Grease separation assembly and integrated stove
By designing a prism-shaped frame and inclined filter components for the grease separation assembly, the problem of limited space for the fume filter components in integrated range hood and cooktop products has been solved, improving the oil-water separation effect and structural compactness, and reducing the failure rate and odor generation of the range hood components.
Patent Information
- Application Number
- PCT/CN2025/088694
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-04-15
- Filing Date
- 2025-04-14
- Publication Date
- 2025-10-23
AI Technical Summary
Due to space constraints, the existing integrated range hood and cooktop products have small filtration areas and poor oil-water separation performance in their fume filtration components.
Design an oil separation component with a frame structure. The frame is prismatic with open sides forming an air inlet and an air outlet. The filter component is installed in the cavity and is horizontally positioned between the air inlet and the air outlet to increase the effective filtration area. The assembly is simplified by tilting the filter component and using a slot design.
The increased flow area of oil fumes within the frame and the increased contact area of the filter components enhance oil-water separation capabilities. The optimized structure of the grease separation components meets the requirements of miniaturization design, reducing the failure rate of the range hood components and the generation of odors.
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Figure CN2025088694_23102025_PF_FP_ABST
Abstract
Description
Fat separation assembly and integrated cooker
[0001] The present application claims priority to the Chinese Patent Application No. 202420774236.X, filed on April 15, 2024, and entitled "Fat separation assembly and integrated cooker", and the Chinese Patent Application No. 202420774241.0, filed on April 15, 2024, and entitled "Integrated cooker", the contents of which are incorporated herein by reference in their entirety. TECHNICAL FIELD
[0002] The present application relates to the technical field of cooking equipment, in particular to a fat separation assembly and an integrated cooker. BACKGROUND
[0003] In the related art, in order to ensure that the smoke range integrated product has good oil smoke absorption effect, an oil smoke filtering component is generally arranged below the air inlet to perform front oil-water separation on the oil smoke.
[0004] However, due to the limitation of the assembly space, the oil smoke filtering component is usually designed to be relatively small, so that the effective filtering area is small, thereby resulting in poor oil-water separation effect.
[0005] Therefore, how to overcome the above technical defects has become a technical problem to be solved. SUMMARY
[0006] The present application aims to at least solve one of the technical problems existing in the prior art.
[0007] To this end, a first aspect of the present application provides a fat separation assembly.
[0008] A second aspect of the present application provides an integrated cooker.
[0009] Therefore, in the fat separation assembly provided by the present application, the fat separation assembly comprises a frame, the frame encloses two end faces and at least three side faces, the area of the side face is larger than the area of the end face, among the at least three side faces, two adjacent side faces are open, one of which forms an air inlet, and the other forms an air outlet, the remaining side faces are closed to form a first outer wall, and the two end faces are closed to form a second outer wall, the first outer wall and the second outer wall enclose a cavity; a filtering component, the filtering component separates the cavity between the air inlet and the air outlet, or the filtering component covers at least one of the air inlet and the air outlet.
[0010] In this technical solution, the fat separation assembly comprises a frame, the frame is the load-bearing structure of the fat separation assembly, and the frame can provide positioning, protection and support for the outer wall and the filtering component in the frame, so as to improve the structural stability of the fat separation assembly.
[0011] The frame is formed with an air inlet and an air outlet, and a cavity is formed inside the frame and communicates with the air inlet and the air outlet. The filter component is arranged in the cavity. The oil fume enters the cavity through the air inlet. In the process of passing through the filter component, the filter component separates the oil and water vapor mixed in the oil fume, completes the pre-separation of oil and water in the oil fume, and avoids the oil fume carrying oil and water into the smoke machine assembly. On the one hand, the failure rate of the smoke machine assembly is reduced, and on the other hand, the accumulation of oil and water in the smoke machine assembly is avoided to generate an odor.
[0012] The integrated stove needs to meet the miniaturization design requirement, and the space allocated to the oil separation assembly is small. If the filter component cannot form a large enough effective filtering area in the frame, the pre-separation effect of oil and water will be affected.
[0013] On this basis, the frame is prismatic, specifically can be three-prismatic, four-prismatic, etc. Correspondingly, the frame can enclose two end faces in the front and rear two end directions, and enclose at least three side faces in the circumferential direction. The two ends of the side face are connected with the front and rear two end faces, and at least three side faces are surrounded around the four sides of the two end faces. By setting the frame to be prismatic as described above, the frame can adapt to the narrow space in the integrated stove, thereby improving the structural compactness of the integrated stove and providing a convenient condition for the miniaturization design of the integrated stove.
[0014] Among the at least three side faces of the frame, the two adjacent side faces in the circumferential direction are open, and the remaining side faces are closed by the first outer wall. One of the open side faces forms the air inlet, and the other open side face forms the air outlet. When the frame is a regular four-prismatic, the air inlet and the air outlet are perpendicular to each other. When the frame is in other shapes, the air inlet and the air outlet are inclined to each other.
[0015] The filter component is installed inside the cavity. When the filter component is installed inside the cavity, the filter component is arranged transversely between the air inlet and the air outlet, and the filter component can divide the cavity into two parts in the direction from the air inlet to the air outlet.
[0016] On the prismatic frame, the area of the side wall is large. Selecting two adjacent side walls to form the air inlet and the air outlet can increase the flow area of the oil fume in the frame, fully utilize the space inside the frame, eliminate the dead angle of the oil fume in the frame, and thus increase the contact area of the oil fume and the filter component, i.e. increase the effective filtering area of the filter component, to improve the pre-separation capability of the oil separation assembly on the basis of meeting the small space arrangement requirement of the oil separation assembly, solve the technical defects existing in the related art, and thus realize the technical effects of optimizing the structure of the oil separation assembly, improving the space utilization rate of the oil separation assembly, increasing the effective filtering area of the filter component, and improving the oil and water separation capability.
[0017] In some embodiments of the present application, the filtering component is flat; and the filtering component is arranged obliquely relative to the air inlet and the air outlet.
[0018] In some embodiments of the present application, the inner surface of the second outer wall comprises a slot, the slot being in communication with the air inlet or the air outlet, and the filtering component is inserted into the slot.
[0019] In some embodiments of the present application, the filtering component comprises: a first support; a second support connected to the first support; and a filter screen clamped between the first support and the second support.
[0020] In some embodiments of the present application, the oil separation assembly further comprises: a fixing frame arranged in the frame, the fixing frame avoiding the air inlet and the air outlet, and the filtering component is clamped between the fixing frame and the frame.
[0021] In some embodiments of the present application, the filtering component is recessed at least partially towards the direction of the air outlet.
[0022] In some embodiments of the present application, the first outer wall adjacent to the air outlet is the bottom wall of the frame; in a direction perpendicular to the bottom wall, the distance between the air outlet and the bottom wall is a first distance; and the first distance is greater than or equal to 1 mm and less than or equal to 20 mm.
[0023] In some embodiments of the present application, the inner surface of the second outer wall comprises a groove.
[0024] In some embodiments of the present application, the depth of the groove is greater than or equal to 0.5 mm and less than or equal to 6 mm.
[0025] In the second aspect of the present application, an integrated cooker is provided, which comprises: a body comprising a flue; an oil separation assembly as in any of the above embodiments arranged in the flue; and a range hood assembly connected to the body, the flue being in communication with the range hood assembly, and the oil separation assembly being configured to separate oil from oil fume flowing to the range hood assembly.
