Fuel gas supply assembly and stir-frying gas stove

By designing the gas supply components and stir-frying adjustment mechanism, the structure of the gas stove is simplified, and the gas flow control is achieved based on unchanged products, solving the problems of complex structure and high cost of the existing gas stove, and improving the effect of the stir-frying function.

CN223153335UActive Publication Date: 2025-07-25GUANGDONG MACRO GAS APPLIANCE
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422260247.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-14
Publication Date
2025-07-25
Estimated Expiration
2034-09-14

AI Technical Summary

Technical Problem

When implementing the low-fire, high-fire and hot-flavor modes, existing gas stoves need to set up additional independent hot-flavor channels and nozzles, resulting in complex structure, difficult installation and high cost.

Method used

A gas supply assembly is designed, including a control valve, a first gas transmission channel, a second gas transmission channel and a blow-off adjustment mechanism. The gas is controlled through the control valve, and the gas flow rate of the second gas transmission channel is adjusted through the blow-off adjustment mechanism to realize the high-fire and blow-off mode, simplifying the structure and reducing costs.

Benefits of technology

It achieves simple installation and reduce costs without changing the product structure, and can freely control the gas flow, improve the stir-frying function of the gas stove, with stronger firepower, more intense food Maillard's response, and lower overall cost.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223153335U_ABST
    Figure CN223153335U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of gas stoves, in particular to a gas supply assembly and a stir-frying gas stove.The gas supply assembly comprises a control valve, a first gas conveying channel, a second gas conveying channel and a stir-frying adjusting mechanism, and the output end of the control valve is connected with the input end of the first gas conveying channel and the input end of the second gas conveying channel; the control valve controls connection and disconnection between the input end of the control valve and the first gas transmission channel and the second gas transmission channel; the device further comprises a stir-frying adjusting mechanism, the input end and the output end of the stir-frying adjusting mechanism are connected to the second gas conveying channel, and the stir-frying adjusting mechanism is used for adjusting the gas flow of the output end of the second gas conveying channel, so that the second gas conveying channel has a big fire mode and a stir-frying mode. According to the utility model, the control valve is arranged, the first gas transmission channel and the second gas transmission channel are arranged, and the stir-frying adjusting mechanism is arranged, so that a small fire mode, a big fire mode and a stir-frying mode are realized.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model belongs to the technical field of gas stoves, and particularly relates to a gas supply assembly and a stir-fry gas stove. Background Technique

[0002] A combustion furnace is a high-efficiency device. Through independent small-fire gas channels, large-fire gas channels, and stir-fry gas channels, as well as intelligent valve control, it can meet diverse cooking needs from slow simmering to high-fire stir-frying, and is widely used in modern kitchens. In the small-fire mode, the combustion furnace focuses on stable temperature control and energy conservation. By precisely controlling the nozzle, the flame is made small and continuous, suitable for slow simmering and keeping warm. When in the large-fire mode, the combustion efficiency is enhanced, with large-diameter nozzles and high-efficiency heat exchange technology to ensure a fierce fire and rapid heating. The stir-fry function, on the other hand, takes a unique approach by adding an independent fire channel and a powerful nozzle, combined with intelligent control, to achieve instant high temperature, lock in the freshness of ingredients, and showcase a new height of cooking art.

[0003] In general, in the prior art, three gas channels are usually opened in the combustion furnace to achieve the small-fire, large-fire, and stir-fry modes. If an additional independent stir-fry fire channel is extended, an independent nozzle needs to be additionally provided for the stir-fry fire channel to lead to the furnace head cavity. The stir-fry fire channel is generally controlled by an electromagnetic valve to achieve the stir-fry function. This kind of gas stove with a stir-fry function requires additional gas pipelines and control valves, and even requires a re-design of the product structure and the combustion furnace head. It not only has a complex structure and high installation difficulty, but also has a high cost. Content of the Utility Model

