Integrated range hood

By designing a fan assembly in the integrated stove and replacing multiple fans in the prior art, the problem of cumbersome disassembly and assembly of the integrated stove is solved, and the effect of reducing labor intensity and simplifying the disassembly and assembly process is achieved.

CN112413686BActive Publication Date: 2025-06-24GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202011420398.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-12-07
Publication Date
2025-06-24
Estimated Expiration
2040-12-07

AI Technical Summary

Technical Problem

The disassembly and assembly of existing integrated stoves is more cumbersome, resulting in an increase in labor intensity for staff.

Method used

An integrated stove is designed, and a fan assembly is used to replace the cooling fan and the gas fume fan in the prior art. The fan assembly includes a first suction inlet and a second suction inlet, both in communication with the air outlet and can simultaneously absorb hot air from the fume and the condenser surface.

Benefits of technology

The number of fans is reduced, the disassembly and assembly process of integrated stoves is simplified, and the difficulty and labor intensity of staff are reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an integrated stove. The integrated stove includes: a base body having an oil fume suction inlet; a cooking appliance disposed on the base body; a refrigeration module disposed within the base body, the refrigeration module including a compressor, an evaporator, and a condenser, the evaporator being connected to the suction port of the compressor, and the condenser being connected to the discharge port of the compressor; a fan assembly including a driving device, a housing, and a wind blade, the wind blade being disposed within the housing, and the driving device being drivingly connected to the wind blade; wherein, the housing has a first suction inlet, a second suction inlet, and an air outlet, the first suction inlet is communicated with the oil fume suction inlet, the second suction inlet is disposed opposite to the condenser; both the first suction inlet and the second suction inlet are communicated with the air outlet. The present invention effectively solves the problem that the disassembly and assembly of the integrated stove in the prior art are relatively cumbersome.
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Description

Technical Field

[0001] The present invention relates to the technical field of integrated stoves, and more particularly, to an integrated stove. Background Art

[0002] At present, an integrated stove is a stove that integrates multiple functions such as cooking, fume extraction, tableware disinfection, tableware storage, food steaming and baking, and tableware cleaning. Among them, an integrated stove integrated with a refrigeration system can reduce the temperature in the kitchen. The refrigeration system includes a cooling fan for cooling the condenser, an oil fume extraction fan, and a blowing fan for blowing cold air into the kitchen.

[0003] However, the above settings of the refrigeration system make the integrated stove include multiple fans, resulting in cumbersome disassembly and assembly of the integrated stove and increasing the labor intensity of the staff. Summary of the Invention

[0004] The main object of the present invention is to provide an integrated stove to solve the problem of cumbersome disassembly and assembly of the integrated stove in the prior art.

[0005] To achieve the above object, the present invention provides an integrated stove, including: a base body having an oil fume suction port; a stove disposed on the base body; a refrigeration module disposed in the base body, the refrigeration module including a compressor, an evaporator, and a condenser, the evaporator being connected to the suction port of the compressor, and the condenser being connected to the discharge port of the compressor; a fan assembly including a driving device, a housing, and a blade, the blade being disposed in the housing, and the driving device being drivingly connected to the blade; wherein, the housing has a first suction port, a second suction port, and an air outlet, the first suction port is communicated with the oil fume suction port, and the second suction port is disposed opposite to the condenser; both the first suction port and the second suction port are communicated with the air outlet.

[0006] Further, there is a preset angle between the air inlet direction of the first suction port and the air inlet direction of the second suction port, and the preset angle is greater than or equal to 75° and less than 180°.

[0007] Further, the housing has a first chamber and a second chamber, the first chamber is communicated with the first suction port, the second chamber is communicated with the second suction port, and the air outlet is communicated with both the first chamber and the second chamber.

[0008] Further, the fan assembly further includes: a partition disposed in the housing to divide the inner cavity of the housing into a first chamber and a second chamber.

[0009] Further, the partition has a mounting hole, the blade passes through the mounting hole, and the outer peripheral surface of the partition is welded or riveted to the inner surface of the housing.

