Integrated stove
By installing a cooling component inside the integrated stove base and using an air guide component to adjust the direction of the cold air, the problem of existing integrated stoves being unable to effectively cool down and escape oil fumes has been solved. This achieves multi-zone cooling and oil fume control, improving the cooking experience.
Patent Information
- Application Number
- CN202110847690.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-07-27
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2041-07-27
AI Technical Summary
Existing integrated stove cooling components cannot effectively cool multiple areas in the kitchen, and cold air blowing out from the upper hood may change the direction of oil fume airflow, affecting human health.
The cooling components are placed in the base below the range hood, and the air guide component is used to adjust the direction of the cold air flow so that the cold air blows out from under the base, preventing the oil fumes from overflowing. The cold air can also be directed to different positions according to different cooking stages.
It effectively cools multiple areas of the kitchen, reduces the impact of cooking fumes on the human body, and improves the cooking experience.
Smart Images

Figure CN115682038B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of kitchen equipment technology, and in particular to an integrated stove. Background Technology
[0002] An integrated cooktop is a multifunctional, integrated kitchen appliance that typically combines a range hood, gas stove, and other functional modules such as a disinfection cabinet and storage cabinet. Integrated cooktops not only offer excellent fume extraction but also save kitchen space due to the high integration of these multiple functional modules, making them widely popular in households, especially suitable for smaller kitchens.
[0003] As we all know, cooking generates a lot of heat, especially in the summer when ambient temperatures are already high. The increased overall temperature in the kitchen leads to a very poor cooking experience. Installing additional cooling equipment such as air conditioners in a small kitchen is impractical for most families. Therefore, the technology of adding cooling components to integrated cooktops has emerged.
[0004] However, most current integrated cooktops with cooling functions are designed to cool the cooking area, meaning the cold air blows directly from the upper hood. This presents several problems: the cold airflow from the upper hood can alter the direction of cooking fumes, causing them to flow downwards or even towards the face, potentially impacting health; there's also a significant temperature difference between the head and abdomen; furthermore, cooling outside the cooking area, such as the food preparation and cleaning areas, is slow and ineffective. All these issues significantly reduce the cook's experience. Summary of the Invention
[0005] The purpose of this application is to provide an integrated stove that solves the technical problems of existing integrated stoves where the refrigeration components cannot cool multiple areas in the kitchen and easily cause oil fumes to overflow.
[0006] The embodiments of this application are implemented as follows: an integrated stove includes a base, a range hood assembly disposed on the upper part of the base, and a cooling assembly for cooling. The base has a first mounting cavity, the cooling assembly is disposed in the first mounting cavity, the base has a cold air vent communicating with the first mounting cavity, and the cold air vent is provided with an air guide assembly for adjusting the air outlet direction.
[0007] In one embodiment, the air guide assembly includes at least one air guide blade, which is movably mounted at the cold air inlet.
[0008] In one embodiment, the air guide vane includes a vane body and a first mounting portion disposed on the vane body, and a first mating portion is provided at the cold air outlet, wherein the first mounting portion is rotatably connected to the first mating portion.
[0009] In one embodiment, the air guide assembly further includes a mounting frame, the mounting frame including a frame body, the outer peripheral surface of the frame body being connected to the inner wall of the cold air outlet, and the first mating part being formed on the inner peripheral surface of the frame body.
[0010] In one embodiment, a pair of mounting walls are formed on the inner circumferential surface of the frame, and the first mating part is formed on the mounting walls.
[0011] In one embodiment, the mounting walls are parallel to each other.
[0012] In one embodiment, the mounting frame further includes a baffle, which is annular and connected to the outer peripheral surface of the frame. The thickness of the baffle is less than the thickness of the frame, and the front end face of the baffle is flush with the front end face of the frame.
[0013] In one embodiment, the outer peripheral surface of the frame abuts against the inner wall surface of the cold air vent, and the outer peripheral surface of the frame is rotatable about the axial direction of the cold air vent.
[0014] In one embodiment, the front end face of the mounting frame is provided with at least one hand lever for rotating the frame.
[0015] In one embodiment, the frame includes a plurality of arc-shaped plates arranged sequentially at intervals along the circumference, and a spring piece disposed between two adjacent arc-shaped plates. A protrusion protruding relative to the outer circumferential surface of the arc-shaped plate is formed on the outer circumferential surface of the spring piece. The base includes a first side plate and a mounting plate disposed opposite to each other, and a first cover plate connected to the front end surface of the first side plate and the mounting plate. The cold air vent is formed on the first cover plate, and the protrusion is disposed on the inner side of the first cover plate.
