Fire cap for a burner and gas hob

By creating a gathering groove in the recessed wall of the mixing chamber of the burner cap, the problem of insufficient gas supply in the ignition port is solved, and the ignition performance and ignition efficiency of the ignition groove are improved.

CN117190188BActive Publication Date: 2025-11-07QINGDAO HAIER SMART TECH R & D CO LTD
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Patent Information

Application Number
CN202210602722.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-05-30
Publication Date
2025-11-07
Estimated Expiration
2042-05-30

AI Technical Summary

Technical Problem

The existing flame port of the flame cap has insufficient gas supply, resulting in poor flame transmission effect of the flame transmission groove.

Method used

Design a flame cap structure including a mixing chamber enclosed by a top wall, an inner side wall, and an outer side wall. The inner wall of the mixing chamber corresponding to the flame transmission hole is recessed to form a gathering groove, which is used to gather the gas to increase the gas supply of the flame transmission hole.

Benefits of technology

The design of the gathering groove ensures sufficient gas supply at the ignition port, improving the ignition performance and ignition efficiency of the ignition groove and achieving a stable ignition effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of gas stoves, and discloses a fire cover for a burner and a gas stove. The fire cover for the burner comprises a top wall in the shape of a ring, an inner side wall located below the top wall and also in the shape of a ring, and an outer side wall located below the top wall and outside the inner side wall and also in the shape of a ring, wherein the outer side wall, the inner side wall and the top wall jointly enclose a gas mixing chamber; the fire cover is provided with a fire transmission groove which penetrates the inner side wall, the top wall and the outer side wall in sequence and is in communication with the gas mixing chamber; the inner side wall is provided with a fire transmission hole in communication with the gas mixing chamber, the fire transmission hole corresponds to the fire transmission groove, and the inner wall surface of the gas mixing chamber corresponding to the fire transmission hole is recessed to form an accumulation groove. More gas can be accumulated at the accumulation groove, so that the gas supply amount of the fire transmission groove corresponding to the fire transmission hole can be ensured, the fire transmission performance of the fire transmission groove is improved, and the ignition efficiency at the fire transmission hole is improved.
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Description

Technical Field

[0001] This application relates to the field of gas stove technology, for example to a burner cap for a burner and a gas stove. Background Technology

[0002] Existing flame caps are generally equipped with flame transfer grooves for transferring flame. After the flame transfer hole in the flame transfer groove is ignited, the flame is then transferred through the flame transfer groove to the flame stabilizing groove or flame hole of the flame cap.

[0003] In the process of implementing the embodiments of this disclosure, at least the following problems were found in the related art:

[0004] In related technologies, insufficient gas supply at the ignition port can easily reduce the ignition transmission effect of the ignition channel. Summary of the Invention

[0005] To provide a basic understanding of some aspects of the disclosed embodiments, a brief summary is given below. This summary is not intended as a general commentary, nor is it intended to identify key / important components or describe the scope of protection of these embodiments, but rather as a prelude to the detailed description that follows.

[0006] This disclosure provides a burner cap for a burner and a gas stove to improve the fire transmission effect of the fire transmission groove.

[0007] According to a first aspect of the present invention, a burner cap for a burner is provided, the burner cap comprising: a top wall, which is annular; an inner side wall, which is annular and located below the top wall; and an outer side wall, which is annular and located below the top wall and outside the inner side wall, wherein the outer side wall, the inner side wall, and the top wall together enclose a mixing chamber; the burner cap is provided with a flame transfer groove, which sequentially penetrates the inner side wall, the top wall, and the outer side wall, and is connected to the mixing chamber; the inner side wall is provided with a flame transfer hole that is connected to the mixing chamber, the flame transfer hole corresponding to the flame transfer groove, wherein the inner wall surface of the mixing chamber corresponding to the flame transfer hole is recessed to form an accumulation groove.

[0008] According to a second aspect of the present invention, a gas stove is provided, the gas stove including a burner, the burner including the burner cap described above.

[0009] The burner cap and gas stove provided in this disclosure can achieve the following technical effects:

[0010] The inner wall of the mixing chamber corresponding to the ignition hole is recessed to form a gathering groove. The gathering groove can accumulate more gas, which not only ensures the gas supply to the ignition groove corresponding to the ignition hole to improve the ignition performance of the ignition groove, but also improves the ignition efficiency at the ignition hole, ultimately ensuring that the ignition groove and ignition hole can stably transmit gas.

[0011] The foregoing general description and the following detailed description are exemplary and explanatory only and are not intended to be limiting of the application. BRIEF DESCRIPTION OF DRAWINGS

[0012] One or more embodiments are illustrated by way of example in the figures that are not intended to be limiting of the application as defined by the claims and their equivalents. Identical reference numbers in the figures designate equivalent elements. The figures are not necessarily to scale, and the size of the elements shown in the figures is intended to illustrate, but not limit, the application. In the figures:

[0013] Figure 1 is a structural schematic diagram of an upper air inlet burner provided by an embodiment of the present disclosure;

[0014] Figure 2 is a structural schematic diagram of an outer fire cover from one perspective provided by an embodiment of the present disclosure;

[0015] Figure 3 is a structural schematic diagram of an outer fire cover from another perspective provided by an embodiment of the present disclosure;

[0016] Figure 4 is a structural schematic diagram of a middle fire cover from one perspective provided by an embodiment of the present disclosure; Figure 3

[0017] Figure 5 is a structural schematic diagram of a middle fire cover from another perspective provided by an embodiment of the present disclosure;

[0018] Figure 6 is a structural schematic diagram of a gas distribution cover from one perspective provided by an embodiment of the present disclosure;

[0019] Figure 7 is a structural schematic diagram of a gas distribution cover from another perspective provided by an embodiment of the present disclosure; Figure 6

[0020] Figure 8 is a structural schematic diagram of a gas distribution seat from one perspective provided by an embodiment of the present disclosure;

[0021] Figure 9 is a structural schematic diagram of a gas distribution seat from another perspective provided by an embodiment of the present disclosure;

[0022] Figure 10 is a structural schematic diagram of a base provided by an embodiment of the present disclosure;

[0023] Figure 11 is a structural schematic diagram of a base from another perspective provided by an embodiment of the present disclosure;

[0024] Figure 12 is a structural schematic diagram of a base provided by an embodiment of the present disclosure;

[0025] ​​Figure 13 is a schematic view of a cooperation structure of a base and a liquid receiving tray provided by an embodiment of the present disclosure;

[0026] Figure 14 is a schematic view of a structure of an upper air inlet burner from another perspective provided by an embodiment of the present disclosure;

[0027] Figure 15 is a schematic view of an explosion structure of an upper air inlet burner provided by an embodiment of the present disclosure;

[0028] Figure 16 is a schematic view of a cooperation structure of a fire cover and a gas distribution cover provided by an embodiment of the present disclosure;

[0029] Figure 17 is a schematic view of a sectional structure of an upper air inlet burner provided by an embodiment of the present disclosure.

[0030] Reference signs:

[0031] 10, outer fire cover; 101, third mixing chamber; 102, fourth fire hole; 1021, first fire hole group; 103, fifth fire hole; 1031, first flame stabilizing groove; 104, first recess of outer fire cover; 1041, outer annular outer mixing chamber; 1042, outer annular inner mixing chamber; 105, first sealing protrusion; 1051, through groove; 106, first fire transmission groove; 107, drill hole; 108, first outer side wall; 20, middle fire cover; 201, second mixing chamber; 202, second fire hole; 2021, second fire hole group; 203, third fire hole; 2031, second flame stabilizing groove; 204, first recess of middle fire cover; 2041, middle annular outer mixing chamber; 2042, middle annular inner mixing chamber; 205, second sealing protrusion; 206, second fire transmission groove; 2061, fire transmission hole; 2062, gathering groove; 2063, first groove-shaped passage; 2064, straight-through hole; 207, second outer side wall; 30, inner fire cover; 301, first fire hole; 40, gas distribution cover; 401, first gas distribution passage; 4011, first gas distribution plate; 4012, outer annular outer gas distribution passage; 4013, outer annular inner gas distribution passage; 402, second gas distribution passage; 4021, second gas distribution plate; 4022, middle annular outer gas distribution passage; 4023, middle annular inner gas distribution passage; 403, skirt; 4031, first limiting protrusion; 4032, second limiting protrusion; 4033, second arc-shaped surface; 404, first screw hole; 4041, partitioning matching part; 405, third gas distribution passage; 406, first protrusion; 4061, first protrusion of first gas distribution passage; 4062, first protrusion of second gas distribution passage; 407, gas outlet grid; 4071, first gas outlet grid; 4072, second gas outlet grid; 4073, first grid segment; 4074, second grid segment; 4075, third gas outlet grid; 4076, fourth gas outlet grid; 4077, third grid segment; 4078, fourth grid segment; 4079, stepped structure; 408, grid hole; 4081, bottom wall of gas distribution passage; 4082, second inclined surface; 409, bottom wall; 4091, inner annular wall; 4092, outer annular wall; 4093, first upper ejection passage; 4094, second upper ejection passage; 4095, third upper ejection passage; 4096, second groove-shaped passage; 50, gas distribution seat; 501, outer annular gas outlet passage; 5011, first gas outlet passage; 5012, second gas outlet passage; 502, middle annular gas outlet passage; 5021, third gas outlet passage; 5022, fourth gas outlet passage; 503, ejector; 5031, first ejector; 5032, first lower ejection passage; 5033, second ejector; 5034, second lower ejection passage; 5035, third ejector; 5036, third lower ejection passage; 504, partition plate; 5041, secondary air flow channel; 505, reinforcing rib; 506, partitioning part; 5061, first partitioning part; 5062, second partitioning part; 507, bottom wall of gas outlet passage; 5071, first inclined surface;508, first body; 5081, second body; 509, limiting hole; 5091, second screw hole; 5092, support column; 6, base; 601, air outlet; 602, first through hole; 6024, nozzle; 603, limiting fitting part; 6031, side vertical surface; 6032, first arc surface; 6033, limiting column; 604, support surface; 605, second connecting hole; 606, base body; 70, liquid receiving disc; 702, plug cap; 80, fire cover; 801, outer side wall; 8011, outer side fire hole; 8012, third wall segment; 8013, fourth wall segment; 802, inner side wall; 8021, inner side fire hole; 8022, first wall segment; 8023, second wall segment; 803, top wall; 804, gas mixing chamber; 8041, inner side gas mixing chamber; 8042, outer side gas mixing chamber; 805, transfer slot; 806, first main fire hole; 8061, first flame stabilizing hole; 8062, second main fire hole; 8063, second flame stabilizing hole; 8071, first step part; 8072, second step part. DETAILED DESCRIPTION

[0032] In order to enable a more detailed understanding of the features and technical content of the embodiments of the present disclosure, the implementation of the embodiments of the present disclosure is described in detail below, and the attached drawings are used for reference only and do not limit the embodiments of the present disclosure. In the following technical description, in order to facilitate explanation, through multiple details, a sufficient understanding of the disclosed embodiments is provided. However, one or more embodiments can still be implemented without these details. In other cases, in order to simplify the drawings, well-known structures and devices can be simplified.