[0010] Further, the wind blade is a centrifugal wind blade, which includes a first wind blade section and a second wind blade section. The first wind blade section is located in the first chamber, the second wind blade section is located in the second chamber, and the rotation directions of the first wind blade section and the second wind blade section are opposite.

[0011] Further, the housing includes: a first sub-housing on which the first suction port is provided; a second sub-housing that docks with the first sub-housing to form an installation cavity. The second sub-housing has a through-hole, and the wind blade is arranged in the installation cavity; a wind guiding sub-housing arranged on the side of the second sub-housing away from the first sub-housing, the driving device is arranged on the wind guiding sub-housing, and the second suction port is arranged on the wind guiding sub-housing. The second suction port is communicated with the through-hole.

[0012] Further, the fan assembly further includes: a wind guiding structure arranged on the wind guiding sub-housing and at the second suction port. The wind guiding structure is a horn-shaped structure, and the opening of the horn-shaped structure faces away from the wind guiding sub-housing.

[0013] Further, the air outlet includes a first sub-air outlet and a second sub-air outlet. The first sub-air outlet is arranged on the first sub-housing, and the second sub-air outlet is arranged on the second sub-housing. The fan assembly further includes: an air outlet structure arranged on the housing, and the air outlet structure is communicated with both the first sub-air outlet and the second sub-air outlet to guide the air flow discharged from the first sub-air outlet and the second sub-air outlet to the outside.

[0014] Further, the air outlet structure further includes a connecting cylinder section and an air outlet cylinder section connected in sequence. The air outlet cylinder section is a cylinder. The first end of the connecting cylinder section is connected to both the first sub-housing and the second sub-housing, and the second end of the connecting cylinder section is connected to the air outlet cylinder section; wherein, the first end of the connecting cylinder section is a polygonal hole.

[0015] Further, the fan assembly further includes: a transmission shaft; a coupling, the driving end of the driving device is connected to the first end of the transmission shaft, and the second end of the transmission shaft is connected to the wind blade.

[0016] Further, the fan assembly further includes: a filtering structure arranged at the second suction port to filter impurities in the air flow entering the second suction port.

[0017] Applying the technical solution of the present invention, the fan assembly has a first suction port and a second suction port, and both the first suction port and the second suction port are communicated with the air outlet. In this way, during the operation of the integrated stove, the driving device drives the impeller to rotate, and the impeller sucks the cooking fumes and the hot air on the surface of the condenser in the kitchen, so that the cooking fumes enter the fan assembly through the cooking fume suction port and the first suction port in sequence, and the hot air generated on the condenser enters the fan assembly through the second suction port. Then, both the cooking fumes and the hot air are discharged to the outside through the air outlet, so that the fan assembly can not only suck the cooking fumes, but also suck the hot air on the surface of the condenser, thereby reducing the surface temperature of the condenser.

[0018] Compared with using a cooling fan and a range hood fan for suction respectively in the refrigeration system of the prior art, the integrated stove in the present application uses one fan assembly to replace the cooling fan and the range hood fan in the prior art, thereby reducing the number of fans, solving the problem that the disassembly and assembly of the integrated stove in the prior art are relatively cumbersome, and reducing the disassembly and assembly difficulty and labor intensity of the staff. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] The schematic diagrams in the specification forming a part of the present application are used to provide a further understanding of the present invention. The schematic embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an improper limitation to the present invention. In the drawings:

[0020] Figure 1 shows a three-dimensional structural schematic diagram of an embodiment of an integrated stove according to the present invention;

[0021] Figure 2 shows Figure 1 a three-dimensional structural schematic diagram of the fan assembly of the integrated stove in

[0022] Figure 3 shows Figure 2 a three-dimensional structural schematic diagram of another angle of the fan assembly in

[0023] Figure 4 shows Figure 2 an exploded view of the fan assembly in

[0024] Among them, the above-mentioned drawings include the following reference numerals:

