A cooking mechanism comprising a turntable device for a food box
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-23
- Publication Date
- 2026-08-11
Smart Images

Figure CN224612405U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cooking utensils, and in particular to a food container rotating device and a cooking mechanism including the same. Background Technology
[0002] Cooking robots, through automation technology, can efficiently and precisely complete various cooking tasks, greatly improving cooking efficiency and consistency, ensuring that every dish achieves the expected taste and quality. Furthermore, robots can help reduce labor costs and lighten the workload of chefs, allowing them to focus on more creative and artistic cooking. For those with special dietary needs, cooking robots can also customize recipes according to individual health requirements, providing more personalized dietary options. By introducing cooking robots, both households and the catering industry can achieve significant improvements in saving time, reducing waste, and promoting healthy eating.
[0003] Currently, the vegetable container linkage device is typically powered by a wire. However, when the device moves, it pulls the wire along with it. Therefore, a relatively long wire is needed to avoid affecting the movement of the device. If the device moves around another unit, the wire can become tangled, increasing the likelihood of obstructed movement and hindering normal operation. Furthermore, the tangled wire may be damaged due to excessive pulling, leading to power outages or even short circuits, thus affecting the stability and reliability of the entire vegetable container rotation device. Utility Model Content
[0004] The technical problem to be solved by this utility model is to overcome the defect that the existing food container linkage device usually supplies power through wires, which will increase the damage caused by excessive pulling of the wires, and to provide a food container rotation device and a cooking mechanism including the same.
[0005] The present invention solves the above-mentioned technical problems through the following technical solution:
[0006] This utility model discloses a food container rotating device, which is connected to a food container linkage device and is used to drive the food container linkage device to move. The food container rotating device includes a moving part and a fixed part. The fixed part is provided with a first conductor, and the moving part is provided with a second conductor. One end of the second conductor is slidably electrically connected to the first conductor, and the other end of the second conductor is fixedly electrically connected to the food container linkage device, so that the first conductor supplies power to the food container linkage device through the second conductor. The extension direction of the first conductor is at least along the moving direction of the food container linkage device.
[0007] In this design, the rotating food container device achieves power supply functionality for the linked food container device through the cooperation of moving and fixed components. Specifically, one end of the second conductor is slidably electrically connected to the first conductor, and the other end is fixedly electrically connected to the linked food container device. Furthermore, the first conductor extends at least along the moving direction of the linked food container device, ensuring the first conductor supplies power to the linked food container device. This guarantees the stability and reliability of the power supply while avoiding poor contact or power interruption caused by the sliding of moving components during power supply. This structural design avoids the problem of excessive wire pulling due to wire entanglement, improving power supply efficiency and stability. It enables the rotating food container device to continuously and reliably transmit electrical energy during the movement of the linked food container device, meeting the power supply needs of the linked food container device at different moving positions.
[0008] Preferably, the fixing member has a first receiving groove for placing the first conductor, and the end of the second conductor away from the vegetable box linkage device extends into the first receiving groove and makes electrical contact with the first conductor, and the second conductor is slidably connected to the first receiving groove; wherein the first receiving groove and the first conductor extend in the same direction.
[0009] Alternatively, the moving part may have a second receiving groove for placing the second conductor, one end of the first conductor extending into the second receiving groove and making electrical contact with the second conductor, and the first conductor and the second receiving groove being slidably connected; wherein the second receiving groove and the second conductor extend in the same direction.
[0010] In this design, the first receiving groove on the fixed component is used to place the first conductor. One end of the second conductor on the moving component extends into the first receiving groove and makes electrical contact with the first conductor, while the other end is fixedly electrically connected to the vegetable box linkage device, thereby enabling the first conductor to supply power to the vegetable box linkage device. The first receiving groove and the first conductor extend in the same direction, ensuring the stability and reliability of the power supply and avoiding problems such as poor contact or power interruption caused by the sliding of the moving component during the power supply process. In addition, the second conductor is slidably connected to the first receiving groove, which can provide guidance for the movement of the moving component, improving the stability and reliability of the movement of the moving component.
[0011] Alternatively, a second receiving groove on the moving part is used to place a second conductor. One end of the first conductor extends into the second receiving groove and makes electrical contact with the second conductor. The second receiving groove and the second conductor extend in the same direction, ensuring the stability and reliability of the power supply and avoiding poor contact or power interruption caused by the sliding of the moving part during power supply. Furthermore, the sliding connection between the first conductor and the second receiving groove provides guidance for the movement of the moving part, improving the stability and reliability of its movement.
