Gas stove grate with double-layer energy-gathering disc structure

The double-layer reflective plate structure and plug-in plate connection design solve the problems of low thermal energy utilization, uneven heating and unstable structure of traditional gas stove racks, and achieve efficient energy saving, uniform heating and safe and reliable use of gas stoves.

CN223375883UActive Publication Date: 2025-09-23ZHONGSHAN ZHENGMEI METAL PROD
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Patent Information

Application Number
CN202422465606.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-12
Publication Date
2025-09-23
Estimated Expiration
2034-10-12

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Abstract

A gas stove frame with a double-layer energy gathering disc structure comprises an upper reflection disc and a lower reflection disc, the inner surface of the lower reflection disc is recessed inwards to form a reflection area, the upper reflection disc is arranged above the reflection area of the lower reflection disc, and a heat insulation cavity is formed between the upper reflection disc and the lower reflection disc; a plurality of pot racks are mounted on the upper reflecting disc, and pots are supported on the pot racks; and a plurality of brackets are mounted at the bottom of the lower reflecting disc and are supported on the stove. The gas stove frame has the advantages that the gas stove frame is of an upper-lower double-layer reflection disc structure, the inner surface of the lower reflection disc is recessed inwards to form a reflection area, the upper reflection disc covers the reflection area, and a heat insulation cavity is formed between the lower reflection disc and the upper reflection disc. The design can effectively gather and reflect heat generated by combustion, so that the heat energy is concentrated at the bottom of the cookware, the heat loss is reduced, the heat energy utilization rate is obviously improved, and the energy-saving effect is achieved.
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Description

Technical Field

[0001] The utility model relates to a gas stove accessory, in particular to a gas stove rack with a double-layer energy-gathering plate structure. Background Art

[0002] Gas stoves, essential cooking appliances in modern kitchens, are widely used in homes and restaurants. Traditional gas stove racks typically feature a single-layer structure, consisting primarily of a simple bracket and pot holder to support the pot and ensure the proper functioning of the burner. However, existing gas stove racks exhibit numerous shortcomings in practical use:

[0003] 1. Traditional hobs lack effective heat reflection and collection structures, allowing heat generated by combustion to dissipate easily around the hob, resulting in low heat utilization. A large amount of heat cannot be effectively transferred to the bottom of the pot, resulting in energy waste and increased usage costs.

[0004] 2. Since the heat cannot be concentrated, the heating surface of the pot is uneven, which can easily lead to uneven heating of food. This not only affects cooking efficiency, but may also cause the bottom of the food to be burnt or undercooked, affecting the taste and nutrition.

[0005] 3. The surface temperature of traditional hobs rises after prolonged high-temperature use, posing a risk of burns from accidental contact during cooking. Furthermore, high temperatures can adversely affect the internal components of gas stoves and surrounding cabinets, shortening their service life.

[0006] 4. The existing hob design can cause pots to tilt or slide due to uneven force and a simple structure when supporting pots, posing a safety risk. This lack of stability is particularly pronounced when supporting large or heavy pots. Therefore, further improvements are necessary. Utility Model Content

[0007] The purpose of the utility model is to overcome the shortcomings of the existing technology and provide a gas stove hob with a double-layer energy-gathering plate structure that is simple in structure, easy to use, can effectively gather and reflect heat, improve thermal energy utilization, ensure uniform heating of pots, and has good safety performance and structural stability to meet the use requirements of modern home and commercial environments.

[0008] The purpose of the utility model is achieved by the following manner: a gas stove hob with a double-layer energy-gathering disk structure, comprising an upper reflective disk and a lower reflective disk, wherein the inner surface of the lower reflective disk is recessed inward to form a reflective area, and the upper reflective disk is arranged above the reflective area of ​​the lower reflective disk, forming a heat-insulating cavity between the upper reflective disk and the lower reflective disk;

[0009] A plurality of pot racks are mounted on the upper reflective plate, and the pots are supported on the pot racks;

[0010] A plurality of brackets are installed on the bottom of the lower reflective dish, and the brackets are supported on the stove.

[0011] Furthermore: the outer ring of the lower reflective dish extends outward with an upper edge, and the inner ring of the lower reflective dish extends inward with a lower edge; the outer ring of the upper reflective dish is provided with an upper edging covering the outer side of the upper edge, and the inner ring of the upper reflective dish is provided with a lower edging covering the outer side of the lower edge.

[0012] Furthermore, the cross-section of the upper reflective disk and the lower reflective disk is such that the inner surface thereof is outwardly concave in a "C" shape.

[0013] Furthermore, a lower insert plate extends downward from the bottom of the pot rack, and correspondingly, a plurality of upper insert holes are provided on the upper reflective plate, and the lower insert plates are inserted into the upper insert holes and fixedly connected thereto.

[0014] Furthermore, an upper plug plate extends upward from the top of the bracket, and correspondingly, a plurality of lower plug holes are provided in the lower reflective dish, and the lower plug plates are inserted into the lower plug holes and fixed thereto.

