An air fryer with a rotating assembly
Patent Information
- Application Number
- CN202611019515.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2025-09-26
- Filing Date
- 2026-07-09
- Publication Date
- 2026-08-21
AI Technical Summary
而盖住式结构将加热组件集成于盖体内,虽能形成封闭的加热腔体,提高热效率,但往往导致盖体内部结构拥挤,空间利用率低
本发明提供的一种带有旋转组件的空气炸锅,包括主机盖体,顶部设有操控面板,中部设有热风组件,底部设有防护罩;主锅体,采用玻璃锅体,主锅体的顶部是开口的,供主机盖体可拆卸地装配在主锅体上;底座,可拆地设置在主锅体的底部;其特征在于:另有一第二锅体,采用套体结构,可拆卸地设置在所述主锅体与所述主机盖体之间;所述主锅体内设有可转动的旋转组件,所述第二锅体的外壁上设有输出组件,所述输出组件通过传动组件连接和带动所述旋转组件旋转。
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Figure CN122604238A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of air fryer technology, and in particular to an air fryer with a rotating component. Background Technology
[0002] An air fryer is a cooking appliance that primarily uses rapidly circulating hot air to heat and bake food. It mainly uses air instead of the hot oil in a frying pan to cook the food; at the same time, the hot air also blows away the surface moisture of the food, giving it a similar effect to deep-frying. It can also be understood as using high-temperature air as a medium to cook food.
[0003] Air fryers on the market are mainly divided into two categories based on the layout of the heating element and the pot: freestanding and covered. Freestanding designs typically have the heating element independently mounted, and the transparent pot only allows viewers to see the food cooking from the front. Covered designs integrate the heating element into the lid, creating a closed heating chamber and improving thermal efficiency, but often resulting in a cramped internal structure and low space utilization. Furthermore, this type of design usually makes it difficult to visually observe the overall cooking process of the food. However, existing air fryer designs have a flaw: they cannot flexibly adjust whether to use the rotating component according to user needs, making it difficult to ensure even heating of food through automatic tumbling during cooking.
[0004] Furthermore, existing motors are usually built into the heating chamber, and the high-temperature oil and water vapor generated during cooking can easily penetrate the motor, shortening its lifespan. In addition, oil and water vapor droplets tend to accumulate in the motor mounting area, making them difficult to drain and potentially leading to bacterial growth or corrosion.
[0005] In addition, existing air fryers lack effective clamping and fixing of food in scenarios where automatic tumbling is required to achieve even heating. This causes food to easily shift, collide, or even break during high-speed rotation, affecting the uniformity of heating and limiting its applicability to sheet-like, easily scattered, or irregularly shaped food.
[0006] In view of this, the present invention is hereby proposed. Summary of the Invention
[0007] To address the aforementioned technical problems, the present invention aims to provide an air fryer with a rotating component. The preferred technical solutions among the various technical solutions provided by the present invention and their numerous technical effects are detailed below.
[0008] To achieve the above objectives, the present invention provides the following technical solution:
[0009] This invention provides an air fryer with a rotating component, comprising a main body cover, a control panel on the top, a hot air component in the middle, and a protective cover at the bottom; a main pot body, made of glass, with an open top for detachable assembly of the main body cover; and a base detachably disposed at the bottom of the main pot body; characterized in that: a second pot body, employing a sleeve structure, is detachably disposed between the main pot body and the main body cover; the main pot body contains a rotatable rotating component, and the outer wall of the second pot body contains an output component, the output component being connected to and driving the rotating component to rotate via a transmission component.
[0010] Preferably, the second pot body is composed of a hollow shell, with reinforcing ribs and connecting columns connecting the inner shell and the outer shell. An annular seal is fixed to the top of the shell, and the output assembly is fixed to the outer wall of the shell. The output assembly includes an output motor and a lower coupler. An upper coupler is provided at the bottom of the outer wall of the corresponding main unit cover. The lower coupler and the upper coupler cooperate to form an electrical connection to realize the power transmission to the output motor.
[0011] Preferably, the rotating assembly includes a roller, and the center of the left and right end caps of the roller is provided with a through hole. The rotating shaft passes through the through hole and is fixed to realize the mutual linkage between the rotating shaft and the roller. The two sides of the rotating shaft are inserted and fixed with roasting forks as needed. The inner wall of the main pot body is provided with a positioning groove, and the positioning groove forms a protrusion. The rotating shaft is rotatably disposed in the positioning groove.
[0012] Preferably, the inner wall of the second pot body is provided with a positioning port, which corresponds to the positioning groove to form a protrusion that matches it, so as to achieve a snap-fit fixation and limit the rotation shaft.
[0013] Preferably, the transmission assembly includes a driving gear and a driven gear. The outer wall of the second pot body is provided with a through hole. Correspondingly, the output assembly has an output motor. The output end of the output motor passes through the through hole and is fixed with the driving gear to realize the output motor output. One end of the rotating shaft is fitted with the driven gear. The driven gear meshes with the driving gear to realize power transmission. The rotating shaft drives the rotating assembly to rotate.
[0014] Preferably, the bottom edge of the second pot body is provided with an annular positioning groove, which cooperates with the top of the main pot body to achieve a sleeve connection; the second pot body has a heat insulation ring, which is lined on the inner wall of the sleeve structure, and the upper opening and lower opening of the heat insulation ring have upper edges and lower edges respectively, and the lower edge is provided with fixing pieces that match and connect with the sleeve structure; the second pot body is provided with handrails on both sides.
[0015] Preferably, a mounting box is provided on the outer wall of the second pot body, and the output motor is disposed in the mounting box; a first mounting base is provided on the mounting box, and the lower coupler is disposed on the first mounting base; the upper coupler is disposed on the main unit cover, and the upper coupler is provided with a live contact groove, the opening end of the live contact groove is provided with waterproof and dustproof silicone, and the waterproof and dustproof silicone has an elastic slit for the conductive pin to enter the live contact groove; the lower coupler is provided with a conductive pin; when the main unit cover is fastened to the second pot body, the upper coupler is inserted into the first mounting base and abuts against the inner wall surface of the first mounting base. At this time, the live contact groove and the conductive pin are connected and conductive, and the output motor is in a powered-on state; when the main unit cover is separated from the second pot body, the live contact groove is disengaged from the conductive pin, and the output motor is in a powered-off state.
[0016] Preferably, a movable ring is provided on the bottom surface of the main unit cover, and multiple return springs are provided between the movable ring and the main unit cover. A trigger rod is provided on the movable ring, and a micro switch is provided on the main unit cover. The trigger point of the micro switch is located on the movement path of the trigger rod. When the main unit cover is fastened to the second pot body, the movable ring abuts against the second pot body, causing the movable ring to move towards the main unit cover to compress the return springs. The movable ring pushes the trigger rod to abut against the trigger point of the micro switch, causing the micro switch to turn on. The energized contact groove is connected to the conductive pin, and the output motor is in a powered-on state. When the main unit cover is lifted, the return spring returns to its original position and moves the movable ring away from the main unit cover, causing the movable ring to drive the trigger rod to disengage from the micro switch. The micro switch is turned off, the energized contact groove disengages from the conductive pin, and the output motor is in a de-energized state.