[0025] 10. Base; 11. Oil fume suction inlet; 20. Evaporator; 30. Condenser; 40. Fan assembly; 41. Driving device; 42. Housing; 421. First suction inlet; 422. Second suction inlet; 423. Air outlet; 4231. First sub-air outlet; 4232. Second sub-air outlet; 424. First chamber; 425. Second chamber; 426. First sub-housing; 427. Second sub-housing; 428. Air guiding sub-housing; 43. Blades; 431. First blade segment; 432. Second blade segment; 44. Partition; 45. Transmission shaft; 46. Coupling; 47. Air guiding structure; 48. Air outlet structure; 481. Connecting cylinder segment; 482. Air outlet cylinder segment; 50. Smoke exhaust pipe. Detailed implementation manners

[0026] It should be noted that, without conflict, the embodiments in the present application and the features in the embodiments may be combined with each other. The present invention will be described in detail below with reference to the drawings and in conjunction with the embodiments.

[0027] It should be pointed out that unless otherwise specified, all technical and scientific terms used in the present application have the same meanings as those commonly understood by those of ordinary skill in the technical field to which the present application belongs.

[0028] In the present invention, unless otherwise stated, the orientation terms such as "upper, lower" are usually in the directions shown in the drawings, or in the vertical, perpendicular or gravitational directions; similarly, for ease of understanding and description, "left, right" are usually in the left and right shown in the drawings; "inside, outside" refer to the inside and outside relative to the contours of the respective components, but the above orientation terms are not used to limit the present invention.

[0029] In order to solve the problem that the disassembly and assembly of the integrated stove in the prior art are relatively cumbersome, the present application provides an integrated stove.

[0030] As Figures 1 to 4 shown, the integrated stove includes a base 10, a cooker, a refrigeration module and a fan assembly 40. The base 10 has an oil fume suction inlet 11. The cooker is arranged on the base 10. The refrigeration module is arranged in the base 10. The refrigeration module includes a compressor, an evaporator 20 and a condenser 30. The evaporator 20 is connected to the suction port of the compressor, and the condenser 30 is connected to the discharge port of the compressor. The fan assembly 40 includes a driving device 41, a housing 42 and blades 43. The blades 43 are arranged in the housing 42, and the driving device 41 is drivingly connected to the blades 43. Among them, the housing 42 has a first suction inlet 421, a second suction inlet 422 and an air outlet 423. The first suction inlet 421 is communicated with the oil fume suction inlet 11, and the second suction inlet 422 is arranged opposite to the condenser 30. Both the first suction inlet 421 and the second suction inlet 422 are communicated with the air outlet 423.

[0031] Applying the technical solution of this embodiment, the fan assembly 40 has a first air inlet 421 and a second air inlet 422, and both the first air inlet 421 and the second air inlet 422 communicate with the air outlet 423. In this way, during the operation of the integrated stove, the driving device 41 drives the impeller 43 to rotate, and the impeller 43 sucks the cooking fumes and the hot air on the surface of the condenser in the kitchen, so that the cooking fumes enter the fan assembly 40 successively through the cooking fume inlet 11 and the first air inlet 421, and the hot air generated on the condenser 30 enters the fan assembly 40 through the second air inlet 422. After that, both the cooking fumes and the hot air are discharged to the outside through the air outlet 423, so that the fan assembly can not only suck the cooking fumes but also suck the hot air on the surface of the condenser, thereby reducing the surface temperature of the condenser.

[0032] Compared with separately using a cooling fan and an oil fume extraction fan in the refrigeration system of the prior art, the integrated stove in this embodiment uses one fan assembly to replace the cooling fan and the oil fume extraction fan in the prior art, thereby reducing the number of fans, solving the problem that the disassembly and assembly of the integrated stove in the prior art are relatively cumbersome, and reducing the disassembly and assembly difficulty and labor intensity of the staff.

[0033] In this embodiment, the fan assembly 40 can not only absorb cooking fumes but also absorb the hot air generated on the condenser 30, so that one fan is reduced in the whole integrated stove, releasing the internal space for installing other components in the base 10.