[0016] In one embodiment, the air guide assembly includes a plurality of air guide blades, and the air guide blades further include a second mounting portion disposed on the blade body; the air guide assembly also includes a connecting rod, the connecting rod including a connecting rod body and a plurality of second mating portions disposed on the connecting rod body; the second mounting portions are rotatably connected to the second mating portions.
[0017] In one embodiment, a plurality of second mating portions are disposed on opposite sides of the connecting rod body;
[0018] The second mating part is a rotating shaft, and the second mounting part is a shaft hole; or, the second mating part is a shaft hole, and the second mounting part is a rotating shaft.
[0019] The integrated stove provided in this application has the following advantages:
[0020] The integrated stove provided in this application embodiment, by placing the refrigeration component in the first mounting cavity of the base below the range hood component and the air guide component at the cold air inlet of the base, allows the cold air from the refrigeration component to blow out from the lower base rather than from the upper range hood component, thus avoiding the problem of oil fumes overflowing downwards due to the downward flow of cold air. Furthermore, the air guide component installed at the cold air inlet can adjust and control the direction of the cold air flow, allowing the cold air to be blown to different positions to meet the needs of the operator at different stages and improve the user experience. Attached Figure Description
[0021] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0022] Figure 1 This is a three-dimensional assembly diagram of the integrated stove provided in the embodiments of this application;
[0023] Figure 2 yes Figure 1 A partial exploded view of the integrated stove shown.
[0024] Figure 3 yes Figure 1 The integrated stove shown is a side cross-sectional view.
[0025] Figure 4 yes Figure 3 Enlarged view of point A in the middle;
[0026] Figure 5 yes Figure 1 A three-dimensional structural diagram of the air guide component in the integrated stove shown.
[0027] Figure 6 yes Figure 1 An exploded 3D view of the air guide component in the integrated stove shown from one angle;
[0028] Figure 7 yes Figure 6 Enlarged view of point B in the middle;
[0029] Figure 8 yes Figure 1 An exploded 3D view of the air guide component in the integrated stove shown from another angle;
[0030] Figure 9 yes Figure 1 Side view of the air guide assembly in the integrated stove shown;
[0031] Figure 10 yes Figure 1The front view of the air guide assembly in the integrated stove shown.
[0032] The markings in the diagram mean:
[0033] 100-Integrated stove;
[0034] 10-Refrigeration assembly, 1011-Compressor, 1012-Condenser, 1013-Evaporator, 1014-Motor, 1015-First impeller, 1016-Second impeller, 103-Baffle plate;
[0035] 11-Air guide assembly;
[0036] 12-Guide blade, 121-Blade body, 122-First mounting part, 123-Second mounting part;
[0037] 13-Mounting frame, 131-Frame body, 1310-Mounting wall, 1311-First mating part, 1312-Hand lever part, 132-Arc plate, 133-Spring piece, 1330-Protrusion, 136-Baffle;
[0038] 14-Connecting rod, 141-Connecting rod body, 142-Second mating part, 1421-Head, 1422-Connecting part, 1420-Notch part;
[0039] 2-Base, 211-First side plate, 212-Second side plate, 214-First mounting cavity, 2141-Hot air cavity, 2142-Cold air cavity, 22-First cover plate, 220-First cold air outlet, 23-Second cover plate, 230-Second cold air outlet;
[0040] 3-Cooktop body; 4-Fume hood assembly; 40-Air duct; 41-Fume hood head; 42-Fume hood body; 9-Functional module. Detailed Implementation
[0041] To make the objectives, technical solutions, and advantages of this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the scope of this application.
[0042] It should be noted that when a component is referred to as "fixed to" or "set on" another component, it can be directly or indirectly attached to that other component. When a component is referred to as "connected to" another component, it can be directly or indirectly connected to that other component. The terms "upper," "lower," "left," "right," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings or based on orientation or positional relationships under specific circumstances, are used only for ease of description and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this patent. The terms "first" and "second" are used only for ease of description and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features. "A plurality" means two or more, unless otherwise explicitly defined.