[0017] Preferably, the bottom of the first mounting base has multiple drainage grooves on the side near the second pot body to connect the first mounting base and the mounting box; the bottom of the mounting box has multiple drainage holes to connect the mounting box and the outside.
[0018] Preferably, the rotating assembly is disc-shaped or basket-shaped, with both ends of the rotating assembly rotatably connected to the main pot body via rotating shafts, and one of the rotating shafts being drively connected to the output end of the output assembly. When the rotating assembly is disc-shaped, it includes a baking tray base and a baking tray lid. The baking tray lid is connected to the baking tray base via a height adjustment assembly, and a receiving space is formed between the baking tray base and the baking tray lid. The height adjustment assembly is used to adjust the relative position of the baking tray lid and the baking tray base, thereby adjusting the size of the receiving space. The height adjustment assembly includes a first positioning member and a second positioning member disposed opposite to each other on opposite side plates of the baking tray base. At least one of the first positioning member and the second positioning member has elastic deformation capability. The first positioning member has a plurality of first positioning grooves spaced apart along the vertical direction, and the second positioning member has a plurality of second positioning grooves spaced apart along the vertical direction. The baking tray lid engages with the first positioning grooves and the second positioning grooves located at the same height to fix the relative position of the baking tray lid and the baking tray base.
[0019] Preferably, it also includes a silicone component. The base is provided with a plurality of support sleeves, and the silicone component is disposed inside the support sleeves. The top of the silicone component is adsorbed and connected to the main pot body, and the bottom of the silicone component and the bottom of the support sleeve are in contact with the placement surface. There is a gap between the inner wall surface of the base and the outer wall surface of the main pot body.
[0020] The preferred technical solution of the present invention can also produce at least the following technical effects: This invention provides an air fryer with a rotating component, comprising a main body cover, a control panel on the top, a hot air component in the middle, and a protective cover at the bottom; a main pot body, made of glass, with an open top for detachable assembly of the main body cover; and a base detachably disposed at the bottom of the main pot body; characterized in that: a second pot body, employing a sleeve structure, is detachably disposed between the main pot body and the main body cover; the main pot body contains a rotatable rotating component, and the outer wall of the second pot body contains an output component, the output component being connected to and driving the rotating component to rotate via a transmission component.
[0021] By detachably installing a second pot between the main pot and the main unit cover, and placing the output component on the outer wall of the second pot, the output component drives the rotating component to rotate via a transmission component, ensuring that the food placed inside the rotating component is heated evenly. Furthermore, the design of the second pot allows the air fryer to have two operating modes, suitable for cooking different ingredients, resulting in a more rational overall structure and simpler operation. Attached Figure Description
[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0023] Figure 1 This is a schematic diagram of the structure of the first air fryer with a rotating component provided by the present invention; Figure 2 This is a schematic diagram of the main body cover and main pot body of the first type of air fryer with a rotating component provided by the present invention in an assembled state. Figure 3 This is an exploded structural diagram of the first rotating component of the first type of air fryer with a rotating component provided by the present invention; Figure 4 This is a cross-sectional view of the first type of air fryer with a rotating component provided by the present invention; Figure 5 This is a schematic diagram of the exploded structure of the first type of air fryer with a rotating component provided by the present invention; Figure 6 This is another exploded structural diagram of the first type of air fryer with a rotating component provided by the present invention; Figure 7 This is another exploded structural diagram of the first type of air fryer with a rotating component provided by the present invention; Figure 8 This is a schematic diagram of the main pot and the second pot of the first type of air fryer with a rotating component provided by the present invention. Figure 9 This is a schematic diagram of the structure of the second pot body of the first type of air fryer with a rotating component provided by the present invention; Figure 10 This is a schematic diagram of the structure of the second type of air fryer with a rotating component provided by the present invention; Figure 11 yes Figure 10 Top view; Figure 12 yes Figure 11 A cross-sectional view along the AA direction; Figure 13 yes Figure 11 A cross-sectional view along the BB direction; Figure 14 yes Figure 11 A cross-sectional view along the CC direction; Figure 15 This is a cross-sectional view of the second pot body of an air fryer with a rotating component provided by the present invention, in a separated state from the first and second sealing gaskets. Figure 16 yes Figure 15 A magnified view of part D; Figure 17 This is a schematic diagram of the structure of a second rotating component of an air fryer with a rotating assembly provided by the present invention; Figure 18 This is a schematic diagram of the structure of the second pot body of the second type of air fryer with a rotating component provided by the present invention; Figure 19 This is a schematic diagram of the structure of the second type of air fryer with a rotating component provided by the present invention, in which the rotating component is in a vertical state; Figure 20 This is a schematic diagram of another rotating component in the second type of air fryer with a rotating component provided by the present invention; Figure 21 This is a schematic diagram of the structure of another air fryer with a rotating component provided by the present invention, in which the second pot body and the main unit cover are separated. Figure 22 This is a schematic diagram of another air fryer with a rotating component provided by the present invention, excluding part of the main unit cover. Figure 23 This is a schematic diagram of the micro switch, movable ring, and trigger rod of another air fryer with a rotating component provided by the present invention; Figure 24 This is a schematic diagram of the mounting box for another air fryer with a rotating component provided by the present invention. Figure 25 This is a schematic diagram of the upper coupler of another air fryer with a rotating component provided by the present invention. Figure 26 This is a schematic diagram of the base and main pot body of an air fryer with a rotating component provided by the present invention; Figure 27 This is a schematic diagram of the structure of an air fryer with a rotating component provided by the present invention, in which the base and the main pot body are separated. Figure 28 This is a schematic diagram of the structure of a silicone part for an air fryer with a rotating component provided by the present invention.