[0026] In the integrated cooker provided by the present application, the integrated cooker comprises: a body comprising an air inlet and a flue; an oil separation assembly comprising an air inlet and an air outlet; and a first limiting component arranged in the flue; when the air outlet is inserted into the air inlet in a first direction, the first limiting component avoids the oil separation assembly, and the oil separation assembly is located in the flue; when the air outlet is inserted into the air inlet in a second direction, the first limiting component abuts against the oil separation assembly, and part of the oil separation assembly comprising the air inlet is located outside the air inlet.
[0027] In some embodiments of the present application, the oil separation assembly comprises: a frame; a filter component arranged in the frame; and a second limiting component arranged on the circumferential side of the frame; wherein when the air outlet is inserted into the smoke inlet in the first orientation, the first limiting component is located outside the movement track of the second limiting component; and when the air outlet is inserted into the smoke inlet in the second orientation, the first limiting component is located inside the movement track of the second limiting component.
[0028] In some embodiments of the present application, one of the first limiting component and the second limiting component is a first blocking rib, and the other is a gap; wherein when the air outlet is inserted into the smoke inlet in the first orientation, the first blocking rib is inserted into the gap; and when the air outlet is inserted into the smoke inlet in the second orientation, the gap faces away from the first blocking rib, and the first blocking rib blocks the frame in the depth direction of the smoke inlet.
[0029] In some embodiments of the present application, the depth of the gap ranges from greater than or equal to 1 mm to less than or equal to 10 mm.
[0030] In some embodiments of the present application, the first limiting component is a second blocking rib, the second limiting component is a third blocking rib, and the extension directions of the second blocking rib and the third blocking rib are different; wherein when the air outlet is inserted into the smoke inlet in the first orientation, the third blocking rib faces away from the second blocking rib; and when the air outlet is inserted into the smoke inlet in the second orientation, the second blocking rib blocks the third blocking rib in the depth direction of the smoke inlet.
[0031] In some embodiments of the present application, the frame encloses two end faces and at least three side faces, the area of the side face is greater than the area of the end face, among the at least three side faces, two adjacent side faces are open, one of which forms the air inlet, and the other forms the air outlet, and the remaining side faces are closed to form a first outer wall, the two end faces are closed to form a second outer wall, and the first outer wall and the second outer wall enclose a cavity.
[0032] In some embodiments of the present application, the second limiting component is arranged on the outer surface of the second outer wall.
[0033] In some embodiments of the present application, the filter component covers at least one of the air inlet and the air outlet, or the filter component separates the cavity between the air inlet and the air outlet.
[0034] In some embodiments of the present application, the integrated cooker further comprises: a grid embedded in the smoke inlet, the grid covering the air inlet.
[0035] In some embodiments of the present application, the integrated cooker further comprises: a smoke machine assembly connected to the body, the flue being in communication with the smoke machine assembly, and the oil separation assembly being used to separate the oil from the oil fume flowing to the smoke machine assembly.
[0036] Additional aspects and advantages of the present application will become apparent from the following description, or will be learned by practice of the present application. BRIEF DESCRIPTION OF DRAWINGS
[0037] The above and / or additional aspects and advantages of the present application will become apparent and be readily appreciated from the following description, taken in conjunction with the accompanying drawings, in which:
[0038] FIG. 1 illustrates a structural schematic diagram of a grease separation assembly according to an embodiment of the present application;
[0039] FIG. 2 illustrates a structural schematic diagram of a grease separation assembly according to an embodiment of the present application;
[0040] FIG. 3 is a sectional view of the grease separation assembly in the embodiment shown in FIG. 2 in the direction of A-A;
[0041] FIG. 4 illustrates a structural schematic diagram of a grease separation assembly according to an embodiment of the present application;
[0042] FIG. 5 illustrates a structural schematic diagram of a grease separation assembly according to an embodiment of the present application;
[0043] FIG. 6 illustrates a structural schematic diagram of a grease separation assembly according to an embodiment of the present application;
[0044] FIG. 7 illustrates a structural schematic diagram of a grease separation assembly according to an embodiment of the present application;
[0045] FIG. 8 illustrates a structural schematic diagram of a filter part according to an embodiment of the present application;
[0046] FIG. 9 illustrates an exploded view of a filter part according to an embodiment of the present application;
[0047] FIG. 10 illustrates a structural schematic diagram of a filter part according to an embodiment of the present application;
[0048] FIG. 11 is a sectional view of the filter part in the embodiment shown in FIG. 10 in the direction of B-B;
[0049] FIG. 12 is a partial enlarged view of the filter part in the embodiment shown in FIG. 11 in the area of C;
[0050] FIG. 13 illustrates a structural schematic diagram of a grease separation assembly according to an embodiment of the present application;
[0051] FIG. 14 is a sectional view of the grease separation assembly in the embodiment shown in FIG. 13 in the direction of D-D;
[0052] FIG. 15 is a partial enlarged view of the grease separation assembly in the embodiment shown in FIG. 14 in the area of E;
[0053] FIG. 16 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0054] FIG. 17 shows an exploded view of a grease separation assembly according to one embodiment of the present application;
[0055] FIG. 18 shows a structural schematic diagram of a filter component according to one embodiment of the present application;
[0056] FIG. 19 shows a structural schematic diagram of a filter component according to one embodiment of the present application;
[0057] FIG. 20 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0058] FIG. 21 is a sectional view of the grease separation assembly in the embodiment shown in FIG. 20 in the F-F direction;
[0059] FIG. 22 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0060] FIG. 23 is a sectional view of the grease separation assembly in the embodiment shown in FIG. 22 in the G-G direction;
[0061] FIG. 24 is a partial enlarged view of the grease separation assembly in the embodiment shown in FIG. 23 in the H region;
[0062] FIG. 25 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0063] FIG. 26 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0064] FIG. 27 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0065] FIG. 28 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0066] FIG. 29 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0067] FIG. 30 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0068] FIG. 31 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0069] FIG. 32 is a sectional view of the integrated stove in the embodiment shown in FIG. 31 in the I-I direction;
[0070] FIG. 33 is a partial enlarged view of the integrated stove in the embodiment shown in FIG. 32 in the J region;
[0071] FIG. 34 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0072] FIG. 35 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0073] FIG. 36 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0074] FIG. 37 is a sectional view of the grease separation assembly in the K-K direction in the embodiment shown in FIG. 36;
[0075] FIG. 38 is a partial enlarged view of the L region of the grease separation assembly in the embodiment shown in FIG. 37;
[0076] FIG. 39 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0077] FIG. 40 is a sectional view of the grease separation assembly in the M-M direction in the embodiment shown in FIG. 39;
[0078] FIG. 41 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0079] FIG. 42 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0080] FIG. 43 is a sectional view of the integrated stove in the N-N direction in the embodiment shown in FIG. 42;
[0081] FIG. 44 is a partial enlarged view of the O region of the integrated stove in the embodiment shown in FIG. 43;
[0082] FIG. 45 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0083] FIG. 46 is a sectional view of the integrated stove in the P-P direction in the embodiment shown in FIG. 45;
[0084] FIG. 47 is a partial enlarged view of the Q region of the integrated stove in the embodiment shown in FIG. 46;
[0085] FIG. 48 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0086] FIG. 49 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0087] FIG. 50 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0088] FIG. 51 is a partial enlarged view of the R region of the grease separation assembly in the embodiment shown in FIG. 50;
[0089] FIG. 52 shows a structural schematic diagram of a grease separation assembly according to one embodiment of the present application;
[0090] FIG. 53 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0091] FIG. 54 is a sectional view of the integrated stove in the T-T direction according to the embodiment shown in FIG. 53;
[0092] FIG. 55 is a partial enlarged view of the integrated stove in the U region according to the embodiment shown in FIG. 54;
[0093] FIG. 56 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0094] FIG. 57 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0095] FIG. 58 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0096] FIG. 59 is a sectional view of the integrated stove in the V-V direction according to the embodiment shown in FIG. 58;
[0097] FIG. 60 is a partial enlarged view of the integrated stove in the W region according to the embodiment shown in FIG. 59;
[0098] FIG. 61 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0099] FIG. 62 is a sectional view of the integrated stove in the X-X direction according to the embodiment shown in FIG. 61;
[0100] FIG. 63 is a partial enlarged view of the integrated stove in the Y region according to the embodiment shown in FIG. 62;
[0101] FIG. 64 shows an exploded view of an integrated stove according to one embodiment of the present application;
[0102] FIG. 65 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application;
[0103] FIG. 66 shows a structural schematic diagram of an integrated stove according to one embodiment of the present application.
