Container main body and cooking container

By arranging an anti-slip layer and a limit part on the main body of the container body, the problem of tilting and sliding of the frying pan on the stove is solved, higher stability and safety are achieved, and it is suitable for various support frame specifications.

CN223298877UActive Publication Date: 2025-09-05WUHAN SUPOR COOKWARE
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Patent Information

Application Number
CN202422536001.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-18
Publication Date
2025-09-05
Estimated Expiration
2034-10-18

AI Technical Summary

Technical Problem

The bottom of the wok is round, which causes the center of gravity to shift. When placed on the stove, it is easy to tilt and slide sideways, affecting the stability and safety of cooking activities.

Method used

An anti-slip layer is provided on the main body of the container body. The roughness of the anti-slip layer is greater than that of the main body, and a limiting portion is provided on the side away from the main body. The position where the support frame contacts the container body is located within the limiting portion. The friction and stability are improved by the limiting protrusion and the anti-slip layer.

Benefits of technology

The friction between the container body and the support frame is improved, the possibility of the container body sliding relative to the support frame is reduced, the stability and safety after being placed on the support frame are enhanced, and it is suitable for various support frame specifications.

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Abstract

The utility model relates to a container main body placed on a supporting frame and a cooking container, the container main body comprises a main body part, an anti-skid layer is arranged on the main body part, the roughness of the anti-skid layer is larger than that of the main body part, and when the container main body is placed on the supporting frame, the anti-skid layer is located between the main body part and the supporting frame; the possibility that the container body slides relative to the supporting frame is reduced, and the stability of the container body placed on the supporting frame is improved. A limiting part is arranged on the side, away from the main body part, of the anti-skid layer, when the container main body is placed on the supporting frame, the position, making contact with the container main body, of the supporting frame is located in the limiting part, and when the container main body slides and inclines relative to the supporting frame, the supporting frame can abut against the limiting part so as to limit the sliding angle of the container main body relative to the supporting frame; the possibility that the container body continues to slide relative to the supporting frame is reduced, and the stability of the container body placed on the supporting frame is further improved.
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Description

Technical Field

[0001] The present application relates to the technical field of kitchen utensils, and in particular to a container body and a cooking container. Background Art

[0002] The wok has a round bottom and a handle on the side, which is suspended outside the wok body, causing the wok's center of gravity to shift. When the wok is placed on the stove to heat, it is prone to tilting and sliding, which is not conducive to cooking activities. Utility Model Content

[0003] The present application provides a container body and a cooking container, which are used to solve the problem that the container body is prone to tilting and sliding after being placed on a support frame.

[0004] The embodiment of the present application provides a container body, which is placed on a support frame and includes:

[0005] Main body;

[0006] an anti-slip layer, the anti-slip layer being provided on the main body, and being located between the main body and the support frame when the container body is placed on the support frame;

[0007] Among them, the roughness of the anti-slip layer is greater than the roughness of the main body, and a limiting portion is provided on the side of the anti-slip layer away from the main body. When the container body is placed on the support frame, the position where the support frame contacts the container body is located within the limiting portion.

[0008] The main body is provided with an anti-slip layer, which can increase the friction between the container body and the support frame, reduce the possibility of the container body sliding relative to the support frame, and improve the stability of the container body after being placed on the support frame. The contact point between the support frame and the container body is located within the limiter. When the container body slides relative to the support frame, causing the container body to tilt, the support frame can abut against the limiter to limit the angle at which the container body can slide relative to the support frame, reducing the possibility of the container body continuing to slide relative to the support frame. This helps to further improve the stability of the container body after being placed on the support frame and the safety of the container body during use.

[0009] In a possible embodiment, the anti-slip layer is located at the bottom of the main body, and along the height direction of the container body, the height of the anti-slip layer is 1 / 2 to 2 / 3 of the height of the main body.

[0010] The anti-slip layer is used to increase the friction between the container body and the support frame. If the height of the anti-slip layer is less than 1 / 2 of the height of the main body along the height direction of the container body, the possibility of the main body contacting the support frame after the container body is placed on the support frame increases. Since the roughness of the main body is small, it is easy to slide relative to the support frame, resulting in poor stability of the container body after being placed on the support frame. The bottom of the container body abuts the support frame, and the possibility of its top opening contacting the support frame is small. If the height of the anti-slip layer is greater than 2 / 3 of the height of the main body, the weight of the container body increases, which is inconvenient for users to use and also increases the production cost of the container body. Therefore, the height of the anti-slip layer can be 1 / 2, 2 / 3, etc. of the height of the main body, preferably 2 / 3, so that after the container body is placed on the support frame, the support frame abuts against the anti-slip layer. At the same time, the weight of the container body and the production cost can be reduced.