[0012] Preferably, there are multiple first receiving slots, and the second conductors are arranged in a one-to-one correspondence with the first receiving slots;
[0013] Alternatively, there may be multiple second receiving slots, with the first conductor and the second receiving slot being configured in a one-to-one correspondence.
[0014] In this scheme, the above-mentioned structural form is adopted, which further improves the stability and reliability of power supply from the first conductor to the second conductor.
[0015] Preferably, the food box rotating device further includes a first body with a first receiving cavity, the moving part and / or the fixing part being disposed in the first receiving cavity, the first body including a fixing surface for placing the food box linkage device, and the first body having a through hole communicating with the first receiving cavity for the second conductive body to pass through.
[0016] In this design, the first receiving cavity provides installation space for the moving parts and / or fixed parts, improving the compactness of the food box rotation device structure. Simultaneously, the first receiving cavity protects the moving parts and / or fixed parts, extending their service life. The first body not only stably supports the food box linkage device but also allows the second conductor to pass through and supply power to the food box linkage device via a through hole, effectively avoiding interference issues.
[0017] Preferably, the first body is arranged circumferentially around the outer periphery of the cooking pot.
[0018] In this solution, the above-mentioned structural form is adopted, which further improves the compactness of the vegetable box rotation device.
[0019] Preferably, the food box rotation device further includes a driving component, which is connected to the fixed surface and is used to drive the fixed surface to move;
[0020] The driving component includes a motor and a gear. The driving end of the motor is connected to the gear to drive the gear to rotate. The fixed surface meshes with the gear.
[0021] In this design, the motor serves as the power source, with its drive end connected to the gear, transmitting power to the gear and causing it to rotate. The gear meshes with a fixed surface, allowing the fixed surface to move under the drive of the gear. This structural design not only improves the operating efficiency of the food container rotation device but also enhances its operational stability, ensuring that the food container linkage device can accurately reach the designated position during rotation, thereby improving the stability and reliability of the food container rotation device.
[0022] Preferably, the driving component further includes a transmission component, which is rotatably connected to the first body and meshes with the gear and the fixed surface respectively.
[0023] In this solution, the transmission component is rotatably connected to the first body and meshes with the gear and the fixed surface respectively, ensuring that the power is smoothly transmitted from the motor to the fixed surface through the gear, thereby achieving precise movement of the fixed surface.
[0024] Preferably, the food box rotating device further includes a second body, the second body having a second receiving cavity with an opening, and the driving member being disposed in the second receiving cavity;
[0025] The first body includes a first connecting portion, one end of which is connected to the fixed surface, and the other end of which extends from the opening into the second receiving cavity to mesh with the gear.
[0026] In this design, the second receiving cavity not only provides a stable mounting space for the drive component but also effectively protects it from external interference, enhancing its durability and reliability. Simultaneously, one end of the first connecting portion connects to the fixed surface, while the other end extends from the opening into the second receiving cavity to mesh with the gear, enabling the motor's power to be transmitted to the fixed surface.
[0027] Preferably, the first body further includes a sliding portion, which is connected to the first connecting portion and is slidably connected to the surface of the second body;
[0028] The extension direction of the second body is at least along the moving direction of the food box linkage device.
[0029] In this solution, the above-mentioned structural form is adopted. By sliding the sliding part to the surface of the second body, the movement of the fixed surface can be guided, thereby improving the stability and reliability of the movement of the fixed surface.
[0030] Preferably, the first body further includes a second connecting portion, a third connecting portion, and a fourth connecting portion, the two ends of the third connecting portion being connected to the second connecting portion and the fourth connecting portion respectively, and the fixing surface being slidably connected to the second connecting portion away from the third connecting portion and the fourth connecting portion away from the third connecting portion respectively, to form the first receiving cavity.
[0031] In this design, the two ends of the third connecting part are connected to the second connecting part and the fourth connecting part, respectively, and the fixing surface is slidably connected to the second connecting part away from the third connecting part and the fourth connecting part away from the third connecting part, thereby providing stable support for the fixing surface and ensuring the stability and reliability of the movement of the fixing surface. Furthermore, the second connecting part, the third connecting part, the fourth connecting part, and the fixing surface together form a first receiving cavity for placing the moving part and / or the fixed part, thereby providing protection for the moving part and / or the fixed part and improving its service life.
