Energy gathering support pot rack and gas stove
By designing an energy-concentrating pot support, the difference in vertical distance between the first and second legs is used to control the safe distance between the pot and the flame, solving the problem of the flame burning the disc-shaped structure and achieving a highly efficient heating effect that adapts to different pot shapes.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- QINGDAO HAIER WISDOM KITCHEN APPLIANCE CO LTD
- Filing Date
- 2025-04-25
- Publication Date
- 2026-06-05
AI Technical Summary
During cooking, the flame can easily burn to the inner edge of the disc-shaped structure of the existing gas stove's pot support, affecting the energy concentration effect.
Design an energy-concentrating pot support, including a first leg and a second leg, with a vertical distance difference of less than 15mm between the two, to ensure that the vertical distance between the bottom of the pot and the flame is within a safe range regardless of whether the pot is placed upright or upside down, thus preventing the flame from burning the disc-shaped structure.
It effectively prevents flames from burning the disc-shaped structure, improves energy concentration, adapts to cookware of different shapes, and ensures safe and efficient heating during cooking.
Smart Images

Figure CN224327244U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of gas stove technology, and in particular to a gas stove with a high-efficiency pot support. Background Technology
[0002] Gas stoves are being used more and more frequently these days. In actual use, pots and pans are usually placed on the stove support.
[0003] With the increasing variety of food options and higher demands for cooking quality, different shapes of cookware are used when cooking different ingredients. Related technologies include pot supports with a concentrating plate and multiple pot legs. During cooking, flames may burn the inner edge of the concentrating plate, thus affecting its energy concentration effect.
[0004] In view of the above, this application is hereby submitted. Utility Model Content
[0005] To address the issue that existing pot supports with a disc-shaped structure may burn the inner edge of the disc-shaped structure during cooking, thus affecting the energy-concentrating effect.
[0006] This application proposes an energy-concentrating pot support assembly, which includes a first energy-concentrating support component. The first energy-concentrating support component is configured as a disc-shaped structure, and a through hole is provided at the center of the first energy-concentrating support component. Multiple first legs are arranged circumferentially on the inner side of the first energy-concentrating support component, and multiple second legs are arranged circumferentially on the outer bottom surface of the first energy-concentrating support component. The first legs and the second legs have different support surfaces.
[0007] Define the vertical distance between the top surface of the first support and the edge of the through hole as H1, and define the vertical distance between the top surface of the second support and the edge of the through hole as H2.
[0008] Where the difference between H1 and H2 is less than 15 mm, or H1 = H2.
[0009] In one possible embodiment, the top of the first leg is provided with a downwardly inclined support surface, and the top surface of the second leg is provided with a parallel support surface.
[0010] Alternatively, the top of the first leg has a flat support surface, and the top surface of the second leg has a downward-sloping support surface.
[0011] In one possible implementation, the energy-concentrating pot support further includes a second energy-concentrating support component disposed on the outer bottom surface of the first energy-concentrating support component. The opening direction of the first energy-concentrating support component and the opening direction of the second energy-concentrating support component are arranged in opposite directions. The second support leg is disposed on the inner side surface of the second energy-concentrating support component.
[0012] In one possible implementation, the downwardly inclined support surface forms an angle of 16°-20° with the horizontal direction.
[0013] In one possible implementation, the first energy-concentrating support component includes a first energy-concentrating disk, which includes a first inner disk and a first outer disk. The first inner disk and the first outer disk are connected, and a first cavity is formed between the first inner disk and the first outer disk. The first inner disk includes a first arc-shaped structure protruding toward the first outer disk.
[0014] In one possible implementation, the second energy-concentrating support component includes a second energy-concentrating disk, which includes a second inner disk and a second outer disk. The second inner disk and the second outer disk are fixedly connected, and a second cavity is formed between the second inner disk and the second outer disk. The second inner disk includes a second arc-shaped structure protruding toward the second outer disk.
[0015] In one possible implementation, the curvature of the first arc structure is greater than that of the second arc structure.
[0016] In one possible implementation, the first inner disc body includes a first plate, a second plate, and a third plate connected in sequence. The edge of the first plate away from the second plate is connected to one edge of the first outer disc body, and the edge of the third plate away from the second plate is connected to the other edge of the first outer disc body. A set distance is spaced between the second plate and the first outer disc body.
[0017] The second plate is configured to be recessed from top to bottom.
