Integrated cooker

By adopting the limit design of the split structure and hook structure in the integrated stove, the problem of low smoke exhaust efficiency of the integrated stove is solved, achieving more efficient smoke flow and a better user experience.

CN222992969UActive Publication Date: 2025-06-17HANDAN MIDEA INTELLIGENT KITCHEN ELECTRIC MFG CO LTD
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Patent Information

Application Number
CN202421799662.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-26
Publication Date
2025-06-17
Estimated Expiration
2034-07-26

AI Technical Summary

Technical Problem

The integrated stove has low smoke exhaust efficiency, which causes oil smoke to be unable to be discharged from the kitchen to the outdoors in time, affecting the user's physical health and user experience.

Method used

An integrated stove is designed, using a diversion structure to divide the smoke cavity into at least two smoke cavity, and through the limit design of the first hook structure and the second hook structure, it is ensured that the diversion structure will not interfere with the top shell during the assembly process, thereby improving the smoke exhaust efficiency.

Benefits of technology

It effectively reduces the interspreading between smoke and the extension of flow paths, improves the smoke exhaust effect of the integrated stove, and improves the health and user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an integrated cooker which comprises a cooker body, a range hood head and a flow dividing structure. The range hood head is located above the stove body and connected with the stove body, the range hood head is provided with a smoke gathering cavity and comprises a top shell, the top shell is provided with a part extending out of the smoke gathering cavity, the cavity side wall of the smoke gathering cavity is provided with a first clamping hook structure, the flow dividing structure is arranged in the smoke gathering cavity and divides the smoke gathering cavity into at least two smoke gathering sub-cavities, and the at least two smoke gathering sub-cavities are arranged in the left-right direction of the integrated stove. The shunting structure is provided with a second clamping hook structure, and the second clamping hook structure can only be assembled with the first clamping hook structure from bottom to top in the vertical direction of the integrated cooker, so that interference between the shunting structure and the top shell is avoided in the assembling process. According to the technical scheme, the smoke exhaust efficiency of the integrated cooker can be improved.
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Description

Technical Field

[0001] This application relates to the technical field of household appliances, and particularly relates to an integrated range hood. Background Art

[0002] With the development of technology, people's living standards have improved, and the use of household appliances such as integrated range hoods is increasing. An integrated range hood is a kitchen appliance that combines multiple functions such as a range hood and a gas stove, and has advantages such as space saving, energy saving, low consumption, and environmental protection.

[0003] In related technologies, the smoke exhaust efficiency of the integrated range hood is relatively low, resulting in the inability of oil fumes to be discharged from the kitchen to the outside in a timely manner, which has an adverse impact on the user's physical health and affects the user experience. Therefore, how to effectively improve the smoke exhaust efficiency of the integrated range hood has become an urgent problem to be solved. Utility Model Content

[0004] The embodiments of this application provide an integrated range hood that can improve the smoke exhaust efficiency of the integrated range hood.

[0005] The embodiments of this application provide an integrated range hood, which includes a range hood body, a smoke head, and a diversion structure; the smoke head is located above the range hood body and is connected to the range hood body. The smoke head has a smoke gathering cavity and includes a top shell, and the top shell constitutes a part of the smoke gathering cavity. A first hook structure is provided on the cavity side wall of the smoke gathering cavity;

[0006] The diversion structure is arranged in the smoke gathering cavity and divides the smoke gathering cavity into at least two smoke gathering sub-cavities. At least two of the smoke gathering sub-cavities are arranged along the left-right direction of the integrated range hood. The diversion structure is provided with a second hook structure;

[0007] Wherein, the second hook structure can only be assembled with the first hook structure in the up-down direction from bottom to top of the integrated range hood to avoid interference between the diversion structure and the top shell during the assembly process.

[0008] In some embodiments, the first hook structure includes a first hook member, the first hook member is connected to the cavity side wall of the smoke gathering cavity, and cooperates with the cavity side wall of the smoke gathering cavity to form a hook groove, and an entrance is opened downward in the hook groove;

[0009] The second hook structure is a clamping member, the clamping member is connected to the diversion structure, and can only extend into the entrance in the up-down direction from bottom to top of the integrated range hood to be clamped into the hook groove.

[0010] In some embodiments, the first hook member includes a connecting main body and a hook main body;

[0011] The connecting body is connected to the cavity side wall of the smoke gathering cavity. The hook body is connected to the connecting body, and cooperates with the connecting body and the cavity side wall of the smoke gathering cavity to define the hook groove.

[0012] In some embodiments, there are at least two first hook members, and the at least two first hook members are arranged at intervals in the left-right direction.

[0013] The engaging member extends in the left-right direction to be strip-shaped and can be engaged into the hook grooves of at least two of the first hooks.

[0014] In some embodiments, the first hook structure includes a plurality of hook groups, and the plurality of hook groups are arranged at intervals in the up-down direction. Each hook group includes at least two first hook members arranged at intervals in the left-right direction.

[0015] There are a plurality of the engaging members, and one engaging member is correspondingly engaged into the hook grooves of at least two first hooks of one hook group.

[0016] In some embodiments, the flow splitting structure forms a receiving cavity with an opening. The engaging member is received in the receiving cavity and includes an engaging main body and a reinforcing main body.

[0017] The engaging main body can be engaged into the hook grooves of at least two of the first hooks. The reinforcing main body is connected to the engaging main body and is arranged at an angle with the engaging main body. The two ends of the reinforcing main body facing away from each other in the left-right direction are respectively connected to the opposite two cavity side walls of the receiving cavity.

[0018] In some embodiments, the first hook structure is provided on the rear side wall of the smoke gathering cavity, and the second hook structure moves in the front-rear direction of the integrated stove in the direction from front to rear to abut against the rear side wall of the smoke gathering cavity, and then is assembled with the first hook structure in the direction from bottom to top; or,

[0019] The first hook structure is provided on the front side wall of the smoke gathering cavity, and the second hook structure moves in the front-rear direction of the integrated stove in the direction from rear to front to abut against the front side wall of the smoke gathering cavity, and then is assembled with the first hook structure in the direction from bottom to top.

[0020] In some embodiments, the first hook structure includes a second hook member, the second hook member is connected to the cavity side wall of the smoke gathering cavity, the second hook structure is a first slot provided in the flow splitting structure, and the second hook member is hooked in the first slot; or,

[0021] The first engaging structure is a second card slot provided on the cavity side wall of the smoke collecting cavity. The second engaging structure is a third engaging member, and the third engaging member is connected to the flow splitting structure and is hooked in the second card slot.

[0022] In some embodiments, the integrated stove further includes an installation plate connected to the cavity side wall of the smoke collecting cavity. The installation plate is provided with the first engaging structure and is an integral structure with the first engaging structure.

[0023] In some embodiments, the surface of the flow splitting structure facing the top shell is in contact with the top shell.

[0024] In some embodiments, the top shell includes a first shell, a second shell, and a lamp panel member.

[0025] The first shell extends along the front-rear direction of the integrated stove. The second shell is located below the first shell and extends obliquely downward in the front-to-back direction of the integrated stove. The lamp panel member is connected to the plate surface of the second shell facing the flow splitting structure.