[0043] Please see Figure 1 and Figure 2 This application provides an integrated stove 100, which includes a base 2, a cooling component 10, and an air guide component 11. The base 2 has a first mounting cavity 214, and a cold air vent communicating with the first mounting cavity 214. The cooling component 10 is disposed within the first mounting cavity 214 and is used to generate cold air, which is blown out from the cold air vent to cool the kitchen environment. Figure 1 and Figure 2 As shown, the air guide assembly 11 is installed at the cold air outlet.
[0044] like Figures 1 to 3 As shown, the integrated stove 100 also includes a stove body 3 located above and connected to the base 2. Furthermore, it includes a range hood assembly 4 connected to the base 2 and located above or to the side of the stove body 3. The range hood assembly 4 includes a range hood head 41 and a range hood body 42 connected to each other, such as... Figure 3 As shown, the base 2 is provided with a portion of the air duct 40, and the fume hood assembly is also provided with a portion of the air duct 40. The oil fumes drawn by the fume hood head 41 are discharged outdoors through the fume hood body 42 and the base 2.
[0045] The integrated stove 100 provided in this application embodiment has a refrigeration component 10 disposed in the first mounting cavity 214 of the base 2 below the range hood component 4, and an air guide component 11 disposed at the cold air inlet of the base 2. This allows the cold air from the refrigeration component 10 to be blown out from the base 2 below the stove body 3, rather than from the range hood component 4 above, thus avoiding the problem of oil fumes overflowing downwards due to the downward flow of cold air. The air guide component 11 can adjust and control the direction of the cold air flow, allowing the cold air to be blown to different positions to meet the needs of the operator at different stages. For example, when preparing food, the air guide component 11 can be adjusted to blow the cold air towards the food preparation area; when washing, the air guide component 11 can be adjusted to blow the cold air towards the washing area; and when cooking, the air guide component 11 can be adjusted to blow the cold air upwards towards the human body and the cooking area. Furthermore, the direction of the cold air at this time is generally upwards, which can also push the oil fumes upwards, reducing the impact of oil fumes on the human body and significantly improving the user experience.
[0046] Understandably, in practical applications, this integrated stove 100 typically has a specific usage orientation, such as... Figure 1 As shown, the direction facing a person is front, the direction away from a person is back, the direction facing the ground is down, the direction away from the ground is up, the side corresponding to a person's left hand is left, and the side corresponding to a person's right hand is right. The above and following descriptions use these orientations of "up," "down," "left," "right," "front," and "back" as examples. Furthermore, it can be understood that in non-actual use, the integrated stove 100 or some of its components may have other orientations, but this will not affect the characteristics and relative relationships of the various components of the integrated stove 100.
[0047] See also Figure 3 In one embodiment, the refrigeration assembly 10 includes a compressor 1011, a condenser 1012, an evaporator 1013, a first impeller 1015, a second impeller 1016, a motor 1014, and a partition plate 103. The partition plate 103 is disposed in a first mounting cavity 214 and divides the first mounting cavity 214 into a cold air cavity 2142 and a hot air cavity 2141. The evaporator 1013 and the second impeller 1016 are located in the cold air cavity 2142, and the condenser 1012 and the first impeller 1015 are located in the hot air cavity 2141. The motor 1014 is connected to the first impeller 1015 and the second impeller 1016 to drive the first impeller 1015 and the second impeller 1016 to rotate. The exhaust port of the evaporator 1013 is connected to the suction port of the compressor 1011, and the inlet port of the condenser 1012 is connected to the exhaust port of the compressor 1011.
[0048] Please refer to the following: Figures 1 to 3In one embodiment of this application, the base 2 includes a first side plate 211 and a mounting plate (not shown) disposed opposite to each other, and a first cover plate 22 connected to the front end surfaces of the first side plate 211 and the mounting plate, wherein the first side plate 211, the mounting plate and the first cover plate 22 enclose and define a first mounting cavity 214. A cold air vent is formed on the first cover plate 22.
[0049] Optionally, the first cover plate 22 is detachably connected to the front end face of the first side plate 211 and the mounting plate. The purpose of this arrangement is to allow the first mounting cavity 214 to be opened by removing the first cover plate 22, thereby facilitating maintenance and other operations on the internal cooling components 10, etc.
[0050] The detachable connection between the first cover plate 22 and the front end face of the first side plate 211 and the mounting plate is not limited, and can be in the form of screw connection, snap-fit connection, etc., which will not be described in detail here.