[0011] In a possible embodiment, the anti-slip layer is formed by depositing powder material.

[0012] The powder deposition method makes the anti-slip layer and the main body more tightly bonded, reduces the possibility of the anti-slip layer falling off, and facilitates the control of the roughness of the anti-slip layer, so that the container body can be suitable for a variety of usage environments.

[0013] In a possible embodiment, the anti-slip layer and the main body are made of different materials.

[0014] The anti-slip layer and the main body are made of different materials, so that the container body can have the properties of different materials at the same time, thereby increasing the scope of application of the container body.

[0015] In a possible embodiment, the limiting portion includes at least two limiting protrusions, and along the height direction of the container body, at least two of the limiting protrusions are arranged at intervals.

[0016] After the container body is placed on the support frame, the support frame contacts the anti-slip layer. If the container body tilts, the limiting protrusions contact the support frame to reduce the possibility of further tilting. The container body is placed on the support frame. Different models of support frames contact the container body at different locations. The number of limiting protrusions along the height of the container body can be two, three, or four, allowing the container body to be compatible with support frames of different specifications, thereby expanding the container body's applicability.

[0017] In a possible embodiment, the support frame includes a support foot, which abuts against the container body; along the height direction of the container body, the distance between two adjacent limiting protrusions is greater than or equal to the size of the abutment area between the support foot and the container body.

[0018] The support frame has multiple support legs arranged symmetrically with respect to the center, and the support legs abut against the container body. The spacing between two adjacent limiting protrusions is greater than or equal to the size of the abutting area between the support legs and the container body, so that limiting protrusions are provided on the upper and lower sides of the position where the support legs abut against the container body. When the container body slides relative to the support frame, it can abut against the limiting protrusions to reduce the possibility of the container body continuing to slide relative to the support frame.

[0019] In a possible embodiment, the cross-section of the limiting protrusion is semicircular.

[0020] The limiting protrusion with a semicircular cross section is easy to process and can improve the production efficiency of the container body.

[0021] In a possible embodiment, the radius of the cross section of the limiting protrusion is greater than or equal to 3 mm to 5 mm.

[0022] After the container body slides relative to the support frame, it will abut against the limiting protrusion to limit the relative position between the container body and the support frame, reducing the possibility of the container body continuing to slide relative to the support frame. If the cross-sectional radius of the limiting protrusion is less than 3mm, the size of the limiting protrusion protruding from the anti-slip layer is small. When the container body slides relative to the support frame, the support frame's legs will easily cross the limiting protrusion after abutting against the limiting protrusion, causing the container body to continue to slide relative to the support frame, which may easily lead to problems such as the container body's tilt angle being too large or the container body falling. If the cross-sectional radius of the limiting protrusion is greater than 5mm, the weight of the limiting protrusion will be greater, thereby increasing the weight of the container body and the production cost. Therefore, the cross-sectional radius of the limiting protrusion can be 3mm, 4mm, 5mm, etc., preferably 3mm, to improve the limiting effect of the limiting protrusion and improve the stability of the container body after being placed on the support frame.

[0023] In a possible embodiment, the anti-slip layer includes a first area and a second area, the first area is located between adjacent limiting protrusions, and the roughness of the first area is greater than that of the second area.

[0024] After the container body is placed on the support frame, the support legs in the support frame abut against the first area. The first area has a large roughness, which can reduce the possibility of the container body sliding relative to the support frame, making the container body more stable after being placed on the support frame.

[0025] An embodiment of the present application also provides a cooking container, which includes a container body and a container lid, wherein the container lid is buckled onto the container body, and the container body is any one of the container bodies described above, so the cooking container has the technical effects of any one of the container bodies described above.

[0026] The present application relates to a container body and a cooking container placed on a support frame. The container body includes a main body portion, on which an anti-slip layer is provided. The roughness of the anti-slip layer is greater than that of the main body portion. When the container body is placed on the support frame, the anti-slip layer is located between the main body portion and the support frame, reducing the possibility of the container body sliding relative to the support frame and improving the stability of the container body after being placed on the support frame. A limiting portion is provided on the side of the anti-slip layer away from the main body portion. When the container body is placed on the support frame, the position where the support frame contacts the container body is located within the limiting portion. When the container body slides and tilts relative to the support frame, the support frame can abut against the limiting portion to limit the angle at which the container body can slide relative to the support frame, reducing the possibility of the container body continuing to slide relative to the support frame, and further improving the stability of the container body after being placed on the support frame.