[0033] The terms "first", "second", and the like in the specification and claims of the embodiments of the present disclosure and the above-mentioned drawings are used to distinguish similar objects, and do not necessarily have to describe a specific order or sequence. It should be understood that the data thus used can be interchanged under appropriate circumstances, so that the embodiments of the present disclosure described herein can be implemented. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion.

[0034] In the embodiments of the present disclosure, the terms "upper", "lower", "inner", "middle", "outer", "front", "back" and the like indicate the orientation or positional relationship shown in the drawings. These terms are mainly used to better describe the embodiments of the present disclosure and its embodiments, and are not used to limit the indicated devices, elements or components to have a specific orientation, or to be constructed and operated in a specific orientation. In addition, in addition to indicating the orientation or positional relationship, the above-mentioned terms can also be used to indicate other meanings, for example, the term "upper" can also be used to indicate a certain dependent relationship or connection relationship in some cases. For those skilled in the art, the specific meanings of these terms in the embodiments of the present disclosure can be understood according to the specific circumstances.

[0035] In addition, the terms "set", "connected", "fixed" should be broadly understood. For example, "connected" can be fixedly connected, detachably connected, or integrally configured; can be mechanically connected, or electrically connected; can be directly connected, or indirectly connected through an intermediate medium, or internal communication between two devices, elements or components. For those skilled in the art, the specific meanings of the above terms in the embodiments of the present disclosure can be understood according to the specific circumstances.

[0036] Unless otherwise specified, the term "a plurality of" means two or more.

[0037] The term "and / or" is a description of the association relationship of the object, which means that there can be three relationships. For example, A and / or B means: A or B, or, A and B, three relationships.

[0038] It should be noted that the embodiments in the embodiments of the present disclosure and the features in the embodiments can be combined with each other without conflict.

[0039] In combination Figures 1 to 17As shown, the upper air inlet burner is mounted on the panel, and the upper air inlet burner (hereinafter referred to as the burner) comprises a fire cover and an ejector 503 located above the panel. The primary air and the secondary air of the upper air inlet burner are both from above the panel. The fire cover 80 defines a mixing chamber 804 with a fire hole. The number of fire covers 80 is multiple, and the multiple fire covers 80 comprise an inner fire cover 30, a middle fire cover 20 and an outer fire cover 10 which are sequentially sleeved from inside to outside. The inner fire cover 30 defines a first mixing chamber, and the inner fire cover 30 is provided with a first fire hole 301 which is in communication with the first mixing chamber. The middle fire cover 20 defines a second mixing chamber 201, and the middle fire cover 20 is provided with a second fire hole 202 and a third fire hole 203 which are in communication with the second mixing chamber 201, and the second fire hole 202 is located on the inner side of the third fire hole 203. The outer fire cover 10 defines a third mixing chamber 101, and is provided with a fourth fire hole 102 and a fifth fire hole 103 which are in communication with the third mixing chamber 101, and the fourth fire hole 102 is located on the inner side of the fifth fire hole 103. The fire cover is located above the ejector 503, the outlet of the ejector 503 is in communication with the mixing chamber 804 of each fire cover, and the ejector 503 is used for providing fuel gas to the fire cover. The mixing chamber 804 comprises the first mixing chamber, the second mixing chamber 201 and the third mixing chamber 101. The fire hole comprises the first fire hole 301, the second fire hole 202, the third fire hole 203, the fourth fire hole 102 and the fifth fire hole 103.

[0040] In the embodiment, the burner can form a five-ring fire through the three fire covers, i.e., the inner fire cover 30, the middle fire cover 20 and the outer fire cover 10, so as to improve the flame area of the fire cover of the burner, and further improve the flame uniformity of the fire cover, thereby ensuring the uniformity of the burner in heating the pot.

[0041] Optionally, the number of the ejectors 503 is multiple, and the number of the ejectors 503 is the same as the number of the fire covers.

[0042] In the embodiment, each fire cover is in communication with the ejector 503, so as to ensure the fuel gas supply amount of each fire cover, and make the fuel gas supply of each fire cover independent, so as to realize multiple forms of fire and improve the use flexibility of the burner. Figure 9 As shown, the number of the ejectors 503 is three, and the three ejectors 503 comprise a first ejector 5031, a second ejector 5033 and a third ejector 5035.

[0043] Optionally, as shown, Figure 12 As shown, the upper air inlet burner further comprises a base 60 located below the ejector 503, the base 60 defines an air guide channel, the air guide channel is in communication with the inlet of the ejector 503, and the number of the air guide channels is the same as and corresponds to the number of the ejectors 503.

[0044] In this embodiment, the base 60 supports the ejector 503 and the flame cap 80, positioning the ejector 503 above the panel and allowing a gap between the ejector 503 and the panel to facilitate the supply of primary and secondary air. The base 60 defines an air intake passage to facilitate the transfer of municipal gas or gas from a gas tank to the ejector 503.

[0045] For example, when there are three ejectors 503, there are three air intake channels, including a first air intake channel, a second air intake channel, and a third air intake channel. The outlet of the first air intake channel is connected to the inlet of the first ejector 5031, the outlet of the second air intake channel is connected to the inlet of the second ejector 5033, and the outlet of the third air intake channel is connected to the inlet of the third ejector 5035.

[0046] Optionally, each air intake channel includes a first through hole 602, a second through hole, and a first channel connecting the first through hole 602 and the second through hole. The first through hole 602 is located below the second through hole. The first channel extends vertically, with the first through hole 602 facing outwards and the second through hole facing inwards. The second through hole communicates with the inlet of the ejector 503; that is, the second through hole is the outlet of the air intake channel, and the first through hole 602 is the inlet of the air intake channel. The burner also includes nozzles 6024, which are located at the second through holes. The number of second through holes is the same as the number of air intake channels, and they correspond one-to-one. The number of nozzles 6024 is the same as the number of second through holes, and they correspond one-to-one.

[0047] Optionally, such as Figure 10 As shown, when the ejector 503 is linear, the axis of the nozzle 6024 is coaxial with the axis of the ejector 503 along the axial direction of the nozzle 6024. This ensures the stability of the combustion system, the effectiveness of primary air ejection, reduces flue gas emissions, and guarantees the combustion efficiency of the burner.

[0048] Optionally, the nozzle 6024 may be connected to the inlet of the ejector 503 or there may be a gap between them. When the nozzle 6024 is separated from the inlet of the ejector 503, that is, the nozzle 6024 does not contact the ejector 503. This coaxial arrangement ensures the ejection capability of the ejector 503 and increases the amount of primary air ejected.

[0049] Optionally, the nozzle 6024 is threadedly connected to the second through hole. The outer wall of the first through hole 602 is provided with external threads to facilitate connection with an external gas pipeline.

[0050] To facilitate processing, a third through hole can be provided at the bottom of the base 60. After the first channel is set through the third through hole, a sealing element is then set at the third through hole to seal the third through hole.

[0051] Optionally, the burner further comprises a valve body, the valve body is in communication with the inlets of the plurality of air guide channels, and is used for adjusting the air intake of each air guide channel.

[0052] In this embodiment, the valve body is internally provided with a plurality of channels, the channels are the same in number as the air guide channels and correspond one by one. The valve body is further provided with a switch, the switch can control the opening and closing of each channel, thereby controlling the on-off of the air guide channels and the ejector 503.

[0053] For example, the valve body is a three-way valve body, the switch of the valve body is linked with a button, the button is arranged outside the burner, and the user can adjust the opening and closing of each channel in the valve body by operating the button. For example, in actual application, when the knob is rotated to 90°, the burner is in an ignition state, and the three channels are fully open. When rotated to the last angle (for example, 180°, 230°, 270°), only one channel is opened. When rotated to an angle between 90° and the last angle, two channels are opened. When rotated to 0°-90°, the three channels are fully open, but the flow is small.

[0054] Through the forms of the three ejectors 503, the valve body and the three fire caps, the updraft burner can not only realize the shape of three fire caps and five ring fires, but also adjust the gas flow of each ejector 503, thereby adjusting the flame size of the five fire holes of the three fire caps, and further adjusting the out-fire flexibility of the burner.

[0055] Optionally, as shown in Figures 8 to 11 and Figure 15 The burner further comprises a gas distribution assembly, the gas distribution assembly comprises a gas distribution cover 40 and a gas distribution seat 50. The gas distribution cover 40 and the gas distribution seat 50 jointly define a gas channel and the ejector 503. The gas channel is configured with a gas inlet, the gas inlet is in communication with the outlet of the ejector 503 and the gas channel. The upper end of the gas distribution cover 40 defines a gas distribution channel and a gas outlet, and the gas in the gas channel can flow into the gas distribution channel through the gas outlet. The fire cap is arranged above the gas distribution channel. The number of the gas distribution channels is the same as the number of the fire caps and corresponds one by one. It can be understood that the gas distribution channel is in communication with the outlet of the ejector 503 and the mixing chamber 804 through the gas channel, that is, the gas or the mixed gas of air and gas (hereinafter collectively referred to as gas) flows through the air guide channel, the ejector 503, the gas inlet, the gas channel, the gas outlet, the gas distribution channel and the mixing chamber 804 in sequence, and then flows out through the fire hole of the fire cap.