[0032] This utility model also discloses a cooking mechanism, which includes a food container linkage device and a food container rotation device as described in any of the above claims. The food container rotation device is connected to the food container linkage device and is used to drive the food container linkage device to move.
[0033] In this solution, the aforementioned structural form is adopted, applying the rotating food container device to the cooking mechanism. Through the cooperation of moving and fixed components, the rotating device enables the power supply function of the food container linkage device. Specifically, the receiving slot on the fixed component houses the first conductor, while the second conductor on the moving component is slidably connected to the receiving slot. One end of the second conductor extends into the receiving slot and makes electrical contact with the first conductor, while the other end is fixedly connected to the food container linkage device, thus enabling the first conductor to supply power to the linkage device. The extension direction of the receiving slot is consistent with the movement direction of the linkage device, ensuring the stability and reliability of the power supply and avoiding problems such as poor contact or power interruption caused by the sliding of the moving component during power supply. This structural form avoids the problem of excessive pulling of the wires due to tangling, improving the efficiency and stability of the power supply. It allows the rotating food container device to continuously and reliably transmit electrical energy during the movement of the linkage device, meeting the power supply needs of the linkage device at different movement positions. In addition, the second conductor is slidably connected to the receiving groove, thereby providing guidance for the movement of the second conductor through the receiving groove, which improves the stability and reliability of the movement of the second conductor.
[0034] The positive and progressive effects of this utility model are as follows:
[0035] The rotating food container device, through the cooperation of moving and fixed components, enables the power supply function of the food container linkage mechanism. Specifically, one end of the second conductor is slidably electrically connected to the first conductor, and the other end of the second conductor is fixedly electrically connected to the food container linkage mechanism. Furthermore, the extension direction of the first conductor is at least along the moving direction of the food container linkage mechanism, thus enabling the first conductor to supply power to the food container linkage mechanism. This ensures the stability and reliability of the power supply and avoids problems such as poor contact or power interruption caused by the sliding of moving components during the power supply process. This structural design avoids the problem of excessive pulling of the wires due to wire entanglement, improving the efficiency and stability of the power supply. This allows the rotating food container device to continuously and reliably transmit electrical energy during the movement of the food container linkage mechanism, meeting the power supply needs of the food container linkage mechanism at different moving positions. Attached Figure Description
[0036] Figure 1 This is a schematic diagram of the structure of the food box rotation device according to an embodiment of the present utility model.
[0037] Figure 2 This is a cross-sectional schematic diagram of the food box rotation device according to an embodiment of the present utility model.
[0038] Figure 3 This is a partial cross-sectional schematic diagram of the food box rotating device according to an embodiment of the present utility model.
[0039] Figure 4 This is a schematic diagram of the cooking mechanism according to an embodiment of the present invention.
[0040] Explanation of reference numerals in the attached figures:
[0041] Vegetable box rotating device 1
[0042] Movement part 10
[0043] Fastener 20
[0044] First receiving slot 201
[0045] First body 30
[0046] First receiving cavity 301
[0047] Through hole 302
[0048] Fixed surface 303
[0049] First connecting part 304
[0050] Vertical board 3041
[0051] Horizontal plate 3042
[0052] Second connecting part 305
[0053] Guide rail 3051
[0054] Third connecting part 306
[0055] Fourth connecting part 307
[0056] 308 clearance hole
[0057] Drive component 40
[0058] Motor 401
[0059] Gear 402
[0060] Transmission component 403
[0061] Second Body 50
[0062] Opening 501
[0063] Second receiving cavity 502
[0064] Through hole 503
[0065] Sliding part 60
[0066] 200 food container linkage device
[0067] 1000 cooking institutions Detailed Implementation
[0068] The present invention will be described more clearly and completely below with reference to the accompanying drawings, using a preferred embodiment.