[0104] Correspondence between the reference signs in FIGS. 1-66 and the component names is as follows: 100, grease separation assembly; 110, frame; 1102, air inlet; 1104, air outlet; 1106, cavity; 112, first outer wall; 114, second outer wall; 1142, slot; 1144, groove; 116, fixing frame; 119, bottom wall; 120, filter component; 122, first support; 124, second support; 126, filter screen; 128, second limiting component; 1282, notch; 1284, third blocking rib; 130, first limiting component; 132, first blocking rib; 134, second blocking rib; 140, grating; 200, integrated cooker; 210, body; 2102, flue; 2104, smoke inlet; 220, smoke machine assembly; 300, oil droplet. DETAILED DESCRIPTION
[0105] In order to enable a more complete understanding of the above-mentioned objects, features and advantages of the present application, the present application will be described in further detail below with reference to the accompanying drawings and specific embodiments. It should be noted that the embodiments of the present application and the features in the embodiments can be combined with each other without conflict.
[0106] In the following description, a large number of specific details are set forth in order to facilitate a thorough understanding of the present application, but the present application can also be implemented in other ways different from those described herein, and therefore the scope of protection of the present application is not limited by the specific embodiments disclosed below.
[0107] The grease separation assembly 100 and the integrated cooker 200 according to some embodiments of the present application are described below with reference to FIGS. 1-66.
[0108] As shown in FIGS. 1, 2 and 3, one embodiment of the present application proposes a grease separation assembly 100, which comprises a frame 110, the frame 110 enclosing two end faces and at least three side faces, the area of the side faces being greater than that of the end faces, among the at least three side faces, two adjacent side faces are open, one of which forms an air inlet 1102 and the other forms an air outlet 1104, and the remaining side faces are closed to form a first outer wall 112, and the two end faces are closed to form a second outer wall 114, and the first outer wall 112 and the second outer wall 114 enclose a cavity 1106; a filter component 120, which separates the cavity 1106 between the air inlet 1102 and the air outlet 1104, or covers at least one of the air inlet 1102 and the air outlet 1104.
[0109] The arrow a in FIG. 1 shows the flow direction of the oil fume.
[0110] The arrow a in FIG. 3 shows the flow direction of the oil fume, the arrow b shows the disassembly direction of the filter component 120, and the arrow c shows the dropping direction of the oil droplet 300.
[0111] In the technical solution, the oil separation assembly 100 comprises a frame 110, the frame 110 is a load-bearing structure of the oil separation assembly 100, and the frame 110 can provide positioning, protection and support for the outer wall and the filter component 120 inside the frame 110, so as to improve the structural stability of the oil separation assembly 100.
[0112] The frame 110 is provided with an air inlet 1102 and an air outlet 1104, and a cavity 1106 is formed inside the frame 110 and communicates with the air inlet 1102 and the air outlet 1104. The filter component 120 is arranged in the cavity 1106. The oil fume enters the cavity 1106 through the air inlet 1102. During the process of passing through the filter component 120, the filter component 120 separates the oil and water vapor mixed in the oil fume, completes the pre-oil-water separation of the oil fume, avoids the oil fume carrying oil and water into the smoke machine assembly 220, reduces the failure rate of the smoke machine assembly 220, and avoids the accumulation of oil and water in the smoke machine assembly 220 from producing odor.
[0113] The integrated stove 200 needs to meet the miniaturization design requirement, and the space allocated to the oil separation assembly 100 is small. If the filter component 120 cannot form a large enough effective filtering area in the frame 110, the pre-oil-water separation effect will be affected.
[0114] On this basis, the frame 110 is prismatic, specifically, it can be a triangular prism or a quadrangular prism. Correspondingly, the frame 110 can enclose two end faces in the front and rear directions and at least three side faces in the circumferential direction. The two ends of the side face are connected with the front and rear end faces, and the at least three side faces surround the four sides of the two end faces. By setting the frame 110 to be prismatic, the frame 110 can adapt to the narrow space in the integrated stove 200, thereby improving the structural compactness of the integrated stove 200 and providing a convenient condition for the miniaturization design of the integrated stove 200.
[0115] Among the at least three side faces of the frame 110, two adjacent side faces in the circumferential direction are open, and the remaining side faces are closed by the first outer wall 112. One of the open side faces forms the air inlet 1102, and the other open side face forms the air outlet 1104. When the frame 110 is a regular quadrangular prism, the air inlet 1102 and the air outlet 1104 are perpendicular to each other. When the frame 110 is in other shapes, the air inlet 1102 and the air outlet 1104 are inclined to each other.
[0116] The filtering component 120 is installed inside the cavity 1106, and when the filtering component 120 is installed inside the cavity 1106, the filtering component 120 is arranged transversely between the air inlet 1102 and the air outlet 1104, and the filtering component 120 can divide the cavity 1106 into two parts in the direction from the air inlet 1102 to the air outlet 1104.
[0117] The frame 110 is prismatic, the area of the side wall is large, and the air inlet 1102 and the air outlet 1104 are selectively formed by being open on two adjacent side walls. This can increase the flow area of the oil fume in the frame 110, fully utilize the space inside the frame 110, eliminate the dead angle of the oil fume in the frame 110, increase the contact area of the oil fume and the filtering component 120, that is, increase the effective filtering area of the filtering component 120, and improve the front oil-water separation capability of the oil separation assembly 100 on the basis of meeting the small space arrangement requirement of the oil separation assembly 100, thereby solving the technical defects in the related art, optimizing the structure of the oil separation assembly 100, improving the space utilization of the oil separation assembly 100, increasing the effective filtering area of the filtering component 120, and improving the oil-water separation capability.
[0118] As shown in FIGS. 5, 14 and 21, in some technical solutions of the present application, the filtering component 120 is flat; and the filtering component 120 is arranged obliquely relative to the air inlet 1102 and the air outlet 1104.
[0119] In this technical solution, the filtering component 120 is flat, and the filtering component 120 is installed inside the cavity 1106.
[0120] After the assembly of the filtering component 120 is completed, an angle is formed between the filtering component 120 and the air inlet 1102, and an angle is also formed between the filtering component 120 and the air outlet 1104, that is, the filtering component 120 is arranged obliquely relative to the air inlet 1102 and the air outlet 1104.
[0121] Compared with directly selecting the area of a side face as the effective filtering area of the filtering component 120, the filtering component 120 is arranged obliquely relative to the air inlet 1102 and the air outlet 1104, which is equivalent to cutting the space in the frame 110 by a plane oblique to the side face, and the area of the section cut out is larger than the area of the side face, thereby increasing the size and the effective filtering area of the filtering component 120 without changing the structure and the size of the frame 110, and thereby realizing the technical effects of improving the compactness of the structure of the oil separation assembly 100 and improving the oil-water separation capability.