[0004] In view of the deficiencies of the prior art, on the one hand, the utility model provides a gas supply assembly, which includes a control valve, a first gas transmission channel, a second gas transmission channel, and a stir-fry adjustment mechanism. The input end of the control valve is used to receive the input of gas, the output end of the control valve is respectively connected to the input ends of the first gas transmission channel and the second gas transmission channel, the control valve controls the on-off of its input end with the first gas transmission channel and the second gas transmission channel, and the output ends of the first gas transmission channel and the second gas transmission channel are respectively used to supply gas to the central ring fire and the outer ring fire;

[0005] The gas supply assembly further includes a stir-fry adjustment mechanism. The input end and the output end of the stir-fry adjustment mechanism are respectively connected to the second gas transmission channel, and the input end and the output end of the stir-fry adjustment mechanism are sequentially arranged at intervals along the gas transmission direction on the second gas transmission channel. The stir-fry adjustment mechanism is used to adjust the gas flow rate at the output end of the second gas transmission channel, so that the second gas transmission channel has a large-fire mode and a stir-fry mode.

[0006] Preferably, the stir-fry regulating mechanism includes a stir-fry gas transmission channel disposed therein. The stir-fry gas transmission channel is in parallel with the second gas transmission channel. The input end and the output end of the stir-fry gas transmission channel are respectively disposed at the front end and the rear end in the conveying direction of the second gas transmission channel. The steady-state valve controls the on-off of the stir-fry gas transmission channel.

[0007] Preferably, the stir-fry regulating mechanism further includes a steady-state valve, a stir-fry valve core and a stir-fry chamber. The stir-fry chamber is communicated with the second gas transmission channel. The stir-fry valve core is disposed in the stir-fry chamber. The input end of the stir-fry gas transmission channel is communicated with the stir-fry chamber. The steady-state valve controls the on-off of the stir-fry gas transmission channel by controlling the stir-fry valve core.

[0008] A gas output nozzle is further disposed on the second gas transmission channel. The stir-fry gas injection holes of the gas output nozzle are disposed towards one end of the outer-ring flame. The output end of the stir-fry gas transmission channel is a stir-fry gas output port. The stir-fry gas output port is communicated with the stir-fry gas injection holes. And the stir-fry gas output port is a drilling inclined towards the stir-fry gas injection holes opened at the position of the stir-fry gas injection holes of the gas output nozzle.

[0009] Preferably, the steady-state valve further includes a return spring. The return spring is disposed between the stir-fry valve core and the stir-fry chamber. The return spring provides a restoring force to block the stir-fry gas transmission channel by the stir-fry valve core.

[0010] Preferably, the cross-sectional area of the stir-fry gas transmission channel for conveying gas is smaller than the cross-sectional area of the second gas transmission channel for conveying gas.

[0011] Preferably, the gas flow output by the first gas transmission channel is smaller than the gas flow output by the second gas transmission channel. The stir-fry regulating mechanism is detachably connected to the second gas transmission channel.

[0012] Preferably, the gas supply assembly further includes an outer-ring ejector pipe and a central-ring ejector pipe. The input ends of the outer-ring ejector pipe and the central-ring ejector pipe are respectively connected to the output end of the first gas transmission channel and the output end of the second gas transmission channel. The input ends of the outer-ring ejector pipe and the central-ring ejector pipe are respectively used for supplying gas to the central-ring flame and the outer-ring flame.

[0013] On the other hand, a stir-fry gas stove is provided. The stir-fry gas stove includes a gas stove body, a controller, a central-ring flame, an outer-ring flame and a gas supply assembly. The controller, the central-ring flame, the outer-ring flame and the gas supply assembly are disposed on the gas stove body. The output ends of the first gas transmission channel and the second gas transmission channel are respectively communicated with the central-ring flame and the outer-ring flame. The controller is respectively in signal connection with the control valve and the stir-fry regulating mechanism.

[0014] Preferably, a steady state valve is further provided on the stir-fry adjustment mechanism, and a stir-fry switch is further provided on the gas stove body. The stir-fry switch and the steady state valve are respectively connected to the controller in a signal manner.