[0069] like Figures 1 to 3As shown, this embodiment provides a food container rotating device 1, which is connected to a food container linkage device 200 and is used to drive the food container linkage device 200 to move. The food container rotating device 1 includes a moving part 10 and a fixing part 20. The fixing part 20 has a first receiving groove 201 for placing a first conductor. The moving part 10 has a second conductor, which is slidably connected to the first receiving groove 201. One end of the second conductor extends into the receiving groove 201 and makes electrical contact with the first conductor. The other end of the second conductor is fixedly electrically connected to the food container linkage device 200, so that the first conductor supplies power to the food container linkage device 200 through the second conductor. The extension direction of the first conductor is at least along the moving direction of the food container linkage device 200, and the extension directions of the first conductor and the first receiving groove 201 are the same. Specifically, the food container rotating device 1 realizes the power supply function of the food container linkage device 200 through the cooperation of the moving part 10 and the fixing part 20. Specifically, the first receiving groove 201 on the fixing member 20 is used to place the first conductor, and the second conductor on the moving member 10 is slidably connected to the first receiving groove 201. One end of the second conductor extends into the first receiving groove 201 and makes electrical contact with the first conductor, while the other end is fixedly connected to the food container linkage device 200, thereby enabling the first conductor to supply power to the food container linkage device 200. The extension direction of the first receiving groove 201 is consistent with the movement direction of the food container linkage device 200, ensuring the stability and reliability of the power supply, while avoiding poor contact or power interruption caused by the sliding of the moving member 10 during the power supply process. This structural form avoids the problem of excessive pulling of the wires due to wire entanglement, improves the efficiency and stability of the power supply, and enables the food container rotation device 1 to continuously and reliably transmit electrical energy during the movement of the food container linkage device 200, meeting the power supply needs of the food container linkage device 200 at different moving positions. In addition, the second conductor is slidably connected to the first receiving groove 201, so that the receiving groove 201 can provide guidance for the movement of the second conductor, thereby improving the stability and reliability of the movement of the second conductor.
[0070] In this embodiment, it is preferable that the extending direction of the first receiving groove 201 is the same as the moving direction of the food box linkage device 200. In other embodiments, the first receiving groove 201 may also adopt other extending directions, which are not limited here.
[0071] like Figure 3 As shown, there are multiple first receiving slots 201, and each second conductor is arranged in a one-to-one correspondence with a first receiving slot 201. Specifically, each first receiving slot 201 contains a first conductor, and each second conductor makes electrical contact with each first conductor. This structural configuration further improves the stability and reliability of power supply from the first conductor to the second conductor.
[0072] This embodiment uses three first receiving slots 201 for illustrative purposes. In other embodiments, the number of first receiving slots 201 can be selected according to actual needs, and is not limited here.
[0073] In other embodiments, the moving part 10 may have a second receiving groove for placing the second conductor, and one end of the first conductor extends into the second receiving groove and is slidably connected to the second receiving groove; wherein the second receiving groove and the second conductor extend in the same direction; preferably, there are multiple second receiving grooves, and the first conductor and the second receiving groove are arranged in a one-to-one correspondence.
[0074] like Figure 2 and Figure 3 As shown, the food container rotating device 1 also includes a first body 30 with a first receiving cavity 301. The moving component 10 and the fixing component 20 are disposed within the first receiving cavity 301. The first body 30 includes a fixing surface 303 for housing the food container linkage device 200, and a through hole 302 communicating with the first receiving cavity 301 for the passage of a second conductive element. With this structure, the first receiving cavity 301 provides installation space for the moving component 10 and the fixing component 20, improving the compactness of the food container rotating device 1. Simultaneously, the first receiving cavity 301 protects the moving component 10 and the fixing component 20, extending their service life. The first body 30 not only stably supports the food container linkage device 200 but also allows the second conductive element to pass through and supply power to the food container linkage device 200 through the through hole 302, effectively avoiding interference problems.
[0075] In this embodiment, the fixing surface 303 is the upper surface of the first body 30. In other embodiments, the fixing surface 303 may be any other surface of the first body 30, and this is not limited here. In addition, in this embodiment, the through hole 302 is formed on the fixing surface 303 to facilitate the electrical connection between the second conductor and the food box linkage device 200. In other embodiments, the through hole 302 may be formed on any other surface of the first body 30, and this is not limited here.
[0076] The first body 30 is arranged circumferentially around the outer periphery of the cooking pot, thereby further improving the compactness of the structure of the food container rotating device 1.