[0056] In this embodiment, the gas distribution cover 40 and the gas distribution seat 50 jointly enclose the gas channel and the ejector 503, so as to provide gas to the fire cap, and the size of the burner can be saved. The gas distribution channel divides the gas flowing out of the gas channel, and then transmits the divided gas to the fire cap, thereby realizing the communication between the ejector 503 and the fire cap.

[0057] The mixing chamber 804 is located above the gas distribution channel. The mixing chamber 804 is connected to the gas distribution channel and together they form a mixing cavity. The mixing cavity ensures that the gas in the gas distribution channel does not leak out, so that it flows normally into the mixing chamber 804, and then flows out through the burner holes of the burner cap to facilitate combustion of the burner cap.

[0058] In the case of three burner caps, the gas distribution channels include a first gas distribution channel 401, a second gas distribution channel 402, and a third gas distribution channel 405, arranged sequentially from the inside out. A third mixing chamber 101 is connected to and located above the third gas distribution channel 405, and the third mixing chamber 101 and the third gas distribution channel 405 together form an outer ring mixing chamber. A second mixing chamber 201 is connected to and located above the second gas distribution channel 402, and the second mixing chamber 201 and the second gas distribution channel 402 together form a middle ring mixing chamber. A first mixing chamber is connected to and located above the first gas distribution channel 401, and the first mixing chamber and the first gas distribution channel 401 together form an inner ring mixing chamber.

[0059] Optionally, such as Figure 17 As shown, the inner wall of the air distribution cover 40 is provided with a limiting part, and the outer wall of the base 60 is provided with a limiting mating part 603. When the limiting part and the limiting mating part 603 are engaged, the air distribution cover 40 and the base 60 are restricted from rotating.

[0060] In this embodiment, the rotation between the gas distribution cover 40 and the base 60 is restricted, which can prevent the gas distribution assembly from rotating, thereby ensuring the coaxiality of the ejector 503 and the nozzle 6024.

[0061] Optionally, such as Figure 14 As shown, the vent cover 40 includes a vent cover body and a skirt 403. The vent cover body covers the vent seat 50, and the skirt 403 is located on the outer side of the vent cover body and extends circumferentially along the vent cover body. The skirt 403 is at least partially inclined downwards in the direction from the inside out. In this embodiment, the skirt 403 can prevent cooking liquids from flowing below the vent seat 50 and can guide the liquids to a supporting device, such as a drip tray 70.

[0062] Optionally, such as Figure 12 As shown, the base 60 includes a base body 606 and an air outlet 601. The air outlet 601 is located above the base body 606 and on one side of the inlet of the ejector tube 503. The nozzle 6024 is provided in the air outlet 601. The skirt 403 extends downward and is fitted onto the outer side of part of the base 60. The inner wall of the skirt 403 is provided with a limiting part, and the outer wall of the air outlet 601 is provided with a limiting fitting part 603.

[0063] In the embodiment, the lower end surface of the gas distribution cover 40 is connected with the upper end surface of the gas distribution seat 50 to form a gas passage and an ejector 503. The skirt 403 can extend downward to the base 60, and the gas outlet portion 601 is located at the upper end of the base 60 and at one side of the ejector 503, thereby facilitating the arrangement of the limiting portion and the limiting matching portion 603 to limit the rotation between the gas distribution cover 40 and the base 60.

[0064] Optionally, as shown in Figure 9 and Figure 17 , the limiting portion includes a first limiting protrusion 4031 protruding from the inner wall surface of the gas distribution cover 40, and the limiting matching portion 603 includes a side vertical surface 6031 located at at least one end of the outer wall surface of the gas outlet portion 601 along the circumferential direction thereof; when the limiting portion and the limiting matching portion 603 are matched, the first limiting protrusion 4031 and the side vertical surface 6031 are sequentially arranged along the circumferential direction of the gas outlet portion 601, and the first limiting protrusion 4031 is in abutment with the side vertical surface 6031.

[0065] In the embodiment, the first limiting protrusion 4031 is in abutment with the side vertical surface 6031 of the gas outlet portion 601, which can limit the rotation of the gas distribution cover 40 relative to the base 60 along the circumferential direction, thereby eliminating the freedom of rotation of the gas distribution assembly along the circumferential direction.

[0066] Optionally, the limiting portion further includes a second limiting protrusion 4032 protruding from the inner wall surface of the gas distribution cover 40 and sequentially and spaced apart from the first limiting protrusion 4031 along the circumferential direction of the gas distribution cover 40, and the length of the second limiting protrusion 4032 is less than that of the first limiting protrusion 4031; when the limiting portion and the limiting matching portion 603 are matched, the second limiting protrusion 4032 is located above the gas outlet portion 601 and in abutment with the upper wall surface of the gas outlet portion 601, and the limiting matching portion 603 includes the upper wall surface of the gas outlet portion 601.

[0067] In the embodiment, the second limiting protrusion 4032 cooperates with the first limiting protrusion 4031 to limit the rotation of the gas distribution cover 40 relative to the base 60, and also serves as a positioning function to facilitate the installation of the gas distribution assembly and the base 60.

[0068] Optionally, the limiting portion further includes a first arc surface 6032 located at the inner wall surface of the gas distribution cover 40, and the limiting matching portion 603 further includes a second arc surface 4033 located at the outer wall surface of the gas outlet portion 601 facing the gas distribution cover 40; when the limiting portion and the limiting matching portion 603 are matched, the first arc surface 6032 is in abutment with the second arc surface 4033.

[0069] In the embodiment, the first arc surface 6032 and the second arc surface 4033 are in contact, so that the gas distribution assembly cannot move radially relative to the base 60, thereby making the gas distribution assembly have no freedom in the front, back, left and right directions.

[0070] As shown in the example, Figure 9 The first limiting protrusion 4031, the second limiting protrusion 4032 and the second arc surface 4033 are all arranged on the inner wall surface of the skirt 403.

[0071] Optionally, as shown in the example, Figure 12 The upper surface of the base body 606 is provided with a supporting surface 604, and the lower surface of the gas distribution seat 50 is provided with a supporting column 5092. When the gas distribution assembly is arranged above the base 60, the supporting surface 604 abuts against the supporting column 5092 to realize the positioning and cooperation of the gas distribution assembly and the base 60. In the embodiment, the cooperation of the supporting surface 604 and the supporting column 5092 facilitates the installation and positioning of the base 60 and the gas distribution seat 50, thereby facilitating the installation of the gas distribution assembly on the base 60.

[0072] Optionally, the number of the supporting surfaces 604 is multiple, and the number of the supporting columns 5092 is the same as and corresponds to the number of the supporting surfaces 604. Figure 12 As shown in the example, the number of the supporting surfaces 604 is two, and the number of the supporting columns 5092 is also two. Specifically, the two supporting surfaces 604 are located on the same straight line, so as to facilitate the cooperation of the supporting column 5092 and the supporting surface 604.

[0073] Optionally, the gas distribution seat 50 is provided with a limiting hole 509 penetrating in the thickness direction thereof, and the upper surface of the base body 606 is provided with a limiting column 6033. When the gas distribution assembly is arranged above the base 60, the limiting column 6033 is located in the limiting hole 509. In the embodiment, the limiting column 6033 can be limited to rotate in the limiting hole 509 by penetrating the limiting hole 509, thereby limiting the rotation of the gas distribution seat 50 relative to the base 60.

[0074] Optionally, the size of the inner diameter of the limiting hole 509 is 0.3-0.5 mm larger than the size of the outer diameter of the limiting column 6033. In this way, the limiting column 6033 can be inserted into the limiting hole 509, and the limiting hole 509 can also limit the rotation of the limiting column 6033. Specifically, the size of the inner diameter of the limiting hole 509 can be 0.3 mm, 0.4 mm, 0.5 mm, etc. larger than the size of the outer diameter of the limiting column 6033.

[0075] Optionally, the number of the limiting columns 6033 is multiple, and the number of the limiting holes 509 is the same as and corresponds to the number of the limiting columns 6033.

[0076] Optionally, the burner also includes a thermocouple and an ignition needle, and at least two limiting posts 6033 are provided with through holes. The thermocouple and / or ignition needle pass through the through holes of the limiting posts 6033 and then through the limiting holes 509, thereby cooperating with the burner cap to extinguish and / or ignite.

[0077] Optionally, the air distribution cover 40 and the air distribution seat 50 can be detachably connected or fixedly connected. A detachable connection facilitates the installation, removal, and cleaning of the air distribution cover 40 and the air distribution seat 50. A fixed connection facilitates the removal of the air distribution cover 40 and the air distribution seat 50 and increases structural stability.

[0078] When the air distribution cover 40 and the air distribution plate are detachably connected, the outer peripheral wall of the air distribution cover 40 body is provided with a first screw hole 404, and the outer peripheral wall of the air distribution seat 50 is provided with a second screw hole 5091. The first screw hole 404 and the second screw hole 5091 correspond to each other. A first fastener passes through the first screw hole 404 and the second screw hole 5091 to connect the air distribution cover 40 and the air distribution seat 50. The upper end of the skirt 403 is located above the first screw hole 404, and the lower end of the skirt 403 extends to the outside of the first screw hole 404, or the lower end of the skirt 403 extends to the outside of the second screw hole 5091.

[0079] In this embodiment, the gas distribution seat 50 and the gas distribution cover 40 are connected by screws, which facilitates the installation, disassembly, and cleaning of the gas distribution seat 50 and the gas distribution cover 40. The skirt 403 can cover the screw holes to increase the aesthetics of the burner and prevent soup from flowing into the screw holes and affecting their use.