[0034] Optionally, there is a preset angle between the air inlet direction of the first air inlet 421 and the air inlet direction of the second air inlet 422, and the preset angle is greater than or equal to 75° and less than 180°. In this way, the above setting makes the suction directions of the first air inlet 421 and the second air inlet 422 different, thereby ensuring that the cooking fumes and the hot air can enter the fan assembly and improving the operation reliability of the integrated stove.

[0035] In this embodiment, the air inlet direction of the first air inlet 421 and the air inlet direction of the second air inlet 422 are perpendicularly arranged, that is, the preset angle between the air inlet direction of the first air inlet 421 and the air inlet direction of the second air inlet 422 is 90°. In this way, the above setting makes the suction of the cooking fumes and the suction of the hot air by the fan assembly not interfere with each other, thereby avoiding the generation of turbulence, vibration or noise in the base 10 and improving the operation efficiency of the integrated stove.

[0036] It should be noted that the angle between the air inlet direction of the first air inlet 421 and the air inlet direction of the second air inlet 422 is not limited to this and can be adjusted according to the working conditions. Optionally, the preset angle between the air inlet direction of the first air inlet 421 and the air inlet direction of the second air inlet 422 is 100°, or 120°, or 145°, or 175°.

[0037] Such asFigure 4 As shown, the housing 42 has a first chamber 424 and a second chamber 425. The first chamber 424 communicates with the first suction port 421, the second chamber 425 communicates with the second suction port 422, and the air outlet 423 communicates with both the first chamber 424 and the second chamber 425. In this way, during the operation of the fan assembly, the above settings enable the fume to enter the first chamber 424 through the first suction port 421, the hot air to enter the second chamber 425 through the second suction port 422, and finally be discharged outside the fan assembly through the air outlet 423. The first chamber 424 and the second chamber 425 respectively buffer the fume and the hot air, so as to make the air flow in the fan assembly 40 smoother.

[0038] As Figure 4 As shown, the fan assembly 40 further includes a partition 44. Among them, the partition 44 is arranged inside the housing 42 to divide the inner cavity of the housing 42 into a first chamber 424 and a second chamber 425. In this way, the above settings make the structure of the fan assembly 40 simpler, easier to process and implement, and reduce the processing cost of the fan assembly 40.

[0039] Optionally, the partition 44 has a mounting hole, the impeller 43 is inserted through the mounting hole, and the outer peripheral surface of the partition 44 is welded or riveted to the inner surface of the housing 42. In this way, the above settings facilitate the installation of the partition 44 and the impeller 43 by the staff on the one hand, reducing the labor intensity of the staff; on the other hand, improving the connection strength between the partition 44 and the housing 42, and thus enhancing the overall structural strength of the fan assembly 40.

[0040] In this embodiment, the outer peripheral surface of the partition 44 is welded to the inner surface of the housing 42 to make a sealed connection between the partition 44 and the housing 42, thereby avoiding the mutual flow of the fume in the first chamber 424 and the hot air in the second chamber 425 to generate turbulence, and also avoiding the fume from polluting the chamber wall of the second chamber 425.

[0041] In this embodiment, the impeller 43 is a centrifugal impeller. The centrifugal impeller includes a first impeller section 431 and a second impeller section 432. The first impeller section 431 is located in the first chamber 424, the second impeller section 432 is located in the second chamber 425, and the first impeller section 431 and the second impeller section 432 are set to have opposite rotation directions. In this way, the above settings make the air inlet directions of the first impeller section 431 and the second impeller section 432 opposite, thereby ensuring that the inlet directions of the fume and the hot air are different, so as to realize the separate entry of the fume and the hot air without interference.

[0042] In this embodiment, the first impeller section 431 and the second impeller section 432 are of an integral structure and are integrally injection-molded, so that the disassembly and assembly of the impeller 43 are easier and simpler, reducing the disassembly and assembly difficulty.

[0043] It should be noted that the setting of the wind blade 43 is not limited to this and can be adjusted according to the working conditions. Optionally, the first wind blade segment 431 is connected to the second wind blade segment 432, and the two are independent structures.