[0077] like Figures 1 to 3As shown, in practical use, a clearance hole 308 is provided in the middle of the first body 30, and the cooking pot is placed in the clearance hole 308. Meanwhile, the food container linkage device 200 is circumferentially arranged on the fixed surface 303. With this structure, the fixed surface 303 can drive the food container linkage device 200 to rotate, allowing the food container linkage device 200 to move closer to or further away from a preset position of the cooking pot. This preset position refers to the position where the cooking pot flips towards one of the food container linkage devices 200. At this position, the food being cooked in the cooking pot can be tilted towards the food container linkage device 200, thus achieving a smooth transfer of food from the cooking pot to the food container linkage device 200.
[0078] like Figure 2 and Figure 3 As shown, the food box rotating device 1 also includes a driving component 40, which is connected to the fixed surface 303 and is used to drive the fixed surface 303 to move. Specifically, the driving component 40 includes a motor 401 and a gear 402. The driving end of the motor 401 is connected to the gear 402 and is used to drive the gear 402 to rotate. The fixed surface 303 meshes with the gear 402.
[0079] In practical use, the motor 401 serves as the power source, with its drive end connected to the gear 402. This allows the motor to transmit power to the gear 402, causing it to rotate. The gear 402 meshes with the fixed surface 303, enabling the fixed surface 303 to move under the drive of the gear 402. This structural design not only improves the operating efficiency of the food container rotating device 1 but also enhances its operational stability, ensuring that the food container linkage device 200 accurately reaches the designated position during rotation. This, in turn, improves the stability and reliability of the food container rotating device 1.
[0080] In addition, such as Figure 2 As shown, the driving component 40 also includes a transmission component 403, which is rotatably connected to the first body 30. The transmission component 403 meshes with both the gear 402 and the fixed surface 303. With this structure, the transmission component 403 is rotatably connected to the first body 30 and meshes with both the gear 402 and the fixed surface 303, ensuring that power is smoothly transmitted from the motor 401 to the fixed surface 303 via the gear 402, thereby achieving precise movement of the fixed surface 303.
[0081] In this embodiment, the transmission component 403 consists of two meshing transmission gears. In other embodiments, the type and number of transmission components 403 can be adjusted according to actual needs, and are not limited here.
[0082] like Figures 1 to 3As shown, the food container rotating device 1 also includes a second body 50, which has a second receiving cavity 502 with an opening 501. The driving member 40 is disposed in the second receiving cavity 502. The first body 30 includes a first connecting part 304, one end of which is connected to the fixed surface 303, and the other end of which extends from the opening 501 into the second receiving cavity 502 and meshes with the gear 402. With the above structure, the second receiving cavity 502 not only provides a stable installation space for the driving member 40, but also effectively protects the driving member 40 from external interference, enhancing the durability and reliability of the driving member 40. At the same time, the fact that one end of the first connecting part 304 is connected to the fixed surface 303, and the other end extends from the opening 501 into the second receiving cavity 502 and meshes with the gear 402, enables the power of the motor 401 to be transmitted to the fixed surface 303.
[0083] In addition, such as Figure 2 As shown, the first body 30 further includes a second connecting portion 305, a third connecting portion 306, and a fourth connecting portion 307. The two ends of the third connecting portion 306 are connected to the second connecting portion 305 and the fourth connecting portion 307, respectively. The fixing surface 303 is slidably connected to the second connecting portion 305 away from the third connecting portion 306 and the fourth connecting portion 307 away from the third connecting portion 306, respectively, to form a first receiving cavity 301. With this structure, the two ends of the third connecting portion 306 are connected to the second connecting portion 305 and the fourth connecting portion 307, respectively, and the fixing surface 303 is slidably connected to the second connecting portion 305 away from the third connecting portion 306 and the fourth connecting portion 307 away from the third connecting portion 306, thereby providing stable support for the fixing surface 303 and ensuring the stability and reliability of its movement. In addition, the second connecting part 305, the third connecting part 306, the fourth connecting part 307 and the fixing surface 303 together form a first receiving cavity 301 for placing the moving part 10 and the fixing part 20, thereby providing protection for the moving part 10 and the fixing part 20 through the first receiving cavity 301 and improving the service life of the moving part 10 and the fixing part 20.