[0080] Optionally, there are multiple first screw holes 404, which are arranged sequentially at intervals along the circumference of the air distribution cover 40. The number of second screw holes 5091 is the same as the number of first screw holes 404 and corresponds one-to-one, so as to strengthen the connection between the air distribution cover 40 and the air distribution plate.

[0081] Optionally, such as Figure 13 The burner shown also includes a liquid receiving plate 70, which is located between the gas distribution seat 50 and the base 60. There is a gap between the gas distribution seat 50 and the liquid receiving plate 70 to facilitate air flow. The liquid receiving plate 70 is provided with a clearance hole (hereinafter referred to as the first clearance hole for easy distinction). The upper end of the air intake channel passes through the first clearance hole and is connected to the ejector 503.

[0082] In this embodiment, gas enters the gas duct of the base 60 from below the panel through a pipe, and the base 60 supports the ejector 503 at a certain distance from the panel. The drip tray 70 is used to collect soup from the pot, and the clearance hole of the drip tray 70 facilitates the alignment and communication between the outlet of the gas duct and the inlet of the ejector 503.

[0083] Optionally, the liquid cup 70 is further provided with a first connecting hole, the base 60 is provided with a second connecting hole 605, and a second fastener penetrates through the first connecting hole and the second connecting hole 605 to realize the connection of the liquid cup 70 and the base 60; optionally, the liquid cup 70 is attached to the base 60, and there is a gap between the liquid cup 70 and the lower surface of the gas distribution seat 50, so as to facilitate the flow of air into the burner.

[0084] Optionally, as shown in Figure 13 the burner further comprises a plug cap 702 which is matched with the first connecting hole, and when the liquid cup 70 is separated from the base 60, the plug cap 702 can be arranged above the first connecting hole.

[0085] In this embodiment, the first connecting hole of the liquid cup 70 is provided with a plug cap 702 after the gas distribution assembly and the fire cap combination are taken away, which can prevent oil stains from reaching the screw position and being difficult to clean.

[0086] The liquid cup 70 is further provided with a second avoiding hole, and the supporting surface 604 of the base 60 extends above the liquid cup 70 through the second avoiding hole and abuts against the supporting column 5092. As shown in Figure 13 the number of the first connecting holes is three, and the number of the plug caps 702 is also three. After the gas distribution assembly and the fire cap are taken down, the upper surface of the liquid cup 70 only has 5 protrusions (three plug caps 702 and two supporting surfaces 604), an ignition needle and a thermocouple, and an air outlet part 601, which is easy to clean.

[0087] Optionally, the burner further comprises a gas distribution plate which is located in the mixing chamber and extends along the circumference of the mixing chamber to separate the mixing chamber into an inner mixing chamber and an outer mixing chamber. The inner mixing chamber is in communication with the inner fire hole 8021 of the fire cap, and the outer mixing chamber is in communication with the outer fire hole 8011 of the fire cap.

[0088] In this embodiment, the gas distribution plate separates the mixing chamber into two mixing chambers, which can avoid the inner fire hole 8021 and the outer fire hole 8011 of the fire cap competing for gas to ensure the normal combustion of the inner fire hole 8021 and the outer fire hole 8011. Specifically, the gas distribution plate can separate an air distribution channel into an inner air distribution channel and an outer air distribution channel, and separate a mixing chamber 804 of a fire cap into an inner mixing chamber 8041 and an outer mixing chamber 8042.

[0089] Optionally, each fire cover is annular, and the fire cover 80 comprises a top wall 803, an outer sidewall 801 and an inner sidewall 802 when the fire cover is the outer fire cover 10 and / or the middle fire cover 20, the top wall 803 is annular. The outer sidewall 801 is located below the top wall 803 and is annular, and the outer sidewall 801 is provided with an outer side fire hole 8011. The inner sidewall 802 is located below the top wall 803 and is located inside the outer sidewall 801, and the inner sidewall 802 is annular, and the inner sidewall 802 is provided with an inner side fire hole 8021. The inner sidewall 802, the outer sidewall 801 and the top wall 803 jointly define a gas mixing chamber 804. When the fire cover is the inner fire cover 30, the inner fire cover 30 comprises an outer side plate and a top plate, the outer side plate is annular and is located below the top plate, and the outer side plate is provided with a first fire hole 301.

[0090] In some optional embodiments, the fire hole of the fire cover comprises a main fire hole and a flame stabilizing hole, wherein the fire cover is provided with a main fire hole (corresponding to the first fire hole 301, the second fire hole 202, the third fire hole 203, the fourth fire hole 102 and / or the fifth fire hole 103 described above) and a flame stabilizing hole, wherein the number of the main fire hole and the flame stabilizing hole is multiple, the multiple main fire holes are sequentially and spaced apart along the circumference of the fire cover, and the multiple flame stabilizing holes are also sequentially and spaced apart along the circumference of the fire cover, and the outer wall surface of the sidewall of the fire cover is further provided with a flame stabilizing groove, the flame stabilizing groove extends along the circumference of the fire cover, the inlet end of the flame stabilizing hole is in communication with the gas mixing chamber 804, and the outlet end of the flame stabilizing hole is in communication with the flame stabilizing groove.

[0091] In some optional embodiments, as shown in Figure 6 the main fire hole comprises a first main fire hole 806, the flame stabilizing hole comprises a first flame stabilizing hole 8061, and at least two first flame stabilizing holes 8061 are arranged between every two adjacent first main fire holes 806. In this embodiment, the distance between the two first main fire holes 806 is large, and at least two first flame stabilizing holes 8061 are arranged between the two adjacent first main fire holes 806, so as to ensure that the gas flow at the flame stabilizing groove is sufficient and prevent misfire.

[0092] Optionally, the flame stabilizing groove is located below the first main fire hole 806, and the height of the center of the first flame stabilizing hole 8061 is less than the height of the center of the first main fire hole 806.

[0093] In this embodiment, the height of the center of the first flame stabilizing hole 8061 is less than the height of the center of the first main fire hole 806, and the first flame stabilizing hole 8061 can stabilize the middle and lower parts of the first main fire hole 806.

[0094] Optionally, the number of the first main fire holes 806 is 18-22. If the number of the first main fire holes 806 is too much, the density of the first main fire holes 806 is too large, and adjacent first main fire holes 806 are prone to compete for air, resulting in smoke. If the number of the first main fire holes 806 is too small, the distance between adjacent first main fire holes 806 is too large, and it is not easy to form a ring-shaped fire, which is not conducive to heating of the burner. For example, the number of the first main fire holes 806 is 18, 20, or 22.

[0095] Optionally, the number of the at least two first flame stabilizing holes 8061 is 2-5. For example, the number of the first flame stabilizing holes 8061 between two adjacent first main fire holes 806 is 2, 3, 4, or 5. If the number of the first flame stabilizing holes 8061 is too much, adjacent first flame stabilizing holes 8061 compete for air, which is prone to produce smoke. For example, Figure 6 As shown, three first flame stabilizing holes 8061 are arranged between two adjacent first main fire holes 806.

[0096] In one specific embodiment, the outer side wall 801 of the fire cap is provided with the first main fire holes 806, the first flame stabilizing holes 8061, and the flame stabilizing grooves. The inner side wall 802 of the fire cap is provided with a fire hole group in communication with the gas mixing chamber 804, the fire hole group comprising one second main fire hole 8062 and at least two second flame stabilizing holes 8063, the second flame stabilizing holes 8063 being in communication with the gas mixing chamber 804 and the outside, and two of the at least two second flame stabilizing holes 8063 being respectively located on the two sides of the second main fire hole 8062.

[0097] In this embodiment, two second flame stabilizing holes 8063 are respectively arranged on the two sides of one second main fire hole 8062, and the second flame stabilizing holes 8063 stabilize the flame from two directions, which can enhance the flame stabilizing effect on the second main fire hole 8062.

[0098] Optionally, the number of the fire hole groups is multiple, and the multiple fire hole groups are sequentially and spaced apart along the circumference of the fire cap. The multiple fire hole groups are spaced apart, which can avoid competition for air between the multiple fire hole groups, reduce the smoke value, and facilitate processing of the fire cap.

[0099] In one specific embodiment, when the fire cap 80 is a middle fire cap 20, the inner side wall 802 of the middle fire cap 20 is provided with a second fire hole group 2021, and the number of the second fire hole group 2021 is 8-12.

[0100] If the number of the second fire hole group 2021 is more than 12, adjacent second fire hole groups 2021 compete for air, which is prone to produce smoke. If the number of the second fire hole group 2021 is less than 8, the distance between adjacent fire hole groups is too large, resulting in uneven flame of the fire cap on the ring line thereof.

[0101] Optionally, the number of the fourth main fire holes (the first fire holes 301) of the inner fire cap 30 is the same as the number of the second fire hole groups 2021 of the middle fire cap 20, and the fourth main fire holes of the inner fire cap 30 are staggered with the fire hole groups of the middle fire cap 20. In this way, the first ring fire and the second ring fire can be avoided from crossing, and the generation of smoke can be reduced.

[0102] For example, the number of the second fire hole groups 2021 can be 8 groups, 10 groups or 12 groups. Correspondingly, the number of the fourth main fire holes of the inner fire cap 30 is also 8, 10 or 12.

[0103] Optionally, the number of the first main fire holes 806 (the third fire holes 203) of the outer side wall 801 of the middle fire cap 20 is the same as the number of the third main fire holes (the fourth fire holes 102) of the inner side wall 802 of the outer fire cap 10. The first main fire holes 806 are staggered with the third main fire holes to avoid the first main fire holes 806 and the third main fire holes competing for air, and to reduce the generation of smoke.