[0018] In one possible implementation, four first legs are provided, and the four first legs are evenly distributed on the inner side of the first energy-concentrating support component.
[0019] In one possible implementation, the energy-concentrating support is mounted on the burner, and the minimum distance between two first legs arranged opposite each other along the diametrical direction of the first energy-concentrating support component is greater than the diameter of the burner, wherein the minimum distance is the minimum value of the distance between all pairs of points on the geometric surface of the two first legs.
[0020] In one possible implementation, the energy-concentrating support is mounted on the burner, and the minimum distance between two second legs arranged opposite each other along the diametrical direction of the second energy-concentrating support component is greater than the diameter of the burner, wherein the minimum distance is the minimum value of the distance between all pairs of points on the geometric surface of the two second legs.
[0021] This application provides an energy-concentrating pot support that can support both pointed-bottom and flat-bottomed pots, offering better adaptability.
[0022] The energy-concentrating pot support proposed in this application includes a first energy-concentrating support component with a disc-shaped structure. The first energy-concentrating support component has a through hole at its center, a first support leg on its inner side, and a second support leg on its outer bottom surface. The difference between the vertical distance between the first support leg and the edge of the through hole and the vertical distance between the second support leg and the edge of the through hole is set, so that the vertical distance between the bottom surface of the pot and the flame is limited to a safe range whether the energy-concentrating pot support is placed upright or in reverse, thus preventing the flame from burning the disc-shaped structure during cooking.
[0023] Secondly, this application provides a gas stove, which includes the aforementioned pot support.
[0024] By combining the aforementioned pot support with the gas stove, the flames can be prevented from burning the plate-shaped structure during cooking. Attached Figure Description
[0025] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0026] Figure 1 This is a schematic diagram of the structure of one type of energy-concentrating boiler support provided in the embodiments of this application;
[0027] Figure 2 Another structural schematic diagram of one of the energy-concentrating boiler supports provided in the embodiments of this application;
[0028] Figure 3 Another structural schematic diagram of one of the energy-concentrating boiler supports provided in the embodiments of this application;
[0029] Figure 4 This is a schematic diagram of another energy-concentrating boiler support provided in an embodiment of this application;
[0030] Figure 5 Another structural schematic diagram of a different energy-concentrating boiler support provided in one embodiment of this application;
[0031] Figure 6 for Figure 5 A magnified view of position A in the middle;
[0032] Figure 7 Another structural schematic diagram of a different energy-concentrating boiler support provided in an embodiment of this application;
[0033] Figure 8 for Figure 7 A cross-sectional view at position BB in the middle;
[0034] Figure 9A top view of another energy-concentrating pot support provided in an embodiment of this application;
[0035] Figure 10 for Figure 9 A cross-sectional view at position AA in the middle;
[0036] Figure 11 for Figure 10 A magnified view of position B in the middle;
[0037] Figure 12 This is a schematic diagram of another energy-concentrating boiler support provided in an embodiment of this application;
[0038] Figure 13 A schematic diagram of another energy-concentrating boiler support provided in this application;
[0039] Figure 14 for Figure 3 A cross-sectional view at position AA.
[0040] Explanation of reference numerals in the attached figures:
[0041] 10-Energy-concentrating pot support; 1-Support assembly; 2-First support leg; 3-Second support leg;
[0042] 21-Supporting surface; 31-Limiting structure; 311-Vertical section; 312-Horizontal section;
[0043] 313 - First step structure; 314 - Second step structure; 4 - First energy-concentrating support component;
[0044] 41-First inner disc; 42-First outer disc; 411-First plate;
[0045] 412 - Second plate; 413 - Third plate; 5 - Second energy-concentrating support component.
[0046] The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail below. These drawings and descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concept of this application to those skilled in the art through reference to particular embodiments. Detailed Implementation
[0047] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims.
[0048] In related technologies, a pot support includes a concentrating plate and feet arranged around the circumference of the concentrating plate, with the feet used to hold the pot. Different gas stoves have varying flame heights, which can cause the flame to reach the edge of the concentrating plate during cooking, thus affecting the energy concentration effect.
[0049] The energy-concentrating pot support provided in this application is installed on a gas stove to support pots. By setting the difference between the vertical distance between the first leg and the edge of the through hole and the vertical distance between the second leg and the edge of the through hole, the vertical distance between the bottom surface of the pot and the flame is limited to a safe range, whether the pot support is placed upright or in the opposite direction, thus preventing the flame from burning the disc-shaped structure during cooking.