[0084] It should be specifically noted that, in this embodiment, the second connecting portion 305 is closer to the clearance hole 308 than the fourth connecting portion 307. The second body 50 is located below the first body 30, and the second body 50 has a second receiving cavity 502 with a through hole 503. The third connecting portion 306 connects to the second body 50 and covers the through hole 503 to form the second receiving cavity 502. A gap exists between the third connecting portion 306 and the upper surface of the second body 50 near the clearance hole 308, forming an opening 501 between the third connecting portion 306 and the second body, thereby facilitating the first connecting portion 304 to extend into the second receiving cavity 502 through the opening 501. The gear 402 and the transmission gear disposed in the second receiving cavity 502 are rotatably connected to the second connecting portion 305, thereby facilitating the meshing of the transmission gear with the first connecting portion 304.
[0085] The second connecting part 305 is provided with a weight reduction hole, which can reduce the weight of the second connecting part 305, thereby helping to reduce the weight of the food box rotating device 1.
[0086] like Figure 2 As shown, in practical use, the first connecting part 304 includes a vertical plate 3041 and a horizontal plate 3042. The two ends of the vertical plate 3041 are connected to the fixed surface 303 and the horizontal plate 3042, respectively. The end of the horizontal plate 3042 away from the vertical plate 3041 extends from the opening 501 into the second receiving cavity 502 and meshes with the transmission gear. The vertical plate 3041 and the second connecting part 305 are arranged parallel to each other and in surface contact. The extending direction of the second connecting part 305 is the same as the moving direction of the food container linkage device 200. This allows the second connecting part 305 to guide the movement of the vertical plate 3041, thereby improving the stability and reliability of the vertical plate 3041's movement, which in turn helps to improve the stability and reliability of the fixed surface 303's movement.
[0087] like Figure 3 As shown, in this embodiment, the fixed surface 303 and the second connecting part 305 face the surface of the fixed surface 303. One of them is provided with a slider (not shown in the figure), and the other is provided with a guide rail 3051 that cooperates with the slider. The extension direction of the guide rail 3051 is the same as the movement direction of the fixed surface 303. Thus, the movement of the fixed surface 303 can be guided by the cooperation of the slider and the guide rail 3051, which improves the stability and reliability of the movement of the fixed surface 303.
[0088] It should be noted that in this embodiment, the number of guide rails 3051 is set to two for illustrative purposes. In other embodiments, the number of guide rails 3051 can be adjusted according to actual needs, and is not limited here.
[0089] like Figure 2As shown, the first body 30 also includes a sliding part 60, which is connected to the first connecting part 304 and slidably connected to the surface of the second body 50; wherein, the extending direction of the second body 50 is at least along the moving direction of the food container linkage device 200. By adopting the above structural form, the sliding connection between the sliding part 60 and the surface of the second body 50 provides guidance for the movement of the fixed surface 303, improving the stability and reliability of the movement of the fixed surface 303.
[0090] In practical use, the sliding part 60 is connected to the horizontal plate 3042, and the sliding part 60 is slidably connected to the surface of the second body 50 near the clearance hole 308. This structural form facilitates the connection of the sliding part 60.
[0091] In this embodiment, the extension direction of the second body 50 is the same as the movement direction of the food container linkage device 200. In other embodiments, the extension direction of the second body 50 can be adjusted according to actual needs, and is not limited here.
[0092] like Figure 4 As shown, this embodiment also provides a cooking mechanism 1000, which includes a food container linkage device 200 and a food container rotation device 1. The food container rotation device 1 is connected to the food container linkage device 200 and is used to drive the food container linkage device 200 to move. Using the above structural form, the food container rotation device 1 is applied to the cooking mechanism 1000, and the food container rotation device 1, through the cooperation of the moving part 10 and the fixing part 20, realizes the power supply function of the food container linkage device 200. Specifically, the receiving groove 201 on the fixing part 20 is used to place the first conductor, and the second conductor on the moving part 10 is slidably connected to the receiving groove 201, with one end extending into the receiving groove 201 and making electrical contact with the first conductor, and the other end fixedly connected to the food container linkage device 200, thereby realizing the power supply of the food container linkage device 200 by the first conductor. The extension direction of the receiving groove 201 is consistent with the movement direction of the food container linkage device 200, ensuring the stability and reliability of the power supply, while avoiding problems such as poor contact or power interruption caused by the sliding of the moving part 10 during the power supply process. This structural form avoids the problem of excessive pulling of the wires due to wire entanglement, improving the efficiency and stability of the power supply. This allows the food container rotation device 1 to continuously and reliably transmit electrical energy during the movement of the food container linkage device 200, meeting the power supply needs of the food container linkage device 200 at different moving positions. Furthermore, the second conductor is slidably connected to the receiving groove 201, thereby providing guidance for the movement of the second conductor through the receiving groove 201, improving the stability and reliability of the second conductor's movement.