[0104] For example, as shown in FIG. 1, the number of the first main fire holes 806 of the outer side wall 801 of the middle fire cap 20 is the same as the number of the third main fire holes (the fourth fire holes 102) of the inner side wall 802 of the outer fire cap 10. Figure 1 For example, as shown in FIG. 1, the number of the first main fire holes 806 of the outer side wall 801 of the middle fire cap 20 is the same as the number of the third main fire holes (the fourth fire holes 102) of the inner side wall 802 of the outer fire cap 10.

[0105] For example, as shown in FIG. 1, the number of the first main fire holes 806 of the outer side wall 801 of the middle fire cap 20 is the same as the number of the third main fire holes (the fourth fire holes 102) of the inner side wall 802 of the outer fire cap 10. Figure 16 Figure 17 Optionally, as shown in FIG. 1 and FIG. 2, the upper end of the gas distribution plate is in radial sealing and end face sealing connection with the lower wall surface of the fire cap 80, and / or the lower end of the gas distribution plate is in radial sealing and end face sealing connection with the upper wall surface of the gas distribution cover 40.

[0106] In this embodiment, the gas distribution plate is in sealing connection with the fire cap 80 or the gas distribution cover 40 in a combination of radial sealing and end face sealing. The sealing connection can strengthen the air-tight independence of the outer side mixing chamber and the inner side mixing chamber, and thus avoid air mixing between the inner side mixing chamber and the outer side mixing chamber.

[0107] In a specific embodiment, when the upper end of the gas distribution plate is in radial sealing and end face sealing connection with the lower wall surface of the fire cap 80, one of the upper end of the gas distribution plate and the lower wall surface of the fire cap 80 is provided with a first recess, and the other is provided with a first protrusion 406 matched with the first recess. When the first protrusion 406 is located in the first recess, the upper end of the gas distribution plate and the lower wall surface of the fire cap can be in radial sealing and end face sealing connection.

[0108] ​In the embodiment, the first protrusion 406 and the first groove structure are simple and easy to process, realize two cavities of the single fire cover, and further realize two ring fires of the single fire cover, and the adjacent two mixed gas cavities do not leak. Moreover, the structure of the first protrusion 406 and the first groove can realize two radial seals and one end face seal, thereby improving the sealing effect.

[0109] In another specific embodiment, in the case that the lower end of the gas distribution plate is connected to the upper wall of the gas distribution cover 40 by radial seal and end face seal, one of the lower end of the gas distribution plate and the upper wall of the gas distribution cover 40 is provided with a second groove, and the other of the upper end of the gas distribution plate and the upper wall of the gas distribution cover 40 is provided with a second protrusion matched with the second groove. When the second protrusion is located in the second groove, the lower end of the gas distribution plate and the upper wall of the gas distribution cover 40 can be connected by radial seal and end face seal. Similarly, the second protrusion and the second groove structure are simple and easy to process, and have good sealing effect. It can also realize the setting of two cavities of the single fire cover, and further realize two ring fires of the single fire cover, and the adjacent two mixed gas cavities do not leak. The structure of the second protrusion and the second groove can realize two radial seals and one end face seal, thereby improving the sealing effect.

[0110] As shown in Figure 8 and Figure 16 , the gas distribution cover 40 includes a bottom wall 409, an outer ring wall 4092 and an inner ring wall 4091. The bottom wall 409 is annular. The outer ring wall 4092 is located above the bottom wall 409 and is annular. The inner ring wall 4091 is located above the bottom wall 409 and is located inside the outer ring wall 4092 and is annular. The bottom wall 409, the outer ring wall 4092 and the inner ring wall 4091 together enclose a gas distribution passage. The lower end of the outer side wall 801 is provided with a first step portion 8071, and the upper end of the outer ring wall 4092 is matched with the first step portion 8071. The lower end of the inner side wall 802 is provided with a second step portion 8072, and the upper end of the inner ring wall 4091 is matched with the second step portion 8072.

[0111] In the embodiment, the first step portion 8071 and the second step portion 8072 are provided, so that the fire cover and the gas distribution cover 40 can also realize end face seal and one side radial seal, thereby ensuring the sealing effect of the inner and outer sides of the fire cover and the gas distribution cover 40, and avoiding gas leakage.

[0112] Each of the second gas distribution passage 402 and the third gas distribution passage 405 is provided with the above-mentioned bottom wall 409, outer ring wall 4092 and inner ring wall 4091, so that the middle fire cover 20 and the outer fire cover 10 can be matched with the corresponding gas distribution passage to form a mixed gas cavity.

[0113] Optionally, when the fire cover 80 is the outer fire cover 10 and / or the middle fire cover 20, the inner side wall 802 of each fire cover comprises a first wall segment 8022 and a second wall segment 8023 connected to each other, the first wall segment 8022 is provided with an inner side fire hole 8021; the second wall segment 8023 is arranged below the first wall segment 8022; when the lower end of the inner side wall 802 is configured with a second step portion 8072, the second wall segment 8023 is configured with the second step portion 8072, wherein the first wall segment 8022 is inclined downward in the direction from outside to inside. In this embodiment, the first wall segment 8022 is inclined downward in the direction from outside to inside, that is, the upper surface of the first wall segment 8022 is upward, so that the fire outlet angle of the inner side fire hole 8021 of the first wall segment 8022 is upward. Thus, the fire outlet of the inner side fire hole 8021 is facilitated, so that the flame at the inner side fire hole 8021 heats the pot.

[0114] Optionally, when the fire cover is the outer fire cover 10 and / or the middle fire cover 20, the outer side wall 801 comprises a third wall segment 8012 and a fourth wall segment 8013, the third wall segment 8012 is provided with an outer side fire hole 8011; the fourth wall segment 8013 is arranged below the third wall segment 8012; when the lower end of the outer side wall 801 is configured with a first step portion 8071, the fourth wall segment 8013 is configured with the first step portion 8071, wherein when the first step portion 8071 is matched with the outer ring wall 4092, the outer wall surface of the third wall segment 8012 is flush with the outer wall surface of the outer ring wall 4092. In this embodiment, when the first step portion 8071 is matched with the outer ring wall 4092, the first step portion 8071 is located inside the outer ring wall 4092, and the outer wall surface of the third wall segment 8012 is flush with the outer wall surface of the outer ring wall 4092, which not only realizes the sealing connection of the fire cover with the outer side of the gas distribution cover 40, but also increases the connection beauty and smoothness of the fire cover and the gas distribution disc.

[0115] Optionally, when the second step portion 8072 is matched with the inner ring wall 4091, the second step portion 8072 is located inside the inner ring wall 4091. When the first step portion 8071 is matched with the outer ring wall 4092, the first step portion 8071 is located inside the outer ring wall 4092.

[0116] Optionally, when the lower end of the gas distribution plate is connected with the upper wall surface of the gas distribution cover 40, the gas distribution plate is connected with the bottom wall 409 and located between the outer ring wall 4092 and the inner ring wall 4091. Wherein, the gas distribution plate protrudes from the outer ring wall 4092 and the inner ring wall 4091. In this example, the gas distribution plate protrudes from the outer ring wall 4092 and the inner ring wall 4091, which facilitates the abutment or connection of the gas distribution plate with the lower wall surface of the fire cover, while realizing the separation effect of the gas distribution plate.

[0117] Optionally, the number of gas distribution plates is multiple, and the multiple gas distribution plates include a first gas distribution plate 4011 located in the outer annular mixing chamber and extending along the circumference of the outer annular mixing chamber to separate the outer annular mixing chamber into a first mixing chamber and a second mixing chamber, the first mixing chamber being located outside the second mixing chamber, the first mixing chamber being in communication with the fifth fire hole 103, and the second mixing chamber being in communication with the fourth fire hole 102. The outer side mixing chamber includes the first mixing chamber, the inner side mixing chamber includes the second mixing chamber, the outer side fire hole 8011 includes the fifth fire hole 103, and the inner side fire hole 8021 includes the fourth fire hole 102. The arrangement of the first gas distribution plate 4011 divides the outer fire cover 10 into two independent cavities, thereby avoiding competition for gas by the fourth fire hole 102 and the fifth fire hole 103.

[0118] The first gas distribution plate 4011 separates the third mixing chamber 101 into an outer annular outer mixing chamber 1041 and an outer annular inner mixing chamber 1042 which are sequentially sleeved from the outside to the inside, and separates the third gas distribution passage 405 into an outer annular outer gas distribution passage 4012 and an outer annular inner gas distribution passage 4013 which are sequentially sleeved from the outside to the inside.

[0119] Optionally, as shown in Figure 16 the multiple gas distribution plates further include a second gas distribution plate 4021 located in the middle annular mixing chamber and extending along the circumference of the middle annular mixing chamber to separate the middle annular mixing chamber into a third mixing chamber and a fourth mixing chamber, the third mixing chamber being located outside the fourth mixing chamber, the third fire hole 203 being in communication with the third mixing chamber, and the second fire hole 202 being in communication with the fourth mixing chamber. The outer side mixing chamber includes the third mixing chamber, the inner side mixing chamber includes the fourth mixing chamber, the outer side fire hole 8011 includes the third fire hole 203, and the inner side fire hole 8021 includes the second fire hole 202. The arrangement of the first gas distribution plate 4011 divides the middle fire cover 20 into two independent cavities, thereby avoiding competition for gas by the second fire hole 202 and the third fire hole 203.

[0120] The second gas distribution plate 4021 separates the second mixing chamber 201 into a middle annular outer mixing chamber 2041 and a middle annular inner mixing chamber 2042 which are sequentially sleeved from the outside to the inside, and separates the second gas distribution passage 402 into a middle annular outer gas distribution passage 4022 and a middle annular inner gas distribution passage 4023 which are sequentially sleeved from the outside to the inside.

[0121] Optionally, the outlet of the first ejector 5031 is in communication with the first mixing chamber, and the outlet of the second ejector 5033 is in communication with the second mixing chamber. The outlet of the first ejector 5031 is in communication with the third mixing chamber, and the outlet of the second ejector 5033 is in communication with the fourth mixing chamber. The outlet of the third ejector 5035 is in communication with the inner annular mixing chamber.