[0024] In the picture: 1. Main unit cover; 101. Control panel; 102. Protective cover; 103. Heating component; 2. Main pot body; 201. Third positioning groove; 202. Fourth positioning groove; 203. First snap-fit component; 3. Second pot body; 301. First positioning groove; 302. Second positioning groove; 303. First through hole; 304. First limiting block; 305. Second limiting block; 306. Outer shell; 307. Inner shell; 308. First positioning port; 309. Second positioning port; 4. External thermal insulation ring; 401. First extension section a; 402. First extension section b; 5. Inner heat insulation ring; 501. Second extension section a; 502. Second extension section b; 503. Upper edge; 504. Lower edge; 5041. Fixing piece; 6. Baking tray base; 601. First vent hole; 7. Baking tray lid; 701. Second vent hole; 8. Roller; 801. Third vent hole; 802. End cap; 8021. Second through hole; 9. First rotating shaft; 10. Second rotating shaft; 11. First positioning element; 1101. First positioning groove; 12. Second positioning element; 1201. Second positioning groove; 1202. Gap; 13. First sealing gasket; 1301. First sealing groove a; 1302. First sealing groove b; 14. Second sealing gasket; 1401. Large end; 1402. Small end; 1403. Second sealing groove a; 1404. Second sealing groove b; 15. Base; 1501. First snap-fit slot; 1502. Second snap-fit slot; 1503. Support sleeve; 16. Protective side panel; 1601. Second snap-fit connector; 17. First handrail section; 18. Second armrest section; 19. Output motor; 20. Drive gear; 21. Passive gear; 22. Upper coupler; 2201. Electrically charged contact groove; 2202. Waterproof and dustproof silicone sealant; 22021. Cross-shaped flexible slit; 23. Lower coupler; 2301. Conductive pin; 24. Third rotating shaft; 25. Roast fork; 2501. Fixing clips; 26. Sealing components; 27. Screws; 28. Return spring; 29. Micro switch; 30. Mounting box; 3001. Drain hole; 31. First mounting base; 3101. Drainage tank; 32. Activity Circle; 33. Trigger the push rod; 34. Silicone parts; 3401. Suction cup structure; 3402. Support feet; 3403. Annular groove. Detailed Implementation
[0025] To make the objectives, technical solutions, and advantages of this invention clearer, the technical solutions of this invention will be described in detail below. Obviously, the described embodiments are merely some embodiments of this invention, and not all embodiments. Based on the embodiments of this invention, all other implementation methods obtained by those skilled in the art without creative effort are within the scope of protection of this invention.
[0026] Example 1: like Figures 1 to 9 As shown, this embodiment provides a first type of air fryer with a rotating component, including a main body cover 1, a main pot body 2, a second pot body 3 and a base. The second pot body 3 is detachably disposed between the main pot body 2 and the main body cover 1. A rotatable rotating component is disposed inside the main pot body 2. An output component is disposed on the outer wall of the second pot body 3. The output component drives the rotating component to rotate through a transmission component.
[0027] Furthermore, a control panel 101 is provided on the top of the main unit cover 1, and a hot air assembly is provided in the middle of the main unit cover 1. The hot air assembly typically includes a heating assembly 103 and a blowing assembly, which has fan blades. A protective cover 102 is provided at the bottom of the main unit cover 1. The main pot body 2 is made of glass, and its top is open, allowing the main unit cover 1 to be detachably mounted on it. The specific structures of the main unit cover 1 and the main pot body 2 adopt conventional existing technology. The improvement in this embodiment lies in the second pot body 3. The second pot body 3 adopts a sleeve structure and can be detachably mounted between the main pot body 2 and the main unit cover 1.
[0028] By detachably installing a second pot body 3 between the main pot body 2 and the main cover body 1, and placing the output component on the outer wall of the second pot body 3, the output component drives the rotating component to rotate via the transmission component, ensuring that the food placed inside the rotating component is heated evenly. Furthermore, the design of the second pot body 3 allows the air fryer to have two operating modes, suitable for cooking different ingredients, resulting in a more rational overall structure and simpler operation.
[0029] The base 15 is detachably mounted on the bottom of the main pot body 2. Furthermore, the base 15 has a U-shaped structure and is positioned at the bottom of the main pot body 2 to support its bottom and cover its lower outer side. A second handle 18 is provided on the base 15 for easy gripping during installation, removal, or movement.
[0030] As an optional implementation method, such as Figures 5 to 9 As shown, the second pot body 3 is composed of a hollow shell, which consists of an outer shell 306 and an inner shell 307. Reinforcing ribs and connecting columns connect the outer shell 306 and the inner shell 307, providing heat insulation, anti-scalding, and structural reinforcement. An annular seal 26 is fixed to the top of the second pot body 3. An output assembly is fixed to the outer wall of the shell. The output assembly includes an output motor 19 and a lower coupler 23. An upper coupler 22 is located at the bottom of the outer wall of the main unit cover 1. The lower coupler 23 and the upper coupler 22 cooperate to form an electrical connection, enabling power transmission to the output motor.
[0031] Furthermore, the outer shell 306 is located outside the inner shell 307, and there is a hollow cavity between the two.
[0032] The sealing element 26 is provided with a positioning hole, and the top of the second pot body 3 is provided with a second positioning groove 302 that is adapted to the sealing element 26. A screw connecting post is provided in the second positioning groove 302. The screw 27 passes through the positioning hole of the sealing element 26 and is screwed into the screw connecting post of the second positioning groove 302 of the second pot body 3 to achieve a fixed connection between the sealing element 26 and the second pot body 3.
[0033] As an optional implementation method, such as Figures 3 to 7 As shown, it also includes a rotating shaft, which is a third rotating shaft 24, and there is one third rotating shaft 24. The rotating assembly includes a roller 8, and the center of the left and right end caps 802 of the roller 8 is provided with a second through hole 8021. The third rotating shaft 24 passes through the second through hole 8021 and is fixed, so as to realize the mutual linkage between the third rotating shaft 24 and the roller 8.
[0034] Furthermore, multiple third ventilation holes 801 are provided on the side plate of the roller 8. The third rotating shaft 24 passes through the second through holes 8021 of the two end caps 802 along the axial direction of the roller 8, and one end is fixedly connected to the driven gear 21. The driven gear 21 is sleeved on one end of the third rotating shaft 24 and is located directly below the driving gear 20. The sides of the third rotating shaft 24 may be inserted and fixed with roasting forks as needed.
[0035] As an optional implementation, the inner wall of the main pot body 2 is provided with a positioning groove, the positioning groove forming a protrusion, and the third rotating shaft 24 is rotatably disposed in the positioning groove.
[0036] Furthermore, one side of the positioning groove is open for the third rotating shaft 24 to pass through, while the other side forms a protrusion to provide sufficient space for the insertion of the third rotating shaft 24. The positioning groove includes a third positioning groove 201 and a fourth positioning groove 202. That is, a first protrusion and a second protrusion extending vertically are respectively provided on both sides of the inner wall of the main pot body 2. The first protrusion and the second protrusion are respectively recessed to form the third positioning groove 201 and the fourth positioning groove 202 with open upper ends. The ends of the third rotating shaft 24 are respectively accommodated in the third positioning groove 201 and the fourth positioning groove 202. This arrangement facilitates molding and manufacturing and strengthens the main pot body 2. When assembling the second pot body 3 and the main pot body 2, both ends of the third rotating shaft 24 slide into the third positioning groove 201 and the fourth positioning groove 202 through the upper openings of the third positioning groove 201 and the fourth positioning groove 202, respectively.
[0037] As an optional implementation, the inner wall of the second pot body 3 is provided with a positioning port, which corresponds to the positioning groove to form a protrusion that matches it, so as to achieve a snap-fit fixation and limit the third rotating shaft 24. This can facilitate positioning and installation, and at the same time prevent the third rotating shaft 24 from jumping out of the positioning groove.
[0038] Furthermore, the inner wall of the second pot body 3 is provided with a first positioning port 308 and a second positioning port 309 corresponding to the third positioning groove 201 and the fourth positioning groove 202, respectively. When the second pot body 3 is assembled with the main pot body 2, the first positioning port is engaged with the upper opening of the third positioning groove 201, and the second positioning port is engaged with the upper opening of the fourth positioning groove 202, thereby closing the openings of the third positioning groove 201 and the fourth positioning groove 202, respectively.