[0044] As Figures 2 to 4 shown, the housing 42 includes a first sub-housing 426, a second sub-housing 427, and a wind guiding sub-housing 428. Among them, the first suction port 421 is provided on the first sub-housing 426. The second sub-housing 427 is docked with the first sub-housing 426 to form an installation cavity. The second sub-housing 427 has a through hole, and the wind blade 43 is arranged in the installation cavity. The wind guiding sub-housing 428 is arranged on the side of the second sub-housing 427 away from the first sub-housing 426. The driving device 41 is arranged on the wind guiding sub-housing 428, and the second suction port 422 is arranged on the wind guiding sub-housing 428. The second suction port 422 is communicated with the through hole. In this way, the above setting makes the structure of the housing 42 simpler, easier to process and implement, and reduces the processing cost of the housing 42.

[0045] Specifically, the wind guiding sub-housing 428 is connected to the first sub-housing 426 through the second sub-housing 427. The first suction port 421 is arranged on the first sub-housing 426, and the second suction port 422 is arranged on the wind guiding sub-housing 428. The second suction port 422 is communicated with the through hole. In this way, during the operation of the fan assembly 40, the cooking fume directly enters the first chamber 424 through the first suction port 421. The hot air on the surface of the condenser 30 enters the wind guiding sub-housing 428 through the second suction port 422 and enters the second chamber 425 through the through hole. The cooking fume and the hot air are finally discharged outside the fan assembly 40 through the air outlet 423, thereby improving the gas flow in the fan assembly 40.

[0046] As Figures 2 to 4 shown, the fan assembly 40 further includes a wind guiding structure 47. Among them, the wind guiding structure 47 is arranged on the wind guiding sub-housing 428 and is located at the second suction port 422. The wind guiding structure 47 is a horn-shaped structure, and the opening of the horn-shaped structure faces away from the wind guiding sub-housing 428. In this way, the above setting increases the suction area of the second suction port 422, so that the fan assembly 40 can quickly suck the hot air on the surface of the condenser 30, improves the operating efficiency of the fan assembly 40, and further keeps the surface temperature of the condenser 30 at a preset temperature.

[0047] Specifically, the horn-shaped structure can guide the hot air entering it. On the one hand, it reduces the gas turbulence at the second suction port 422 and reduces the noise; on the other hand, it is convenient for the hot air to enter the second suction port 422 and improves the smoothness of the hot air.

[0048] As Figure 3As shown, the air outlet 423 includes a first sub-air outlet 4231 and a second sub-air outlet 4232. The first sub-air outlet 4231 is provided on the first sub-housing 426, and the second sub-air outlet 4232 is provided on the second sub-housing 427. The fan assembly 40 further includes an air outlet structure 48. Among them, the air outlet structure 48 is provided on the housing 42, and the air outlet structure 48 is in communication with both the first sub-air outlet 4231 and the second sub-air outlet 4232 to guide the air flow discharged from the first sub-air outlet 4231 and the second sub-air outlet 4232 to the outside. In this way, the above settings ensure that the oil fume entering the first chamber 424 and the hot air entering the second chamber 425 can smoothly enter the air outlet 423 on the one hand; on the other hand, it ensures that the oil fume and hot air can be smoothly transported outside the fan assembly 40.

[0049] Specifically, the first chamber 424 is in communication with the first sub-air outlet 4231, and the second chamber 425 is in communication with the second sub-air outlet 4232. The oil fume in the first chamber 424 enters the air outlet structure 48 through the first sub-air outlet 4231, and the oil fume in the second chamber 425 enters the air outlet structure 48 through the second sub-air outlet 4232 to ensure that the oil fume and hot air can be discharged outside the fan assembly 40 through the air outlet structure 48.

[0050] As Figure 2 and Figure 4 As shown, the air outlet structure 48 further includes a connecting cylinder section 481 and an air outlet cylinder section 482 connected in sequence. The air outlet cylinder section 482 is a cylinder. The first end of the connecting cylinder section 481 is connected to both the first sub-housing 426 and the second sub-housing 427, and the second end of the connecting cylinder section 481 is connected to the air outlet cylinder section 482. Among them, the first end of the connecting cylinder section 481 is a polygonal hole. In this way, the above settings make it easier and simpler to connect the air outlet structure 48 to the housing 42, reducing the connection difficulty between the two; on the other hand, it makes the structure of the air outlet structure 48 simpler, easier to process and implement, and reduces the processing cost of the fan assembly 40.