[0122] It can be understood that the first injector 5031 provides fuel gas for the first mixing chamber and the third mixing chamber, and the second injector 5033 provides fuel gas for the second mixing chamber and the fourth mixing chamber. In this way, one injector 503 provides fuel gas for two mixing chambers of two fire covers at the same time, which facilitates the adjustment of the gas supply of the two mixing chambers at the same time, and facilitates the arrangement of the three injectors 503, the three fire covers and the gas distribution assembly, and facilitates the formation of the five-ring fire shape of the burner.

[0123] Optionally, the fire cover is also provided with a fire transfer groove 805, which penetrates the inner side wall 802, the top wall 803 and the outer side wall 801 in sequence, and the fire transfer groove 805 is upwardly open and communicates with the mixing chamber 804.

[0124] In this embodiment, the fire cover can be an outer fire cover 10 or a middle fire cover 20. When the fire cover is the middle fire cover 20, the middle fire cover 20 is provided with a first fire transfer groove 106 for transferring fire between the two-ring fire and the three-ring fire. When the fire cover is the outer fire cover 10, the outer fire cover 10 is provided with a second fire transfer groove 206 for transferring fire between the four-ring fire and the five-ring fire.

[0125] Optionally, as shown in Figures 2 to 6 When the fire cover is provided with a first recess and the gas distribution cover 40 is provided with a first protrusion 406, the fire cover further comprises a sealing protrusion, which is arranged at at least one groove wall of the first recess corresponding to the fire transfer groove 805, and the sealing protrusion extends downward. When the fire cover is arranged on the gas distribution cover 40, the sealing protrusion can be in close contact with the first protrusion 406 to realize the radial sealing of the fire cover at the fire transfer groove 805 and the gas distribution cover 40.

[0126] In this embodiment, the sealing protrusion can increase the sealing effect of the inner side mixing chamber and the outer side mixing chamber, and avoid air leakage of the inner side mixing chamber and the outer side mixing chamber at the fire transfer groove 805.

[0127] Optionally, the fire transfer groove 805 penetrates the groove wall of the first recess, and the upper end of the sealing protrusion is provided with a through groove 1051, which communicates with the fire transfer groove 805. In this way, the first recess and the sealing protrusion can avoid blocking the fire transfer channel of the fire transfer groove 805, so as to ensure the stability of the fire transfer of the fire transfer groove 805.

[0128] Optionally, as shown in Figure 16 The opposite two side walls of the fire transfer groove 805 are both provided with a drill hole 107, one end of the drill hole 107 communicates with the first outer side mixing chamber 8042, and the other end of the drill hole 107 is closed. The outer side mixing chamber 8042 comprises an outer ring outer mixing chamber 1041. In the direction from inside to outside, the drill hole 107 is inclined upward.

[0129] In the embodiment, the drilling hole 107 makes the gas in the outer ring outer gas mixing chamber 1041 have a tendency to flow outward, and can increase the ignition performance of the ignition groove 805. If there is no drilling hole 107, the gas mainly flows vertically upward through the flame stabilizing groove, and the outward flow intersects, affecting the ignition performance of the ignition groove 805.

[0130] Optionally, when the fire cover is the outer fire cover 10, the outer side wall 801 comprises a first outer side wall 108, the first outer side wall 108 is further provided with a first flame hole 8061 and a first flame stabilizing groove 1031, the inlet end of the first flame hole 8061 is in communication with the outer ring outer gas mixing chamber 1041, the outlet of the first flame hole 8061 is in communication with the first flame stabilizing groove 1031, and the first flame stabilizing groove 1031 is in communication with the outside. Wherein, the drilling hole 107 is located above the first flame hole 8061.

[0131] The inner end of the drilling hole 107 is located above the first flame hole 8061 and below the ignition groove 805, which can increase the depth of the drilling hole 107, thereby increasing the gas guiding capacity of the drilling hole 107.

[0132] Optionally, in the direction from inside to outside, the first flame hole 8061 is inclined upward, wherein the inclination angle of the first flame hole 8061 is greater than the inclination angle of the drilling hole 107.

[0133] In the embodiment, the inclination angle of the drilling hole 107 is smaller than the inclination angle of the flame hole, so that the gas guided through the drilling hole 107 can flow out from the outer end of the ignition groove 805, and the flame at the outer end of the ignition groove 805 is avoided to deviate, thereby ensuring that the flame of the ignition groove 805 can be stably transmitted to the main flame hole and the flame stabilizing groove.

[0134] Optionally, the first outer side wall 108 is further provided with a fifth flame hole 103, the diameter of the drilling hole 107 is smaller than the diameter of the fifth flame hole 103, and greater than the diameter of the first flame hole 8061. In this way, the gas inlet amount of the drilling hole 107 can be ensured, thereby ensuring the guiding amount of the drilling hole 107 to the gas, and the fifth flame hole 103 adjacent to the drilling hole 107 can also be prevented from competing for the gas, so as to ensure the flame burning of the fifth flame hole 103 adjacent to the drilling hole 107.

[0135] Optionally, when the fire cover is the middle fire cover 20, the outer side wall 801 comprises a second outer side wall 207, the second outer side wall 207 is provided with a second sealing protrusion 205, the second sealing protrusion 205 and the second outer side wall 207 are in an integrated structure, the second outer side wall 207 is provided with a second flame stabilizing groove 2031, the bottom of the second sealing protrusion 205 is provided with a second flame hole 8063, the inlet end of the second flame hole 8063 is in communication with the middle ring outer gas mixing chamber 2041, the outlet end of the second flame hole 8063 is in communication with the second flame stabilizing groove 2031, and the outer side gas mixing chamber 8042 comprises the middle ring outer gas mixing chamber 2041.

[0136] In the embodiment, the second sealing protrusion 205 is provided with a second flame stabilizing hole 8063, which can ensure that the second flame stabilizing groove 2031 corresponding to the second sealing protrusion 205 can be in communication with the outer mixing gas chamber 2041 of the middle ring, so as to improve the uniformity of the flame outlet of the flame cover.

[0137] Optionally, the two connection positions of the inner wall surface of the second sealing protrusion 205 and the second outer side wall 207 are provided with third fire holes 203. The connection position of the inner wall surface of the second sealing protrusion 205 and the second outer side wall 207 is provided with the third fire hole 203, so that the second sealing protrusion 205 can also be provided with a fire hole, thereby ensuring the uniformity of the flame outlet of the flame cover.

[0138] Optionally, the number of the second flame stabilizing holes 8063 at the second sealing protrusion 205 is multiple, and the multiple second flame stabilizing holes 8063 are located between the two third fire holes 203. Because the spacing between the two third fire holes 203 is large, the multiple second flame stabilizing holes 8063 can ensure that the flow of the second flame stabilizing groove 2031 is sufficient, and prevent poor fire transmission.

[0139] Optionally, as shown in Figure 6 and Figure 7 , the inner side wall 802 of the flame cover is also provided with a fire transmission hole 2061 in communication with the mixing gas chamber 804, the fire transmission hole 2061 corresponds to the fire transmission groove 805, and the inner wall surface of the mixing gas chamber 804 corresponding to the fire transmission hole 2061 is recessed to form an accumulation groove 2062.

[0140] In the embodiment, the fire transmission hole 2061 is used to transmit the flame between the inner side wall 802 and the outer side wall 801 of the flame cover. The accumulation groove 2062 is provided, so that the fuel gas can be accumulated in the accumulation groove 2062, thereby ensuring the fuel gas supply amount at the fire transmission hole 2061. In turn, the fire transmission efficiency of the fire transmission hole 2061 is ensured.

[0141] The accumulation groove 2062 is in communication with the fire transmission groove 805, so as to facilitate the communication between the fire transmission hole 2061 and the fire transmission groove 805.

[0142] Optionally, the inner wall surface of the top wall 803 of the flame cover and / or the inner wall surface of the inner side wall 802 is recessed to form the accumulation groove 2062.

[0143] Optionally, when the flame cover is provided with a first recess and the gas distribution cover 40 is provided with a first protrusion 406, the first recess is in communication with the fire transmission groove 805, and the inner groove wall of the first recess is provided with a first groove-shaped passage 2063, and the first groove-shaped passage 2063 is in communication with the fire transmission hole 2061 and the first recess.

[0144] In this embodiment, when the fire transfer groove 805 transfers fire, part of the gas flows upward along the fire transfer groove 805, and the other part of the gas can flow through the first slot-shaped passage 2063. In this way, the stability of the fire transfer of the fire transfer groove 805 can be ensured, and the fire transfer to the fire hole and the stable flame groove can be ensured.

[0145] Alternatively, when the second sealing protrusion 205 is in an integrated structure with the inner wall surface of the outer side wall 801 of the fire cap, the fire cap is further provided with a straight-through hole 2064, which penetrates the second sealing protrusion 205 and the outer side wall 801 in sequence. The straight-through hole 2064 communicates the first groove with the outside, and the straight-through hole 2064 corresponds to and communicates with the first slot-shaped passage 2063.

[0146] In this embodiment, after the gas flowing out through the first slot-shaped passage 2063 flows to the straight-through hole 2064, the flame flowing out of the straight-through hole 2064 is the main flame, which can not only ignite the stable flame groove where the fire cap is located, but also transfer the flame to the fire hole of another fire cap adjacent to the fire cap, so as to realize the fire transfer between the fire caps.

[0147] Alternatively, the straight-through hole 2064 is located at the upper part of the second sealing protrusion 205, and the outer end of the straight-through hole 2064 is located above the stable flame groove and between the two adjacent fire holes. In this way, the straight-through hole 2064 can transfer the flame to the stable flame groove, and then the stable flame groove transfers the flame to the fire hole.

[0148] Alternatively, the upper end of the straight-through hole 2064 communicates with the lower end of the fire transfer groove 805. In this way, part of the gas of the straight-through hole 2064 flows upward through the fire transfer groove 805 and flows out of the stable flame groove, and the other part flows to the fire hole of the adjacent fire cap.