[0015] Furthermore, the bottom of the pot rack is arc-shaped and is attached to the inner surface of the upper reflective plate.

[0016] Furthermore, the top of the bracket is arc-shaped and is attached to the outer surface of the lower reflective dish.

[0017] Furthermore: the bottom of the bracket is covered with a cushion layer.

[0018] Furthermore: the cushion layer is provided with a concave covering area, and the bracket is clamped in the covering area.

[0019] Furthermore, a positioning protrusion is provided at the bottom of the covering area, and correspondingly, a positioning groove is provided at the bottom of the bracket, and the positioning protrusion is fixed in the positioning groove.

[0020] The beneficial effects of the utility model are: 1. Simple structure, low production cost and improved market competitiveness.

[0021] 2. The gas stove frame of this invention utilizes a double-layered reflective plate structure. The inner surface of the lower reflective plate is recessed to form a reflective area, while the upper reflective plate covers the reflective area, forming an insulating cavity between the two. This design effectively collects and reflects heat generated by combustion, concentrating it at the bottom of the cookware, reducing heat loss and significantly improving thermal energy utilization, thereby achieving energy savings.

[0022] 3. The double-layer reflective plate design evenly distributes the heat generated by combustion to the bottom of the pot, avoiding the uneven heating phenomenon of traditional gas stoves. The well-designed pot rack stably supports the pot, ensuring that the pot is heated evenly throughout the heating area, improving cooking efficiency and food quality.

[0023] 4. The invention's pot rack and bracket design has been optimized, with a socket-and-plate connection ensuring a secure connection between the components. Furthermore, the bottoms of the pot rack and bracket feature an arc-shaped design that aligns with the surfaces of the upper and lower reflective plates, enhancing overall structural stability and better supporting large or heavy pots, improving safety and reliability. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1-3 This is the structural assembly effect diagram of the utility model.

[0025] Figure 4 For this utility model Figure 3 AA cross-sectional view.

[0026] Figure 5 For this utility model Figure 4 A magnified view of the structure of part A.

[0027] Figure 6 This is a structural exploded view of the utility model. DETAILED DESCRIPTION

[0028] The present invention is further described below in conjunction with the accompanying drawings. A gas stove hob with a double-layer energy-gathering disk structure includes an upper reflective disk 1 and a lower reflective disk 2. The inner surface of the lower reflective disk 2 is recessed inward to form a reflective area 21. The upper reflective disk 1 is positioned above the reflective area 21 of the lower reflective disk 2, forming a heat-insulating cavity 3 between the upper reflective disk 1 and the lower reflective disk 2.

[0029] A plurality of pot racks 4 are mounted on the upper reflective plate 1, and pots are supported on the pot racks 4;

[0030] A plurality of brackets 5 are installed at the bottom of the lower reflective plate 2, and the brackets 5 are supported on the stove.

[0031] In one embodiment, the outer ring of the lower reflective dish 2 extends outward with an upper edge 22, and the inner ring of the lower reflective dish 2 extends inward with a lower edge 23; the outer ring of the upper reflective dish 1 is provided with an upper edging 11 covering the outer side of the upper edge 22, and the inner ring of the upper reflective dish 1 is provided with a lower edging 12 covering the outer side of the lower edge 23.

[0032] In one embodiment, the cross-section of the upper reflective disk 1 and the lower reflective disk 2 is such that the inner surface thereof is outwardly concave in a "C" shape.

[0033] In one embodiment, a lower insert plate 6 extends downward from the bottom of the pot rack 4. Correspondingly, a plurality of upper insert holes 13 are provided on the upper reflective plate 1. The lower insert plates 6 are inserted into the upper insert holes 13 and fixed thereto.

[0034] In one embodiment, an upper insert plate 7 extends upward from the top of the bracket 5. Correspondingly, a plurality of lower insert holes 24 are provided in the lower reflector 2, and the lower insert plates 6 are inserted into the lower insert holes 24 to be connected and fixed thereto.

[0035] In one embodiment, the bottom of the pot rack 4 is arc-shaped and is attached to the inner surface of the upper reflective plate 1 .

[0036] In one embodiment, the top of the bracket 5 is arc-shaped and is attached to the outer surface of the lower reflective plate 2 .

[0037] In one embodiment, the bottom of the bracket 5 is covered with a cushion layer 8 .

[0038] In one embodiment, a concave covering area 81 is provided on the cushion layer 8 , and the bracket 5 is clamped in the covering area 81 .

[0039] In one embodiment, a positioning protrusion 82 is provided at the bottom of the covering area 81 , and correspondingly, a positioning groove 51 is provided at the bottom of the bracket 5 , and the positioning protrusion 82 is fixed in the positioning groove 51 .

[0040] Working Principle: During operation, heat generated by the gas stove's burner is transferred upward. The inner surface of the lower reflector is recessed, forming a reflective area that effectively reflects some of the heat back toward the combustion area, reducing heat loss. Simultaneously, the upper reflector, overlying the reflective area of ​​the lower reflector, further concentrates and reflects the heat, transferring more heat to the bottom of the cookware. The insulating cavity formed between the upper and lower reflectors acts as a barrier during this process, preventing heat from dissipating directly outward and further improving thermal efficiency.