[0026] Wherein, the surface of the flow splitting structure facing the lamp panel member is an inclined surface, and the inclined surface is in contact with the lamp panel member.

[0027] In some embodiments, flow splitting surfaces are formed on both opposite sides of the flow splitting structure in the left-right direction, and the flow splitting surfaces constitute partial wall surfaces of the smoke collecting sub-cavity.

[0028] Wherein, in the front-to-back direction of the integrated stove, the distance between the two flow splitting surfaces in the left-right direction is set to become smaller.

[0029] In some embodiments, in the front-to-back direction of the integrated stove, one of the two flow splitting surfaces is inclined towards the other.

[0030] In some embodiments, the smoke machine head further includes an enclosure, and the enclosure includes a front panel and a rear panel.

[0031] The rear panel is oppositely arranged with the front panel in the front-rear direction of the integrated stove, and is respectively connected to the top shell and the stove body on both opposite sides in the up-down direction. The rear panel, together with the flow splitting surface, the front panel, and the top shell, cooperatively constitutes the smoke collecting sub-cavity.

[0032] Wherein, the front side surface of the flow splitting structure in the front-rear direction abuts against the front panel, and the rear side surface of the flow splitting structure in the front-rear direction abuts against the rear panel.

[0033] In some of these embodiments, the front side fits closely to the front panel; and / or,

[0034] the rear side fits closely to the rear back panel.

[0035] Based on the integrated cooking stove of the embodiments of the present application, the smoke collection cavity is divided into at least two smoke collection sub-cavities through a flow splitting structure, and the second hook structure can only be assembled with the first hook structure in the direction from bottom to top, so that the integrated cooking stove of this embodiment has at least the following technical effects:

[0036] First, the flue gases generated when multiple burners located on the left and right sides of the stove body work simultaneously will be collected by the corresponding smoke collection sub-cavities. In this way, the possibility of the flue gases intermixing and extending the flow path of the flue gases can be reduced, effectively improving the smoke exhaust effect of the integrated cooking stove; and when a single burner among the multiple burners located on the left and right sides of the stove body works, the flue gas generated by it will also be collected by the corresponding smoke collection sub-cavity as much as possible, reducing the possibility of the flue gas running into other smoke collection sub-cavities and causing the extension of the flow path, effectively improving the smoke exhaust effect of the integrated cooking stove.

[0037] Secondly, the first hook structure can limit the second hook structure, and thus limit the flow splitting structure. Moreover, when assembling the second hook structure and the first hook structure, the entire flow splitting structure can only move in the direction from bottom to top, so that the flow splitting structure will not interfere with the top shell, enabling the smooth installation of the flow splitting structure. BRIEF DESCRIPTION OF THE DRAWINGS

[0038] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on the structures shown in these drawings.

[0039] Figure 1 It is a schematic structural diagram of an integrated cooking stove according to an embodiment of the present application;

[0040] Figure 2 It is Figure 1 a partial structural diagram of the integrated cooking stove in

[0041] Figure 3 It is a schematic structural diagram of the connection of a flow splitting structure, a partial smoke machine head, and a mounting plate according to an embodiment of the present application;

[0042] Figure 4 It is Figure 3 a connection diagram of the mounting plate and the first hook structure in

[0043] Figure 5 is Figure 3 the rear view of the shunt structure in

[0044] Figure 6 is Figure 5 a partial sectional view of the A-A section in

[0045] Figure 7 is Figure 3 the front view of the shunt structure in

[0046] Figure 8 is Figure 3 the top view of the shunt structure in

[0047] Figure 9 is Figure 3 the side view of the shunt structure in

[0048] Figure 10 the structural schematic diagram of the hidden side plate of the integrated stove according to an embodiment of the present application;

[0049] Figure 11 the structural schematic diagram of the hidden side plate of the integrated stove according to another embodiment of the present application;

[0050] Figure 12 the flowchart of an assembly method of an integrated stove provided by an embodiment of the present application;

[0051] Figure 13 the flowchart of an assembly method of an integrated stove provided by an embodiment of the present application;

[0052] Figure 14 the flowchart of an assembly method of an integrated stove provided by an embodiment of the present application.

[0053] Explanation of the reference numerals in the drawings:

[0054] 1. Integrated stove; 10. Stove body; 20. Smoke head; 20A. Smoke collection cavity; 20B. Smoke collection sub-cavity; 21. Enclosure; 211. Front panel; 212. Rear panel; 213. Side panel; 22. Top shell; 221. First shell; 222. Second shell; 223. Lamp board part; 23. First hook structure; 231. First hook part; 2311. Connection main body; 2312. Hook main body; 2313. Hook groove; 2314. Entrance; 24. Hook group; 30. Shunt structure; 31. Shunt surface; 32. Front side; 321. Smoke-facing surface; 322. Contact surface; 323. Oil guide surface; 33. Rear side; 34. Second hook structure; 341. Insertion part; 3411. Insertion main body; 3412. Reinforcement main body; 35. Accommodation cavity; 36. Inclined surface; 40. Oil cup; 50. Installation plate.

[0055] The realization of the objectives, functional features and advantages of the present application will be further described in conjunction with the embodiments with reference to the accompanying drawings. Specific Embodiments

[0056] To make the objectives, technical solutions and advantages of the present application clearer, the following will further describe in detail the embodiments of the present application in conjunction with the accompanying drawings.

[0057] When the following description involves the accompanying drawings, unless otherwise indicated, the same numerals in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with the present application. On the contrary, they are merely examples of devices and methods consistent with some aspects of the present application as detailed in the appended claims.

[0058] In the description of the present application, it should be understood that terms such as "first", "second", etc. are only used for descriptive purposes and cannot be construed as indicating or implying relative importance. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances. In addition, in the description of the present application, unless otherwise specified, "a plurality" means two or more. "And / or" describes the association relationship of associated objects and indicates that three relationships can exist. For example, A and / or B can represent: A exists alone, A and B exist simultaneously, and B exists alone. The character " / " generally represents an "or" relationship between the associated objects before and after.

[0059] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this application belongs. The terms used in the description of this specification are only for the purpose of describing specific embodiments and are not intended to limit the present application. The term "and / or" used herein includes any and all combinations of one or more of the related listed items.

[0060] Please refer to Figure 1 , on the one hand, the present application proposes an integrated stove 1. In the embodiments of the present application, the integrated stove 1 can integrate functions such as cooking, fume extraction, steaming and baking, etc. This embodiment does not limit this.

[0061] Taking the integrated stove 1 integrating the functions of cooking and fume extraction as an example, please refer to Figures 1 to 3 , the integrated stove 1 of this embodiment includes a stove body 10, a fume hood head 20 and a flow splitting structure 30.

[0062] The stove body 10 is the main part of the integrated stove 1. The stove body 10 may include components such as a housing, a cooking appliance, and a smoking assembly. Among them, the cooking appliance can be installed on the upper part of the housing, and the smoking assembly can be arranged inside the housing. The smoking assembly includes a blower, and the blower is used to communicate with the smoke head 20 to suck the oil fume flowing into the smoke head 20 and then discharge it outdoors.