[0149] Alternatively, the straight-through hole 2064 is inclined upward in the direction from inside to outside. The upward inclination of the straight-through hole 2064 makes the gas have a tendency to flow outward, and accelerates the flow speed of the gas flow.

[0150] Alternatively, the angle range between the straight-through hole 2064 and the horizontal direction is 0°-10°. When the angle between the straight-through hole 2064 and the horizontal direction is larger, the distance between the stable flame groove below the straight-through hole 2064 is too far, which is not convenient for transferring fire to the fire transfer groove 805. Specifically, the angle between the straight-through hole 2064 and the horizontal direction can be 2°, 5°, 8°, etc.

[0151] Alternatively, the upper end of the first protrusion 406 is provided with a second slot-shaped passage 4096, which corresponds to and communicates with the first slot-shaped passage 2063, so as to communicate the fire transfer hole 2061 and the straight-through hole 2064.

[0152] In this embodiment, the second slot-shaped channel 4096 and the first slot-shaped channel 2063 jointly form a slot-shaped channel, so that the gas at the ignition hole 2061 can flow to the straight-through hole 2064, thereby improving the ignition performance of the ignition slot 805. The slot-shaped channel cooperates with the accumulation slot 2062, and the gas in the accumulation slot 2062 can more easily reach the straight-through hole 2064 through the slot-shaped channel.

[0153] When the fire cover is three, the outer fire cover 10 is provided with a first sealing protrusion 105, and the middle fire cover 20 is provided with a second sealing protrusion 205. The first sealing protrusion 105 is arranged on the inner groove wall of the first groove 104 of the outer fire cover. The second sealing protrusion 205 is arranged on the outer groove wall of the first groove 204 of the middle fire cover and is integrated with the inner wall surface of the outer side wall 801 of the middle fire cover 20. Optionally, the middle fire cover 20 is provided with a slot-shaped channel and a straight-through hole 2064, and the thickness of the second sealing protrusion 205 is greater than that of the first sealing protrusion 105, so as to realize the radial sealing of the fire cover and the gas distribution cover 40 and improve the sealing performance.

[0154] The outer side wall 801 of the middle fire cover 20 is provided with a straight-through hole 2064 corresponding to the fourth fire hole 102 of the inner side wall 802 of the outer fire cover 10. The straight-through hole 2064 can transmit the flame to the fourth fire hole 102, thereby igniting the four-ring fire.

[0155] As shown in the example, Figure 1 When the burner is ignited, the ignition needle at the inner fire cover 30 ignites, and the one-ring fire ignites the two-ring fire. The two-ring fire ignites through the corresponding ignition hole 2061. Part of the gas in the middle ring gas mixing chamber 2042 flows upward along the second ignition slot 206, and part of the gas flows along the ignition hole 2061, the accumulation slot 2062, the slot-shaped channel, and the straight-through hole 2064. The flame at the straight-through hole 2064 is the main flame. Part of the gas at the straight-through hole 2064 flows upward from the second flame stabilizing slot 2031 of the middle fire cover 20, the second flame stabilizing slot 2031 transmits the flame to the third fire hole 203, thereby forming the three-ring fire. At the same time, the flame at the outlet of the straight-through hole 2064 ignites the fourth fire hole 102 of the outer fire cover 10, thereby igniting the four-ring fire. The four-ring fire transmits the flame to the fifth fire hole 103 through the first ignition slot 106, thereby igniting the five-ring fire.

[0156] Optionally, as shown in the example, Figure 8As shown, the gas distribution cover 40 is further provided with a gas outlet grid 407, which is located in the gas distribution channel and covers the gas outlet. The gas outlet grid 407 is arc-shaped and extends along the circumference of the gas distribution channel, and the gas outlet is matched with the gas distribution channel. The gas outlet grid 407 is used to guide the gas flowing out of the gas outlet to form a circumferential flow in the corresponding gas mixing chamber before reaching the corresponding gas cap gas mixing chamber, so that the gas flow in the gas mixing chamber is more uniform, and the gas outlet of the corresponding gas cap gas hole is also more uniform.

[0157] Optionally, as shown in Figure 8 and Figure 9 , the circumferential length of the gas outlet grid 407 corresponding to the two sides of the gas outlet is different.

[0158] In this embodiment, since the gas distribution channel is annular, the gas needs to flow circumferentially in the gas distribution channel. Due to the structure of the burner, the power of the gas flowing to both sides of the gas outlet is different, so the circumferential length of the gas outlet grid 407 corresponding to the two sides of the gas outlet is different, which can improve the uniformity of the circumferential flow of the gas in the gas distribution channel.

[0159] Optionally, the gas outlet grid 407 is provided with a plurality of grid holes 408, which are sequentially and spaced apart along the circumference of the gas outlet grid 407, which can provide the gas outlet uniformity of the gas outlet grid 407. Optionally, the plurality of grid holes 408 are uniformly arranged, which can further improve the gas outlet uniformity of the gas outlet grid 407.

[0160] In the case of three gas caps, the number of injectors 503 is three, wherein each injector 503 extends linearly along the radial direction of the gas distribution assembly; the first injector 5031 and the second injector 5033 are respectively located on both sides of the third injector 5035, and the straight line where the third injector 5035 is located passes through the center of the gas distribution assembly.

[0161] In this embodiment, the third injector 5035 passes through the center of the gas distribution assembly, and the first injector 5031 and the second injector 5033 are respectively located on both sides of the third injector 5035, so that the structure of the injector 503 is compact, and the gas supply to the three gas caps and five gas mixing chambers is facilitated.

[0162] In one specific embodiment, the gas passage comprises an outer ring gas passage, the outer ring gas passage is arc-shaped, the outer ring gas passage is located at one end of the first ejector 5031 and / or the second ejector 5033, and the outer ring gas passage is in communication with the first ejector 5031 and / or the second ejector 5033. The third sub-gas passage 405 is in communication with the outer ring gas passage, the third sub-gas passage 405 is annular, and the gas outlet grid 407 is located in the third sub-gas passage 405. The gas outlet grid 407 comprises a first grid segment 4073 and a second grid segment 4074. One end of the first grid segment 4073 extends away from the side of the center of the gas distribution assembly towards the first ejector 5031 and / or the second ejector 5033, and the other end of the first grid segment 4073 is located at the corresponding gas outlet of the first ejector 5031 and / or the second ejector 5033. One end of the second grid segment 4074 is connected to the other end of the first grid segment 4073, and the other end of the second grid segment 4074 extends towards the side of the center of the gas distribution assembly close to the first ejector 5031 and / or the second ejector 5033. The circumferential length of the second grid segment 4074 is greater than the circumferential length of the first grid segment 4073.

[0163] In this embodiment, the second grid segment 4074 is located on one side of the first ejector 5031 and / or the second ejector 5033, so the second grid segment 4074 is farther away from the corresponding gas outlet, and the circumferential length of the second grid segment 4074 is greater than the circumferential length of the first grid segment, so that the second grid segment 4074 can make the gas flowing out of the gas outlet flow in a circular manner along the circumference of the gas distribution passage.

[0164] Optionally, the number of gas outlet grids 407 is multiple, and the multiple gas outlet grids 407 comprise a first gas outlet grid 4071 and a second gas outlet grid 4072. The first gas outlet grid 4071 is located in the outer ring outer sub-gas passage 4012, and the second gas outlet grid 4072 is located in the outer ring inner sub-gas passage 4013. The first gas outlet grid 4071 is arranged correspondingly to the first ejector 5031, and the second gas outlet grid 4072 is arranged correspondingly to the second ejector 5033.

[0165] In this embodiment, the first sub-gas passage 401 is divided into an inner sub-gas passage and an outer sub-gas passage, and the two gas outlet grids 407 can guide the gas in the two sub-gas passages to flow in a circular manner, thereby improving the uniformity of the gas outlet of the fire cover.

[0166] For example, the first gas outlet grid 4071 and the second gas outlet grid 4072 are both provided with a first grid segment 4073 and a second grid segment 4074, so as to further improve the uniformity of the gas outlet of the first mixing chamber.

[0167] Optionally, the gas passage further comprises a middle ring gas passage, the middle ring gas passage is annular, the third ejector 5035 passes through the middle ring gas passage, wherein the inlet end of the third ejector 5035 is located at the outer side of the middle ring gas passage, the outlet end of the third ejector 5035 is located at the inner side of the middle ring gas passage, the middle ring gas passage is located at the side of the first ejector 5031 and / or the second ejector 5033 facing the third ejector 5035, and the middle ring gas passage intersects and communicates with the first ejector 5031 and / or the second ejector 5033. The center of the second gas distribution passage 402 coincides with the center of the gas distribution assembly, and the second gas distribution passage 402 communicates with the middle ring gas passage.

[0168] In another specific embodiment, the gas outlet grid 407 is located in the second gas distribution passage 402, the gas outlet grid 407 comprises a third grid segment 4077 and a fourth grid segment 4078, the third grid segment 4077 is located at the side of the first ejector 5031 and / or the second ejector 5033 away from the inlet thereof and extends in an arc shape along the circumference of the second gas distribution passage 402; the fourth grid segment 4078 is located at the side of the first ejector 5031 and / or the second ejector 5033 facing the inlet thereof and extends in an arc shape along the circumference of the second gas distribution passage 402; wherein the circumferential length of the third grid segment 4077 is greater than the circumferential length of the fourth grid segment 4078.

[0169] In this embodiment, the fourth gas outlet grid 4076 cannot extend in the second gas distribution passage 402 due to the obstruction of the third ejector 5035, and cannot guide the circumferential flow of the gas in the second gas distribution passage 402. The third gas outlet grid 4075 can extend to the third ejector 5035, and the length of the third gas outlet grid 4075 is relatively long, which can ensure that the gas in the second gas distribution passage 402 can realize circumferential flow, thereby ensuring the uniformity of the gas outlet of the valve cover.