[0051] In one embodiment, such as Figure 1 , Figure 2 and Figure 4 As shown, the base 2 also includes a second cover plate 23, which is disposed on the front surface of the first cover plate 22. The first cover plate 22 mainly serves to close the first mounting cavity 214, while the second cover plate 23 mainly serves a decorative function. The second cover plate 23 and the first cover plate 22 are detachably connected, such as by one or more of the following: pin-type connection, magnetic connection, and hook-type connection.
[0052] Correspondingly, the cold air vents include a first cold air vent 220 formed on the first cover plate 22 and a second cold air vent 230 formed on the second cover plate 23, such as Figure 2 As shown.
[0053] In addition, such as Figure 1 and Figure 2 As shown, the base 2 also includes a second side plate 212, which is disposed on the side of the mounting plate 213 opposite to the first side plate 211, forming a second mounting cavity between the second side plate 212 and the mounting plate 213. This second mounting cavity is used to mount at least one functional module 9, such as... Figure 1 As shown. Functional module 9 includes, but is not limited to, drawers, dishwashers, sterilizers, ovens, and steamers.
[0054] like Figure 5 , Figure 6 , Figure 8 and Figure 9 As shown, the air guide assembly 11 includes at least one air guide blade 12, which is movably mounted at the cold air inlet. Since the air guide blade 12 is movably mounted at the cold air inlet, the airflow direction of the cold air inlet can be adjusted by changing the air guide blade 12, such as changing its angle or direction.
[0055] Please see Figure 6 and Figure 8 In one embodiment, the guide vane 12 includes a vane body 121 and two opposing first mounting portions 122 disposed on the vane body 121. A first mating portion 1311 is provided at the cold air inlet, and the first mounting portions 122 are rotatably connected to the first mating portions 1311. Thus, the guide vane 12 can rotate on the inner wall of the cold air inlet, thereby adjusting the direction of the cold air flow. Optionally, the first mounting portions 122 are disposed on opposite sides of the vane body 121. Of course, in other optional embodiments, the number of first mounting portions 122 can be other than a certain number, and their form is not limited, as long as the vane body 121 can rotate.
[0056] It is understandable that the line connecting the two first mounting portions 122 on the blade body 121 is parallel to the central axis of each first mounting portion 122, thus ensuring that the two first mounting portions 122 rotate simultaneously. For example, when the two first mounting portions 122 are located on the left and right sides of the blade body 121, the blade body 121 can swing in the vertical direction; when the two first mounting portions 122 are located on the upper and lower sides of the blade body 121, the blade body 121 can swing in the horizontal direction. Adjustments in other directions are similar and will not be described in detail.
[0057] The first mounting portion 122 can be a rotating shaft, and the first mating portion 1311 can be a shaft hole that can accommodate the rotating shaft; or, conversely, the first mounting portion 122 can be a shaft hole, and the first mating portion 1311 can be a rotating shaft. The shaft hole can specifically be a through hole, a blind hole, or a through hole or blind hole with a notch formed on the side wall, etc.
[0058] In one specific embodiment of this application, such as Figure 6 and Figure 8 As shown, the first mounting part 122 is a rotating shaft, and the first mating part 1311 is a shaft hole, specifically a through hole with a notch formed on the side wall.
[0059] like Figures 5 to 8 As shown, the number of air guide blades 12 in the air guide assembly 11 can be multiple. Please refer to the relevant documentation. Figure 9 As shown, the rotational axes of the multiple guide vanes 12 are parallel to each other. Thus, the multiple guide vanes 12 guide the cold air in layers, which improves the guiding effect. Furthermore, each guide vane 12 is independently rotatable. As a result, the oscillation of each guide vane 12 does not affect the others. For example, when it is necessary to temporarily reduce the cold air volume, at least one guide vane 12 can be oscillated and roughly placed against the cold air inlet, thus closing the airflow. When it is necessary to increase the cold air volume again, the closed guide vane 12 can be oscillated and opened.
[0060] Of course, in other alternative embodiments, the number of air guide vanes 12 can also be one. The specific setting depends on actual needs and the size of the air vent.