[0063] The smoke head 20 has a function of gathering smoke. The smoke head 20 is located above the stove body 10 and is connected to the stove body 10, for example, fixedly connected to the housing of the stove body 10. Among them, the smoke head 20 has a smoke-gathering cavity 20A, and the smoke-gathering cavity 20A is communicated with the blower. It can be understood that under the operation of the blower, the flue gas generated at the cooking appliance will first flow into the smoke-gathering cavity 20A, then flow from the smoke-gathering cavity 20A to the blower, and finally the blower discharges the flue gas outdoors, avoiding the escape of flue gas indoors and affecting the health and use experience of users. The smoke head 20 includes a top shell 22, and the top shell 22 is located at the top of the smoke head 20 and constructs a part of the smoke-gathering cavity 20A.

[0064] The flow splitting structure 30 can be in a columnar structure, such as a cylindrical or prismatic structure, so that the shape is relatively regular and easy to manufacture. And the flow splitting structure 30 can be made of metal material to have the advantages of better corrosion resistance, smooth and beautiful surface, and not easy to adhere to oil stains. Of course, the flow splitting structure 30 can also be made of plastic material to have the advantages of lower cost and lighter weight. In this embodiment, the shape and material of the flow splitting structure 30 are not specifically limited, and the specific shape and material of the flow splitting structure 30 can be selected according to actual needs.

[0065] The flow splitting structure 30 can guide and split the flue gas flowing into the smoke-gathering cavity 20A. The flow splitting structure 30 is arranged in the smoke-gathering cavity 20A and divides the smoke-gathering cavity 20A into at least two smoke-gathering sub-cavities 20B, and the at least two smoke-gathering sub-cavities 20B are arranged along the left-right direction of the integrated stove 1. Among them, the number of the flow splitting structures 30 can be one or more. For example, when the number of the flow splitting structures 30 is one, the flow splitting structure 30 divides the smoke-gathering cavity 20A into two smoke-gathering sub-cavities 20B; and when the number of the flow splitting structures 30 is two, the two flow splitting structures 30 are arranged at intervals along the left-right direction of the integrated stove 1 and can divide the smoke-gathering cavity 20A into three smoke-gathering sub-cavities 20B. In this embodiment, the number of the flow splitting structures 30 is not specifically limited.

[0066] The cavity side wall of the smoke collecting cavity 20A is provided with a first hook structure 23. For example, along the front-back direction of the integrated stove 1, the front side wall of the smoke collecting cavity 20A is provided with the first hook structure 23, or the rear side wall of the smoke collecting cavity 20A is provided with a second hook structure 34. This embodiment does not limit this. The diversion structure 30 is provided with the second hook structure 34. The first hook structure 23 can be assembled with the second hook structure 34 to limit the second hook structure 34. For example, the second hook structure 34 is limited in the direction from the rear to the front and / or from the bottom to the top of the integrated stove 1, so that the diversion structure 30 is relatively fixed in the smoke collecting cavity 20A. It can be understood that after the second hook structure 34 is assembled with the first hook structure 23, the fixed connection between the diversion structure 30 and the cavity side wall of the smoke collecting cavity 20A can be realized by means of threaded connection or the like.

[0067] Among them, the second hook structure 34 can only be assembled with the first hook structure 23 in the up-down direction of the integrated stove 1 from the bottom to the top to avoid interference between the diversion structure 30 and the top shell 22 during the assembly process.

[0068] The technical solution of this application divides the smoke collecting cavity 20A into at least two smoke collecting sub-cavities 20B through the diversion structure 30, and the second hook structure 34 can only be assembled with the first hook structure 23 in the direction from the bottom to the top, so that the integrated stove 1 of this embodiment has at least the following technical effects:

[0069] First of all, the flue gas generated when multiple burners on the left and right sides of the stove body 10 work simultaneously will be collected by the corresponding smoke collecting sub-cavity 20B. In this way, the possibility of the flue gas intermixing and extending the flow path of the flue gas can be reduced, effectively improving the smoke exhaust effect of the integrated stove 1; when a single burner among the multiple burners on the left and right sides of the stove body 10 works, the flue gas generated by it will also be collected by the corresponding smoke collecting sub-cavity 20B as much as possible, reducing the possibility of the flue gas running into other smoke collecting sub-cavities 20B and causing the flow path to extend, effectively improving the smoke exhaust effect of the integrated stove 1.

[0070] Secondly, the first hook structure 23 can limit the second hook structure 34, and then limit the diversion structure 30. Moreover, when the second hook structure 34 is assembled with the first hook structure 23, the diversion structure 30 as a whole can only move in the direction from the bottom to the top, so that the diversion structure 30 will not interfere with the top shell 22, so as to successfully install the diversion structure 30.

[0071] Please refer to Figures 3 to 4, in some embodiments, the first engaging structure 23 includes a first engaging member 231, and the first engaging member 231 may be configured in a hook shape. The first engaging member 231 is connected to the cavity side wall of the smoke collecting cavity 20A, and the first engaging member 231 and the cavity side wall of the smoke collecting cavity 20A may be an integral structure or a split structure, and this embodiment does not limit this. Wherein, the first engaging member 231 and the cavity side wall of the smoke collecting cavity 20A define a hook groove 2313, and an entrance 2314 is opened downward in the hook groove 2313.

[0072] The second engaging structure 34 is a fitting member 341, and the fitting member 341 may be configured in a rectangular shape or an L shape. The fitting member 341 is connected to the flow dividing structure 30, and the fitting member 341 and the flow dividing structure 30 may be a split structure or an integral structure, and this embodiment does not limit this. Wherein, the fitting member 341 can only extend into the entrance 2314 in the up-and-down direction of the integrated stove 1 from bottom to top to be engaged in the hook groove 2313.

[0073] In this way, this embodiment can limit the second engaging structure 34 by the cooperation of the fitting member 341 and the hook groove 2313, that is, use the groove wall of the hook groove 2313 to limit the fitting member 341, so as to achieve a good limiting effect while making the structures of the first engaging structure 23 and the second engaging structure 34 relatively simple and easy to manufacture.

[0074] Please refer to Figure 4 , further, the first engaging member 231 includes a connecting body 2311 and a hook body 2312. The connecting body 2311 is connected to the cavity side wall of the smoke collecting cavity 20A, so the connecting body 2311 is the part of the first engaging member 231 for connecting with the smoke collecting cavity 20A. Wherein, the connecting body 2311 may first extend in the left-right direction of the integrated stove 1 and then bend forward and extend.

[0075] The hook body 2312 is connected to the connecting body 2311, and the hook body 2312, the connecting body 2311 and the cavity side wall of the smoke collecting cavity 20A cooperate to define the hook groove 2313. With this setting, the hook body 2312 can cooperate with the connecting body 2311 and the cavity side wall of the smoke collecting cavity 20A to form the hook groove 2313. Compared with the structural form in which the hook groove 2313 is directly formed by the hook body 2312 itself, the hook body 2312 structure in the structural form of this embodiment will be simpler and use less materials.