[0039] The first positioning port 308 is provided with a first limiting block 304 that matches the third positioning groove 201, and the second positioning port is provided with a second limiting block 305 that matches the fourth positioning groove 202. When the second pot body 3 is assembled with the main pot body 2, the first positioning port is engaged with the upper opening of the third positioning groove 201, the first limiting block 304 is inserted into the third positioning groove 201, the second positioning port is engaged with the upper opening of the fourth positioning groove 202, and the second limiting block 305 is inserted into the fourth positioning groove 202, thereby closing the openings of the third positioning groove 201 and the fourth positioning groove 202 respectively. The two ends of the third rotating shaft 24 are respectively engaged with the bottom of the third positioning groove 201 and the fourth positioning groove 202, thereby improving the rotational stability of the third rotating shaft 24 and preventing the third rotating shaft 24 from coming out of the third positioning groove 201 and the fourth positioning groove 202.
[0040] The portion of the third rotating shaft 24 located inside the drum 8 can be fitted with a roasting fork 25 according to usage requirements. The roasting fork 25 has a rectangular fixing hole 2501, which is inserted and fixed to the third rotating shaft 24. The cross-section of the fixing hole 2501 is non-circular, matching the cross-sectional shape of the third rotating shaft 24, to prevent the roasting fork 25 from rotating relative to the third rotating shaft 24.
[0041] As an optional implementation method, such as Figures 5 to 9 As shown, the transmission assembly includes a driving gear 20 and a driven gear 21. A first through hole 303 is provided on the outer wall of the second pot body 3. Correspondingly, the output assembly has an output motor 19. The output end of the output motor 19 passes through the first through hole 303 and is fixedly connected to the driving gear 20 to achieve output motor output. A driven gear 21 is fitted onto one end of the third rotating shaft 24. The driven gear 21 meshes with the driving gear 20 to achieve power transmission, driving the rotating assembly to rotate via the rotating shaft.
[0042] The upper coupler 22 and the control panel 101 are electrically connected to the control system on the main body cover 1. The output motor 19 and the lower coupler 23 are disposed on the second pot body 3, with the lower coupler 23 electrically connected to the output motor 19 and the upper coupler 22 located above the lower coupler 23. When the main body cover 1 and the second pot body 3 are assembled, the upper coupler 22 and the lower coupler 23 form an electrical path to transmit electrical energy from the power supply to the output motor 19, providing power to the output motor 19. Since both the control system and the power supply are disposed on the main body cover 1, the user can control the power of the output motor 19 through the control panel 101.
[0043] The output motor 19 starts, and power is transmitted to the third rotating shaft 24 via the driving gear 20 and the driven gear 21. Since the third rotating shaft 24 is connected to the drum 8, its rotation causes the drum 8 to rotate around its axis, and the food placed inside the drum 8 also rotates accordingly. Hot air enters the drum 8's receiving cavity through the third vent 801, heating the food placed inside. As the drum 8 continues to rotate, the food tumbles and moves within the receiving cavity, allowing the hot air to act evenly on the food from all directions. The hot air then flows out of the drum 8 through the third vent 801, achieving the effect of even heating and thorough cooking of the food.
[0044] As an optional implementation, the bottom edge of the second pot body 3 is provided with an annular first positioning groove 301, which cooperates with the top of the main pot body 2 to achieve a sleeve connection. The second pot body 3 has a heat insulation ring, namely the inner heat insulation ring 5, which is lined on the inner wall of the sleeve structure. The upper opening and lower opening of the inner heat insulation ring 5 have an upper edge 503 and a lower edge 504, respectively. Fixing pieces 5041 are distributed on the lower edge 504, which match and connect with the sleeve structure and are connected to the second pot body 3.
[0045] The upper edge 503 and the lower edge 504 extend horizontally toward the second pot body 3, with the upper edge 503 abutting the top of the second pot body 3 and the lower edge 504 abutting the bottom of the second pot body 3. The fixing piece 5041 protrudes from the lower edge 504 and extends horizontally toward the outside of the second pot body 3. The cooperation of the upper edge 503, the lower edge 504, and the fixing piece 5041 ensures a better connection between the inner heat-insulating ring 5 and the second pot body 3. The use of the inner heat-insulating ring 5 provides heat insulation, prevents scalding, and strengthens the structure.
[0046] The outer wall of the second pot body 3 is provided with a first through hole 303, and the inner heat insulation ring 5 is provided with a connecting through hole corresponding to the first through hole 303 for the output shaft of the output motor 19 to pass through. The output shaft of the output motor 19 is dynamically sealed to the first through hole 303 and the connecting through hole through a sealing structure in the prior art.
[0047] As an optional implementation, the second pot body 3 is provided with first handrails 17 on both sides to prevent burns.
[0048] When the user uses this product, the main unit cover 1 is installed on the main pot body 2, and the main pot body 2 is installed on the base. This is a typical air fryer, which will not be described in detail here. Alternatively, a rotating assembly can be installed according to the user's needs. Simply separate the main unit cover 1 and the main pot body 2, then align the third rotating shaft 24 with the third positioning groove 201 and the fourth positioning groove 202 respectively, and insert it so that both ends of the third rotating shaft 24 contact the bottom of the third positioning groove 201 and the fourth positioning groove 202 respectively. Then, press the second pot body 3 against the top of the main pot body 2, so that the first positioning groove 301 at the bottom of the second pot body 3 engages with the top of the main pot body 2. The first limiting block 304 and the second limiting block 305, together with the third positioning groove 201 and the fourth positioning groove 202 respectively, limit the third rotating shaft 24, preventing it from coming off. Next, install the main unit cover 1 onto the top of the second pot body 3. At this time, the sealing element 26 abuts against the main unit cover 1, and the lower coupler 23 and the upper coupler 22 are plugged into each other to achieve electrical connection. The user can perform corresponding operations through the control panel 101. By driving the drum 8 to rotate through the output motor 19, the food inside the drum 8 can be cooked more evenly and the surface can be crispy, realizing multiple usage modes of the air fryer.
[0049] When a user needs to use the roller 8 with the roasting fork 25 for cooking, simply replace the roller 8 with the one with the roasting fork 25. The roasting fork 25 helps the food rotate during cooking, thus ensuring that the food is heated evenly.
[0050] When the user does not need to use the rotating component, i.e. the drum 8, for cooking, first separate the main body cover 1 from the second pot body 3, then separate the second pot body 3 and the drum 8 from the main pot body 2, and then place the main body cover 1 on top of the main pot body 2, so that the user can cook even when the drum 8 is not needed.