[0061] Please continue reading. Figure 6 and Figure 8 In one embodiment, the air guide assembly 11 further includes a mounting frame 13, which includes a frame body 131. The frame body 131 is annular, corresponding to the shape of the cold air outlet. The outer peripheral surface of the frame body 131 is connected to the inner wall of the cold air outlet, and the first mounting portion 122 of the air guide blade 12 is connected to the inner peripheral surface of the frame body 131. Thus, the first mounting portion 122 is connected to the inner wall of the cold air outlet through the frame body 131. The purpose of this arrangement is to reduce the structural complexity of the first cover plate 22 and reduce its manufacturing cost by using a mounting frame 13 to connect the blade body 121 and the cold air outlet. The mounting frame 13 is manufactured as a structural component independent of the first cover plate 22, and the structure of the first mating portion 1311 can be specifically formed according to actual needs, with the main purpose of ensuring that the air guide blade 12 can be reliably and conveniently connected to the mounting frame 13 without excessive consideration of manufacturing difficulty.
[0062] Among them, such as Figure 6 and Figure 8 As shown, a pair of mounting walls 1310 are formed on the inner circumferential surface of the frame 131, and each first mating part 1311 is formed on the mounting wall 1310. This makes it easier to form the first mating part 1311.
[0063] Optionally, the two mounting walls 1310 can be parallel to each other, so that the length of the blade body 121 of each guide vane 12 can be consistent, which also facilitates the mass production and installation of the guide vanes 12. Of course, this is not the only option; in other optional embodiments, the mounting walls 1310 can also be non-parallel, which can be set according to the specific needs.
[0064] Please continue reading. Figure 6 and Figure 8 In one embodiment, the mounting frame 13 further includes a baffle 136, which is annular and connected to the outer peripheral surface of the frame 131. The thickness (axially) of the baffle 136 is less than the thickness of the frame 131, and the front end face of the baffle 136 is flush with the front end face of the frame 131. The outer diameter of the baffle 136 is larger than the outer diameter of the cold air vent. When the frame 131 is installed inside the cold air vent, the portion of the outer peripheral surface of the frame 131 not connected to the baffle 136 is used to connect with the inner wall of the cold air vent, while the baffle 136 can be covered by the second cover plate 23. The purpose of this arrangement is twofold: first, the edge of the cold air vent is covered, which improves the appearance of the base 2; second, it prevents the frame 131 from extending too far into the cold air vent and becoming impossible to remove.
[0065] Please see Figure 6 , Figure 8 and Figure 9 In one embodiment, the air guide blade 12 further includes a second mounting portion 123 disposed on the blade body 121, the second mounting portion 123 being optionally located between two first mounting portions 122; the air guide assembly 11 further includes a connecting rod 14, the connecting rod 14 including a connecting rod body 141 and a plurality of second mating portions 142 disposed on the connecting rod body 141, the second mounting portion 123 being rotatably connected to the second mating portions 142, and the rotation center axis of the second mounting portion 123 being parallel to the rotation center axis of the first mounting portion 122. That is, each blade body 121 is rotatably connected to the frame 131 through the first mounting portion 122 and rotatably connected to the connecting rod body 141 through the second mounting portion 123, the connecting rod 14 actually serves to connect and fix the plurality of blade bodies 121. The purpose of this design is twofold: first, to prevent deformation of the middle part of the blade body 121 due to prolonged suspension; second, if a blade body 121 detaches from the frame 131 due to poor connection between the first mounting part 122 and the first mating part 1311, the connection between the second mounting part 123 and the connecting rod body 141 can prevent the guide blade 12 from falling directly to the ground or into the base 2, which further facilitates the maintenance of the guide blade 12.
[0066] In one optional embodiment, the second mounting portion 123 is located in the middle of the blade body 121, or in other words, the distance between the second mounting portion 123 and the two first mounting portions 122 is approximately equal.
[0067] Please see Figure 8 and Figure 9 As shown, in this embodiment, there are four guide vanes 12, which are arranged sequentially in the vertical direction. Wherein, as... Figure 8 As shown, the lowest blade body 121 is generally elliptical in shape, with a convex lower edge designed to align with the lower edge of the air vent. The other three blade bodies 121 have concave lower edges to prevent interference with the connecting rod body 141 during rotation. The concave edges do not collide with the connecting rod body 141 during rotation, thus maximizing the swing angle of these three blade bodies 121, which can actually exceed 90°. Furthermore, the upper edges of all four blade bodies 121 are convex. The upper edge of the highest blade body 121 aligns with the upper edge of the air vent, while the upper edges of the other three blade bodies 121 align with the lower edges of their adjacent blade bodies 121. In this way, when all blade bodies 121 are in the closed state and attached to the air vent, they can cover the air vent with maximum area, reducing the possibility of external dust and foreign objects entering the air vent.