[0050] The technical solution of this application and how the technical solution of this application solves the above-mentioned technical problems are described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will now be described with reference to the accompanying drawings.
[0051] Example 1
[0052] like Figure 1 , Figure 2 , Figure 3 As shown, the energy-concentrating pot support 10 includes a support assembly 1. The support assembly 1 serves as the main structure of the energy-concentrating pot support 10.
[0053] The energy-concentrating pot support 10 also includes a first support leg 2 and a second support leg 3. The first support leg 2 is installed on one side of the support assembly 1 along the height direction, and the second support leg 3 is installed on the other side of the support assembly 1 along the height direction.
[0054] The first leg 2 and the second leg 3 have different supporting surfaces to accommodate different types of cookware.
[0055] When the supporting surfaces of the first leg 2 and the second leg 3 are the same, the vertical distance between the edge of the first leg 2 and the support component 1 and the vertical distance between the second leg 3 and the edge of the support component 1 also satisfy the difference limit in this embodiment.
[0056] The upward-facing legs of the energy-concentrating pot support 10 are used to support the pot. A through hole is formed in the center of the support assembly 1. The through hole allows the flame from the gas stove to pass through and heat the pot on the energy-concentrating pot support 10. The diameter of the through hole needs to meet the requirements of flame coverage and uniform heating.
[0057] like Figure 1As shown, the top surface of the first support leg 2 is provided with a downwardly inclined support surface 21. When the first support leg 2 is installed facing upwards, the energy-concentrating pot support 10 is used to support the pointed-bottom pot. Preferably, the angle between the downwardly inclined support surface 21 and the horizontal direction is 16°-20°.
[0058] Furthermore, the first leg 2 includes at least two support surfaces 21 with different tilt angles to accommodate the pointed bottom of the pot with different bottom curvatures.
[0059] In some embodiments, the top surface of the first leg 2 along its length may also include a groove, and the bottom of the groove has an arc-shaped structure.
[0060] Preferably, four first supports 2 are provided, spaced apart along the circumference of the support assembly 1. This arrangement better accommodates the projection of a round cookware, with the support contact points evenly distributed around the circumference of the cookware bottom. This effectively prevents damage to the first supports 2 due to uneven stress during cooking when the cookware is heavy, ensuring the stability of the entire cookware installation.
[0061] It should be noted that the number of the first legs 2 in this application is not limited to the four mentioned above. The first legs 2 can also be set to three, five, etc., as long as they can support different models of pointed-bottom pots and support the entire energy-concentrating pot support 10 when used as a base.
[0062] The height of the first support leg 2 needs to be greater than the vertical distance between the installation point of the first support leg 2 and the bottom of the pot, so as to avoid the bottom of the pot being too close to the flame and extinguishing the flame after the pot is installed.
[0063] like Figure 1 , Figure 2 , Figure 3 As shown, the support assembly 1 includes a plurality of second legs 3, which are spaced apart circumferentially along the outer bottom surface of the support assembly 1. The top surface of the second legs 3 is flat. When the second legs 3 are installed facing upwards, the energy-concentrating pot support 10 is used to support the flat-bottomed pot.
[0064] The support component 1, the first leg 2, and the second leg 3 are integrally formed, which facilitates the improvement of the overall support force of the energy-concentrating pot support frame 10.
[0065] This application does not limit the shape of the support component 1. As long as the shape of the support component 1 can serve to install the first leg 2 and the second leg 3 and satisfy the function of supporting the cookware, it is within the protection scope of this application.
[0066] Support component 1 is made of an alloy material with specific physical properties. This material has characteristics such as high strength, high temperature resistance, and good corrosion resistance, ensuring that it can withstand high temperature environments and frequent use during long-term cooking without damage or deformation.
[0067] Preferably, there are four second legs 3, which are evenly spaced circumferentially arranged on the side of the support assembly 1 where the first legs 2 are not located. This arrangement better adapts to the projection of a circular cookware, and the support contact points are evenly distributed around the circumference of the bottom of the pot.
[0068] It should be noted that the number of the second legs 3 is not limited to the four mentioned above; it can also be three or five, as long as it can support the frying pan and, when used as a base, support the entire energy-concentrating pan support 10.
[0069] The support component 1 can be configured with different structures, as long as it can be used to install the first support leg 2 and the second support leg 3, and can ensure that the entire energy-concentrating pot support frame 10 can be placed stably.