[0051] Example 2: The difference between Example 2 and Example 1 is as follows: Figures 21-25 As shown, a mounting box 30 is provided on the outer wall of the second pot body 3, and the output motor 19 is located inside the mounting box 30; a first mounting base 31 is provided on the mounting box 30, and a lower coupler 23 is located on the first mounting base 31; an upper coupler 22 is located on the lower part of the main body cover 1, and an electric contact groove 2201 is provided on the upper coupler 22, and a conductive pin is provided on the lower coupler; a waterproof and dustproof silicone 2202 is provided at the opening end of the electric contact groove 2201, and a conductive pin 2 is provided on the waterproof and dustproof silicone 2202. 301 enters the cross-shaped elastic slit 22021 of the live contact groove 2201; when the main body cover 1 is fastened to the second pot body 3, the upper coupler 22 is inserted into the first mounting base 31 and abuts against the inner wall surface of the first mounting base 31. At this time, the live contact groove 2201 is inserted into the conductive pin 2301 and forms a conductive path, and the output motor 19 is in the energized working state; when the main body cover 1 is separated from the second pot body 3, the live contact groove 2201 is disengaged from the conductive pin 2301, and the output motor 19 is in the de-energized state.
[0052] A waterproof and dustproof silicone sealant 2202 with a cross-shaped elastic slit 22021 is provided at the open end of the charged contact groove 2201 of the upper coupler 22. The cross-shaped elastic slit 22021 is opened only when the conductive pin 2301 is inserted to achieve electrical connection. After the conductive pin 2301 is withdrawn, the cross-shaped elastic slit 22021 automatically closes under its own elasticity to prevent oil vapor and water stains during cooking from entering the charged contact groove 2201 and to prevent accidental contact by the user, thereby improving service life and electrical safety.
[0053] The output motor 19 is placed inside the enclosed mounting box 30 outside the second pot body 3, which isolates it from the corrosion of high temperature oil vapor during cooking, extends the service life of the output motor 19, and avoids the risk of short circuit caused by oil entering the output motor 19.
[0054] As an optional implementation method, preferably, such as Figure 21 , Figure 22 , Figure 23As shown, a movable ring 32 is provided on the bottom surface of the main body cover 1. Multiple return springs 28 are provided between the movable ring 32 and the main body cover 1. A trigger rod 33 is provided on the movable ring 32. A micro switch 29 is provided on the main body cover 1. The trigger point of the micro switch 29 is located on the moving path of the trigger rod 33. When the main body cover 1 is fastened to the second pot body 3, the movable ring 32 abuts against the top of the second pot body 3, causing the movable ring 32 to move towards the main body cover 1 to compress the return springs 28. The movable ring 32 pushes the trigger rod 33. When the micro switch 29 is in contact with the trigger point, the micro switch 29 is closed, the energized contact groove 2201 is inserted into the conductive pin 2301 and forms a conductive path, and the output motor 19 is in the energized working state; when the main body cover 1 is in the picked-up state, the reset spring 28 is reset and the movable ring 32 is moved away from the main body cover 1, so that the movable ring 32 drives the trigger rod 33 to disengage from the trigger point of the micro switch 29, the micro switch 29 is opened, the energized contact groove 2201 is disengaged from the conductive pin 2301, and the output motor 19 is in the de-energized state.
[0055] Furthermore, a ring-shaped movable ring 32 is disposed on the bottom surface of the main unit cover 1, surrounding its air outlet. Return springs 28 are respectively disposed at the four corners of the top of the second pot body 3, corresponding to the positions of the movable ring 32 and the main unit cover 1. Four return springs 28 are evenly arranged around the circumference of the movable ring 32, corresponding to the four corner positions of the movable ring 32. Two microswitches 29 are disposed opposite each other on the main unit cover 1. The microswitches 29 are electrically connected to the control system. This arrangement ensures that the control system will only supply power to the output motor 19 through the conductive path when both conditions are met: the microswitches 29 are closed and the upper and lower couplers are successfully connected. That is, the control system receives the closed signals of the two microswitches 29 and the conduction signals of the upper coupler 22 and the lower coupler 23, determines a safe state, and then supplies power to the output motor 19. When the main body cover 1 is fastened onto the second pot body 3, both microswitches 29 are closed, and the upper coupler 22 and lower coupler 23 are connected and conductive, allowing the power supply of the main body cover 1 to supply power to the output motor 19. When the main body cover 1 is detached from the second pot body 3, both microswitches 29 are open, the upper coupler 22 and lower coupler 23 separate, causing the lower coupler 23 to be de-energized, and the output motor 19 is de-energized.
[0056] Compared to traditional coupler connections that typically rely solely on physical connections and lack status detection, this solution utilizes two microswitches 29 and the coordinated action of the upper coupler 22 and the lower coupler 23 to achieve a dual power-off safety design, thereby improving the reliability of the electrical connection.
[0057] It should be noted that the specific circuit connections between the micro switch 29, the upper coupler 22 and the control panel 101 and the control system, as well as between the lower coupler 23 and the output motor 19, are existing technologies and will not be elaborated here.
[0058] As an optional implementation method, preferably, such as Figure 24 As shown, the bottom of the first mounting base 31 is provided with a plurality of drainage grooves 3101 on the side near the second pot body 3 to connect the first mounting base 31 and the mounting box 30; the bottom of the mounting box 30 is provided with a plurality of drainage holes 3001 to connect the mounting box 30 and the outside.
[0059] With this design, even if steam condensate or splashed oil enters the first mounting base 31, the droplets will collect along the inner wall of the first mounting base 31 to the bottom and flow into the mounting box 30 through the drain groove 3101. Since the bottom of the mounting box 30 has a drain hole 3001, the accumulated liquid is discharged to the outside of the mounting box 30 under the action of gravity, avoiding liquid accumulation and improving safety in use.
[0060] Example 3: The difference between Example 3 and Example 1 is as follows: Figures 10 to 18 As shown, the rotating assembly includes a baking tray base 6 and a baking tray cover 7. The baking tray cover 7 is connected to the baking tray base 6 through a height adjustment component so that the two together enclose a disc-shaped receiving cavity for placing the food to be processed. Both the baking tray base 6 and the baking tray cover 7 are provided with multiple ventilation holes.
[0061] Furthermore, the rotating shaft also includes a first rotating shaft 9 and a second rotating shaft 10, which are fixed to the opposite side plates of the baking tray base 6. Both ends of the baking tray base 6 are rotatably connected to the main pot body 2 via the first rotating shaft 9 and the second rotating shaft 10, respectively, and one of the rotating shafts is connected to the driven gear 21. Multiple ventilation holes are provided on both the baking tray base 6 and the baking tray lid 7 to facilitate hot air circulation.
[0062] The baking tray base 6 is a hollow cuboid structure with an open top. The inner wall of the main pot body 2 is provided with a third positioning groove 201 that rotatably engages with the first rotating shaft 9 and a fourth positioning groove 202 that rotatably engages with the second rotating shaft 10. The third and fourth positioning grooves 201 and 202 are open at the top to allow the first rotating shaft 9 and the second rotating shaft 10 to slide into the third and fourth positioning grooves 201 and 202 respectively during the assembly of the second pot body 3 and the main pot body 2. The output component drives the first rotating shaft 9 to rotate via the transmission component, thereby driving the baking tray base 6 to rotate the baking tray cover 7 and the food to be processed around the axis of the first rotating shaft 9. The second rotating shaft 10 moves accordingly within the fourth positioning groove 202.