[0076] Please refer to in combination Figures 4 to 5 , optionally, the first engaging member 231 includes at least two, for example, two, three or four, etc., and at least two first engaging members 231 are arranged at intervals in the left-right direction.

[0077] The engaging member 341 extends in the left - right direction and is arranged in a strip shape, and the engaging member 341 can be engaged into the engaging grooves 2313 of at least two first hooks. In this way, it is beneficial to improve the limiting effect of the first hook structure 23 and the second hook structure 34 in the left - right direction, making the diversion structure 30 more stable in the smoke - gathering cavity 20A and not prone to deviation. Moreover, the strip - shaped engaging member 341 can be engaged into the engaging grooves 2313 of at least two first hooks at the same time, which is convenient for operation.

[0078] Of course, the present application is not limited to this. In other embodiments, it may also be that the engaging member 341 includes at least two, and at least two engaging members 341 are arranged at intervals in the left - right direction, and one engaging member 341 is correspondingly engaged into the engaging groove 2313 of one first hook.

[0079] Please refer to Figures 4 to 5 , in some structural forms, the first hook structure 23 includes a plurality of hook groups 24, for example, it can be two, three, four, etc. The plurality of hook groups 24 are arranged at intervals in the up - down direction, and the hook group 24 includes at least two first hook members 231 arranged at intervals in the left - right direction.

[0080] The engaging member 341 includes a plurality of engaging members 341, and the plurality of engaging members 341 are arranged at intervals in the up - down direction, and one engaging member 341 is correspondingly engaged into the engaging grooves 2313 of at least two first hooks of one hook group 24. In this way, it is beneficial to improve the limiting effect of the first hook structure 23 and the second hook structure 34 in the up - down direction, making the diversion structure 30 more stable in the smoke - gathering cavity 20A and not prone to deviation.

[0081] Please refer to Figures 5 to 6 , in some embodiments, the diversion structure 30 forms a receiving cavity 35 with an opening, that is, the diversion structure 30 is hollow - shaped, and the engaging member 341 is received in the receiving cavity 35. It can be understood that the hook body 2312 can extend into the receiving cavity 35 through the opening so that the subsequent engaging member 341 can be engaged into the engaging groove 2313.

[0082] The engaging member 341 includes an engaging main body 3411 and a strengthening main body 3412. The engaging main body 3411 is the part of the engaging member 341 that is engaged into the engaging groove 2313. Specifically, the engaging main body 3411 extends in the left - right direction and can be engaged into the engaging grooves 2313 of at least two first hooks.

[0083] The reinforcing body 3412 is connected to the snap-in body 3411 and is arranged at an angle with the snap-in body 3411. For example, when the angle is 90 degrees, the two can cooperate to form an L-shaped structure. The reinforcing body 3412 extends in the left-right direction, and the two opposite ends of the reinforcing body 3412 in the left-right direction are respectively connected to the two side walls of the accommodation cavity 35 opposite to each other. In this way, the overall strength of the flow splitting structure 30 can be improved by using the reinforcing body 3412, and the structural deformation caused by the poor structural strength of the flow splitting structure 30 can be avoided.

[0084] Please refer to Figure 3 , in some embodiments, the first hook structure 23 is arranged on the rear side wall of the smoke collecting cavity 20A, and the second hook structure 34 moves in the front-rear direction of the integrated stove 1 in the front-to-rear direction to abut against the rear side wall of the smoke collecting cavity 20A, and then is assembled with the first hook structure 23 in the bottom-to-top direction. With this arrangement, when the second hook structure 34 moves in the front-to-rear direction, interference between the flow splitting structure 30 and the stove body 10 can be avoided, facilitating the installation of the flow splitting structure 30 in the smoke collecting cavity 20A.

[0085] Optionally, the first hook structure 23 is arranged on the front side wall of the smoke collecting cavity 20A, and the second hook structure 34 moves in the front-rear direction of the integrated stove 1 in the rear-to-front direction to abut against the front side wall of the smoke collecting cavity 20A, and then is assembled with the first hook structure 23 in the bottom-to-top direction. In this way, when the second hook structure 34 moves in the rear-to-front direction, interference between the flow splitting structure 30 and the stove body 10 can also be avoided, facilitating the installation of the flow splitting structure 30 in the smoke collecting cavity 20A.

[0086] In some embodiments, the first hook structure 23 includes a second hook member (not shown in the figure), the second hook member is connected to the side wall of the smoke collecting cavity 20A, the second hook structure 34 is a first card slot (not shown in the figure) arranged in the flow splitting structure 30, and the second hook member is hooked in the first card slot. In this way, the second hook structure 34 in this embodiment forms a groove structure in the flow splitting structure 30, enabling the second hook member to directly cooperate with the first card slot to achieve assembly, with a simple structure and fewer structural components.

[0087] In some embodiments, the first hook structure 23 is a second card slot (not shown in the figure) arranged on the side wall of the smoke collecting cavity 20A, the second hook structure 34 is a third hook member (not shown in the figure), the third hook member is connected to the flow splitting structure 30, and the third hook member is hooked in the second card slot. In this way, the first hook structure 23 in this embodiment forms a groove structure in the side wall of the smoke collecting cavity 20A, enabling the third hook member to directly cooperate with the second card slot to achieve assembly, with a simple structure and fewer structural components.

[0088] Please refer to Figure 3, in some embodiments, the integrated stove 1 further includes a mounting plate 50. The mounting plate 50 may be rectangular in configuration, and the mounting plate 50 may be made of metal or plastic, and this embodiment does not limit this.

[0089] The mounting plate 50 is separately provided from the smoke head 20. Specifically, the mounting plate 50 is connected to the cavity side wall of the smoke collecting cavity 20A. The mounting plate 50 is provided with a first hook structure 23 and is an integral structure with the first hook structure 23. In this way, the mounting plate 50 can be separately formed and then connected to the cavity side wall of the smoke collecting cavity 20A, so that it is not necessary to form the first hook structure 23 on the cavity side wall of the smoke collecting cavity 20A, which is convenient for manufacturing and production.

[0090] Please refer to Figures 2 to 3 , in some embodiments, the surface of the flow splitting structure 30 facing the top shell 22 is in contact with the top shell 22. In this way, it can be avoided that the flue gas flows in from the gap between the surface of the flow splitting structure 30 facing the top shell 22 and the top shell 22, and further, it can be avoided that oil stains are generated between the surface of the flow splitting structure 30 facing the top shell 22 and the top shell 22.

[0091] Furthermore, the top shell 22 includes a first shell 221, a second shell 222 and a lamp panel member 223. The first shell 221 extends in the front-back direction of the integrated stove 1. Among them, the first shell 221 may be provided with a storage table, and the storage table is configured to place items such as bottles, cans, bowls and plates, which is convenient for users to pick up and place without having to move back and forth.

[0092] The second shell 222 is located below the first shell 221 and is connected to the first shell 221. The second shell 222 extends downward and obliquely in the front-to-back direction of the integrated stove 1.