[0015] Preferably, the stir-fry gas stove includes at least two sets of gas supply components, as well as a central ring fire and an outer ring fire that are matched with the gas supply components. A gas input branch pipe is provided at the input end of the control valve, and the input ends of the respective gas input branch pipes are connected to a gas main pipe, and the gas main pipe is used to receive the input of gas. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] The above and other objects, features and advantages of the present invention will become more apparent from the preferred embodiments of the present invention shown in the drawings. The same reference numerals in all the drawings indicate the same parts, and the drawings are not deliberately drawn to scale in actual size, and the focus is on showing the gist of the present invention.

[0017] Figure 1 Structural schematic diagram of the stir-fry gas stove provided for the embodiment;

[0018] Figure 2 Structural schematic diagram of the gas supply component provided for the first embodiment;

[0019] Figure 3 For Figure 2 Structural schematic diagram of the stir-fry adjustment mechanism in

[0020] Figure 4 For Figure 2 Schematic diagram of gas flow in

[0021] Figure 5 Structural schematic diagram of the gas supply component provided for the first embodiment;

[0022] Figure 6 For Figure 5 Structural schematic diagram of the stir-fry adjustment mechanism in

[0023] Figure 7 For Figure 5 Schematic diagram of gas flow in

[0024] Reference numerals in the drawings: control valve 1, burner 2, central ring fire 21, outer ring fire 22, first gas transmission channel 3, second gas transmission channel 4, stir-fry gas transmission channel 5, stir-fry gas transmission outlet 51, stir-fry adjustment mechanism 6a, stir-fry adjustment mechanism 6b, gas output nozzle 7, stir-fry gas injection hole 71, outer ring injection pipe 211, stir-fry adjustment mechanism core 61, steady state valve 62, stir-fry cavity 63, central ring injection pipe 221. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0025] To facilitate the understanding of the present utility model, the following will provide a more comprehensive description thereof with reference to the relevant drawings.

[0026] It should be noted that when an element is considered to be "connected" to another element, it can be directly connected to the other element and integrated therewith, or there may be an intermediate element present at the same time. The terms "installed", "one end", "the other end" and similar expressions used herein are for illustrative purposes only.

[0027] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the technical field to which this technology belongs. The terms used in the description of the present specification herein are only for the purpose of describing specific embodiments and are not intended to limit the present utility model. The term "and / or" used herein includes any and all combinations of one or more of the related listed items.

[0028] On the one hand, a gas supply assembly is provided. The gas supply assembly includes a control valve 1, a first gas transmission channel 3, a second gas transmission channel 4, and a stir-fry adjustment mechanism (6a, 6b). The input end of the control valve 1 is used to receive the input of gas. The output end of the control valve 1 is respectively connected to the input ends of the first gas transmission channel 3 and the second gas transmission channel 4. The control valve 1 controls the on-off of its input end with both the first gas transmission channel 3 and the second gas transmission channel 4. The output ends of the first gas transmission channel 3 and the second gas transmission channel 4 are respectively used to supply gas to the central ring fire 21 and the outer ring fire 22;

[0029] The gas supply assembly further includes a stir-fry adjustment mechanism (6a, 6b). The input end and the output end of the stir-fry adjustment mechanism (6a, 6b) are respectively connected to the second gas transmission channel 4. The input end and the output end of the stir-fry adjustment mechanism (6a, 6b) are sequentially arranged at intervals along the gas transmission direction on the second gas transmission channel 4. The stir-fry adjustment mechanism (6a, 6b) is used to adjust the gas flow rate at the output end of the second gas transmission channel 4, so that the second gas transmission channel 4 has a high-fire mode and a stir-fry mode.

[0030] When the gas flow rate at the output end of the second gas transmission channel 4 increases, it is in the stir-fry mode; when the gas flow rate at the output end of the second gas transmission channel 4 decreases or the stir-fry adjustment mechanism (6a, 6b) is in the closed state, the second gas transmission channel 4 is in the non-stir-fry mode. The output end of the control valve 1 is used to supply gas to both.