[0051] In this embodiment, the first end of the connecting cylinder section 481 is a rectangular structure, and the second end of the connecting cylinder section 481 is a circular structure, which is convenient for connecting the air outlet structure 48 to the housing 42 and reduces the connection difficulty between the two.

[0052] As Figure 4 As shown, the fan assembly 40 further includes a transmission shaft 45 and a coupling 46. Among them, the driving end of the driving device 41 is connected to the first end of the transmission shaft 45, and the second end of the transmission shaft 45 is connected to the wind blade 43. In this way, the above settings make it easier and simpler to disassemble and assemble the driving device 41 and the wind blade 43, reducing the disassembly and assembly difficulty.

[0053] Specifically, the driving device 41 is installed on the air guiding housing 428. Both ends of the transmission shaft 45 are respectively connected to the coupling 46 and the wind blade 43. The driving end of the driving device 41 is connected to the coupling 46 to drive the wind blade 43 to rotate through the coupling 46 and the transmission shaft 45.

[0054] Optionally, the fan assembly 40 further includes a filtering structure. The filtering structure is arranged at the second suction port 422 to filter impurities in the air flow entering the second suction port 422. In this way, during the operation of the fan assembly 40, the filtering structure is used to filter the hot air entering the second suction port 422, thereby preventing impurities from entering the fan assembly 40 through the second suction port 422 and affecting the normal operation of the fan assembly 40.

[0055] As Figure 1 shown, the integrated stove further includes an exhaust duct 50. The exhaust duct 50 is connected to the air outlet section 482 to guide the oil fume and hot air to the outside.

[0056] From the above description, it can be seen that the above embodiments of the present invention achieve the following technical effects:

[0057] The fan assembly has a first suction port and a second suction port, and both the first suction port and the second suction port are communicated with the air outlet. In this way, during the operation of the integrated stove, the driving device drives the wind blade to rotate, and the wind blade sucks the oil fume in the kitchen and the hot air on the surface of the condenser, so that the oil fume enters the fan assembly through the oil fume suction port and the first suction port in sequence, and the hot air generated on the condenser enters the fan assembly through the second suction port. Then, both the oil fume and the hot air are discharged to the outside through the air outlet, so that the fan assembly can not only suck the oil fume, but also suck the hot air on the surface of the condenser, thereby reducing the surface temperature of the condenser.

[0058] Compared with the prior art in which a cooling fan and an oil fume extraction fan are respectively used for suction in the refrigeration system, the integrated stove in the present application uses one fan assembly to replace the cooling fan and the oil fume extraction fan in the prior art, thereby reducing the number of fans, solving the problem that the disassembly and assembly of the integrated stove in the prior art are relatively cumbersome, and reducing the disassembly and assembly difficulty and labor intensity of the staff.

[0059] Obviously, the above-described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without making creative efforts shall fall within the protection scope of the present invention.

[0060] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular forms are also intended to include the plural forms. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they specify the presence of features, steps, operations, devices, components, and / or combinations thereof.

[0061] It should be noted that the terms "first", "second", etc. in the specification, claims and above-mentioned drawings of the present application are used to distinguish similar objects and are not necessarily 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 different from those illustrated or described herein.