[0093] The lamp panel member 223 has a lighting function. It can be understood that the lamp panel member 223 includes a plate body and a light-emitting body. The light-emitting body is received in the plate body and can emit light passing through the plate body to achieve lighting. The lamp panel member 223 is connected to the plate surface of the second shell 222 facing the flow splitting structure 30. In this way, the lamp panel member 223 is arranged at an angle with the cooking surface of the stove, so that the light can irradiate on the cooking surface of the stove as much as possible and reduce the generation of shadows.

[0094] Among them, the surface of the flow splitting structure 30 facing the lamp panel member 223 is an inclined surface 36, and the inclined surface 36 is in contact with the lamp panel member 223. In this way, it can be avoided that the flue gas flows in from the gap between the inclined surface 36 and the lamp panel member 223, and further, it can be avoided that oil stains are generated between the inclined surface 36 and the lamp panel member 223.

[0095] Please refer to Figure 2, in some embodiments, diversion surfaces 31 are formed on both opposite sides of the diversion structure 30 in the left - right direction, and the diversion surfaces 31 constitute part of the wall surfaces of the smoke - gathering sub - cavity 20B. It can be understood that the flue gas flowing into the smoke head 20 is guided and diverted by the diversion surfaces 31, so that the flue gas flows into the two smoke - gathering sub - cavities 20B located on the left and right sides of the diversion structure 30 respectively.

[0096] The diversion surface 31 has a front edge and a rear edge in the front - rear direction, and the front edge constitutes the orifice of the smoke - gathering sub - cavity 20B. In the direction from the rear to the front of the integrated cooking stove 1, the distance between the two diversion surfaces 31 in the left - right direction is set to become smaller. In this way, the distance between the front edges of the two diversion surfaces 31 in the left - right direction is smaller than the distance between the rear edges of the two diversion surfaces 31 in the left - right direction. Thus, the opening area of the orifice of at least one smoke - gathering sub - cavity 20B can be enlarged, so as to increase the flow rate of the flue gas flowing into this smoke - gathering sub - cavity 20B, improve the smoke - gathering effect, and effectively reduce the probability of flue gas escaping.

[0097] In this way, the opening area of the orifice of at least one smoke - gathering sub - cavity 20B can be enlarged, so that the flow rate of the flue gas flowing into this smoke - gathering sub - cavity 20B can be increased, the smoke - gathering effect of the smoke head 20 can be improved, and the probability of flue gas escaping can be effectively reduced.

[0098] Please refer to Figure 2 , further, in the direction from the rear to the front of the integrated cooking stove 1, one of the two diversion surfaces 31 is inclined towards the other. For example, one of the two diversion surfaces 31 can be parallel to the front - rear direction, and the other is inclined towards the diversion surface 31 parallel to the front - rear direction. With this setting, by one of the two diversion surfaces 31 being inclined towards the other, the distance between the two diversion surfaces 31 in the left - right direction can be set to become smaller in the direction from the rear to the front of the integrated cooking stove 1. The structure is simple and is convenient for manufacturing and processing.

[0099] Of course, the diversion surface 31 can be in an arc shape, that is, the diversion surface 31 bends and extends towards the other in the direction from the rear to the front of the integrated cooking stove 1, and it can also make the distance between the two diversion surfaces 31 in the left - right direction become smaller in the direction from the rear to the front of the integrated cooking stove 1. This embodiment does not limit this.

[0100] Please refer to Figure 8 , still further, both of the two diversion surfaces 31 form an angle with the front - rear direction of the integrated cooking stove 1, so that both of the two diversion surfaces 31 are inclined. In this way, the opening areas of the orifices of at least two smoke - gathering sub - cavities 20B can be enlarged, so that the flow rate of the flue gas flowing into the smoke - gathering sub - cavities 20B can be effectively increased, the smoke - gathering effect of the smoke head 20 can be more effectively improved, and the probability of flue gas escaping can be better reduced.

[0101] Please refer to Figure 8, optionally, the included angle between the diversion surface 31 and the left - right direction is α, and the included angle α is not greater than 80 degrees. With such a setting, it is beneficial to increase the flow rate of the flue gas flowing into the smoke - gathering sub - cavity 20B. It can be understood that if it is greater than 80 degrees, the inclination degree of the diversion surface 31 is small, and the opening area of the cavity opening of the smoke - gathering sub - cavity 20B cannot be well enlarged, resulting in a small flow rate of the flue gas flowing into the smoke - gathering sub - cavity 20B.

[0102] Exemplarily, the specific value of the included angle can be 10 degrees, 20 degrees, 30 degrees, 40 degrees, 50 degrees, 60 degrees, 70 degrees, 80 degrees, etc. This embodiment does not make specific restrictions on this.

[0103] Please refer to Figures 10 to 11 , in some embodiments, the smoke head 20 includes an enclosure 21, and the enclosure 21 includes a front panel 211 and a rear panel 212. Both the front panel 211 and the rear panel 212 can be plate - like structures and are both square in shape, so that the shape is relatively regular and convenient for manufacturing and processing. The front panel 211 and the rear panel 212 are arranged opposite to each other in the front - rear direction of the integrated stove 1. The two opposite sides of the rear panel 212 in the up - down direction are respectively connected to the top shell 22 and the stove body 10. And, the rear panel 212, the diversion surface 31, the front panel 211, and the top shell 22 cooperate to define the smoke - gathering sub - cavity 20B.

[0104] Among them, the front side surface 32 of the diversion structure 30 in the front - rear direction abuts against the front panel 211. This is beneficial to reducing the probability that the flue gas in one smoke - gathering sub - cavity 20B flows from the gap between the front side surface 32 and the front panel 211 to another smoke - gathering sub - cavity 20B, ensuring the shortening of the flue gas flow path and improving the smoke exhaust effect of the integrated stove 1.

[0105] The rear side surface 33 of the diversion structure 30 in the front - rear direction abuts against the rear panel 212. This is beneficial to reducing the probability that the flue gas in one smoke - gathering sub - cavity 20B flows from the gap between the rear side surface 33 and the rear panel 212 to another smoke - gathering sub - cavity 20B, ensuring the shortening of the flue gas flow path and improving the smoke exhaust effect of the integrated stove 1.

[0106] In this way, in this embodiment, the risk that the flue gas escapes from the gap between the front side surface 32 and the front panel 211 and the gap between the rear side surface 33 and the rear panel 212 can be effectively reduced, and it is better to ensure the shortening of the flue gas flow path and improve the smoke exhaust effect of the integrated stove 1.

[0107] Optionally, the enclosure 21 of the smoke head 20 further includes side plates 213. The side plates 213 are connected between the front panel 211 and the rear panel 212 and cooperate with at least the front panel 211, the diversion surface 31, and the rear panel 212 to define the smoke - gathering sub - cavity 20B, improving the smoke - gathering effect on the flue gas.

[0108] Please refer to Figures 10 to 11, Further, the front side 32 is in close contact with the front panel 211. In this way, the front side 32 and the front panel 211 are in close contact, which more effectively avoids the probability that the flue gas flows from the gap between the front side 32 and the front panel 211 to another smoke collecting sub-chamber 20B.