[0041] The double-layer reflector plate reflects and concentrates the heat generated by combustion, heating the bottom of the pot more evenly, thereby improving cooking efficiency and avoiding the uneven heating that can occur on traditional gas stoves, which can cause food to burn or become undercooked. This design allows the gas stove to provide a more stable heat source while saving energy, improving cooking quality.

[0042] The pot rack is mounted on top of the upper reflector, providing stable support for the pot. A lower insert extends downward from the base of the pot rack, plugging into a socket on the upper reflector for a secure connection and facilitating subsequent welding. This plug-in structure ensures the stability of the pot, safely and reliably supporting even large or heavy pots, eliminating the risk of the pot tipping or sliding during cooking.

[0043] The bottom of the lower reflector is supported on the stove by a bracket. A plug-in plate on the top of the bracket connects to a socket in the lower reflector, ensuring the overall stability of the stove frame. To further enhance safety, the bottom of the bracket is padded to effectively insulate the stove and surrounding cabinets from high temperatures, preventing potential safety hazards caused by prolonged high-temperature use.

[0044] In summary, the gas stove rack of the present invention utilizes a double-layered reflector design, effectively concentrating and reflecting heat, improving thermal efficiency and ensuring uniform heating of the cookware. Furthermore, the rational structural design and the secure connection between the rack and support ensure the stability of the cookware and enhance safety. Furthermore, the cushioning layer at the bottom of the support further enhances the safety and service life of the gas stove. These technical features give the present invention significant advantages in the gas stove field, meeting the energy-saving, high-efficiency, and safety requirements of modern kitchen equipment, and therefore are suitable for widespread adoption.

[0045] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It should be understood by those skilled in the art that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention, and such changes and improvements shall fall within the scope of the present invention as claimed.

Claims

1. A gas stove hob with a double-layer energy-gathering plate structure, characterized by: It comprises an upper reflective dish (1) and a lower reflective dish (2), wherein the inner surface of the lower reflective dish (2) is recessed inward to form a reflective area (21), and the upper reflective dish (1) is arranged above the reflective area (21) of the lower reflective dish (2), forming a heat-insulating cavity (3) between the upper reflective dish (1) and the lower reflective dish (2); A plurality of pot racks (4) are mounted on the upper reflective plate (1), and pots are supported on the pot racks (4); A plurality of brackets (5) are installed at the bottom of the lower reflective plate (2), and the brackets (5) are supported on the stove.

2. The gas stove hob with a double-layer energy-gathering plate structure according to claim 1, characterized in that: The outer ring of the lower reflective disk (2) extends outwardly to form an upper edge (22), and the inner ring of the lower reflective disk (2) extends inwardly to form a lower edge (23); the outer ring of the upper reflective disk (1) is provided with an upper edging (11) covering the outer side of the upper edge (22), and the inner ring of the upper reflective disk (1) is provided with a lower edging (12) covering the outer side of the lower edge (23).

3. The gas stove hob with a double-layer energy-gathering plate structure according to claim 1, characterized in that: The cross-sections of the upper reflective disk (1) and the lower reflective disk (2) are such that the inner surfaces are concave outward in a "C" shape.

4. The gas stove hob with a double-layer energy-gathering plate structure according to claim 1, characterized in that: A lower insert plate (6) extends downward from the bottom of the pot rack (4). Correspondingly, a plurality of upper insert holes (13) are provided on the upper reflector (1), and the lower insert plates (6) are inserted into the upper insert holes (13) and fixedly connected thereto.

5. The gas stove hob with a double-layer energy-gathering plate structure according to claim 1, characterized in that: An upper insert plate (7) extends upward from the top of the bracket (5). Correspondingly, a plurality of lower insert holes (24) are provided in the lower reflector (2), and the lower insert plates (6) are inserted into the lower insert holes (24) and fixedly connected thereto.

6. The gas stove hob with a double-layer energy-gathering plate structure according to claim 4, characterized in that: The bottom of the pot rack (4) is arc-shaped and is attached to the inner surface of the upper reflective plate (1).

7. The gas stove hob with a double-layer energy-gathering plate structure according to claim 5, characterized in that: The top of the bracket (5) is arc-shaped and is attached to the outer surface of the lower reflective disk (2).

8. A gas stove hob with a double-layer energy-gathering plate structure according to claim 1, 5 or 7, characterized in that: The bottom of the bracket (5) is covered with a cushion layer (8).

9. The gas stove hob with a double-layer energy-gathering plate structure according to claim 8, characterized in that: The cushion layer (8) is provided with a concave covering area (81), and the bracket (5) is clamped in the covering area (81).

10. The gas stove hob with a double-layer energy-gathering plate structure according to claim 9, characterized in that: The bottom of the coating area (81) is provided with a positioning protrusion (82), and correspondingly, the bottom of the bracket (5) is provided with a positioning groove (51), and the positioning protrusion (82) is fixed in the positioning groove (51).