transfer, such as silver. However, due to its high price and considering cost issues, it is not the preferred option. For aluminum, it has good heat conduction performance. However, since it is easily oxidized and the kitchen environment is usually relatively harsh, it can be improved by forming an anti-corrosion coating on the surface of the aluminum part. Additionally, considering other reliability issues, a metal alloy can also be used as the material of the heat conducting member 3, which will not be elaborated here.
[0072] In some exemplary embodiments, the shape of the heat conducting member 3 includes a column, such as a cylinder, a prism (triangular prism, quadrangular prism, etc.) or other special-shaped columns, which is not limited here. Optionally, the lengths of the heat conducting member 3 and its respective sub-components (such as the above-mentioned heat conducting main body 301, the first heat transfer member 302, the second heat transfer member 303, and the third heat transfer member 304 below) are all adaptively designed according to the structure of the specific integrated stove. For example, these sub-components can be linear or bent, and specifically need to be designed according to the space conditions of the integrated stove, in order to achieve the fastest heat transfer speed while meeting the heat transfer requirements.
[0073] Optionally, the specific installation positions of the respective sub-components of the heat conducting member 3 are based on minimizing exposure to the outside, and are designed inside the respective housings of the integrated stove to avoid a decrease in heat conduction performance due to external contamination. Optionally, the range hood assembly 1 further includes a top shell 102 and a side shell 103 connected in sequence; the top shell 102 is located above the cooktop 2; the side shell 103 is located on one side of the cooktop 2, and an air extraction opening is provided on the side shell 103, and the oil net 101 is provided at the air extraction opening. The heat conducting main body 301 can be provided inside the side shell 103.
[0074] In some exemplary embodiments, please continue to refer to Figure 2 , the integrated stove system further includes an integrated household appliance device 4; the integrated household appliance device 4 is located below the cooktop 2; a heating component 401 is provided in the integrated household appliance device 4; the heat conducting member 3 further includes a third heat transfer member 304; one end of the third heat transfer member 304 is close to the heating component 401, and the other end of the third heat transfer member 304 is connected to the heat conducting main body 301. Since the heating component 401 is provided in the integrated household appliance device 4, another heat source can be provided for the oil net 101, further improving the efficiency and reliability of oil removal. Optionally, one end of the third heat transfer member 304 can also be in contact with the heating component 401.
[0075] Please refer to Figure 3, when the integrated cooking range system further includes an integrated household appliance device 4, the hot end of the thermoelectric power generation battery can also be connected to the heating component 401, so as to be able to provide more heat for the hot end. Optionally, the cold end of the thermoelectric power generation battery can be connected to the side wall or other housing parts of the integrated cooking range system, as long as it is a part that can still maintain a relatively stable temperature during the operation of the integrated cooking range system.
[0076] The heating component 401 can refer to a heating part that directly generates heat, such as a heating tube, or it can refer to a component that contains a heating part, for example, it can specifically contain a heating part and metal parts (such as a bottom plate, a housing, etc.) very close to the heating part. Therefore, the third heat transfer member 304 can be in direct contact with the heating part or in contact with the above-mentioned metal parts, and there is no limitation here. Optionally, the third heat transfer member 304, and even the above-mentioned second heat transfer member 303 and the first heat transfer member 302, may not be in direct contact with the corresponding target parts, as long as they are very close, that is, as long as good heat transfer and oil removal effects can be achieved.
[0077] In fact, the integrated cooking range system can also include household appliances without a heating component 401, but in this case, there is no need to connect them to the heat conducting member 3.
[0078] In some exemplary embodiments, the integrated household appliance device 4 is a steamer, an oven or a steam oven.
[0079] In some other exemplary embodiments, the integrated household appliance is a disinfection device. Optionally, the integrated household appliance device 4 can also be a device with a heating component 401 such as a dishwasher. There is no limitation here.
[0080] It should be noted that the embodiments of the present application are not limited to the above 3 embodiments, and can also be other combinations of the above 3 embodiments. For example, it can also be a combination of Embodiment 3 and Embodiment 3, that is, the integrated cooking range system has the functions of oil removal, food heat preservation and heating, and power generation for the thermoelectric power generation battery.
[0081] The above are only the preferred embodiments of the present application, and are not intended to limit the present application. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. An integrated stove system, characterized in that, At least include: A range hood assembly, the range hood assembly includes an oil mesh, and the oil mesh is used for separating oil fume from the inhaled oil fume; A cooker, the cooker includes a pot support; A heat conducting member, one end of the heat conducting member is close to the oil mesh, and the other end of the heat conducting member is close to the pot support, and is used for transferring the heat of the pot support to the oil mesh.
2. The integrated cooking range system according to claim 1, wherein, The heat conducting member includes a heat conducting main body, a first heat transfer member and a second heat transfer member; One end of the first heat transfer member is close to the pot support, and the other end of the first heat transfer member is connected to the heat conducting main body; One end of the second heat transfer member is close to the oil mesh, and the other end of the second heat transfer member is connected to the heat conducting main body; The first heat transfer member, the heat conducting main body and the second heat transfer member are sequentially connected to form a concave structure.
3. The integrated cooking stove system according to claim 2, characterized in that, The range hood assembly further includes a top shell and a side shell connected in sequence; The top shell is located above the cooker; The side shell is located on one side of the cooker, and an air extraction port is provided on the side shell, and the oil mesh is provided at the air extraction port; The end of the heat conducting main body is close to the top shell.
4. The integrated stove system according to claim 2, characterized in that It further includes an integrated household appliance device; The integrated household appliance device is located below the cooker; A heating component is provided in the integrated household appliance device; The heat conducting member further includes a third heat transfer member; One end of the third heat transfer member is close to the heating component, and the other end of the third heat transfer member is connected to the heat conducting main body.
5. The integrated cooking range system according to claim 4, wherein The integrated household appliance device is a steam box, an oven or a steam oven.
6. The integrated stove system according to claim 4, characterized in that, The integrated household appliance is a disinfection device.
7. The integrated cooking range system according to claim 3, wherein, It further includes a thermoelectric power generation battery; The thermoelectric power generation battery is electrically connected to the igniter of the cooker and is used for supplying power to the igniter.
8. The integrated cooking range system according to claim 7, wherein The thermoelectric power generation battery includes a hot end and a cold end; The hot end is connected to the heat conducting member; The cold end is connected to the side shell; When the cooker works, the thermoelectric power generation battery is used for charging the thermoelectric power generation battery based on the Seebeck effect.
9. The integrated cooking range system according to claim 1, wherein The material of the heat conducting member includes copper, aluminum or an alloy of the two.
10. The integrated stove system according to claim 1, characterized in that, The shape of the heat conducting member includes a cylinder.