[0027] It should be understood that the foregoing general description and the following detailed description are merely illustrative and are not restrictive of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 A schematic structural diagram of the container body provided in an embodiment of the present application;

[0029] Figure 2 A schematic diagram of the structure of the container body provided in an embodiment of the present application placed on a support frame;

[0030] Figure 3 for Figure 2 A partial enlarged view of the I position in the middle.

[0031] Reference numerals:

[0032] 1-support frame;

[0033] 11- Support legs;

[0034] 2-Main body;

[0035] 3- Anti-slip layer;

[0036] 31-First area;

[0037] 32-Second area;

[0038] 4-Limiting protrusion.

[0039] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application. DETAILED DESCRIPTION

[0040] In order to better understand the technical solution of the present application, the embodiments of the present application are described in detail below with reference to the accompanying drawings.

[0041] It should be clear that the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of this application.

[0042] The terms used in the embodiments of the present application are for the purpose of describing specific embodiments only and are not intended to limit the present application. The singular forms "a", "an", "the" and "the" used in the embodiments of the present application and the appended claims are also intended to include plural forms unless the context clearly indicates otherwise.

[0043] It should be understood that the term "and / or" as used herein is merely a description of the relationship between associated objects, indicating that three possible relationships exist. For example, "A and / or B" can represent: A exists alone, A and B exist simultaneously, or B exists alone. Furthermore, the character " / " in this document generally indicates that the associated objects are in an "or" relationship.

[0044] It should be noted that the directional words such as "upper", "lower", "left", and "right" described in the embodiments of the present application are described based on the angles shown in the accompanying drawings and should not be understood as limiting the embodiments of the present application. In addition, in the context, it should be understood that when it is mentioned that an element is connected to another element "on" or "under", it can not only be directly connected to the other element "on" or "under", but also be indirectly connected to the other element "on" or "under" through an intermediate element.

[0045] like Figure 1 and Figure 2 As shown, an embodiment of the present application provides a container body, which is placed on a support frame 1. The container body includes a main body 2 and an anti-slip layer 3. The anti-slip layer 3 is provided on the main body 2, and the roughness of the anti-slip layer 3 is greater than that of the main body 2. After the container body is placed on the support frame 1, the anti-slip layer 3 is located between the main body 2 and the support frame 1. A limit portion is provided on the side of the anti-slip layer 3 away from the main body 2. When the container body is placed on the support frame 1, the contact point between the support frame 1 and the container body is located within the limit portion.

[0046] The container body can be a round-bottomed cookware, and an anti-slip layer 3 is provided on the main body 2. This can increase the friction between the container body and the support frame 1, reduce the possibility of the container body sliding relative to the support frame 1, and improve the stability of the container body after being placed on the support frame 1. The contact point between the support frame 1 and the container body is located within the limit portion. When the container body slides relative to the support frame 1, causing the container body to tilt, the support frame 1 can abut against the limit portion to limit the angle at which the container body can slide relative to the support frame 1, reducing the possibility of the container body continuing to slide relative to the support frame 1. This is conducive to further improving the stability of the container body after being placed on the support frame 1, as well as the safety of the container body during use.

[0047] In a possible embodiment, the anti-slip layer 3 is formed by powder deposition, specifically by applying a powder coating to the main body 2 by powder spraying, thermal spraying, or the like.

[0048] The powder deposition process involves heating the material for the anti-slip layer 3 to a molten or semi-molten state. This powder is then sprayed onto the main body 2 using a high-speed airflow. After cooling, it is fixed to the main body 2 to form the anti-slip layer 3. This creates a tighter bond between the anti-slip layer 3 and the main body 2, reducing the likelihood of the anti-slip layer 3 falling off. When spraying the powder onto the main body 2, the larger the powder particle size, the higher the roughness of the anti-slip layer 3; the lower the powder spray density, the higher the roughness of the anti-slip layer 3. This powder deposition method facilitates control of the roughness of the anti-slip layer 3, making the container body suitable for a variety of usage environments.

[0049] In a possible embodiment, the anti-slip layer 3 is formed by powder deposition, so that the anti-slip layer 3 and the main body 2 are made of different materials.