[0109] Alternatively, the rear side 33 is in close contact with the rear panel. In this way, the rear side 33 and the rear back panel 212 are in close contact, which more effectively avoids the probability that the flue gas flows from the gap between the rear side 33 and the rear back panel 212 to another smoke collecting sub-chamber 20B.

[0110] Alternatively, the front side 32 is in close contact with the front panel 211, and the rear side 33 is in close contact with the rear panel. In this way, the front side 32 and the front panel 211 are in close contact, which more effectively avoids the probability that the flue gas flows from the gap between the front side 32 and the front panel 211 to another smoke collecting sub-chamber 20B. At the same time, the rear side 33 and the rear back panel 212 are in close contact, which more effectively avoids the probability that the flue gas flows from the gap between the rear side 33 and the rear back panel 212 to another smoke collecting sub-chamber 20B.

[0111] On the basis that the front side 32 is in close contact with the front panel 211 and the rear side 33 is in close contact with the rear panel, please refer to Figures 10 to 11 , Further, in the front-rear direction, the thickness of the flow splitting structure 30 is equal to the distance between the front panel 211 and the rear back panel 212, so that the front side 32 can be in close contact with the front panel 211 and the rear side 33 can be in close contact with the rear back panel 212.

[0112] It can be understood that the flow splitting structure 30 can be first installed on the rear back panel 212, and then the front panel 211 is covered on the front side of the flow splitting structure 30. On the basis that the thickness of the flow splitting structure 30 is equal to the distance between the front panel 211 and the rear back panel 212, after the front panel 211 is covered, the front panel 211 will directly be in close contact with the front side 32, and the rear back panel 212 will directly be in close contact with the rear side 33, which is convenient for operation.

[0113] Of course, the present application is not limited to this. In other embodiments, the thickness of the flow splitting structure 30 can be set to be greater than the distance between the front panel 211 and the rear back panel 212, and an interference fit is performed through the gap between the flow splitting structure 30 and the front panel 211 and the rear back panel 212, so that the front panel 211 is in close contact with the front side 32 and the rear back panel 212 is in close contact with the rear side 33.

[0114] Please refer to Figures 9 to 11, in some embodiments, the front side 32 includes a smoke-facing surface 321 and a butt-joint surface 322. Among them, the smoke-facing surface 321 is higher than the front panel 211 in the up-down direction of the integrated range hood 1. It can be understood that when the flue gas flows towards the smoke collecting cavity 20A, part of the flue gas will flow towards the smoke-facing surface 321. Therefore, the smoke-facing surface 321 is the part of the front side 32 that receives the flue gas.

[0115] The butt-joint surface 322 is located below the smoke-facing surface 321 in the up-down direction and abuts against the front panel 211, for example, fits with the front panel 211. Therefore, the butt-joint surface 322 is the part of the front side 32 that abuts against the front panel 211.

[0116] Among them, in the front-back direction, the butt-joint surface 322 is blocked by the front panel 211. Among them, in the up-down direction, the height of the butt-joint surface 322 can be lower than or equal to the height of the front panel 211, so that the front panel 211 can block the butt-joint surface 322.

[0117] It can be understood that on the basis that the butt-joint surface 322 can abut against the front panel 211, in the front-back direction, the butt-joint surface 322 is closer to the front panel 211 than the smoke-facing surface 321. Based on this, the front panel 211 can be used to block the butt-joint surface 322, so that when the user uses the integrated range hood 1, the distance between the user's viewing angle and the flow splitting structure 30 in the front-back direction is short. Moreover, the front panel 211 blocking the butt-joint surface 322 can reduce the exposed area of the flow splitting structure 30 in the smoke collecting cavity 20A, making the integrated range hood 1 more beautiful as a whole.

[0118] Please refer to Figures 9 to 11 , in some embodiments, the front side 32 further includes an oil guiding surface 323. The oil guiding surface 323 is connected between the smoke-facing surface 321 and the butt-joint surface 322 in the up-down direction. The oil guiding surface 323 is arranged to extend downwardly and obliquely in the direction from the rear to the front of the integrated range hood 1.

[0119] It can be understood that after the flue gas flows through the smoke-facing surface 321, oil stains will be generated on the smoke-facing surface 321. Under the action of its own gravity, the oil stains will flow towards the oil guiding surface 323. Then, under the guidance of the oil guiding surface 323, the oil stains will then flow towards the flow splitting surfaces 31 on both sides of the flow splitting structure 30 and continue to flow downward. In this way, it can avoid the oil stains remaining and adhering to the smoke-facing surface 321.

[0120] Please refer to Figures 9 to 11 , optionally, the included angle between the smoke-facing surface 321 and the oil guiding surface 323 is β, and the included angle β is not less than 120 degrees. In this way, the guiding effect of the oil guiding surface 323 on the oil stains can be ensured, so that the oil stains can flow downward. It can be understood that if the included angle β is less than 120 degrees, the inclination degree of the oil guiding surface 323 is small, and the oil stains cannot be well guided downward, resulting in the oil stains being easily accumulated on the oil guiding surface 323.

[0121] Exemplarily, the specific value of the included angle can be 120 degrees, 130 degrees, 140 degrees, 150 degrees, 160 degrees, 170 degrees, etc., and this embodiment does not limit this.

[0122] Please refer to Figure 11 , further, along the up and down direction, the upper edge of the abutting surface 322 is flush with the upper edge of the front panel 211. In this way, on the basis of ensuring that the abutting surface 322 is blocked by the front panel 211, the height of the abutting surface 322 can be increased as much as possible, and the upper edge of the abutting surface 322 is flush with the upper edge of the front panel 211, thereby effectively reducing the probability that the flue gas escapes from the gap between the front side 32 of the diversion structure 30 and the front panel 211 to another smoke collecting cavity 20B.

[0123] Please refer to in combination Figures 9 to 11 , in some embodiments, the integrated stove 1 further includes an oil cup 40, and the oil cup 40 is arranged at the bottom of the housing of the stove body 10. It can be understood that after the oil stain flows to the diversion surface 31, it will continue to flow downward under its own gravity and finally flow to the oil cup 40, where it is collected by the oil cup 40 to prevent the oil cup 40 from flowing to other places inside the housing.

[0124] On the other hand, this application proposes an assembly method for the integrated stove 1. The specific structure of the integrated stove 1 refers to the above embodiments. Since the assembly method of this integrated stove 1 adopts all the technical solutions of the above all embodiments, it has at least all the beneficial effects brought by the technical solutions of the above embodiments, and will not be elaborated here one by one.

[0125] Please refer to Figure 12 , which is a schematic flow chart of an assembly method for the integrated stove 1 provided by an embodiment of this application. As Figure 12 shown, the assembly method of the embodiment of this application may include the following steps S101-S103.

[0126] S101, connect the smoke head 20 to the stove body 10.

[0127] Specifically, connection methods such as threaded connection and snap connection can be used to realize the connection between the smoke head 20 and the stove body 10. For example, the back panel 212 of the smoke head 20 that has been connected with the top plate is fixedly connected to the stove body 10 by threaded connection, snap connection, etc., so that the smoke head 20 is connected to the stove body 10.