[0122] Specifically, the filtering component 120 can be abutted against two non-adjacent side edges of the frame 110, so as to obtain the filtering component 120 with an area larger than the area of the side face between the two adjacent side edges.
[0123] As shown in FIG. 3, FIG. 4, FIG. 5, FIG. 6 and FIG. 7, in some embodiments of the present application, the inner surface of the second outer wall 114 comprises a slot 1142 which is in communication with the gas inlet 1102 or the gas outlet 1104, and the filter component 120 is inserted into the slot 1142.
[0124] The arrow b in FIG. 4 shows the dismounting direction of the filter component 120.
[0125] The arrow a in FIG. 5 shows the flow direction of the oil fume, and the arrow c shows the dropping direction of the oil droplet 300.
[0126] The arrow b in FIG. 7 shows the dismounting direction of the filter component 120.
[0127] In this technical solution, the inner surface of the second outer wall 114 is provided with the slot 1142, the shape of the slot 1142 is matched with the edge profile shape of the filter component 120. One end of the slot 1142 is opposite to one of the first side walls, and the other end of the slot 1142 is in communication with the gas inlet 1102 or the gas outlet 1104. In the assembly process, the filter component 120 is inserted into the slot 1142 from the gas inlet 1102 or the gas outlet 1104, and then the filter component 120 is pushed inward until the filter component 120 abuts against the above-mentioned first side wall, thereby completing the insertion assembly of the filter component 120 in the frame 110.
[0128] By providing the slot 1142, on the one hand, the difficulty of dismounting and assembling the filter component 120 can be reduced by the guiding effect of the slot 1142, and convenient conditions are provided for the user to assemble or dismount and clean the filter component 120, thereby achieving the technical effect of improving the user experience. On the other hand, the slot 1142 can limit the filter component 120 to ensure that the filter component 120 can be stably positioned at the predetermined working position, avoid the mispositioning or even the dismounting of the filter component 120 from the frame 110, and ensure that the filter component 120 can be fully contacted with the oil fume, thereby achieving the technical effects of improving the positioning accuracy of the filter component 120 and improving the reliability of the oil-water separation of the filter component 120.
[0129] Specifically, the slot 1142 can be formed by providing two parallel ribs on the inner surface of the second side wall.
[0130] As shown in FIG. 8, FIG. 9, FIG. 10, FIG. 11 and FIG. 12, in some embodiments of the present application, the filter component 120 comprises: a first bracket 122; a second bracket 124 connected with the first bracket 122; and a filter screen 126 clamped between the first bracket 122 and the second bracket 124.
[0131] In the technical scheme, the filtering component 120 comprises the first support 122, the second support 124 and the filter screen 126, when the oil fume flows through the pores of the filter screen 126, the filter screen 126 can separate part of the oil and water in the oil fume, and after the separation, the oil and water will be attached to the filter screen 126.
[0132] The first support 122 and the second support 124 are buckled and connected, and the first support 122 and the second support 124 that are connected wrap the edges of the filter screen 126. By arranging the first support 122 and the second support 124, on the one hand, the filter screen 126 can be clamped and positioned, so that the filter screen 126 can be kept in a predetermined shape, avoiding deformation or even breakage of the filter screen 126 under the impact of the oil fume, thereby improving the structural stability of the filter screen 126 and prolonging the service life of the filter screen 126.
[0133] On the other hand, burrs and flash will inevitably exist around the filter screen 126, and if the user contacts the edges of the filter screen 126 during disassembly and assembly of the filter screen 126, the user's hand will be easily pricked by the burrs and flash, and the filter screen 126 directly placed on the table surface such as a panel will also scratch the table surface. To this end, by arranging the first support 122 and the second support 124 to wrap the edges of the filter screen 126, shielding protection can be formed on the edges of the filter screen 126, so as to avoid scratching of the user or the table surface, thereby achieving the technical effects of improving the safety and reliability of the oil separation assembly 100.
[0134] As shown in FIGS. 13, 14, 15, 16 and 17, in some technical schemes of the present application, optionally, the oil separation assembly 100 further comprises a fixing frame 116 arranged in the frame 110, the fixing frame 116 avoids the air inlet 1102 and the air outlet 1104, and the filtering component 120 is clamped between the fixing frame 116 and the frame 110.
[0135] In the technical scheme, the oil separation assembly 100 further comprises the fixing frame 116, which can be arranged inside the frame 110, and after assembly, the fixing frame 116 is close to the inner surface of the frame 110 and the outer wall, so as to avoid excessive occupation of the space inside the frame 110 by the fixing frame 116.
[0136] At the same time, the assembled fixing frame 116 can cooperate with the frame 110 to provide clamping and positioning for the filtering component 120, so that the filtering component 120 can be positioned at a predetermined installation position, avoiding mispositioning or even falling out of the frame 110, ensuring that the filtering component 120 can fully contact the oil fume, thereby achieving the technical effects of improving the positioning accuracy of the filtering component 120 and improving the oil-water separation reliability of the filtering component 120.
[0137] Specifically, the limiting ribs can be arranged in the frame 110, and the filter component 120 is assembled into the cavity 1106 from the air inlet 1102 or the air outlet 1104, and is clamped on the limiting ribs, and then the fixing frame 116 is assembled into the cavity 1106, and the filter component 120 is clamped by the fixing frame 116 and the limiting ribs. The structure has the advantages of simple disassembly and assembly operation and high reliability.
[0138] As shown in FIGS. 18 and 19, in some technical solutions of the present application, the filter component 120 is optionally recessed at least partially towards the direction of the air outlet 1104.
[0139] In this technical solution, after the assembly of the filter component 120 is completed, the filter component 120 is recessed at least partially towards the direction of the air outlet 1104, for example, the filter screen 126 is selected to have a shape similar to a curved panel, or the multi-section filter screen 126 including multiple bent sections is selected.
[0140] By arranging the filter component 120 recessed at least partially in some areas, the limited space in the frame 110 can be further utilized without changing the size of the frame 110, so as to further increase the effective filtering area of the filter component 120, thereby achieving the technical effects of optimizing the structure of the filter component 120 and improving the oil-water separation capability of the oil separation assembly 100.
[0141] Specifically, when the filter component 120 is positioned by the insertion slot 1142 or the fixing frame 116, the flat plate-shaped filter component 120 is arranged in cooperation to reduce the disassembly and assembly difficulty.
[0142] When the filter component 120 is fixed inside the frame 110 by welding or other processes, the filter component 120 recessed at least partially is selected to increase the effective filtering area.
[0143] As shown in FIGS. 2, 3, 4 and 5, in some technical solutions of the present application, the first outer wall 112 adjacent to the air outlet 1104 is the bottom wall 119 of the frame 110; in the direction perpendicular to the bottom wall 119, the distance between the air outlet 1104 and the bottom wall 119 is a first distance D1; the first distance D1 ranges from greater than or equal to 1 mm to less than or equal to 20 mm.
[0144] In this technical solution, the first outer wall 112 adjacent to the air outlet 1104 is selected as the bottom wall 119 of the frame 110, and after the assembly of the oil separation assembly 100 in the integrated cooker 200 is completed, the bottom wall 119 faces downward, and the filter component 120 is located above the bottom wall 119.