[0050] The anti-slip layer 3 and the main body 2 are made of different materials, allowing the container body to simultaneously exhibit the properties of different materials, thereby expanding the container body's applicability. For example, if the main body 2 is made of aluminum alloy, aluminum alloy has excellent thermal conductivity, enabling rapid heating of food within the main body 2, reducing cooking time and energy requirements. Furthermore, aluminum alloy has a lower density, reducing the weight of the container body for the same dimensions, making it more user-friendly. The anti-slip layer 3 can be made of a magnetically conductive material such as iron or steel, making the container body suitable for induction cooktops.

[0051] like Figure 1 and Figure 2 As shown, in one possible embodiment, the anti-slip layer 3 is located at the bottom of the main body 2 to cover the area where the bottom of the main body 2 may contact the support frame 1. Along the height direction of the container body, the height of the anti-slip layer 3 is 1 / 2 to 2 / 3 of the height of the main body 2.

[0052] The anti-slip layer 3 is used to increase the friction between the container body and the support frame 1. If the height of the anti-slip layer 3 is less than 1 / 2 of the height of the main body 2 along the height direction of the container body, the main body 2 is more likely to contact the support frame 1 after the container body is placed on the support frame 1. Since the roughness of the main body 2 is relatively small, it is easy to slide relative to the support frame 1, resulting in poor stability of the container body after being placed on the support frame 1. The bottom of the container body abuts the support frame 1, and the top opening is less likely to contact the support frame 1. If the height of the anti-slip layer 3 is greater than 2 / 3 of the height of the main body 2, the weight of the container body increases, which is inconvenient for users to use and also increases the production cost of the container body. Therefore, the height of the anti-slip layer 3 can be 1 / 2, 2 / 3, etc. of the height of the main body 2, preferably 2 / 3, so that after the container body is placed on the support frame 1, the support frame 1 abuts against the anti-slip layer 3. At the same time, the weight of the container body and the production cost can be reduced.

[0053] like Figure 1 and Figure 2 As shown, in a possible embodiment, the limiting portion includes at least two limiting protrusions 4, and along the height direction of the container body, the at least two limiting protrusions 4 are arranged at intervals.

[0054] After the container body is placed on the support frame 1, the support frame 1 abuts the anti-slip layer 3. If the container body tilts, the limiting protrusions 4 abut against the support frame 1 to reduce the possibility of the container body further tilting. When a round-bottomed container body is placed on the support frame 1, different sizes of the support frame 1 abut against the container body at different locations along the height of the container body. The number of limiting protrusions 4 along the height of the container body can be two, three, four, or other, allowing the container body to be compatible with support frames 1 of different sizes, thereby increasing the container body's applicability.

[0055] like Figure 2 and Figure 3 As shown, in one possible embodiment, the support frame 1 includes a plurality of legs 11, which abut against the container body. Along the height direction of the container body, the distance between two adjacent limiting protrusions 4 is greater than or equal to the size of the abutment area between the legs 11 and the container body.

[0056] The support frame 1 has a plurality of support legs 11 arranged symmetrically with respect to the center, and the support legs 11 abut against the container body. The spacing between two adjacent limiting protrusions 4 is greater than or equal to the size of the abutting area between the support legs 11 and the container body, so that limiting protrusions 4 are provided on both the upper and lower sides of the position where the support legs 11 abut against the container body. When the container body slides relative to the support frame 1, it can abut against the limiting protrusions 4 to reduce the possibility of the container body continuing to slide relative to the support frame 1.

[0057] The limiting protrusion 4 is located within the range of the anti-slip layer 3. If the support leg 11 passes over the limiting protrusion 4, the support leg 11 abuts against the anti-slip layer 3, which can reduce the possibility of the container body continuing to slide relative to the support frame 1.

[0058] In a possible embodiment, the limiting protrusion 4 protrudes from the anti-slip layer 3 , and the cross-section of the limiting protrusion 4 is semicircular.

[0059] During the process of powder deposition to form the anti-slip layer 3, the amount of powder material deposited is increased to form the limiting protrusion 4. The limiting protrusion 4 with a semicircular cross section is easy to process and can improve the production efficiency of the container body.

[0060] In a possible embodiment, the cross-sectional radius of the limiting protrusion 4 with a semicircular cross-section is 3 mm to 5 mm.