[0062] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. An integrated stove, characterized in that, Comprising: A base body (10) having an oil fume suction port (11); A cooking appliance disposed on the base body (10); A refrigeration module disposed within the base body (10), the refrigeration module including a compressor, an evaporator (20) and a condenser (30), the evaporator (20) being connected to the suction port of the compressor, and the condenser (30) being connected to the discharge port of the compressor; A fan assembly (40) including a driving device (41), a housing (42) and a wind blade (43), the wind blade (43) being disposed within the housing (42), and the driving device (41) being drivingly connected to the wind blade (43); Wherein, the housing (42) has a first suction port (421), a second suction port (422) and an air outlet (423), the first suction port (421) being in communication with the oil fume suction port (11), and the second suction port (422) being disposed opposite to the condenser (30); both the first suction port (421) and the second suction port (422) are in communication with the air outlet (423); The housing (42) includes: A first sub-housing (426) on which the first suction port (421) is disposed; A second sub-housing (427) that docks with the first sub-housing (426) to form an installation cavity, the second sub-housing (427) having a through-hole, and the wind blade (43) being disposed within the installation cavity; A wind guiding sub-housing (428) disposed on a side of the second sub-housing (427) away from the first sub-housing (426), the driving device (41) being disposed on the wind guiding sub-housing (428), the second suction port (422) being disposed on the wind guiding sub-housing (428), and the second suction port (422) being in communication with the through-hole; There is a preset included angle between the air inlet direction of the first suction port (421) and the air inlet direction of the second suction port (422), and the preset included angle is greater than or equal to 75° and less than 180°.

2. The integrated cooking range according to claim 1, wherein, The housing (42) has a first chamber (424) and a second chamber (425), the first chamber (424) being in communication with the first suction port (421), the second chamber (425) being in communication with the second suction port (422), and the air outlet (423) being in communication with both the first chamber (424) and the second chamber (425).

3. The integrated range hood according to claim 2, wherein, The fan assembly (40) further includes: A partition plate (44) disposed within the housing (42) to divide the inner cavity of the housing (42) into the first chamber (424) and the second chamber (425).

4. The integrated cooking range according to claim 3, wherein, The partition plate (44) has a mounting hole, the wind blade (43) being inserted through the mounting hole, and the outer peripheral surface of the partition plate (44) being welded or riveted to the inner surface of the housing (42).

5. The integrated range hood according to claim 2, wherein, The wind blade (43) is a centrifugal wind blade, which includes a first wind blade section (431) and a second wind blade section (432). The first wind blade section (431) is located in the first chamber (424), and the second wind blade section (432) is located in the second chamber (425). The first wind blade section (431) and the second wind blade section (432) are arranged with opposite rotation directions.

6. The integrated cooking stove according to claim 1, characterized in that, The fan assembly (40) further includes: A wind guiding structure (47) is arranged on the wind guiding sub-housing (428) and at the second suction port (422). The wind guiding structure (47) is a horn-shaped structure, and the opening of the horn-shaped structure faces away from the wind guiding sub-housing (428).

7. The integrated range hood according to claim 1, characterized in that The air outlet (423) includes a first sub-air outlet (4231) and a second sub-air outlet (4232). The first sub-air outlet (4231) is arranged on the first sub-housing (426), and the second sub-air outlet (4232) is arranged on the second sub-housing (427). The fan assembly (40) further includes: An air outlet structure (48) is arranged on the housing (42). The air outlet structure (48) is communicated with both the first sub-air outlet (4231) and the second sub-air outlet (4232) to guide the air flow discharged from the first sub-air outlet (4231) and the second sub-air outlet (4232) to the outside.

8. The integrated cooking range according to claim 7, wherein, The air outlet structure (48) further includes a connecting cylinder section (481) and an air outlet cylinder section (482) connected in sequence. The air outlet cylinder section (482) is a cylinder. The first end of the connecting cylinder section (481) is connected to both the first sub-housing (426) and the second sub-housing (427). The second end of the connecting cylinder section (481) is connected to the air outlet cylinder section (482); wherein, the first end of the connecting cylinder section (481) is a polygonal hole.

9. The integrated cooking range according to claim 1, wherein, The fan assembly (40) further includes: A transmission shaft (45); A coupling (46), the driving end of the driving device (41) is connected to the first end of the transmission shaft (45), and the second end of the transmission shaft (45) is connected to the wind blade (43).

10. The integrated cooking stove according to claim 1, wherein The fan assembly (40) further includes: A filtering structure is arranged at the second suction port (422) to filter impurities in the air flow entering the second suction port (422).

Citation Information

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