[0128] S102, assemble the second hook structure 34 with the first hook structure 23 along the upward direction of the integrated stove 1.

[0129] Specifically, the flow dividing structure 30 can be pushed upward, so that the second hook structure 34 provided on the flow dividing structure 30 will move upward, and can be assembled with the first hook structure 23, so that the first hook structure 23 can limit the second hook structure 34, and further limit the flow dividing structure 30.

[0130] S103, fixedly install the flow dividing structure 30 in the smoke collecting cavity 20A, so that the smoke collecting cavity 20A is divided into at least two smoke collecting sub-cavities 20B.

[0131] Specifically, after the first hook structure 23 and the second hook structure 34 are assembled and the second hook structure 34 can be limited, the flow dividing structure 30 can be fixedly connected to the cavity side wall of the smoke collecting cavity 20A by means of threaded connection, snap connection, etc. For example, the bottom of the flow dividing structure 30 in the up and down direction of the integrated stove 1 has a connecting portion, the connecting portion is provided with a first threaded hole, the cavity side wall of the smoke collecting cavity 20A is provided with a second threaded hole, and a threaded connecting piece sequentially passes through the first threaded hole and the second threaded hole, so that the flow dividing structure 30 can be fixedly installed in the smoke collecting cavity 20A.

[0132] In the embodiment of the present application, the second hook structure 34 can be assembled with the first hook structure 23 along the upward direction of the integrated stove 1, so as to avoid interference between the flow dividing structure 30 and the top shell 22 during the assembly process, thereby facilitating the installation of the flow dividing structure 30 in the smoke collecting cavity 20A, and the smoke collecting cavity 20A is divided into at least two smoke collecting sub-cavities 20B, which can reduce the possibility of mutual penetration between the flue gases and extend the flow path of the flue gases, effectively improving the smoke exhaust effect of the integrated stove 1.

[0133] Please refer to Figure 13 , which is a schematic flow chart of an assembly method of an integrated stove 1 provided by an embodiment of the present application. As Figure 13 shown, the assembly method of the embodiment of the present application can include the following steps S201-S204.

[0134] S201, connect the smoke head 20 to the stove body 10.

[0135] Specifically, the connection between the smoke head 20 and the stove body 10 can be realized by means of threaded connection, snap connection and other connection methods. For example, the rear back plate 212 of the smoke head 20 that has been connected with the top plate is fixedly connected to the stove body 10 by means of threaded connection, snap connection, etc., so that the smoke head 20 is connected to the stove body 10.

[0136] S202, move the flow dividing structure 30 along the front-to-back direction of the integrated stove 1 until the second hook structure 34 abuts against the rear side wall of the smoke collecting cavity 20A.

[0137] Specifically, moving the diversion structure 30 along the front-to-back direction of the integrated stove 1 can avoid interference between the diversion structure 30 and the stove body 10 compared with moving the diversion structure 30 along the bottom-to-top direction of the integrated stove 1, thus facilitating the installation of the diversion structure 30 in the smoke collection cavity 20A.

[0138] S203. Assemble the second hook structure 34 with the first hook structure 23 along the bottom-to-top direction of the integrated stove 1.

[0139] Specifically, the diversion structure 30 can be pushed from bottom to top, so that the second hook structure 34 provided on the diversion structure 30 will move from bottom to top and can be assembled with the first hook structure 23. Thus, the first hook structure 23 can limit the second hook structure 34, and further limit the diversion structure 30.

[0140] S204. Fix and install the diversion structure 30 in the smoke collection cavity 20A so that the smoke collection cavity 20A is divided into at least two smoke collection sub-cavities 20B.

[0141] Specifically, after the first hook structure 23 and the second hook structure 34 are assembled and the second hook structure 34 can be limited, connection methods such as threaded connection and snap connection can be used to realize the fixed connection between the diversion structure 30 and the cavity side wall of the smoke collection cavity 20A. For example, the bottom of the diversion structure 30 along the up-and-down direction of the integrated stove 1 has a connection part, the connection part is provided with a first threaded hole, the cavity side wall of the smoke collection cavity 20A is provided with a second threaded hole, and a threaded connecting piece passes through the first threaded hole and the second threaded hole in sequence so that the diversion structure 30 can be fixedly installed in the smoke collection cavity 20A.

[0142] In the embodiment of the present application, it is possible to first move the second hook structure 34 in the front-to-back direction to avoid interference between the diversion structure 30 and the stove body 10, and then assemble the second hook structure 34 with the first hook structure 23 along the bottom-to-top direction of the integrated stove 1, so as to avoid interference between the diversion structure 30 and the top shell 22 during the assembly process, thus facilitating the installation of the diversion structure 30 in the smoke collection cavity 20A, and the smoke collection cavity 20A is divided into at least two smoke collection sub-cavities 20B, which can reduce the possibility of mutual flow of smoke and extend the flow path of the smoke, effectively improving the smoke exhaust effect of the integrated stove 1.

[0143] Please refer to Figure 14 , which is a schematic flow chart of an assembly method of an integrated stove 1 provided by an embodiment of the present application. As Figure 14 shown, the assembly method of the embodiment of the present application may include the following steps S301-S304.

[0144] S301. Connect the smoke machine head 20 with the stove body 10.

[0145] Specifically, connection methods such as threaded connection and snap connection can be utilized to achieve the connection between the smoke head 20 and the stove body 10. For example, the back plate 212 of the smoke head 20 that is already connected with the top plate can be fixedly connected to the stove body 10 by means of threaded connection, snap connection, etc., so that the smoke head 20 is connected to the stove body 10.

[0146] S302. Move the diversion structure 30 along the direction from the rear to the front of the integrated stove 1 until the second hook structure 34 abuts against the front side wall of the smoke collecting cavity 20A.

[0147] Specifically, moving the diversion structure 30 along the direction from the rear to the front of the integrated stove 1 can avoid interference between the diversion structure 30 and the stove body 10 compared with moving the diversion structure 30 along the direction from the bottom to the top of the integrated stove 1, thereby facilitating the installation of the diversion structure 30 in the smoke collecting cavity 20A.

[0148] S303. Assemble the second hook structure 34 with the first hook structure 23 along the direction from the bottom to the top of the integrated stove 1.

[0149] Specifically, the diversion structure 30 can be pushed from the bottom to the top, so that the second hook structure 34 provided on the diversion structure 30 will move from the bottom to the top and can be assembled with the first hook structure 23. Thus, the first hook structure 23 can limit the second hook structure 34, and further limit the diversion structure 30.

[0150] S304. Fix the diversion structure 30 in the smoke collecting cavity 20A so that the smoke collecting cavity 20A is divided into at least two smoke collecting sub - cavities 20B.