[0063] After the second pot body 3 is assembled with the main pot body 2, the first sealing gasket 13 is located above the opening ends of the third positioning groove 201 and the fourth positioning groove 202, limiting the first rotating shaft 9 and the second rotating shaft 10.
[0064] The baking tray base 6 has multiple first ventilation holes 601 on its bottom plate, and the baking tray cover 7 has a mesh structure with multiple second ventilation holes 701. The cooperation of the first ventilation holes 601 and the second ventilation holes 701 forms a channel for hot air circulation.
[0065] The rotating component drives the food to be processed to rotate, and combined with the first vent 601 and the second vent 701, hot air can form an effective circulation within the containment space. As the food rotates, its position constantly changes, allowing the hot air to heat it from different angles and positions, ensuring that the food is heated evenly and comprehensively, thus improving cooking quality.
[0066] As an optional implementation method, such as Figure 12 , Figure 13 , Figure 14 , Figure 17 As shown, the height adjustment assembly includes a first positioning member 11 and a second positioning member 12 disposed on opposite side plates of the baking tray base 6. At least one of the first positioning member 11 and the second positioning member 12 has elastic deformation capability. The first positioning member 11 has a plurality of first positioning grooves 1101 spaced apart along the vertical direction, and the second positioning member 12 has a plurality of second positioning grooves 1201 spaced apart along the vertical direction. The first positioning grooves 1101 and the second positioning grooves 1201 at the same height are aligned with each other and cooperate to form a locking and limiting structure. Under the action of external force, the second positioning member 12 will undergo elastic deformation, allowing the baking tray cover 7 to smoothly engage with the first positioning grooves 1101 and the second positioning grooves 1201 to fix the relative position of the baking tray cover 7 and the baking tray base 6.
[0067] Furthermore, the lower end of the first positioning member 11 is fixedly connected to the baking tray base 6, and the upper end of the first positioning member 11 contacts the side plate of the baking tray base 6, playing a role in stable support and positioning guidance.
[0068] The lower end of the second positioning member 12 is fixedly connected to the baking tray base 6, and there is a gap 1202 between the upper end of the second positioning member 12 and the baking tray base 6, which provides deformation space for the second positioning member 12 to undergo elastic deformation when subjected to force.
[0069] Depending on the size and quantity of the ingredients placed, the relative position between the baking pan lid 7 and the baking pan base 6 can be flexibly adjusted. For example, when placing larger or more numerous ingredients, the baking pan lid 7 is engaged with the first positioning groove 1101 and the second positioning groove 1201 at a higher position, increasing the space between the baking pan lid 7 and the baking pan base 6 to accommodate the ingredients; conversely, when placing smaller or fewer ingredients, the baking pan lid 7 is engaged with the first positioning groove 1101 and the second positioning groove 1201 at a lower position, reducing the space between the baking pan lid 7 and the baking pan base 6, making the ingredients more concentrated and improving cooking efficiency.
[0070] When the main body cover 1 is assembled with the second pot body 3, the upper coupler 22 and the lower coupler 23 form an electrical path to transmit electrical energy from the external power source to the output motor 19, providing power to the output motor 19. The output shaft of the output motor 19 passes sequentially through the outer heat insulation ring 4, the second pot body 3, and the inner heat insulation ring 5, and is fixedly connected to the driving gear 20. The driven gear 21 meshes with the driving gear 20 and is coaxially fixed on the first rotating shaft 9 to transmit rotational power to the first rotating shaft 9, causing the baking tray base 6, the baking tray cover 7, and the food placed between them to rotate around the axis of the first rotating shaft 9. When the output motor 19 starts, the power is transmitted to the first rotating shaft 9 via the driving gear 20 and the driven gear 21. Since the first rotating shaft 9 is connected to the baking tray base 6, and the baking tray cover 7 is tightly fitted to the baking tray base 6, the rotation of the first rotating shaft 9 causes the baking tray base 6 to rotate around its axis, and the baking tray base 6 in turn causes the baking tray cover 7 to rotate together, and the food placed between the baking tray base 6 and the baking tray cover 7 also rotates accordingly.
[0071] During rotation, the cooperation of the relatively positioned first vent 601 and second vent 701 promotes the circulation of hot air internally, ensuring that the food is heated evenly from all directions during rotation. This ensures the food is fully cooked without the need for manual flipping, effectively preventing uneven cooking and achieving excellent results. Furthermore, the second rotating shaft 10 rotates within the fourth positioning groove 202, providing auxiliary support and stabilizing the rotation, improving the smoothness and reliability of the entire rotation process. Moreover, the food remains fixed during rotation, preventing damage from the rotation of the baking pan lid 7 and baking pan base 6, thus ensuring the integrity of the food. Figure 19 As shown, the food is in a fixed position and receives hot air from all directions during the rotation, eliminating the need for manual flipping in traditional air fryers and resulting in more even cooking. When the food is flipped to a vertical position by the baking tray 6, it receives the high temperature and enhanced heat flow generated by the hot air component, causing a Maillard reaction on the surface of the food and making it crispier.
[0072] As an optional implementation, the air fryer also includes a first sealing gasket 13 and a second sealing gasket 14. The first sealing gasket 13 is disposed at the lower end of the second pot body 3 and is used to provide a seal when the main pot body 2 is assembled with the second pot body 3. The second sealing gasket 14 is disposed at the upper end of the second pot body 3 and is used to provide a seal when the second pot body 3 is assembled with the main cover body 1.
[0073] Furthermore, the first sealing gasket 13 has an inverted U-shaped cross-section and is embedded in the first positioning groove 301 of the second pot body 3. When the second pot body 3 is assembled with the main pot body 2, the sealing opening of the first sealing gasket 13 is placed on the upper end of the main pot body 2 with the sealing opening facing downward. The first sealing gasket 13 is deformed under pressure to achieve a sealed connection between the second pot body 3 and the main pot body 2.
[0074] The cross-section of the second sealing gasket 14 is T-shaped, and the small end 1402 of the second sealing gasket 14 is embedded in the second positioning groove 302 of the second pot body 3. When the second pot body 3 is assembled with the main cover 1, the lower end surface of the main cover 1 presses against the large end 1401 of the second sealing gasket 14 to achieve a sealed connection between the second pot body 3 and the main cover 1.
[0075] The first sealing gasket 13 and the second sealing gasket 14 can also be connected to the first positioning groove 301 and the second positioning groove 302 respectively by screws, further improving the connection stability between the first sealing gasket 13 and the second sealing gasket 14 and the second pot body 3.
[0076] When the rotation function is not needed, the main unit cover 1 can be directly installed onto the main pot body 2 and used as a regular air fryer.
[0077] As an optional implementation method, such as Figures 12 to 16 , Figure 18 As shown, the second pot body has an inner heat insulation ring 5, and may further include an outer heat insulation ring 4. The outer heat insulation ring 4 is disposed on the outer wall of the second pot body 3, and the inner heat insulation ring 5 is disposed on the inner wall of the second pot body 3. Both the outer heat insulation ring 4 and the inner heat insulation ring 5 have connecting through holes corresponding to the first through hole 303, for the output shaft of the output motor 19 to pass through, and the output shaft of the output motor 19 is dynamically sealed to the first through hole 303 and the connecting through hole through a sealing structure in the prior art.