[0145] On this basis, the distance between the air inlet 1102 and the bottom wall 119 in the direction perpendicular to the bottom wall 119 is a first distance D1, which is greater than or equal to 1 mm and less than or equal to 20 mm.
[0146] By leaving a gap between the bottom wall 119 and the air outlet 1104, a water tank capable of containing oil and water can be formed below the air outlet 1104. During the oil-water separation process, the oil droplets 300 separated in the filter screen 126 fall downward into the water tank under the action of gravity and are collected by the water tank, so as to avoid the spread of oil and water to the outside of the frame 110 and the secondary pollution of the separated oil and water inside the integrated cooker 200, thereby achieving the technical effects of improving the practicability and reliability of the grease separation assembly 100.
[0147] Among them, after the user dismounts the grease separation assembly 100 from the integrated cooker 200, the user can pour and clean the water tank to reuse the water tank to collect oil and water.
[0148] By controlling the first distance D1 to be greater than or equal to 1 mm, it can be ensured that the water tank has sufficient water storage capacity, and the possibility of oil and water overflowing outside the water tank is reduced. By controlling the first distance D1 to be less than or equal to 20 mm, it can be avoided that the water tank excessively occupies the size of the air outlet 1104, and the water tank affects the flow area inside the frame 110, so as to ensure the effective filtering area of the filter part 120.
[0149] As shown in FIGS. 20, 21, 22, 23, 24 and 25, in some technical solutions of the present application, optionally, the inner surface of the second outer wall 114 comprises a groove 1144.
[0150] In this technical solution, the inner surface of the second outer wall 114 is provided with the groove 1144, and the shape and size of the groove 1144 are adapted to the shape and size of the finger.
[0151] When it is necessary to dismount the grease separation assembly 100, the user can pull the grease separation assembly 100 by pressing the fingers into the groove 1144 to take out the grease separation assembly 100 from the flue 2102, thereby reducing the dismounting difficulty of the grease separation assembly 100, improving the convenience for the user, and achieving the technical effect of improving the user experience.
[0152] Moreover, compared with the technical solution of providing a handle on the frame 110, the groove 1144 will not block the air inlet 1102 and the air outlet 1104, and the groove 1144 will not reduce the flow area inside the frame 110, which is conducive to improving the oil-water separation capacity of the grease separation assembly 100.
[0153] As shown in FIGS. 23 and 24, in some technical solutions of the present application, optionally, the depth D2 of the groove 1144 ranges from greater than or equal to 0.5 mm to less than or equal to 6 mm.
[0154] In the technical solution, the depth D2 of the groove 1144 is greater than or equal to 0.5 mm and less than or equal to 6 mm.
[0155] By controlling the depth D2 of the groove 1144 to be greater than or equal to 0.5 mm, it can be ensured that there is enough space for the user's finger to be embedded in the groove 1144, which facilitates the user to exert force, thereby reducing the difficulty of disassembling the grease separation assembly 100.
[0156] By controlling the depth D2 of the groove 1144 to be less than or equal to 6 mm, the structural damage of the groove 1144 to the second side wall can be reduced on the basis of meeting the user's force requirement, thereby ensuring the structural strength of the grease separation assembly 100.
[0157] As shown in FIGS. 26, 27 and 28, in an embodiment of the present application, an integrated cooker 200 is provided, which comprises a body 210 including a flue 2102; the grease separation assembly 100 in any of the above technical solutions is arranged in the flue 2102; a range hood assembly 220 is connected to the body 210, the flue 2102 communicates with the range hood assembly 220, and the grease separation assembly 100 is used to separate grease in the oil fume flowing to the range hood assembly 220.
[0158] The arrow e in FIG. 28 shows the flow direction of the oil fume.
[0159] In the technical solution, an integrated cooker 200 including the grease separation assembly 100 in any of the above technical solutions is provided, so that the integrated cooker 200 has the advantages of the grease separation assembly 100 in any of the above technical solutions and can achieve the technical effects of the grease separation assembly 100 in any of the above technical solutions. To avoid repetition, details are not described here.
[0160] On this basis, the integrated cooker 200 further comprises the body 210, the body 210 includes a panel and a shell, the panel is fastened to the shell, the panel is provided with an oil fume inlet, and the panel and the shell enclose the flue 2102 communicating with the oil fume inlet. The grease separation assembly 100 is loaded into the flue 2102 through the oil fume inlet.
[0161] The integrated cooker 200 further comprises the range hood assembly 220, the range hood assembly 220 communicates with the flue 2102, and the range hood assembly 220 can generate a power for sucking oil fume to suck the oil fume into the range hood assembly 220 through the oil fume inlet and the flue 2102. The grease separation assembly 100 can separate oil and water in the oil fume before the oil fume enters the range hood assembly 220, so as to avoid erosion and pollution of the range hood assembly 220 by oil and water.
[0162] As shown in FIGS. 29, 30, 43, 44, 45 and 46, one embodiment of the present application provides an integrated cooker 200, which comprises a body 210 including a smoke inlet 2104 and a flue 2102; a grease separation assembly 100 including an air inlet 1102 and an air outlet 1104; and a first limiting component 130 arranged in the flue 2102; wherein when the air outlet 1104 is inserted into the smoke inlet 2104 in a first orientation, the first limiting component 130 avoids the grease separation assembly 100, and the grease separation assembly 100 is located in the flue 2102; and when the air outlet 1104 is inserted into the smoke inlet 2104 in a second orientation, the first limiting component 130 abuts against the grease separation assembly 100, and part of the grease separation assembly 100 including the air inlet 1102 is located outside the smoke inlet 2104.
[0163] In this embodiment, the integrated cooker 200 comprises the body 210 and the grease separation assembly 100, and a panel at the top of the body 210 forms an exposed surface of the integrated cooker 200. A cooking utensil is placed above the body 210, and the body 210 is provided with the smoke inlet 2104 at the top. Oil fume generated during cooking can be drawn into the integrated cooker 200 through the smoke inlet 2104.
[0164] The body 210 is internally formed with the flue 2102 communicating with the smoke machine assembly 220, and the grease separation assembly 100 can be installed in the flue 2102 through the smoke inlet 2104. Before flowing to the smoke machine assembly 220, the oil fume needs to flow through the grease separation assembly 100 first. The grease separation assembly 100 can separate the grease and water vapor mixed in the oil fume, complete the prepositioned oil-water separation of the oil fume, and avoid the oil fume carrying the oil and water into the smoke machine assembly 220, thereby reducing the failure rate of the smoke machine assembly 220 and avoiding the accumulation of the oil and water in the smoke machine assembly 220 from producing an odor.
[0165] Specifically, the grease separation assembly 100 includes the air inlet 1102 and the air outlet 1104. After the grease separation assembly 100 is assembled, the air inlet 1102 is located inside the smoke inlet 2104, and the air inlet 1102 is opposite to the smoke inlet 2104. The air outlet 1104 is directed to the leeward side of the predetermined installation position of the grease separation assembly 100. The oil fume separated by the oil-water separation continues to flow to the leeward side through the air outlet 1104, and finally enters the smoke machine assembly 220.
[0166] Wherein, the air outlet 1104 is towards a single direction, if the air outlet 1104 is towards the correct first direction during the process of installing the oil separation assembly 100 into the smoke inlet 2104, the air outlet 1104 can accurately face the downwind side of the predetermined installation position, and the oil fume can be smoothly discharged to the smoke machine assembly 220. On the contrary, if the air outlet 1104 is towards the second direction opposite to the correct direction during the process of installing the oil separation assembly 100 into the smoke inlet 2104, the air outlet 1104 will face away from the downwind side of the predetermined installation position, and the oil separation assembly 100 will block the flue 2102, so that the oil fume cannot flow to the smoke machine assembly 220.