[0151] Specifically, after the first hook structure 23 and the second hook structure 34 are assembled and the second hook structure 34 can be limited, connection methods such as threaded connection and snap connection can be used to realize the fixed connection between the diversion structure 30 and the cavity side wall of the smoke collecting cavity 20A. For example, the bottom of the diversion structure 30 along the up - and - down direction of the integrated stove 1 has a connecting portion, the connecting portion is provided with a first threaded hole, the cavity side wall of the smoke collecting cavity 20A is provided with a second threaded hole, and a threaded connecting piece passes through the first threaded hole and the second threaded hole in sequence so that the diversion structure 30 can be fixedly installed in the smoke collecting cavity 20A.

[0152] In the embodiment of the present application, the second hook structure 34 can be moved in the direction from the rear to the front first to avoid interference between the flow splitting structure 30 and the stove body 10. Then, the second hook structure 34 is assembled with the first hook structure 23 in the direction from the bottom to the top of the integrated stove 1, so as to avoid interference between the flow splitting structure 30 and the top shell 22 during the assembly process, thereby facilitating the installation of the flow splitting structure 30 in the smoke collecting cavity 20A. And the smoke collecting cavity 20A is divided into at least two smoke collecting sub-cavities 20B, which can reduce the possibility of mutual leakage between the flue gases and extend the flow path of the flue gases, effectively improving the smoke exhaust effect of the integrated stove 1.

[0153] In the drawings of this embodiment, the same or similar reference numerals correspond to the same or similar components; in the description of the present application, it should be understood that if there are terms such as "upper", "lower", "left", "right", etc. indicating the orientation or positional relationship, they are based on the orientation or positional relationship shown in the drawings. It 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. Therefore, the terms describing the positional relationship in the drawings are only for illustrative purposes and cannot be construed as a limitation of this patent. For those of ordinary skill in the art, the specific meanings of the above terms can be understood according to specific circumstances.

[0154] The above is only a preferred embodiment of the present application and is 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, characterized in that: include: stove body; A range hood head is located above the stove body and connected to the stove body, the range hood head has a smoke collecting cavity and includes a top shell, the top shell forms a portion of the smoke collecting cavity, and a first hook structure is provided on a cavity side wall of the smoke collecting cavity; as well as a flow separation structure, which is arranged in the smoke collecting chamber and divides the smoke collecting chamber into at least two smoke collecting sub-cavities, wherein at least two of the smoke collecting sub-cavities are arranged along the left and right directions of the integrated stove, and the flow separation structure is provided with a second hook structure; The second hook structure can only be assembled with the first hook structure from bottom to top in the up and down direction of the integrated stove, so as to avoid interference between the diversion structure and the top shell during the assembly process.

2. The integrated stove according to claim 1, characterized in that: The first hook structure comprises a first hook member, the first hook member is connected to the side wall of the smoke collecting chamber, and cooperates with the side wall of the smoke collecting chamber to form a hook groove, and the hook groove has an entrance downwardly opened; The second hook structure is a hooking piece, which is connected to the diversion structure and can only extend into the inlet from bottom to top in the up and down direction of the integrated stove to be hooked into the hook groove.

3. The integrated stove according to claim 2, characterized in that: The first hook member comprises: A connecting body connected to the side wall of the smoke collecting chamber; and The hook body is connected to the connecting body, and cooperates with the connecting body and the side wall of the smoke collecting chamber to form the hook groove.

4. The integrated stove according to claim 2, characterized in that: The first hook members include at least two, and the at least two first hook members are arranged at intervals along the left-right direction; The clamping piece extends along the left-right direction to be arranged in a strip shape, and can be clamped into the hook grooves of at least two of the first hooks.

5. The integrated stove according to claim 4, characterized in that: The first hook structure includes a plurality of hook groups, the plurality of hook groups are arranged at intervals along the up-down direction, and the hook group includes at least two first hook members arranged at intervals along the left-right direction; The snap-in parts include a plurality of snap-in parts, and one snap-in part is correspondingly snapped into the hook grooves of at least two first hooks of one hook group.

6. The integrated stove according to claim 4, characterized in that: The diversion structure forms a receiving cavity with an open opening; the snap-in component is received in the receiving cavity and comprises: A snap-in body capable of snapping into the hook grooves of at least two of the first hooks; and The reinforcing body is connected to the snap-in body and is arranged at an angle with the snap-in body. The two ends of the reinforcing body opposite to each other along the left-right direction are respectively connected to the two opposite side walls of the accommodating cavity.

7. The integrated stove according to claim 1, characterized in that: The first hook structure is arranged on the rear side wall of the smoke collecting chamber, and the second hook structure moves from the front to the rear in the front-to-rear direction of the integrated stove until it abuts against the rear side wall of the smoke collecting chamber, and then is assembled with the first hook structure from the bottom to the top; or, The first hook structure is arranged on the front side wall of the smoke collecting chamber, and the second hook structure moves from back to front in the front-to-back direction of the integrated stove until it abuts against the front side wall of the smoke collecting chamber, and then is assembled with the first hook structure from bottom to top.

8. The integrated stove according to claim 1, characterized in that: The first hook structure includes a second hook member, the second hook member is connected to the side wall of the smoke collecting chamber, the second hook structure is a first slot provided in the diversion structure, and the second hook member is hooked in the first slot; or, The first hook structure is a second hook groove provided on the side wall of the smoke collecting cavity, and the second hook structure is a third hook member, which is connected to the diversion structure and hooked in the second hook groove.

9. The integrated stove according to claim 1, characterized in that: Also includes: The mounting plate is connected to the side wall of the smoke collecting chamber. The mounting plate is provided with the first hook structure and is an integrated structure with the first hook structure.

10. The integrated stove according to claim 1, characterized in that: The surface of the diversion structure facing the top shell is in contact with the top shell.

11. The integrated stove according to claim 10, characterized in that: The top shell comprises: A first shell is extended along the front-rear direction of the integrated stove; A second shell is located below the first shell and extends downwardly in a direction from front to rear of the integrated stove; and A light panel, connected to a panel surface of the second housing facing the diversion structure; Wherein, the surface of the diversion structure facing the lamp panel is an inclined surface, and the inclined surface is in contact with the lamp panel.

12. The integrated stove according to any one of claims 1 to 11, characterized in that: The diversion structure is provided with diversion surfaces on both sides opposite to each other in the left-right direction, and the diversion surfaces constitute part of the wall surface of the smoke collecting sub-cavity; Wherein, in the direction from back to front of the integrated stove, the distance between the two diverter surfaces along the left-right direction is arranged to become smaller.

13. The integrated stove according to claim 12, characterized in that: In the direction from back to front of the integrated stove, one of the two diverter surfaces is inclined toward the other.

14. The integrated stove according to claim 12, characterized in that: The smoke machine head also includes a shell, and the shell includes: front panel; and A rear plate is arranged opposite to the front plate in the front-rear direction of the integrated stove, and is connected to the top shell and the stove body at two opposite sides along the up-down direction, and the rear plate cooperates with the diversion surface, the front plate and the top shell to form the smoke collecting sub-chamber; The front side surface of the diversion structure along the front-to-back direction abuts against the front panel, and the rear side surface along the front-to-back direction abuts against the rear back panel.

15. The integrated stove according to claim 14, characterized in that: The front side surface is in contact with the front panel; and / or, The rear side surface is in contact with the rear back plate.