[0078] The two sides of the open end of the first sealing gasket 13 are bent upwards to form a first sealing groove a1301 and a first sealing groove b1302 for engaging the heat insulation ring. The two sides of the large end 1401 of the second sealing gasket 14 are bent downwards to form a second sealing groove a1403 and a second sealing groove b1404 for engaging the heat insulation ring. The first sealing groove a1301 and the second sealing groove a1403 are arranged opposite to each other, and together they serve as a limiting space for engaging the outer heat insulation ring 4 on the outside of the air fryer. The first sealing groove b1302 and the second sealing groove b1404 are arranged opposite to each other, and together they serve as a limiting space for engaging the inner heat insulation ring 5 inside the air fryer.
[0079] The outer heat insulation ring 4 has a first extension section a401 and a first extension section b402 at the ends near the first sealing gasket 13 and the second sealing gasket 14, respectively. The first extension section a401 extends into the first sealing groove a1301 located on the outside, and the first extension section b402 extends into the second sealing groove a1403 located on the outside, so as to achieve heat insulation and reduce heat loss.
[0080] The inner heat insulation ring 5 has a second extension section a501 and a second extension section b502 at the ends near the first sealing gasket 13 and the second sealing gasket 14, respectively. The second extension section a501 extends into the first sealing groove b1302 located inside, and the second extension section b502 extends into the second sealing groove b1404 located inside, thereby achieving heat insulation and reducing heat loss.
[0081] As an optional implementation method, such as Figure 10 , Figure 12 , Figure 13 , Figure 14 As shown, the base 15 is located on the outer bottom of the main pot body 2. The base 15 covers and surrounds the bottom of the main pot body 2, and the base 15 is provided with a light-transmitting part to facilitate observation of the internal condition of the main pot body 2.
[0082] Because existing air fryers generally use a single-layer design for the main pot body 2, lacking effective heat insulation, users are highly susceptible to burns from touching the hot main pot body 2, posing a safety hazard. This invention addresses this by adding a base 15 to the outside of the main pot body 2, forming an effective heat insulation barrier that prevents users from directly contacting the bottom of the main pot body 2, thus avoiding burns. Furthermore, in the event of a glass breakage in the main pot body 2, the base prevents glass shards from scattering, reducing the risk of injury to the user and improving safety during use.
[0083] As an optional implementation, it also includes a protective side plate 16. The base 15 is detachably connected to the main pot body 2 via a first snap-fit assembly, and the protective side plate 16 is detachably connected to both sides of the base 15 via a second snap-fit assembly, so that the base 15 and the protective side plate 16 together form a protective cavity for accommodating the bottom of the main pot body 2.
[0084] Furthermore, the first snap-fit assembly includes a first snap-fit groove 1501 and a first snap-fit member 203 adapted to the first snap-fit groove 1501. The first snap-fit groove 1501 is symmetrically arranged on both sides of the base 15, and the first snap-fit member 203 is correspondingly arranged on the main pot body 2. Through the snap-fit engagement between the first snap-fit member 203 and the first snap-fit groove 1501, the base 15 is fixed on the main pot body 2.
[0085] The base 15 is provided with a second armrest 18, which makes it convenient for users to hold the base when installing, removing or moving it.
[0086] The second snap-fit assembly includes a second snap-fit groove 1502 and a second snap-fit member 1601 adapted to the second snap-fit groove 1502. The second snap-fit members 1601 are symmetrically arranged at the edge of the protective side plate 16, and the second snap-fit groove 1502 is correspondingly arranged on the base 15. The second snap-fit member 1601 and the second snap-fit groove 1502 engage to fix the protective side plate 16 to the base 15. The protective side plate 16 is then fixedly connected to the base 15 with bolts, further improving the stability of the connection.
[0087] The protective side panel 16 and / or the base 15 are provided with light-transmitting parts, which are made of light-transmitting material.
[0088] The protective side panel 16 is preferably made of PC transparent sheet. This design allows users to easily observe the interior of the main pot body 2 through the protective side panel 16 without disassembling the base, thus improving the convenience of use.
[0089] Example 4: The difference between Example 4 and Example 3 is as follows: Figure 19 As shown, the rotating assembly includes a hollow, circular basket-shaped roller 8. The roller 8 has a circular basket-shaped cavity for holding the food to be processed. A first rotating shaft 9 and a second rotating shaft 10 are respectively located at both ends of the roller 8. The inner wall of the main pot body 2 is provided with a third positioning groove 201 that rotatably engages with the first rotating shaft 9 and a fourth positioning groove 202 that rotatably engages with the second rotating shaft 10. Furthermore, the first rotating shaft 9 is connected to a driven gear 21 to drive the roller 8 to rotate around the axis of the first rotating shaft 9. Multiple third vent holes 801 are provided on the side plate of the roller 8.
[0090] The output motor 19 starts, and power is transmitted to the first rotating shaft 9 via the driving gear 20 and the driven gear 21. Since the first rotating shaft 9 is connected to the drum 8, the rotation of the first rotating shaft 9 drives the drum 8 to rotate around its axis, and the food placed inside the drum 8 also rotates accordingly. Hot air enters the receiving cavity of the drum 8 through the third vent 801, heating the food placed inside. As the drum 8 continues to rotate, the food tumbles and moves continuously within the receiving cavity, allowing the hot air to act evenly on the food from all directions. The hot air then flows out of the drum 8 through other third vents 801, forming a circulating flow, achieving the effect of even heating and thorough cooking of the food.
[0091] Example 5: The difference between Example 5 and Example 1 is as follows: Figures 26 to 28 As shown, it also includes a silicone component 34, and a base 15 covering the lower outer side of the main pot body 2. Multiple support sleeves 1503 are provided on the base 15, and the silicone component 34 is disposed within the support sleeves 1503. The top of the silicone component 34 is adsorbed onto the main pot body 2, and the bottom of both the silicone component 34 and the bottom of the support sleeves 1503 are in contact with the placement surface. A gap exists between the inner wall of the base 15 and the outer wall of the main pot body 2 to allow air circulation.
[0092] Furthermore, there are four silicone parts 34, which are correspondingly located at the four corners of the bottom surface of the main pot body 2. The support sleeve 1503 is provided in a one-to-one correspondence with the silicone parts 34.
[0093] The top of the silicone part 34 is a suction cup structure 3401, which protrudes from the inner bottom wall of the base 15. The suction cup structure 3401 forms a negative pressure adsorption connection with the bottom surface of the main pot body 2 after being pressed together. That is, when the main pot body 2 is placed on the base 15, the bottom surface of the main pot body 2 presses against the suction cup structure 3401, causing the air in the cavity of the suction cup structure 3401 to be discharged, forming a negative pressure, thereby adsorbing and fixing the main pot body 2. At this time, the edge of the suction cup structure 3401 is in annular contact with the bottom surface of the main pot body 2, reducing the heat conduction efficiency. In addition, there is an air flow gap between the inner wall surface of the base 15 and the outer wall surface of the main pot body 2, blocking the direct heat transfer path between the two and reducing the conduction of heat to the placement surface.