[0031] The utility model is provided with a control valve 1, two gas channels, namely a first gas transmission channel 3 and a second gas transmission channel 4, and a stir-fry adjustment mechanism (6a, 6b) is arranged to realize low-fire, high-fire and stir-fry modes. During use, the input end of the control valve 1 is connected to an external gas supply pipe, and the output ends of the first gas transmission channel 3 and the second gas transmission channel 4 are respectively connected to the central ring fire 21 and the outer ring fire 22, so that the installation can be completed. The installation difficulty is small. The structure of the utility model is simple, it can be adapted to various combustion burners, has strong versatility, and has a low cost.

[0032] In a preferred embodiment, the stir-fry adjustment mechanism (6a, 6b) includes a stir-fry gas transmission channel 5 arranged therein. The stir-fry gas transmission channel 5 is in parallel with the second gas transmission channel 4. The input end and the output end of the stir-fry gas transmission channel 5 are respectively arranged at the front end and the rear end of the conveying direction of the second gas transmission channel 4; a steady-state valve 62 controls the on-off of the stir-fry gas transmission channel 5.

[0033] When the stir-fry gas transmission channel 5 is completely closed by the steady-state valve 62 and the stir-fry valve core, only the second gas transmission channel 4 conducts gas transmission at this time, that is, it is in the high-fire mode; when the stir-fry valve core is completely opened, the stir-fry gas transmission channel 5 and the second gas transmission channel 4 are in a parallel state, and the cross-section of the gas transmission channel and the gas transmission flow rate become larger. At this time, it is in the stir-fry mode, and the cross-section of the gas transmission channel reaches the maximum value; of course, in some embodiments, the degree of opening of the stir-fry valve core is different, so that the cross-sectional area of the gas transmission channel is different to realize the size adjustment of the stir-fry mode.

[0034] In a preferred embodiment, the stir-fry adjustment mechanism (6a, 6b) further includes a steady-state valve 62, a stir-fry valve core and a stir-fry cavity 63. The stir-fry cavity 63 is communicated with the second gas transmission channel 4. The stir-fry valve core is arranged in the stir-fry cavity 63. The input end of the stir-fry gas transmission channel 5 is communicated with the stir-fry cavity 63. The steady-state valve 62 controls the on-off of the stir-fry gas transmission channel 5 by controlling the stir-fry valve core;

[0035] A gas output nozzle 7 is further arranged on the second gas transmission channel 4. The stir-fry gas injection hole 71 of the gas output nozzle 7 is arranged towards one end of the outer ring fire 22. Gas is conveyed from the stir-fry gas injection hole 71 of the gas output nozzle 7 to the outer ring fire 22. The output end of the stir-fry gas transmission channel 5 is a stir-fry gas output port 51. The stir-fry gas output port 51 is communicated with the stir-fry gas injection hole 71. The stir-fry gas output port 51 is a drill hole opened at the position of the gas output nozzle 7 at the stir-fry gas injection hole 51 and inclined towards the stir-fry gas injection hole 71.

[0036] In a preferred embodiment, the steady-state valve 62 further includes a return spring. The return spring is arranged between the stir-fry valve core and the stir-fry cavity 63. The return spring provides a restoring force to block the stir-fry gas transmission channel 5 by the stir-fry valve core.

[0037] In a preferred embodiment, the cross-sectional area of the cooking gas delivery channel 5 for delivering gas is smaller than the cross-sectional area of the second gas delivery channel 4 for delivering gas.

[0038] In a preferred embodiment, the gas flow rate output by the first gas delivery channel 3 is smaller than the gas flow rate output by the second gas delivery channel 4; the stir-fry adjustment mechanism (6a, 6b) is detachably connected to the second gas delivery channel 4.

[0039] In a preferred embodiment, the gas supply assembly further includes an outer ring injection pipe 211 and a central ring injection pipe 221. The input ends of the outer ring injection pipe and the central ring injection pipe 221 are respectively connected to the output end of the first gas delivery channel 3 and the output end of the second gas delivery channel 4, and are respectively used to supply gas to the central ring flame 21 and the outer ring flame 22.