[0167] To this end, the first limiting component 130 is arranged in the flue 2102, and the first limiting component 130 is located at the predetermined installation position of the oil separation assembly 100 and can cooperate with the outer surface of the oil separation assembly 100. Specifically, when the oil separation assembly 100 with the air outlet 1104 facing the first direction is inserted into the smoke inlet 2104, the first limiting component 130 avoids the correct insertion track of the oil separation assembly 100, and the oil separation assembly 100 can be smoothly inserted into the predetermined installation position. The first limiting component 130 can avoid the outer surface of the oil separation assembly 100, and at this time, the air outlet 1104 faces the downwind side of the predetermined installation position, and the oil fume after oil-water separation can be smoothly discharged to the smoke machine assembly 220.
[0168] Correspondingly, when the oil separation assembly 100 with the air outlet 1104 facing the second direction is inserted into the smoke inlet 2104, the first limiting component 130 can block the oil separation assembly 100 on the wrong insertion track of the oil separation assembly 100. Specifically, the first limiting component 130 abuts against the outer surface of the oil separation assembly 100 to prevent the oil separation assembly 100 from continuing to be inserted into the flue 2102, so that part of the oil separation assembly 100 including the air inlet 1102 is located outside the smoke inlet 2104, to prompt the user that the current insertion direction of the oil separation assembly 100 is wrong.
[0169] Therefore, by arranging the first limiting component 130 which can block the oil separation assembly 100 on the wrong insertion track of the oil separation assembly 100 in the reverse installation, the anti-reverse design of the oil separation assembly 100 is realized, the user can be effectively prevented from installing the oil separation assembly 100 in the wrong direction, and it is ensured that the oil separation assembly 100 can connect the smoke inlet 2104 and the smoke machine assembly 220 in the correct direction, so as to avoid that the oil separation assembly 100 blocks the flue 2102. Thus, the technical defects in the related art are solved, the assembly structure of the integrated cooker 200 is optimized, the assembly precision and assembly reliability of the oil separation assembly 100 are improved, and the technical effect of reducing the failure rate of the integrated cooker 200 is achieved.
[0170] As shown in FIG. 34, FIG. 35, FIG. 36, FIG. 48, FIG. 49 and FIG. 50, in some embodiments of the present application, the grease separation assembly 100 optionally comprises: a frame 110; a filter component 120 arranged in the frame 110; a second limiting component 128 arranged on the periphery of the frame 110; wherein when the air outlet 1104 is inserted into the smoke inlet 2104 in the first orientation, the first limiting component 130 is located outside the movement track of the second limiting component 128; when the air outlet 1104 is inserted into the smoke inlet 2104 in the second orientation, the first limiting component 130 is located inside the movement track of the second limiting component 128.
[0171] In this embodiment, the grease separation assembly 100 comprises a frame 110, which is the load-bearing structure of the grease separation assembly 100. The frame 110 can provide positioning, protection and support for the outer wall and the filter component 120 inside the frame 110, so as to improve the structural stability of the grease separation assembly 100.
[0172] The frame 110 is formed with an air inlet 1102 and an air outlet 1104, and a cavity 1106 is formed inside the frame 110 to communicate the air inlet 1102 and the air outlet 1104. The filter component 120 is arranged in the cavity 1106. The oil fume enters the cavity 1106 through the air inlet 1102, and the filter component 120 separates the oil and water vapor mixed in the oil fume during the process of passing through the filter component 120, so as to complete the pre-oil-water separation of the oil fume, avoid the oil fume carrying oil and water into the smoke machine assembly 220, reduce the failure rate of the smoke machine assembly 220 on the one hand, and avoid the accumulation of oil and water in the smoke machine assembly 220 from producing odor on the other hand.
[0173] On this basis, the periphery of the frame 110 is provided with a second limiting component 128. By arranging the second limiting component 128, the movement track of the grease separation assembly 100 can be extended to the periphery of the frame 110, so as to form a correct movement track and an incorrect movement track that are different.
[0174] Specifically, when the grease separation assembly 100 with the air outlet 1104 oriented to the first orientation is inserted into the smoke inlet 2104, the first limiting component 130 avoids the movement track of the second limiting component 128, and the second limiting component 128 can be smoothly inserted into the predetermined installation position together with the frame 110. At this time, the air outlet 1104 is oriented to the downwind side of the predetermined installation position, and the oil fume after oil-water separation can be smoothly discharged to the smoke machine assembly 220.
[0175] Correspondingly, when the air outlet 1104 is inserted into the smoke inlet 2104 towards the second orientation of the oil separation assembly 100, the first limiting part 130 will block the second limiting part 128 from continuing to move downward below the second limiting part 128, so as to prevent the oil separation assembly 100 from continuing to be inserted into the flue 2102, and part of the oil separation assembly 100 including the air inlet 1102 is located outside the smoke inlet 2104, so as to prompt the user that the current insertion orientation of the oil separation assembly 100 is incorrect.
[0176] Therefore, by cooperating the first limiting part 130 with the second limiting part 128, the anti-reverse design of the oil separation assembly 100 is realized, and the destructive impact of the first limiting part 130 on the frame 110 can be avoided, thereby realizing the technical effects of optimizing the assembly structure of the integrated cooker 200, improving the assembly precision and assembly reliability of the oil separation assembly 100, and reducing the failure rate of the integrated cooker 200.
[0177] As shown in FIGS. 31, 32, 33, 34, 35, 36 and 37, in some embodiments of the present application, one of the first limiting part 130 and the second limiting part 128 is the first blocking rib 132, and the other is the gap 1282; wherein when the air outlet 1104 is inserted into the smoke inlet 2104 in the first orientation, the first blocking rib 132 is inserted into the gap 1282; when the air outlet 1104 is inserted into the smoke inlet 2104 in the second orientation, the gap 1282 faces away from the first blocking rib 132, and the first blocking rib 132 blocks the frame 110 in the depth direction of the smoke inlet 2104.
[0178] In this embodiment, one of the first limiting part 130 and the second limiting part 128 is the gap 1282, and the other is the blocking rib, the shape of the gap 1282 is matched with the outer contour shape of the blocking rib, and when the insertion orientation of the first blocking rib 132 is correct, the first blocking rib 132 can be smoothly embedded in the gap 1282.
[0179] Specifically, the following embodiments take the gap 1282 arranged on the side of the frame 110 and the first blocking rib 132 arranged in the flue 2102 as an example for illustration.
[0180] Wherein, the gap 1282 is arranged unidirectionally around the frame 110, and when the air outlet 1104 faces the correct first orientation, the gap 1282 faces the direction where the first blocking rib 132 is located, at this time, the oil separation assembly 100 is inserted downward, and the gap 1282 can be nested outside the first blocking rib 132, that is, the gap 1282 and the first blocking rib 132 will not interfere with each other in the insertion process of the oil separation assembly 100.
[0181] Conversely, when the air outlet 1104 is in the wrong second orientation, the gap 1282 faces away from the direction in which the first barrier rib 132 is located, and at this time, the side of the downwardly inserted frame 110 that faces the first barrier rib 132 abuts against the first barrier rib 132 from above due to the absence of the gap 1282, so as to prevent the frame 110 from continuing to move downward, thereby timely reminding the user that the grease separation assembly 100 is installed in reverse.