[0070] This application uses the example of a pointed-bottom pan supported by a first leg and a flat-bottom pan supported by a second leg for illustration and explanation, but does not limit the shape of the supporting surfaces of the first and second legs.
[0071] In some possible embodiments, the top surface of the first leg 2 may also have a flush support surface for placing a frying pan. The top surface of the second leg 3 may also have a downwardly sloping support surface for placing a pointed-bottom pan.
[0072] In this embodiment, the support component 1 includes a first energy-concentrating support component 4, which is configured as a disc-shaped structure. The center of the first energy-concentrating support component 4 is configured as a through hole to accommodate the flame passing through.
[0073] The inner side of the first energy-concentrating support component 4 is provided with a first support leg 2, and the top surface of the first support leg 2 includes a downwardly inclined support surface 21. The first support leg 2 is used to place a pointed-bottom pot.
[0074] The outer bottom surface of the first energy-concentrating support component 4 is provided with a second leg 3. The top surface of the second leg 3 includes a flat surface. The second leg 3 can be used to place a frying pan.
[0075] The first energy-concentrating support component 4 is designed as a circular disc structure. The circular shape allows it to evenly surround the bottom of the pot, collecting and reflecting energy from all directions without any blind spots or lid.
[0076] The first energy-concentrating support component 4 is equipped with an arc-shaped structure, which better fits the curvature of the pot bottom, especially for pots with pointed bottoms, resulting in a higher fit and reducing the gap for energy dissipation, thereby improving the energy-concentrating effect.
[0077] The bottom of the first energy-concentrating support component 4 is not completely horizontal; it is designed with a concave structure, forming an angle of 5°-15° with the vertical. When the flame rises from below, the tilted surface of the plate can precisely guide the hot airflow towards the center and surrounding area of the pot bottom, changing the original straight upward and easily dispersed path of the heat flow, causing it to spiral around the bottom of the pot. By designing the bottom of the first energy-concentrating support component 4 with a concave structure, the utilization rate of flame heat energy can be effectively improved, and cooking time can be shortened.
[0078] By setting the support component 1 as a single energy-concentrating plate structure, and providing a first support leg 2 on the inner side of the energy-concentrating plate to hold a pointed-bottom pot, the heat from the flame is focused and reflected back to the bottom of the pot, preventing heat loss to the surroundings and ensuring that more heat is used to heat the food. A second support leg 3 is provided on the outer bottom surface of the energy-concentrating plate to hold a flat-bottomed pot, making it easy to clean the energy-concentrating pot support 10 after cooking.
[0079] In some possible implementations, such as Figure 9 , Figure 10 As shown, the first energy-concentrating support component 4 includes a first energy-concentrating disk, which includes a first inner disk body 41 and a first outer disk body 42. The first inner disk body 41 and the first outer disk body 42 are connected, and a cavity is formed between the first inner disk body 41 and the first outer disk body 42. The first inner disk body 41 includes a first arc-shaped structure protruding toward the first outer disk body 42.
[0080] In this embodiment, such as Figure 11 As shown, the first inner plate 41 includes a first plate 411, a second plate 412, and a third plate 413 connected in sequence. The edge of the first plate 411 away from the second plate 412 is connected to one edge of the first outer plate 42, and the edge of the third plate 413 away from the second plate 412 is connected to the other edge of the second outer plate 42. A predetermined distance is maintained between the second plate 412 and the second outer plate. The second plate 412 is configured to be recessed from top to bottom. This recess facilitates cleaning of the energy-concentrating pot support 10 after use.
[0081] By setting the height of the first support leg 2 and the second support leg 3, as well as the depth of the energy-concentrating plate, the outer flame (the area with the highest temperature) of the flame is made to fully contact the bottom of the pot. This avoids local overheating and deformation of the bottom of the pot due to being too close, and also prevents heat loss into the air due to being too far away, thus improving thermal efficiency.
[0082] In some implementations of this embodiment, such as Figure 14 As shown, the vertical distance between the top surface of the first support 2 and the edge of the through hole is defined as H1, and the vertical distance between the top surface of the second support 3 and the edge of the through hole is defined as H2. To prevent the flame from burning the plate during cooking, the difference between H1 and H2 is less than 15mm.
[0083] In some implementations, H1 and H2 are equal, and the difference between H1 and H2 is zero.