[0040] On the other hand, a stir-fry gas stove is provided. The stir-fry gas stove includes a gas stove body, a controller, a central ring flame 21, an outer ring flame 22, and a gas supply assembly. The controller, the central ring flame 21, the outer ring flame 22, and the gas supply assembly are arranged on the gas stove body. The output end of the first gas delivery channel 3 and the output end of the second gas delivery channel 4 are respectively communicated with the central ring flame 21 and the outer ring flame 22, and the controller is respectively in signal connection with the control valve 1 and the stir-fry adjustment mechanism (6a, 6b).

[0041] In a preferred embodiment, a steady-state valve 62 is further arranged on the stir-fry adjustment mechanism (6a, 6b), and a stir-fry switch is further arranged on the gas stove body. The stir-fry switch and the steady-state valve 62 are respectively in signal connection with the controller.

[0042] In a preferred embodiment, the stir-fry gas stove includes at least two sets of gas supply assemblies, as well as a central ring flame 21 and an outer ring flame 22 supporting the gas supply assemblies. A gas input branch pipe is arranged at the input end of the control valve 1, and the input ends of the respective gas input branch pipes are connected to a gas main pipe, and the gas main pipe is used to receive the input of gas.

[0043] In a preferred embodiment, in the front part of the second gas delivery channel 4, a stir-fry gas delivery channel 5 is branched out, and a stir-fry valve is arranged on the stir-fry gas delivery channel 5; at least two gas delivery channels of the stir-fry nozzle 7 are connected to the outer ring injection pipe 211.

[0044] The stir-fry valve 6 is a detachable structure and is provided with a channel connecting the stir-fry gas transmission channel 5 and the second gas transmission channel 4. A stir-fry valve core 61 for opening and closing the stir-fry gas channel 5 is also provided on the stir-fry valve 6, and a steady-state valve 62 is connected to the stir-fry valve core. The steady-state valve 62 further includes a return spring provided between the stir-fry valve core 61 and the stir-fry cavity 63 and capable of pressing the stir-fry valve core 61 in the direction of blocking the connecting channel. Two or more gas transmission channels are provided on the stir-fry nozzle 7 and are connected to the outer ring ejector tube 211. The gas transmission channels of the stir-fry nozzle 7 are divided into 1 main gas transmission channel 4 and 1 or more stir-fry gas transmission channels 5. The first gas transmission channel 3 is communicated with the central ring ejector tube 221 and is communicated with the central ring mixing cavity to connect the central ring flame 21. The second gas transmission channel 4 and the stir-fry gas transmission channel 5 jointly converge and communicate with the outer ring ejector tube 211, and are communicated with the outer ring mixing cavity to connect the outer ring flame 22.

[0045] Working principle:

[0046] Rotate the stove knob to perform the ignition operation. The gas enters the control valve 1 through the air duct. The control valve divides the gas into two paths and enters the first gas transmission channel 3 and the second gas transmission channel 4 respectively. The gas in the first gas transmission channel passes through the central nozzle, flows into the central ejector tube 221, then passes through the central mixing cavity, enters the central ring flame, is divided by the central ring flame holes, and is ignited by the electric spark to generate a flame. The gas in the second gas transmission channel 4 flows through the stir-fry valve 6. Since the steady-state valve 62 is in the closed state, the stir-fry valve core 61 blocks the stir-fry gas transmission channel 5, and the gas cannot pass through. The gas can only flow out through the main channel of the stir-fry nozzle 7, enters the outer ring ejector tube 211, then enters the outer ring mixing cavity, and finally the gas is divided by the outer ring flame 22 and is ignited by the central flame. When the user uses the stir-fry function, gently touch the stir-fry key 9, and the stir-fry key 9 sends a signal to the controller 8. The controller 8 receives the signal, and after being processed by the chip, communicates with the steady-state valve 62. The steady-state valve 62 opens, and the stir-fry valve core 61 leaves the stir-fry gas transmission channel 5. A gas branch is generated in the second gas transmission channel 4, that is, the gas in the stir-fry gas transmission channel 5 passes through the stir-fry gas transmission channel 5 and the main gas channel of the stir-fry nozzle 7 and enters the outer ring ejector tube 211. During this process, because an additional gas branch is added, the cross-sectional area of the gas flow channel increases, and the gas pressure hardly changes when the stove turns on the stir-fry function. According to the flow formula, flow = flow velocity × cross-sectional area of the flow channel, it can be known that the gas flow rate becomes larger. More gas enters the outer ring ejector tube 211, passes through the outer ring mixing cavity, passes through the outer ring flame 22, generates a flame, and it can be clearly seen that the outer ring flame becomes longer than the flame before turning on the stir-fry function, and the overall heat load is greater. The gas flow direction in the valve body can be seen in the arrow diagram.