[0182] The gap 1282 and the first barrier rib 132 have the advantages of low structural complexity and low processing difficulty, which is conducive to reducing the process complexity and production cost of the integrated cooker 200, and meanwhile, the nested gap 1282 and the first barrier rib 132 do not excessively occupy the outer space, which is conducive to improving the structural compactness of the integrated cooker 200, thereby providing convenient conditions for the miniaturization design of the integrated cooker 200.
[0183] Specifically, as shown in FIGS. 42, 43, 44, 45, 46 and 47, under the action of the first barrier rib 132, the grease separation assembly 100 partially protrudes to the outside of the smoke inlet 2104, and the protruding height is H2, so as to prompt the user that the installation direction is wrong. Meanwhile, under the action of the first barrier rib 132, the frame 110 is parked at a position that is H3 away from the bottom wall of the flue 2102, so as to avoid that the grease separation assembly 100 blocks the flue 2102.
[0184] As shown in FIGS. 37 and 38, in some embodiments of the present application, the depth of the gap 1282 ranges from greater than or equal to 1 mm to less than or equal to 10 mm.
[0185] In FIG. 38, H1 shows the depth of the gap 1282.
[0186] In this embodiment, the opening depth of the gap 1282 on the outer wall of the frame 110 needs to be greater than or equal to 1 mm and less than or equal to 10 mm. By limiting the above size range, the difficulty of structural improvement can be reduced on the basis of ensuring that the gap 1282 and the first barrier rib 132 can realize the anti-reverse function, and the process complexity of the integrated cooker 200 is reduced.
[0187] As shown in FIGS. 48, 49, 50, 51, 52, 53, 54, 55, 56 and 57, in some embodiments of the present application, the first limiting component 130 is a second barrier rib 134, the second limiting component 128 is a third barrier rib 1284, and the second barrier rib 134 and the third barrier rib 1284 have different extension directions; wherein when the air outlet 1104 is inserted into the smoke inlet 2104 in the first orientation, the third barrier rib 1284 faces away from the second barrier rib 134; and when the air outlet 1104 is inserted into the smoke inlet 2104 in the second orientation, the second barrier rib 134 blocks the third barrier rib 1284 in the depth direction of the smoke inlet 2104.
[0188] In this embodiment, the first limiting component 130 is a second blocking rib 134, and the second limiting component 128 is a third blocking rib 1284. The extending directions of the second blocking rib 134 and the third blocking rib 1284 are different. Specifically, the second blocking rib 134 is longitudinally arranged in the flue 2102, and the third blocking rib 1284 is transversely arranged on the side of the frame 110.
[0189] The third blocking rib 1284 is arranged in one direction around the frame 110. When the air outlet 1104 is directed to the correct first direction, the third blocking rib 1284 is directed away from the direction where the second blocking rib 134 is located. At this time, the grease separation assembly 100 can drive the third blocking rib 1284 to be inserted to the side of the frame 110 away from the second blocking rib 134, that is, the third blocking rib 1284 and the second blocking rib 134 will not interfere with each other during the insertion of the grease separation assembly 100.
[0190] Conversely, when the air outlet 1104 is directed to the incorrect second direction, the third blocking rib 1284 is directed to the direction where the second blocking rib 134 is located. At this time, the third blocking rib 1284 moving downward together with the frame 110 will be blocked by the second blocking rib 134 below, so as to prevent the frame 110 from continuing to move downward, thereby timely reminding the user that the grease separation assembly 100 is installed reversely.
[0191] The third blocking rib 1284 and the second blocking rib 134 have the advantages of low structural complexity and low processing difficulty, which is conducive to reducing the process complexity and production cost of the integrated cooker 200.
[0192] Specifically, as shown in FIGS. 58, 59, 60, 61, 62 and 63, under the action of the second blocking rib 134, the grease separation assembly 100 partially protrudes to the outside of the smoke inlet 2104, and the protruding height is H4, so as to prompt the user that the installation direction is incorrect. At the same time, under the action of the second blocking rib 134, the frame 110 will be parked at a position with a distance H5 from the bottom wall of the flue 2102, so as to avoid that the grease separation assembly 100 blocks the flue 2102.
[0193] As shown in FIGS. 34, 35, 39, 40 and 41, in some embodiments of the present application, the frame 110 encloses two end faces and at least three side faces. The area of the side face is greater than that of the end face. Among the at least three side faces, two adjacent side faces are open, one of which forms the air inlet 1102, and the other forms the air outlet 1104. The remaining side faces are closed to form the first outer wall 112. The two end faces are closed to form the second outer wall 114. The first outer wall 112 and the second outer wall 114 enclose the cavity 1106. The second limiting component 128 is arranged on the outer surface of the second outer wall 114.
[0194] In this embodiment, the frame 110 is prismatic, specifically can be triangular prism, quadrangular prism, etc. The frame 110 can enclose two end faces in the front and rear direction, enclose at least three side faces in the circumferential direction, and the two ends of the side faces are connected with the front and rear end faces, and the at least three side faces surround the four sides of the two end faces. By setting the frame 110 to be prismatic as described above, the frame 110 can be adapted to the narrow space in the integrated cooker 200, thereby improving the structural compactness of the integrated cooker 200 and providing a convenient condition for the miniaturization design of the integrated cooker 200.
[0195] In this embodiment, the two end faces of the frame 110 are closed by the second outer wall 114, and among the at least three side faces of the frame 110, two adjacent side faces in the circumferential direction are open, and the remaining side faces are closed by the first outer wall 112. One of the open side faces forms the air inlet 1102, and the other open side face forms the air outlet 1104. When the frame 110 is a regular quadrangular prism, the air inlet 1102 and the air outlet 1104 are perpendicular to each other, and when the frame 110 is in other shapes, the air inlet 1102 and the air outlet 1104 are inclined to each other.
[0196] The filter component 120 can be installed on the air inlet 1102 and / or the air outlet 1104, and the filter component 120 can also be installed inside the cavity 1106. When the filter component 120 is installed inside the cavity 1106, the filter component 120 is arranged between the air inlet 1102 and the air outlet 1104, and the filter component 120 can divide the cavity 1106 into two parts in the direction from the air inlet 1102 to the air outlet 1104.
[0197] On the prismatic frame 110, the area of the side wall is large, and selecting two adjacent side walls to be open to form the air inlet and the air outlet can increase the flow area of the oil fume in the frame 110, fully utilize the space inside the frame 110, eliminate the dead angle of the oil fume in the frame 110, thereby increase the contact area of the oil fume and the filter component 120, i.e. increase the effective filtering area of the filter component 120, to improve the front oil-water separation capability of the oil separation assembly 100 on the basis of meeting the small space arrangement requirement of the oil separation assembly 100, realize the optimization of the structure of the oil separation assembly 100, improve the space utilization rate inside the oil separation assembly 100, increase the effective filtering area of the filter component 120, and improve the oil-water separation capability.
[0198] On this basis, the second limiting component 128 is arranged on the outer surface of the second outer wall 114 to extend the movement track to the outside of the second outer wall 114, so as to facilitate the distinction between the correct movement track and the incorrect movement track.
[0199] As shown in FIG. 34, FIG. 35, FIG. 48 and FIG. 49, in some embodiments of the present application, optionally, the filtering component 120 covers at least one of the air inlet 1102 and the air outlet 1104, or the filtering component 120 divides the cavity 1106 between the air inlet 1102 and the air outlet 1104.
[0200] In this embodiment, the filtering component 120 is flat, and the filtering component 120 is installed inside the cavity 1106.