[0084] By ensuring that the difference between H1 and H2 is less than 15mm, the vertical distance between the bottom of the cookware and the flame is limited to a safe range, whether the energy-concentrating pot support 10 is placed facing forward (for a pointed-bottom pot) or backward (for a flat-bottom pot).
[0085] If the difference between H1 and H2 is too large, it may lead to:
[0086] When placed upright, H1 is too small, and the flame can easily burn the edge of the pot, the handle, or the area around the stove, which can easily cause a fire.
[0087] When placed upside down, H2 is too high, and the pan is too far from the flame, which not only reduces heating efficiency but may also cause the flame to spread outward and scorch the edge of the support.
[0088] By ensuring that the difference between H1 and H2 is less than 15mm, the height difference between the bottom of the pot and the flame is controlled within a reasonable range under both placement methods, and the flame is concentrated in the bottom area of the pot to prevent overflow.
[0089] By setting the vertical distance between the top surface of the first support 2 and the edge of the through hole to be equal to the vertical distance between the top surface of the second support 3 and the edge of the through hole, the distance between the bottom of the pot and the flame remains consistent regardless of whether the pot support is placed upright or inverted. This ensures that the flame always acts on the bottom of the pot at the same appropriate distance, preventing the flame from burning non-cooking parts of the pot due to being too close, or reducing heating efficiency due to being too far away, thus guaranteeing the stability and efficiency of heat transfer during cooking.
[0090] The energy-concentrating boiler support 10 is installed on the burner. For example... Figure 9 As shown, the minimum distance h between the two first legs 2 arranged opposite each other along the diameter direction of the first energy-concentrating support component 4 is greater than the diameter of the burner, so as to avoid interference between the first legs 2 and the burner when the energy-concentrating support frame 10 is installed.
[0091] It should be noted that the minimum distance mentioned above is the minimum distance between all pairs of points on the geometric surfaces of the two first legs 2.
[0092] A burner includes at least an inner ring and an outer ring. The inner ring is usually located in the central region, and the outer ring surrounds the inner ring. The diameter of the burner mentioned above refers to the diameter of the outer edge of the outer ring.
[0093] In some possible implementations, the minimum distance between the two second legs 3 arranged opposite each other along the diameter direction of the second energy-concentrating support member 5 is greater than the diameter of the burner, so as to avoid interference between the second legs 2 and the burner when the energy-concentrating pot support 10 is installed.
[0094] It should be noted that the minimum distance mentioned above is the minimum distance between all pairs of points on the geometric surfaces of the two second legs 3.
[0095] Example 2
[0096] The difference between this embodiment and Embodiment 1 is that the support leg with a flush support surface includes a limiting structure 31. Here, we will use the second support leg 3 including the limiting structure 31 as an example for explanation.
[0097] like Figure 4 , Figure 5 , Figure 6 As shown, a limiting structure 31 is provided on the second support leg 3. The limiting structure 31 can define a placement area for cookware of different sizes, so as to place frying pans of different sizes. By forming a cookware placement area corresponding to the size of the cookware, the displacement or detachment of the frying pan during cooking can be prevented.
[0098] like Figure 6 As shown, the limiting structure 31 is configured as a stepped structure. The top surface of the stepped structure includes at least one set of vertical surface segments 311 and horizontal surface segments 312 from the outside to the inside.
[0099] Multiple vertical segments 311 and multiple horizontal segments 312 on different horizontal planes each form a cookware placement area with its bottom surface on different horizontal planes. Different horizontal planes can form cookware placement areas of different sizes to accommodate flat-bottomed pans of different sizes or pans with very small bottom curvature.
[0100] The vertical section 311 and the horizontal section 312, which are on the same horizontal plane, form a cookware placement area, and the diameter of the cookware placement area is compatible with the bottom diameter of the flat-bottomed pot.
[0101] It should be noted that the support component 1 is set as a ring structure, and the above-mentioned "from the outside to the inside" refers to the direction from the outside of the ring to the inside of the ring.
[0102] The second leg 3 includes at least two legs, which are arranged opposite each other along the central axis of the support assembly 1, such as... Figure 7 As shown, the stepped structure of one of the second legs 3 is defined as the first stepped structure 313, and the stepped structure of the other second leg 3 is defined as the second stepped structure 314.
[0103] The horizontal distance between the vertical section 311 of the first stepped structure 313 and the vertical section 311 of the second stepped structure 314, which are on the same horizontal plane, is H. The size of H can be set according to the applicable range of the frying pan.