[0068] The second mounting portion 123 can be a rotating shaft, and the second mating portion 142 can be a shaft hole that can accommodate the rotating shaft; or, conversely, the second mounting portion 123 can be a shaft hole, and the second mating portion 142 can be a rotating shaft. The shaft hole can specifically be a through hole, a blind hole, or a through hole or blind hole with a notch formed on the side wall, etc.
[0069] In this embodiment, as Figure 6 , Figure 8 and Figure 10 As shown, the second mounting part 123 is a shaft hole, specifically a through hole; the first mating part 1311 is a rotating shaft. This will be used as an example for detailed explanation below. It is understood that the shaft hole is specifically achieved through a convex structure provided on the surface of the blade body 121.
[0070] Please refer to the following: Figure 7 The second mating part 142 is a rotating shaft, which includes a connecting part 1422 and a head 1421 that are axially connected to each other. The connecting part 1422 is connected between the head 1421 and the connecting rod body 141. The outer diameter of the head 1421 is larger than the outer diameter of the connecting part 1422, and the inner diameter of the shaft hole is greater than or equal to the outer diameter of the connecting part 1422 and smaller than the outer diameter of the head 1421. The purpose of this arrangement is that after the head 1421 passes through the shaft hole, it is blocked outside the shaft hole and cannot automatically disengage from the shaft hole. In this way, the reliability of the mating connection between the second mating part 142 and the second mounting is improved.
[0071] In one embodiment, the head 1421 is assembled through the shaft hole as follows: Figure 7 As shown, the free end of the shaft (the end of the head 1421 away from the connecting portion 1422) has a notch 1420 extending through the outer peripheral surfaces on both sides. The depth of the notch 1420 extending axially can be equal to or greater than the axial length of the head 1421. The notch 1420 provides at least a certain degree of elasticity to the head 1421.
[0072] The specific steps for assembling the shaft are as follows: Press the head 1421 to deform it radially, allowing it to pass through the shaft hole. After passing through, the head 1421 is released and returns to its original position, thus confining it to the outside of the shaft hole and preventing it from coming out. The steps for disassembling the shaft are as follows: Manually press the head 1421 to deform it radially, allowing it to be pulled out of the shaft hole.
[0073] Please refer to the following. Figures 6 to 8In one embodiment, at least one pivot extends from the link body 141 in the opposite direction to the other pivots extending from the link body 141; in other words, multiple pivots are respectively located on opposite sides of the link body 141. For example, at least one pivot extends to the right from the link body 141, while at least another pivot extends to the left from the link body 141. Figure 10 As shown. The reason for this arrangement is that, in order to facilitate the rotation of the connecting part 1422 in the shaft hole, the axial length of the connecting part 1422 is usually set to be greater than the axial length of the shaft hole. Therefore, notches 1420 may be formed between the connecting rod body 141 and the second mounting part 123, as well as between the head 1421 and the second mounting part 123. If the connecting rod body 141 is located on the same side of the second mounting part 123, it may cause the connecting rod 14 to tilt, which may affect the oscillation of the blade body 121.
[0074] In this application, multiple second mounting portions 123 are located on both sides of the connecting rod body 141 along with multiple second mating portions 142. Different blade bodies 121 abut against the connecting rod body 141 from both sides, which helps the connecting rod 141 maintain its direction and thus ensures the smooth swing of each blade body 121. Similarly, when the second mounting portion 123 is a rotating shaft and the second mating portion 142 is a shaft hole, multiple shaft holes can also be located on both sides of the connecting rod body 141. Further details are omitted here.
[0075] In one optional embodiment, the outer peripheral surface of the frame 131 abuts against the inner wall surface of the cold air inlet, and the outer peripheral surface of the frame 131 can slide along the inner wall surface of the cold air inlet, that is, the frame 131 can rotate about the axial direction of the cold air inlet. In other words, if a tangential force is applied to the mounting frame 13, the frame 131 can be pushed to rotate along the edge of the cold air inlet (the edge profile of the cold air inlet is circular), further adjusting the airflow direction of the guide vanes 12. For example, in some cases, the frame 131 can be pushed to rotate, causing the guide vanes 12 to swing vertically; in other cases, the frame 131 can be pushed to rotate 90°, causing the guide vanes 12 to swing horizontally; and in still other cases, the frame 131 can be rotated 45°, causing the guide vanes 12 to swing obliquely. Adjustments in other directions are similar and will not be described further.