[0047] On the basis of not changing the overall structure of the original products on the market, the utility model realizes the function of freely and conveniently controlling the gas flow only through the ingenious redevelopment design of the existing valve body structure. Through experimental verification, users only need to gently touch the button to increase the external ring gas heat load of the cooking stove by 500W, and the firepower increases from 5.2kW to 5.7kW, making the firepower of the cooking stove stronger and the Maillard reaction of food more intense, thus realizing the stir-frying function.

[0048] The utility model ingeniously designs the stir-frying nozzle, integrates the stir-frying gas channel into the traditional gas nozzle, and drills one or more stir-frying channels by drilling obliquely towards the nozzle orifice from the inner side surface at the outer end of the main spray hole of the nozzle. It effectively solves the problem that the existing stir-frying gas stoves on the market need an additional designed air supplementing system after stir-frying. Compared with some cooking stoves with multi-nozzle designs, it also avoids the problem of changing the burner, has stronger universality, and this design is more beautiful and neater in structure than the existing products on the market and saves more costs. The overall cost is lower than that of the existing products on the market, and there is no need to add any auxiliary air supply system such as a blower. By re-structuring the design of the original nozzle of the cooking stove, the carbon monoxide emission of the cooking stove can be controlled within the range specified by the national standard.

[0049] In this application, unless otherwise clearly specified and defined, the first feature being "on" or "under" the second feature may be that the first and second features are in direct contact, or the first and second features are indirectly in contact through an intermediate medium. Moreover, the first feature being "above", "over" and "on top of" the second feature may be that the first feature is directly above or obliquely above the second feature, or merely indicates that the first feature has a higher horizontal height than the second feature. The first feature being "under", "beneath" and "underneath" the second feature may be that the first feature is directly below or obliquely below the second feature, or merely indicates that the first feature has a lower horizontal height than the second feature.

[0050] In the description of this specification, the description referring to terms such as "preferred embodiment", "another embodiment", "other embodiments" or "specific examples" means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of this application. In this specification, the schematic representations of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. In addition, without contradiction, those skilled in the art can combine and combine the different embodiments or examples described in this specification and the features of different embodiments or examples.

[0051] Although the embodiments of the present application have been shown and described above, it can be understood that the above embodiments are exemplary and should not be construed as limiting the present application. Those of ordinary skill in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the present application.

Claims

1. A gas supply component, characterized in that, The gas supply assembly includes a control valve, a first gas transmission channel, a second gas transmission channel, and a stir-fry adjustment mechanism. The input end of the control valve is used to receive the input of gas. The output end of the control valve is respectively connected to the input ends of the first gas transmission channel and the second gas transmission channel. The control valve controls the on-off of its input end with both the first gas transmission channel and the second gas transmission channel. The output ends of the first gas transmission channel and the second gas transmission channel are respectively used to supply gas to the central ring fire and the outer ring fire. The gas supply assembly further includes a stir-fry adjustment mechanism. The input end and the output end of the stir-fry adjustment mechanism are respectively connected to the second gas transmission channel. The input end and the output end of the stir-fry adjustment mechanism are sequentially arranged at intervals along the gas transmission direction on the second gas transmission channel. The stir-fry adjustment mechanism is used to adjust the gas flow rate at the output end of the second gas transmission channel, so that the second gas transmission channel has a high-fire mode and a stir-fry mode.