[0104] like Figure 7As shown, the area enclosed by the dashed line represents the size of the cookware placement area, which is composed of vertical segment 311 and horizontal segment 312 on one of the horizontal planes. Similarly, the size of the cookware placement area can be formed on a higher horizontal plane where horizontal segment 312 is located, in which case the cookware placement area can hold larger cookware.
[0105] In some possible implementations, H is 20cm, 26cm, 32cm, or 36cm.
[0106] like Figure 6 , Figure 7 As shown, the top surface of the stepped structure has three sets of vertical segments 311 and horizontal segments 312 arranged sequentially from the outside to the inside. It is understood that those skilled in the art can set the number of horizontal segments 312 and vertical segments 311 according to actual needs to meet different user requirements.
[0107] In some implementations of this embodiment, such as Figure 8 As shown, the vertical distance between the top surface of the first support 2 and the edge of the through hole is defined as H1, and the vertical distance between the top surface of the second support 3 and the edge of the through hole is defined as H2. To prevent the flame from burning the plate during cooking, the difference between H1 and H2 is less than 15mm.
[0108] By ensuring that the difference between H1 and H2 is less than 15mm, the vertical distance between the bottom of the pot and the flame is limited to a safe range, regardless of whether the pot support 10 is placed upright or in the opposite direction.
[0109] If the difference between H1 and H2 is too large, it may lead to:
[0110] When placed upright, H1 is too small, and the flame can easily burn the edge of the pot, the handle, or the area around the stove, which can easily cause a fire.
[0111] When placed upside down, H2 is too high, and the pan is too far from the flame, which not only reduces heating efficiency but may also cause the flame to spread outward and scorch the edge of the support.
[0112] By ensuring that the difference between H1 and H2 is less than 15mm, the height difference between the bottom of the pot and the flame is controlled within a reasonable range under both placement methods, and the flame is concentrated in the bottom area of the pot to prevent overflow.
[0113] Example 3
[0114] The difference between this embodiment and the technical solution of embodiment 1 is that the support component 1 is set as a first energy-concentrating support component 4 and a second energy-concentrating support component 5.
[0115] In this embodiment, as Figure 13 As shown, the support component 1 includes a first energy-concentrating support component 4 and a second energy-concentrating support component 5.
[0116] Both the first energy-concentrating support component 4 and the second energy-concentrating support component 5 are configured as disc-shaped structures. The centers of the first energy-concentrating support component 4 and the second energy-concentrating support component 5 together form a through hole.
[0117] The opening direction of the first energy-concentrating support component 4 is opposite to that of the second energy-concentrating support component 5. The inner side of the first energy-concentrating support component 4 is provided with a first support leg 2, and the inner side of the second energy-concentrating support component 5 is provided with a second support leg 3.
[0118] When the first energy-concentrating support member 4 is placed with one side facing upwards, the energy-concentrating pot support 10 is used to hold a pointed-bottom pot. When the second energy-concentrating support member 5 is placed with one side facing upwards, the energy-concentrating pot support 10 holds a flat-bottomed pot.
[0119] Alternatively, when the first energy-concentrating support member 4 is placed with one side facing upwards, the energy-concentrating pot support 10 is used to hold a flat-bottomed pot. When the second energy-concentrating support member 5 is placed with one side facing upwards, the energy-concentrating pot support 10 holds a pointed-bottomed pot.
[0120] The first energy-concentrating support component 4 has the same structure as the energy-concentrating disk in Example 1, and will not be described in detail here.
[0121] The second energy-concentrating support component 5 has a flat surface, which allows it to fit closely to the bottom of the pan, increasing the heat transfer area.
[0122] The second energy-concentrating support component 5 includes a second energy-concentrating disk, which includes a second inner disk and a second outer disk. The second inner disk and the second outer disk are connected, and a second cavity is formed between the second inner disk and the second outer disk. The second inner disk includes a second arc-shaped structure protruding toward the direction of the second outer disk.
[0123] Preferably, the curvature of the first arc structure is greater than that of the second arc structure.
[0124] This design results in a large curvature on the side wall of the energy-concentrating plate corresponding to the pointed-bottom pan, which narrows significantly in a frustum shape to fit the pointed bottom of the pan; while the side wall of the energy-concentrating plate corresponding to the flat-bottom pan has a small curvature, is almost vertical and only bends at the edges, to fit the large flat bottom of the flat-bottom pan.