[0076] In one embodiment, the front end face of the mounting frame 13 is provided with a lever 1312 for an operator to apply force to the frame 131 and rotate it axially around the air vent. The lever 1312 can be one or more of a protrusion, a groove, or a pull cord. The lever 1312 is used by the operator to apply force to the mounting frame 13 to push the mounting frame 13 to rotate. For example, when there is only one lever 1312, the lever 1312 can be a protrusion, a groove, or a pull cord; when there are multiple levers 1312, the multiple levers 1312 can all be protrusions, all be grooves, all be pull cords, or can be a combination of at least two of protrusions, grooves, and pull cords.
[0077] For example Figure 5 , Figure 6 , Figure 8 and Figure 10 As shown, in this embodiment, the hand-operated part 1312 is a protrusion, specifically in the form of a three-dimensional paddle that protrudes forward. However, it is not limited to this; the protrusion can also be columnar, ring-shaped, or any other form that can be easily flicked and force applied by the human finger, and is not particularly limited here.
[0078] Please see Figure 8 In one embodiment, the frame 131 includes a plurality of arc-shaped plates 132 arranged sequentially at intervals along the circumference, and a spring piece 133 disposed between two adjacent arc-shaped plates 132. Figure 9 As shown, a protrusion 1330 protruding from the outer peripheral surface of the spring piece 133 is formed on the side away from the baffle 136, relative to the outer peripheral surface of the arc-shaped plate 132. The protrusion 1330 is located inside the first cover plate 22. Please refer to the reference. Figure 4 As shown. Thus, the area on the outer periphery of the arc plate 132, excluding the protrusion 1330, is used to slide against the inner wall of the cold air vent. The protrusion 1330 abuts against the inner side of the first cover plate 22, thereby restricting the mounting frame 13 in the front-back direction and making it difficult for the mounting frame 13 to detach from the cold air vent.
[0079] Specifically, in this embodiment, such as Figure 8 As shown, a spring clip 133 is provided between every two adjacent curved plates 132. Of course, this is not the only option; in other alternative embodiments, a spring clip 133 may not be provided between two adjacent curved plates 132, and other structures may be provided as needed.
[0080] In this embodiment, the elasticity of the spring 133 is provided as follows: the circumferential sidewall of the arc-shaped plate 132 and the circumferential sidewall of the spring 133 are independent and separate on the side away from the baffle 136 (rear side). Thus, the rear portion of the spring 133 can bend upwards and downwards under force, and automatically return to its original position when no force is applied. Of course, this is not the only possible embodiment; in other alternative embodiments, the spring 133 can have other configurations, such as using a torsion spring to provide elasticity, which will not be elaborated further.
[0081] To facilitate the manufacture of the mounting frame 13 and ensure the elasticity of the spring 133, the mounting frame 13 is a plastic part, manufactured by injection molding or other methods. For example, the mounting frame 13 can be a PVC (Polyvinyl chloride) part, etc., which is only an example and is not specifically limited.
[0082] like Figure 9 As shown, in an optional embodiment, the rear side of the convex bulge 1330 is sloped, and the front side may also be sloped. The purpose of this design is not only to facilitate the complete punching of the convex bulge 1330 and reduce the manufacturing difficulty of the convex bulge 1330, but also to facilitate the assembly and disassembly of the convex bulge 1330 and the first cover plate 22.
[0083] Specifically, in this embodiment, the mounting frame 13 is installed and removed as follows:
[0084] During installation, the rear side of the protrusion 1330 faces the cold air vent, and each protrusion 1330 is aligned with the edge of the cold air vent. A rearward force is applied to the mounting frame 13. Since the rear side of the protrusion 1330 is sloping and the spring piece 133 is elastic, the protrusion 1330 is squeezed and deformed inward by the inner wall of the cold air vent. Then, the protrusion 1330 can pass through the cold air vent backward. After the protrusion 1330 is completely inside the first cover plate 22, the squeezing of the protrusion 1330 by the inner wall of the cold air vent is released, the spring piece 133 returns to its original position, and the protrusion 1330 abuts against the inner side of the first cover plate 22 to form a limit. The mounting frame 13 is then installed.