2. The gas supply assembly according to claim 1, characterized in that The stir-fry adjustment mechanism includes a stir-fry gas transmission channel arranged therein. The stir-fry gas transmission channel is in parallel with the second gas transmission channel. The input end and the output end of the stir-fry gas transmission channel are respectively arranged at the front end and the rear end in the transmission direction of the second gas transmission channel. The stir-fry adjustment mechanism further includes a steady-state valve, and the steady-state valve controls the on-off of the stir-fry gas transmission channel.

3. The gas supply component according to claim 2, characterized in that, The stir-fry adjustment mechanism further includes a steady-state valve, a stir-fry valve core, and a stir-fry cavity. The stir-fry cavity is communicated with the second gas transmission channel. The stir-fry valve core is arranged in the stir-fry cavity. The input end of the stir-fry gas transmission channel is communicated with the stir-fry cavity. The steady-state valve realizes the on-off of the stir-fry gas transmission channel by controlling the stir-fry valve core. A gas output nozzle is further arranged on the second gas transmission channel. The stir-fry gas injection hole of the gas output nozzle is arranged towards one end of the outer ring fire. The output end of the stir-fry gas transmission channel is a stir-fry gas transmission outlet. The stir-fry gas transmission outlet is communicated with the stir-fry gas injection hole, and the stir-fry gas transmission outlet is a drilling inclined towards the stir-fry gas injection hole opened at the gas output nozzle at the position of the stir-fry gas injection hole.

4. The gas supply assembly according to claim 3, characterized in that, The steady-state valve further includes a return spring. The return spring is arranged between the stir-fry valve core and the stir-fry cavity. The return spring provides a restoring force to block the stir-fry gas transmission channel by the stir-fry valve core.

5. The gas supply component according to claim 2, wherein, The cross-sectional area of the stir-fry gas transmission channel for transmitting gas is smaller than the cross-sectional area of the second gas transmission channel for transmitting gas.

6. The gas supply component according to claim 1, wherein The gas flow rate output by the first gas transmission channel is smaller than the gas flow rate output by the second gas transmission channel. The stir-fry adjustment mechanism is detachably connected to the second gas transmission channel.

7. The gas supply assembly according to claim 1, characterized in that, The gas supply assembly further includes an outer ring ejector pipe and a central ring ejector pipe. The input ends of the outer ring ejector pipe and the central ring ejector pipe are respectively connected to the output end of the first gas transmission channel and the output end of the second gas transmission channel. The input ends of the outer ring ejector pipe and the central ring ejector pipe are respectively used to supply gas to the central ring fire and the outer ring fire.

8. A stir-fry gas stove, characterized in that, The stir-fry gas stove includes a gas stove body, a controller, a central ring fire, an outer ring fire, and the gas supply assembly described in claim 1. The controller, the central ring fire, the outer ring fire, and the gas supply assembly are arranged on the gas stove body. The output ends of the first gas transmission channel and the second gas transmission channel are respectively communicated with the central ring fire and the outer ring fire. The controller is respectively in signal connection with the control valve and the stir-fry adjustment mechanism.

9. The stir-fry gas stove according to claim 8, wherein A steady-state valve is further arranged on the stir-fry adjustment mechanism, and a stir-fry switch is further arranged on the gas stove body. The stir-fry switch and the steady-state valve are respectively in signal connection with the controller.

10. The stir-fry gas stove according to claim 8, characterized in that, The stir-fry gas stove includes at least two sets of gas supply assemblies, as well as a central ring fire and an outer ring fire that are matched with the gas supply assemblies. A gas input branch pipe is arranged at the input end of the control valve, and the input ends of the respective gas input branch pipes are connected to a gas main pipe, and the gas main pipe is used to receive the input of gas.