[0125] The two distinctly different curved designs are both intended to fit closely to the shape of the corresponding pot bottom, reducing heat loss between the pot and the energy-concentrating plate, thereby improving energy efficiency.
[0126] Define H1 as the vertical distance between the top surface of the first support 2 and the edge of the through hole, and define H2 as the vertical distance between the top surface of the second support 3 and the edge of the through hole. To prevent the flame from burning the plate during cooking, the difference between H1 and H2 should be less than 15mm.
[0127] It should be noted that this refers to the first energy-concentrating support component 4 and the second energy-concentrating support component 5 forming a through hole.
[0128] By ensuring that the difference between H1 and H2 is less than 15mm, the vertical distance between the bottom of the pot and the flame is limited to a safe range, regardless of whether the pot support 10 is placed upright or in the opposite direction.
[0129] If the difference between H1 and H2 is too large, it may lead to:
[0130] When placed upright, H1 is too small, and the flame can easily burn the edge of the pot, the handle, or the area around the stove, which can easily cause a fire.
[0131] When placed upside down, H2 is too high, and the pan is too far from the flame, which not only reduces heating efficiency but may also cause the flame to spread outward and scorch the edge of the support.
[0132] By ensuring that the difference between H1 and H2 is less than 15mm, the height difference between the bottom of the pot and the flame is controlled within a reasonable range under both placement methods, and the flame is concentrated in the bottom area of the pot to prevent overflow.
[0133] By limiting the difference between H1 and H2, it is ensured that the vertical height from the center of the pot bottom to the flame is similar when the two types of cookware are placed, eliminating the need for users to adjust the height of the support and improving ease of use.
[0134] If the height difference between the upright and reverse legs of the disc-shaped structure is too large, it will cause the center of gravity of the support to shift, which may lead to instability when placing cookware. Controlling the difference within a set range can ensure that the support remains stable whether placed upright or in reverse, avoiding tipping over due to height imbalance.
[0135] Example 4
[0136] The difference between this embodiment and Embodiment 3 lies in that the support leg with a flush support surface includes a limiting structure 31. Here, we will use the second support leg 3 including the limiting structure 31 as an example for explanation.
[0137] The limiting structure 31 here is the same as the limiting structure 31 in Embodiment 2, and will not be described in detail here.
[0138] like Figure 12 As shown, the support component 1 includes a first energy-concentrating support component 4 and a second energy-concentrating support component 5.
[0139] Both the first energy-concentrating support component 4 and the second energy-concentrating support component 5 are configured as disc-shaped structures. The centers of the first energy-concentrating support component 4 and the second energy-concentrating support component 5 together form a through hole.
[0140] The opening direction of the first energy-concentrating support component 4 is opposite to that of the second energy-concentrating support component 5. The inner side of the first energy-concentrating support component 4 is provided with a first support leg 2, and the inner side of the second energy-concentrating support component 5 is provided with a second support leg 3.
[0141] When the first energy-concentrating support member 4 is placed with one side facing upwards, the energy-concentrating pot support 10 is used to hold a pointed-bottom pot. When the second energy-concentrating support member 5 is placed with one side facing upwards, the energy-concentrating pot support 10 holds a flat-bottomed pot.
[0142] Alternatively, when the first energy-concentrating support member 4 is placed with one side facing upwards, the energy-concentrating pot support 10 is used to hold a flat-bottomed pot. When the second energy-concentrating support member 5 is placed with one side facing upwards, the energy-concentrating pot support 10 holds a pointed-bottomed pot.
[0143] The first energy-concentrating support component 4 has the same structure as the energy-concentrating disk in Example 1, and will not be described in detail here.
[0144] The second energy-concentrating support component 5 has the same structure as the energy-concentrating disk in Example 3, and will not be described in detail here.
[0145] The energy-concentrating pot support 10 proposed in this application includes a first energy-concentrating support component 4 with a disc-shaped structure. The center of the first energy-concentrating support component 4 is provided with a through hole. The inner side of the first energy-concentrating support component 4 is provided with a first support leg 2, and the outer bottom surface of the first energy-concentrating support component 4 is provided with a second support leg 3. The difference between the vertical distance between the first support leg 2 and the edge of the through hole and the vertical distance between the second support leg 3 and the edge of the through hole is set so that the vertical distance between the bottom surface of the pot and the flame is limited within a safe range, whether the energy-concentrating pot support 10 is placed upright or in reverse, thus preventing the flame from burning the disc-shaped structure during cooking.