[0093] While specific embodiments of this utility model have been described above, those skilled in the art should understand that these are merely illustrative examples, and the scope of protection of this utility model is defined by the appended claims. Those skilled in the art can make various changes or modifications to these embodiments without departing from the principles and essence of this utility model, but all such changes and modifications fall within the scope of protection of this utility model.
Claims
1. A rotating device for a food container, characterized in that, The food container rotating device is connected to the food container linkage device and is used to drive the food container linkage device to move. The food container rotating device includes a moving part and a fixed part. The fixed part is provided with a first conductor, and the moving part is provided with a second conductor. One end of the second conductor is slidably electrically connected to the first conductor, and the other end of the second conductor is fixedly electrically connected to the food container linkage device, so that the first conductor supplies power to the food container linkage device through the second conductor. Wherein, the extension direction of the first conductor is at least along the moving direction of the food box linkage device.
2. The vegetable box rotating device as described in claim 1, characterized in that, The fixing member has a first receiving groove for placing the first conductor. The end of the second conductor away from the vegetable box linkage device extends into the first receiving groove and makes electrical contact with the first conductor. The second conductor is slidably connected to the first receiving groove. The first receiving groove and the first conductor extend in the same direction. Alternatively, the moving part may have a second receiving groove for placing the second conductor, one end of the first conductor extending into the second receiving groove and making electrical contact with the second conductor, and the first conductor and the second receiving groove being slidably connected; wherein the second receiving groove and the second conductor extend in the same direction.
3. The vegetable box rotating device as described in claim 2, characterized in that, There are multiple first receiving slots, and the second conductors are arranged in a one-to-one correspondence with the first receiving slots; Alternatively, there may be multiple second receiving slots, with the first conductor and the second receiving slot being configured in a one-to-one correspondence.
4. The vegetable box rotating device as described in claim 1, characterized in that, The food box rotating device further includes a first body with a first receiving cavity, the moving part and / or the fixing part being disposed in the first receiving cavity, the first body including a fixing surface for placing the food box linkage device, and the first body having a through hole communicating with the first receiving cavity for the second conductive body to pass through.
5. The vegetable box rotating device as described in claim 4, characterized in that, The first body is arranged circumferentially around the outer periphery of the cooking pot.
6. The vegetable box rotating device as described in claim 4, characterized in that, The rotating device for the food container also includes a driving component, which is connected to the fixed surface and is used to drive the fixed surface to move. The driving component includes a motor and a gear. The driving end of the motor is connected to the gear to drive the gear to rotate. The fixed surface meshes with the gear.
7. The vegetable box rotating device as described in claim 6, characterized in that, The driving component further includes a transmission component, which is rotatably connected to the first body and meshes with the gear and the fixed surface respectively.
8. The vegetable box rotating device as described in claim 6, characterized in that, The food box rotating device also includes a second body, the second body having a second receiving cavity with an opening, and the driving member being disposed in the second receiving cavity; The first body includes a first connecting portion, one end of which is connected to the fixed surface, and the other end of which extends from the opening into the second receiving cavity to mesh with the gear.
9. The vegetable box rotating device as described in claim 8, characterized in that, The first body further includes a sliding portion, which is connected to the first connecting portion and is slidably connected to the surface of the second body; The extension direction of the second body is at least along the moving direction of the food box linkage device.
10. The vegetable box rotating device as described in claim 4, characterized in that, The first body further includes a second connecting portion, a third connecting portion, and a fourth connecting portion. The two ends of the third connecting portion are respectively connected to the second connecting portion and the fourth connecting portion. The fixed surface is slidably connected to the second connecting portion away from the third connecting portion and the fourth connecting portion away from the third connecting portion, respectively, to form the first receiving cavity.
11. A cooking apparatus, characterized in that, The cooking mechanism includes a food container linkage device and a food container rotation device as described in any one of claims 1-10, wherein the food container rotation device is connected to the food container linkage device and is used to drive the food container linkage device to move.