[0094] The bottom of the silicone part 34 is a cylindrical support foot 3402, and the support sleeve 1503 protrudes from the outer bottom wall of the base 15. When the air fryer is placed on the table, the four support feet 3402 and the support sleeve 1503 together form a support surface, increasing friction and improving support stability and anti-slip effect.
[0095] An annular groove 3403 is provided on the silicone part 34. The annular groove 3403 is located between the suction cup structure 3401 and the support foot 3402. An annular protrusion adapted to the annular groove 3403 is provided in the support sleeve 1503. Through the snap-fit cooperation between the annular protrusion and the annular groove 3403, the silicone part 34 is axially limited in the support sleeve 1503, so that the silicone part 34 and the support sleeve 1503 are firmly connected together.
[0096] It is understood that the same or similar parts in the above embodiments can be referred to each other, and the contents not described in detail in some embodiments can be referred to the same or similar contents in other embodiments.
[0097] In the description of this invention, it should be noted that, unless otherwise stated, "a plurality of" means two or more; the terms "upper," "lower," "left," "right," "inner," "outer," "front end," "rear end," "head," "tail," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing the invention and simplifying the 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 the invention. Furthermore, the terms "first," "second," "third," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0098] In the description of this invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0099] In the description of this specification, references to terms such as "an embodiment," "some embodiments," "example," "specific example," or "one example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0100] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. An air fryer with a rotating component, characterized in that: It includes a main body cover, a main pot body, and a second pot body; the second pot body adopts a sleeve structure and is detachably disposed between the main pot body and the main body cover; the main pot body is provided with a rotatable rotating component, and the outer wall of the second pot body is provided with an output component, the output component being connected to and driving the rotating component to rotate through a transmission component.
2. An air fryer with a rotating component according to claim 1, characterized in that, The second pot body is composed of a hollow shell, with reinforcing ribs and connecting columns connecting the inner shell and the outer shell. An annular seal is fixed to the top of the shell, and the output assembly is fixed to the outer wall of the shell. The output assembly includes an output motor and a lower coupler. An upper coupler is provided at the bottom of the outer wall of the corresponding main body cover. The lower coupler and the upper coupler cooperate to form an electrical connection to realize the power transmission to the output motor.
3. An air fryer with a rotating component according to claim 1, characterized in that, The rotating assembly includes a roller, with through holes at the center of the left and right end caps of the roller. A rotating shaft passes through the through holes and is fixed, enabling the rotating shaft and the roller to move together. A roasting fork is inserted into either side of the rotating shaft as needed. The inner wall of the main pot body has a positioning groove, which forms a protrusion. The rotating shaft is rotatably positioned within the positioning groove. The inner wall of the second pot body has a positioning opening, which corresponds to and matches the protrusion formed by the positioning groove, achieving a snap-fit fixation and limiting the rotation shaft.
4. An air fryer with a rotating component according to claim 3, characterized in that, The transmission assembly includes a driving gear and a driven gear. The outer wall of the second pot body is provided with a through hole. Correspondingly, the output assembly has an output motor. The output end of the output motor passes through the through hole and is fixed with the driving gear to realize the output motor output. One end of the rotating shaft is fitted with the driven gear. The driven gear meshes with the driving gear to realize power transmission. The rotating shaft drives the rotating assembly to rotate.
5. An air fryer with a rotating component according to claim 1, characterized in that, The bottom edge of the second pot body is provided with an annular positioning groove, which cooperates with the top of the main pot body to achieve a sleeve connection; the second pot body has a heat insulation ring, which is lined on the inner wall of the sleeve structure. The upper opening and lower opening of the heat insulation ring have upper edges and lower edges respectively. The lower edge is distributed with fixing pieces, which match and connect with the sleeve structure.
6. An air fryer with a rotating component according to claim 2, characterized in that, An installation box is provided on the outer wall of the second pot body, and the output motor is installed inside the installation box. A first mounting base is provided on the installation box, and the lower coupler is installed on the first mounting base. A conductive pin is provided on the lower coupler. An upper coupler is provided on the main unit cover, and a live contact groove is provided on the upper coupler. The opening end of the live contact groove is provided with waterproof and dustproof silicone, and an elastic slit is formed on the waterproof and dustproof silicone to allow the conductive pin to enter the live contact groove. When the main unit cover is fastened to the second pot body, the upper coupler is inserted into the first mounting base and abuts against the inner wall surface of the first mounting base. At this time, the live contact groove and the conductive pin are connected and conductive, and the output motor is in a powered-on state. When the main unit cover is separated from the second pot body, the live contact groove is disengaged from the conductive pin, and the output motor is in a powered-off state.
7. An air fryer with a rotating component according to claim 6, characterized in that, A movable ring is provided on the bottom surface of the main unit cover. Multiple return springs are provided between the movable ring and the main unit cover. A trigger rod is provided on the movable ring, and a micro switch is provided on the main unit cover. The trigger point of the micro switch is located on the movement path of the trigger rod. When the main unit cover is fastened to the second pot body, the movable ring abuts against the second pot body, causing the movable ring to move towards the main unit cover to compress the return springs. The movable ring pushes the trigger rod to abut against the trigger point of the micro switch, turning on the micro switch. The energized contact groove is connected to the conductive pin, and the output motor is in a powered-on state. When the main unit cover is lifted, the return springs reset and move the movable ring away from the main unit cover, causing the movable ring to drive the trigger rod to disengage from the micro switch. The micro switch is turned off, the energized contact groove disengages from the conductive pin, and the output motor is in a de-energized state.
8. An air fryer with a rotating component according to claim 6, characterized in that, The bottom of the first mounting base has multiple drainage grooves on the side near the second pot body to connect the first mounting base and the mounting box; the bottom of the mounting box has multiple drainage holes to connect the mounting box and the outside.
9. An air fryer with a rotating component according to claim 1, characterized in that, The rotating component is disc-shaped or basket-shaped, and its two ends are rotatably connected to the main pot body via rotating shafts. One of the rotating shafts is drive-connected to the output end of the output component. When the rotating component is disc-shaped, it includes a baking tray base and a baking tray lid. The baking tray lid is connected to the baking tray base via a height adjustment component, and a receiving space is formed between the baking tray base and the baking tray lid. The height adjustment component is used to adjust the relative position of the baking tray lid and the baking tray base, thereby adjusting the size of the receiving space.
10. An air fryer with a rotating component according to claim 1, characterized in that, It also includes silicone parts. The base is provided with multiple support sleeves, and the silicone parts are disposed inside the support sleeves. The top of the silicone parts is adsorbed and connected to the main pot body, and the bottom of the silicone parts and the bottom of the support sleeves are in contact with the placement surface. There is a gap between the inner wall surface of the base and the outer wall surface of the main pot body.