[0146] This application also proposes a gas stove, which includes the aforementioned energy-concentrating pot support 10. By combining the pot support with the gas stove, the flame can be prevented from burning the disc-shaped structure during cooking.
[0147] Finally, it should be noted that other embodiments of this application will readily conceive of by those skilled in the art upon consideration of the specification and practice of the utility model disclosed herein. This application is intended to cover any variations, uses, or adaptations of this application that follow the general principles of this application and include common knowledge or customary techniques in the art not disclosed herein, and is not limited to the precise structures described above and shown in the accompanying drawings, and various modifications and alterations may be made without departing from its scope. The scope of this application is limited only by the appended claims.
Claims
1. An energy-concentrating pot support, characterized in that: The first energy-concentrating support component is configured as a disc-shaped structure. A through hole is provided in the center of the first energy-concentrating support component. Multiple first legs are arranged circumferentially on the inner side of the first energy-concentrating support component. Multiple second legs are arranged circumferentially on the outer bottom surface of the first energy-concentrating support component. The first legs and the second legs have different support surfaces. Define the vertical distance between the top surface of the first support and the edge of the through hole as H1, and define the vertical distance between the top surface of the second support and the edge of the through hole as H2; Where the difference between H1 and H2 is less than 15 mm, or H1 = H2.
2. The energy-concentrating pot support frame according to claim 1, characterized in that, The top surface of the second leg is provided with a flat support surface; the top of the first leg is provided with a downwardly inclined support surface. Alternatively, the top surface of the first leg is provided with a support surface that is flush with the top surface, and the top of the second leg is provided with a support surface that slopes downward.
3. The energy-concentrating pot support frame according to claim 1, characterized in that, It also includes a second energy-concentrating support component, which is disposed on the outer bottom surface of the first energy-concentrating support component. The opening direction of the first energy-concentrating support component and the opening direction of the second energy-concentrating support component are opposite. The second support leg is disposed on the inner side surface of the second energy-concentrating support component.
4. The energy-concentrating pot support frame according to claim 2, characterized in that, The downward-sloping support surface forms an angle of 16°-20° with the horizontal direction.
5. The energy-concentrating pot support frame according to claim 3, characterized in that, The first energy-concentrating support component includes a first energy-concentrating disk, which includes a first inner disk and a first outer disk. The first inner disk and the first outer disk are connected, and a first cavity is formed between the first inner disk and the first outer disk. The first inner disk includes a first arc-shaped structure protruding toward the first outer disk.
6. The energy-concentrating pot support according to claim 5, characterized in that, The second energy-concentrating support component includes a second energy-concentrating disk, which includes a second inner disk and a second outer disk. The second inner disk and the second outer disk are fixedly connected, and a second cavity is formed between the second inner disk and the second outer disk. The second inner disk includes a second arc-shaped structure protruding toward the second outer disk.
7. The energy-concentrating pot support according to claim 6, characterized in that, The curvature of the first arc structure is greater than that of the second arc structure.
8. The energy-concentrating pot support frame according to claim 5, characterized in that, The first inner plate includes a first plate, a second plate, and a third plate connected in sequence. The edge of the first plate away from the second plate is connected to one edge of the first outer plate. The edge of the third plate away from the second plate is connected to the other edge of the first outer plate. The second plate and the first outer plate are spaced apart by a set distance. The second plate is configured to be recessed from top to bottom.
9. The energy-concentrating pot support frame according to any one of claims 1-7, characterized in that, The first support leg is configured as four, and the four first support legs are evenly distributed on the inner side of the first energy-concentrating support component.
10. The energy-concentrating boiler support according to any one of claims 1-7, characterized in that, The energy-concentrating boiler support is mounted on the burner, and the minimum distance between the two first support legs, which are arranged opposite each other along the diameter direction of the first energy-concentrating support component, is greater than the diameter of the burner. The minimum distance is the minimum distance between all pairs of points on the geometric surfaces of the two first legs.
11. The energy-concentrating pot support according to claim 3, 5, 6, 7, or 8, characterized in that, The energy-concentrating boiler support is installed in the burner, and the minimum distance between the two second legs that are arranged opposite each other along the diameter direction of the second energy-concentrating support component is greater than the diameter of the burner. The minimum distance is the minimum distance between all pairs of points on the geometric surfaces of the two second legs.
12. A gas stove, characterized in that, Includes the energy-concentrating pot support as described in any one of claims 1-11.