[0085] During disassembly, swing the blade body 121 by hand to open it. Insert your finger into the cold air inlet through the opening of the air guide blade 12. Apply a downward force to one of the spring pieces 133 to move the protrusion 1330 inward. Apply an outward pulling force to the mounting frame 13 to make the spring piece 133 at least partially move out of the cold air inlet. Continue to apply an outward pulling force or apply force to another spring piece 133 until all the spring pieces 133 are moved out of the cold air inlet. The disassembly of the mounting frame 13 from the cold air inlet is then complete.
[0086] The above description is merely a preferred embodiment of this application and is not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.
Claims
1. An integrated cooktop, comprising a base, a fume hood assembly disposed on the upper part of the base, and a refrigeration assembly for cooling, characterized in that, The base has a first mounting cavity, the refrigeration component is located in the first mounting cavity, the base has a cold air vent communicating with the first mounting cavity, and the cold air vent is provided with an air guide component for adjusting the air outlet direction. The base includes a first side plate and a mounting plate disposed opposite to each other, and a first cover plate connected to the front end face of the first side plate and the mounting plate, wherein the cold air vent is formed on the first cover plate; The base and the fume hood assembly are provided with interconnected air ducts, and the air ducts are located on the rear side of the cooling assembly. The base also includes a second side plate, which is disposed on the side of the mounting plate opposite to the first side plate. A second mounting cavity is formed between the second side plate and the mounting plate. The second mounting cavity is used to install at least one functional module.
2. The integrated stove as described in claim 1, characterized in that, The air guide assembly includes at least one air guide blade, which is movably mounted at the cold air inlet.
3. The integrated stove as described in claim 2, characterized in that, The air guide blade includes a blade body and a first mounting part disposed on the blade body. A first mating part is provided at the cold air outlet, and the first mounting part is rotatably connected to the first mating part.
4. The integrated stove as described in claim 3, characterized in that, The air guide assembly further includes a mounting frame, which includes a frame body. The outer peripheral surface of the frame body is connected to the inner wall of the cold air outlet, and the first mating part is formed on the inner peripheral surface of the frame body.
5. The integrated stove as described in claim 4, characterized in that, A pair of mounting walls are formed on the inner circumferential surface of the frame, and the first mating part is formed on the mounting walls.
6. The integrated stove as described in claim 5, characterized in that, The mounting walls are parallel to each other.
7. The integrated stove as described in claim 4, characterized in that, The mounting frame also includes a baffle, which is annular and connected to the outer periphery of the frame. The thickness of the baffle is less than the thickness of the frame, and the front end face of the baffle is flush with the front end face of the frame.
8. The integrated stove as described in claim 4, characterized in that, The outer peripheral surface of the frame abuts against the inner wall surface of the cold air vent, and the outer peripheral surface of the frame can rotate around the axial direction of the cold air vent.
9. The integrated stove as described in claim 8, characterized in that, The front end face of the mounting frame is provided with at least one hand lever for rotating the frame.
10. The integrated stove as described in claim 4, characterized in that, The frame includes a plurality of arc-shaped plates arranged sequentially at intervals along the circumference, and a spring piece disposed between two adjacent arc-shaped plates. A protrusion protruding relative to the outer circumferential surface of the arc-shaped plate is formed on the outer circumferential surface of the spring piece, and the protrusion is disposed on the inner side of the first cover plate.
11. The integrated stove as described in claim 3, characterized in that, The air guide assembly includes a plurality of air guide blades, and the air guide blades further include a second mounting portion disposed on the blade body; the air guide assembly also includes a connecting rod, the connecting rod including a connecting rod body and a plurality of second mating portions disposed on the connecting rod body; the second mounting portion is rotatably connected to the second mating portion.
12. The integrated stove as described in claim 11, characterized in that, Multiple second mating parts are provided on opposite sides of the connecting rod body; The second mating part is a rotating shaft, and the second mounting part is a shaft hole; or, the second mating part is a shaft hole, and the second mounting part is a rotating shaft.
Citation Information
Patent Citations
Duct air conditioner air outlet structure and duct air conditioner
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