[0201] After the assembly of the filtering component 120 is completed, there is an included angle between the filtering component 120 and the air inlet 1102, and there is also an included angle between the filtering component 120 and the air outlet 1104, that is, the filtering component is inclined to the air inlet 1102 and the air outlet 1104.
[0202] Compared with directly selecting the area of a side surface as the effective filtering area of the filtering component 120, the inclined arrangement of the filtering component 120 relative to the air inlet 1102 and the air outlet 1104 is equivalent to cutting the space in the frame 110 by a plane inclined to the side surface, and the area of the section cut out is greater than the area of one side surface, thereby increasing the size and effective filtering area of the filtering component 120 without changing the structure and size of the frame 110, and thereby achieving the technical effects of improving the compactness of the grease separation assembly 100 and improving the oil-water separation capability.
[0203] As shown in FIG. 64, FIG. 65 and FIG. 66, in some embodiments of the present application, optionally, the integrated cooker 200 further comprises: a hood assembly 220 connected with the body 210, the flue 2102 communicates with the hood assembly 220, and the grease separation assembly 100 is used to separate the grease in the oil fume flowing to the hood assembly 220.
[0204] In FIG. 66, the arrow e shows the flow direction of the oil fume.
[0205] The integrated cooker 200 further comprises: a grid 140 embedded in the air inlet 2104, and the grid 140 covers the air inlet 1102.
[0206] In this embodiment, the integrated cooker 200 further comprises the hood assembly 220, the hood assembly 220 communicates with the flue 2102, and the hood assembly 220 can generate a power to suck the oil fume to enter the hood assembly 220 through the air inlet 2104 and the flue 2102. The grease separation assembly 100 can separate the oil and water in the oil fume before the oil fume enters the hood assembly 220, so as to avoid the oil and water from eroding and polluting the hood assembly 220.
[0207] It should be noted that, in the claims, the specification and the drawings of the application, the terms "multiple" refers to two or more, unless otherwise specifically defined, the terms "upper", "lower" and the like indicate the orientation or position relationship based on the orientation or position relationship shown in the drawings, only for more convenient description of the application and make the description process more simple, and not for indicating or implying that the device or element must have the described specific orientation, constructed and operated in a particular orientation, therefore these descriptions can not be understood as a limitation of the application; the terms "connection", "installation", "fixed" and the like should be understood broadly, for example, "connection" can be fixed connection between multiple objects, can also be detachable connection between multiple objects, or integrally connected; can be direct connection between multiple objects, can also be indirect connection between multiple objects through intermediate medium. For those skilled in the art, the specific meaning of the above terms in the application can be understood according to the specific circumstances of the above data.
[0208] In the claims, the specification and the drawings of the application, the description of the terms "one embodiment", "some embodiments", "a specific embodiment" and the like means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the application. In the claims, the specification and the drawings of the application, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0209] The above is only the preferred embodiment of the application, and is not used to limit the application. For those skilled in the art, the application can have various modifications and changes. Any modification, equivalent replacement, improvement and the like within the spirit and principle of the application shall be included in the protection scope of the application.
Claims
1. A fat separation assembly, wherein, The oil-fat separation assembly comprises: a frame, which encloses two end faces and at least three side faces, the area of the side faces being greater than that of the end faces, among the at least three side faces, two adjacent side faces are open, one of which forms an air inlet, the other of which forms an air outlet, and the remaining side faces are closed to form a first outer wall, and the two end faces are closed to form a second outer wall, the first outer wall and the second outer wall enclosing a cavity; a filter component, which separates the cavity between the air inlet and the air outlet, or covers at least one of the air inlet and the air outlet.
2. The oil-fat separation assembly according to claim 1, wherein the filter component is flat; the filter component is arranged obliquely relative to the air inlet and the air outlet.
3. The oil-fat separation assembly according to claim 2, wherein an inner surface of the second outer wall comprises a slot, which communicates with the air inlet or the air outlet, and the filter component is inserted into the slot.
4. The oil separation assembly of claim 2 or 3, wherein, the filter component comprises: a first support; a second support connected to the first support; a filter screen clamped between the first support and the second support.
5. The oil separation assembly of any one of claims 1 to 4, wherein, Further comprising: a fixing frame arranged in the frame, the fixing frame avoiding the air inlet and the air outlet, and the filter component is clamped between the fixing frame and the frame.
6. The oil-fat separation assembly according to any one of claims 1 to 5, wherein the filter component is at least partially recessed towards the direction in which the air outlet is located.
7. The oil-fat separation assembly according to any one of claims 1 to 6, wherein the first outer wall adjacent to the air outlet is a bottom wall of the frame; in a direction perpendicular to the bottom wall, the distance between the air outlet and the bottom wall is a first distance; the first distance ranges from greater than or equal to 1 mm to less than or equal to 20 mm.
8. The oil-fat separation assembly according to any one of claims 1 to 7, wherein an inner surface of the second outer wall comprises a groove.
9. The oil-fat separation assembly according to claim 8, wherein the depth of the groove ranges from greater than or equal to 0.5 mm to less than or equal to 6 mm.
10. An integrated cooktop, wherein, The integrated cooker comprises: a body comprising a flue; the oil-fat separation assembly according to any one of claims 1 to 9 is arranged in the flue; a range hood assembly connected to the body, the flue communicating with the range hood assembly, and the oil-fat separation assembly is used to separate oil and fat in oil fume flowing to the range hood assembly.
11. The integrated cooktop of claim 10, wherein, The body further comprises a smoke inlet, and the integrated cooker further comprises: a first limiting component arranged in the flue; when the air outlet is inserted into the smoke inlet in a first orientation, the first limiting component avoids the oil-fat separation assembly, and the oil-fat separation assembly is located in the flue; when the air outlet is inserted into the smoke inlet in a second orientation, the first limiting component abuts against the oil-fat separation assembly, and part of the oil-fat separation assembly including the air inlet is located outside the smoke inlet.
12. The integrated cooktop of claim 11, wherein, The oil-fat separation assembly further comprises: a second limiting component arranged on the periphery of the frame. The first limiting component is located outside the movement track of the second limiting component when the air outlet is inserted into the smoke inlet in the first orientation. The first limiting component is located inside the movement track of the second limiting component when the air outlet is inserted into the smoke inlet in the second orientation.
13. The integrated cooker of claim 12, wherein One of the first limiting component and the second limiting component is a first blocking rib, and the other is a notch; The first blocking rib is inserted into the notch when the air outlet is inserted into the smoke inlet in the first orientation. The notch faces away from the first blocking rib when the air outlet is inserted into the smoke inlet in the second orientation, and the first blocking rib blocks the frame in the depth direction of the smoke inlet.
14. The integrated cooker of claim 13, wherein The depth of the notch ranges from greater than or equal to 1 mm to less than or equal to 10 mm.
15. The integrated cooker of any one of claims 12 to 14, wherein The first limiting component is a second blocking rib, the second limiting component is a third blocking rib, and the second blocking rib and the third blocking rib extend in different directions; The third blocking rib faces away from the second blocking rib when the air outlet is inserted into the smoke inlet in the first orientation. The second blocking rib blocks the third blocking rib in the depth direction of the smoke inlet when the air outlet is inserted into the smoke inlet in the second orientation.
16. The integrated cooker of any one of claims 12 to 15, wherein The second limiting component is arranged on the outer surface of the second outer wall.
17. The integrated cooktop of any one of claims 11 to 16, wherein, Further comprising: A grid is embedded in the smoke inlet, and the grid covers the air inlet.
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