[0061] After the container body slides relative to the support frame 1, it will abut against the limiting protrusion 4 to limit the relative position between the container body and the support frame 1, reducing the possibility of the container body continuing to slide relative to the support frame 1. If the cross-sectional radius of the limiting protrusion 4 is less than 3mm, the size of the limiting protrusion 4 protruding from the anti-slip layer 3 is small. When the container body slides relative to the support frame 1, the support legs 11 of the support frame 1 are likely to cross the limiting protrusion 4 after abutting against the limiting protrusion 4, causing the container body to continue to slide relative to the support frame 1, which may easily lead to problems such as the container body tilting angle being too large or the container body falling. If the cross-sectional radius of the limiting protrusion 4 is greater than 5mm, the weight of the limiting protrusion 4 is large, thereby increasing the weight of the container body and the production cost. Therefore, the cross-sectional radius of the limiting protrusion 4 can be 3mm, 4mm, 5mm, etc., preferably 3mm, to improve the limiting effect of the limiting protrusion 4 and improve the stability of the container body after being placed on the support frame 1.

[0062] like Figure 2 and Figure 3 As shown, in a possible embodiment, the anti-slip layer 3 includes a first area 31 and a second area 32. The first area 31 is located between adjacent limiting protrusions 4 of the limiting portion, and the second area 32 is located outside the limiting portion. The roughness of the first area 31 is greater than that of the second area 32.

[0063] After the container body is placed on the support frame 1, the support legs 11 in the support frame 1 abut against the first area 31. The roughness of the first area 31 is relatively large, which can reduce the possibility of the container body sliding relative to the support frame 1, making the container body more stable after being placed on the support frame 1.

[0064] An embodiment of the present application also provides a cooking container, including a container body and a container lid, the container lid being buckled onto the container body, and the container body being any of the container bodies described above, so the cooking container has the technical effects of any of the container bodies described above.

[0065] The present application relates to a container body and a cooking container placed on a support frame 1. The container body includes a main body 2, on which an anti-slip layer 3 is provided. The roughness of the anti-slip layer 3 is greater than that of the main body 2. When the container body is placed on the support frame 1, the anti-slip layer 3 is located between the main body 2 and the support frame 1, reducing the possibility of the container body sliding relative to the support frame 1 and improving the stability of the container body after being placed on the support frame 1. A limiting portion is provided on the side of the anti-slip layer 3 away from the main body 2. When the container body is placed on the support frame 1, the position where the support frame 1 contacts the container body is located within the limiting portion. When the container body slides and tilts relative to the support frame 1, the support frame 1 can abut against the limiting portion to limit the angle at which the container body can slide relative to the support frame 1, reducing the possibility of the container body continuing to slide relative to the support frame 1 and further improving the stability of the container body after being placed on the support frame 1.

[0066] The above description is merely a preferred embodiment of the present application and is not intended to limit the present application. Various modifications and variations are possible for those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present application shall be included within the scope of protection of the present application.

Claims

1. A container body, the container body being placed on a support frame (1), characterized in that: The container body comprises: Main body (2); an anti-slip layer (3), the anti-slip layer (3) being arranged on the main body (2); when the container body is placed on the support frame (1), the anti-slip layer (3) is located between the main body (2) and the support frame (1); The roughness of the anti-slip layer (3) is greater than the roughness of the main body (2), and a limiting portion is provided on a side of the anti-slip layer (3) away from the main body (2). When the container body is placed on the support frame (1), the position where the support frame (1) contacts the container body is located within the limiting portion.

2. The container body according to claim 1, wherein: The anti-slip layer (3) is located at the bottom of the main body (2), and along the height direction of the container body, the height of the anti-slip layer (3) is 1 / 2 to 2 / 3 of the height of the main body (2).

3. The container body according to claim 1, wherein: The anti-slip layer (3) is formed by depositing powder material.

4. The container body according to claim 1, wherein: The anti-slip layer (3) and the main body (2) are made of different materials.

5. The container body according to claim 1, wherein: The limiting portion comprises at least two limiting protrusions (4), and along the height direction of the container body, at least two of the limiting protrusions (4) are arranged at intervals.

6. The container body according to claim 5, characterized in that The support frame (1) comprises a support foot (11), and the support foot (11) abuts against the container body; along the height direction of the container body, the distance between two adjacent limiting protrusions (4) is greater than or equal to the size of the abutment area between the support foot (11) and the container body.

7. The container body according to claim 5, characterized in that The cross section of the limiting protrusion (4) is semicircular.

8. The container body according to claim 7, wherein: The radius of the cross section of the limiting protrusion (4) is greater than or equal to 3 mm to 5 mm.

9. The container body according to claim 5, wherein: The anti-slip layer (3) comprises a first area (31) and a second area (32); the first area (31) is located between adjacent limiting protrusions (4); and the roughness of the first area (31) is greater than the roughness of the second area (32).

10. A cooking container, characterized in that: The cooking container comprises a container body and a container cover, wherein the container cover is buckled onto the container body, and the container body is the container body according to any one of claims 1 to 9.