[0170] Optionally, the number of gas outlet grids 407 is multiple, and the multiple gas outlet grids 407 comprise a third gas outlet grid 4075 and a fourth gas outlet grid 4076, the third gas outlet grid 4075 is located in the middle ring outer gas distribution passage 4022, and the fourth gas outlet grid 4076 is located in the middle ring inner gas distribution passage 4023; wherein the two ends of the third gas outlet grid 4075 are provided with stepped structures 4079 to avoid the second ejector 5033 and / or the third ejector 5035.

[0171] In this embodiment, the ejector 503 has a certain height, and the stepped structures 4079 at the two ends of the third gas outlet grid 4075 can lift the gas outlet grid 407 to avoid the second ejector 5033 and / or the third ejector 5035, thereby improving the smoothness of the gas flow.

[0172] Optionally, as Figure 9As shown, along the flow direction of the fuel gas in the second gas distribution passage 402, the aperture of the grid holes 408 at the end of the third grid segment 4077 is larger than the aperture of the grid holes 408 at the start and middle ends of the third grid segment 4077, and / or, the aperture of the grid holes 408 at the end of the fourth grid segment 4078 is larger than the aperture of the grid holes 408 at the start and middle ends of the fourth grid segment 4078. In this embodiment, since the gas flow force at the end of the grid segment is small, and the stepped structure 4079 is provided, the aperture of the grid segment at the end is increased, which can further improve the smoothness of the gas flow.

[0173] Optionally, the lower end of the gas distribution cover 40 is provided with a partition matching portion 4041, and the upper end of the gas distribution seat 50 is provided with a partition portion 506 matched with the partition matching portion 4041, and the partition portion 506 is matched with the partition matching portion to separate a gas passage into an inner gas passage and an outer gas passage. Specifically, the inner gas passage is communicated with the inner gas distribution passage corresponding to the gas passage, and the outer gas passage is communicated with the outer gas distribution passage corresponding to the gas passage.

[0174] Specifically, the outer ring gas passage is separated into an outer ring outer gas passage and an outer ring inner gas passage, the outer ring outer gas passage is located outside the outer ring inner gas passage, the outer ring outer gas passage is communicated with the outer ring outer gas distribution passage 4012, and the outer ring inner gas passage is communicated with the outer ring inner gas distribution passage 4013. The middle ring gas passage is separated into a middle ring outer gas passage and a middle ring inner gas passage, the middle ring outer gas passage is located outside the middle ring inner gas passage. The middle ring outer gas passage is communicated with the middle ring outer gas distribution passage 4022, and the middle ring inner gas passage is communicated with the middle ring inner gas distribution passage 4023.

[0175] Optionally, as shown, Figure 9 the middle ring outer gas passage and the middle ring inner gas passage are both located between the first ejector 5031 and the second ejector 5033, and the middle ring outer gas passage intersects with the first ejector 5031, and the middle ring inner gas passage intersects with the second ejector 5033. Wherein, the upper pipe wall of the first ejector 5031 and / or the second ejector 5033 is provided with a gas outlet hole, so that the fuel gas in the first ejector 5031 flows into the middle ring outer gas distribution passage 4022 through the gas outlet hole, and / or, the fuel gas in the second ejector 5033 flows into the middle ring inner gas distribution passage 4023 through the gas outlet hole.

[0176] In the embodiment, the middle ring gas passage intersects with the first and second ejectors 5031 and 5033. In order to ensure that the gas in the ejector pipe can flow smoothly into the second gas distribution passage 402, the upper pipe wall of the first and / or second ejector 5031 and 5033 is provided with a gas outlet hole, so as to facilitate the gas flowing into the second gas distribution passage 402 from the ejector 503. Optionally, the diameter of the gas outlet hole is consistent with the diameter of the grid hole 408 of the grid segment where the gas outlet hole is located, so as to facilitate the uniformity and smoothness of the gas outlet.

[0177] Optionally, the expansion section of the first ejector 5031 intersects with and communicates with the outer gas distribution passage 4022 of the middle ring, and / or the expansion section of the second ejector 5033 intersects with and communicates with the inner gas distribution passage 4023 of the middle ring. The gas outlet hole is arranged in the expansion section of the first ejector 5031, and / or the gas outlet hole is arranged in the expansion section of the second ejector 5033.

[0178] Optionally, the upper surface of the gas distribution seat 50 defines a gas outlet passage, and the lower surface of the gas distribution cover 40 defines a gas outlet matching passage. When the gas distribution cover 40 is arranged above the gas distribution seat 50, the gas outlet passage and the gas outlet matching passage jointly enclose the gas passage.

[0179] Optionally, the gas outlet passage is arc-shaped and extends along the circumference of the gas distribution seat 50. In the flow direction of the gas flow in the gas outlet passage, the bottom wall 507 of the gas outlet passage is at least partially inclined upward.

[0180] In the embodiment, the gas flow in the gas outlet passage needs to flow upward into the gas distribution passage of the gas distribution cover 40. The bottom wall 507 of the gas outlet passage is at least partially inclined upward, which can improve the smoothness of the gas flow.

[0181] Optionally, the number of gas outlet passages is multiple. The multiple gas outlet passages are sequentially sleeved in the direction from the outside to the inside, so as to realize the multi-ring fire outlet form.

[0182] Optionally, as shown in Figure 10 the circumferential length of the gas outlet grid 407 is less than the circumferential length of the gas outlet. In the flow direction of the gas flow in the gas outlet passage, the bottom wall 507 of the gas outlet passage is inclined upward from the end of the gas outlet grid 407.

[0183] In the embodiment, the bottom wall 507 of the gas outlet passage at the end of the gas outlet grid 407 is inclined upward, which can reduce the distance of the gas flow from the end of the gas outlet grid 407 to the fire cover, thereby further improving the smoothness of the gas flow.

[0184] Optionally, the bottom wall 4081 of the gas distribution channel comprises a second slope 4082 inclined upward along the flow direction of the gas in the gas distribution channel; the starting end of the second slope 4082 corresponds to the ending end of the first slope 5071. In this embodiment, after the gas flows out of the first slope 5071, the second slope 4082 corresponding to the first slope 5071 is inclined upward, which can continue to guide the gas flow in the gas distribution channel, thereby further improving the smoothness of the gas flow in the gas distribution channel.

[0185] Optionally, the bottom wall 4081 of the gas distribution channel comprises a first bottom wall section in an arc shape extending along the circumference of the gas outlet grid 407; the number of the second slopes 4082 is two, and the two second slopes 4082 are respectively connected to the two ends of the first bottom wall section; and the gas outlet is arranged between the two second slopes 4082.

[0186] In this embodiment, the gas outlet is defined between the two second slopes 4082, that is, the two ends of the gas outlet are respectively provided with the two second slopes 4082, and the two slopes are respectively provided with the two first slopes 5071, which can improve the smoothness of the gas flow and improve the circumferential flow of the gas.

[0187] The gas distribution plate can separate one gas distribution channel into an inner gas distribution channel and an outer gas distribution channel, and the inner gas distribution channel and the outer gas distribution channel are both provided with the gas outlet grid 407 to ensure that the gas in the inner and outer gas distribution channels of each gas distribution channel can flow along the circumference to ensure the uniformity of the gas supply at the inner and outer fire holes of each fire cap.

[0188] In a specific embodiment, the gas outlet channels corresponding to the first gas outlet grid 4071 and the second gas outlet grid 4072 are both provided with the first slope 5071, and the first gas outlet grid 4071 and the second gas outlet grid 4072 are both provided with the second slope 4082.

[0189] In this embodiment, the third gas distribution channel 405 is separated into two inner and outer gas distribution channels, and the gas outlet grid 407 is arranged in each gas distribution channel, which can improve the smoothness of the gas flow of the outer ring.

[0190] For example, the bottom wall 409 of the outer ring outer gas distribution channel 4012 and the bottom wall 409 of the outer ring inner gas distribution channel 4013 comprise the second slope 4082. This can reduce the gas flow resistance of the fourth ring fire and the fifth ring fire, and improve the smoothness of the gas flow.

[0191] Optionally, the partition portion 506 of the gas distribution seat 50 is located in the gas outlet channel, and the gas outlet channel is separated into an inner gas outlet channel and an outer gas outlet channel; the inner gas outlet channel communicates with the inner gas distribution channel, and the outer gas outlet channel communicates with the outer gas distribution channel.

[0192] In the embodiment, the cooperation of each gas outlet channel, gas distribution channel and gas outlet grid 407 can ensure the smoothness of the flow of the gas of each ring flame.

[0193] Alternatively, the gas distribution seat 50 defines a lower ejector channel, and the gas distribution cover 40 defines an upper ejector channel, when the gas distribution cover 40 is covered on the gas distribution seat 50, the lower ejector channel and the upper ejector channel jointly form an ejector 503. In the embodiment, the gas distribution cover 40 and the gas distribution seat 50 are both provided with the ejector channel, so that when the gas distribution cover 40 is covered on the gas distribution seat 50, the upper ejector channel and the lower ejector channel can jointly form the ejector 503.

[0194] Alternatively, the gas distribution seat 50 further comprises a first body 508 and a second body 5081, the first body 508 defines a first lower ejector channel 5032, a second lower ejector channel 5034 and a third lower ejector channel 5036 arranged side by side, the first lower ejector channel 5032 and the second lower ejector channel 5034 are respectively located on both sides of the third lower ejector channel 5036, the second body 5081 is located on one side of the first body 508, and the second body 5081 defines an outer ring gas outlet channel 501, the outlet of the outer ring gas outlet channel 501 is communicated with the inlet of the outer ring mixing chamber, the outer ring gas outlet channel 501 is arc-shaped and extends along the circumference of the gas distribution seat 50. Among them, the gas outlet channel comprises the outer ring gas outlet channel 501. The first body 508 further defines a middle ring gas outlet channel 502, the outlet of the middle ring gas outlet channel 502 is communicated with the middle ring mixing chamber, the middle ring gas outlet channel 502 is arc-shaped, and the middle ring gas outlet channel 502 is located on the inner side of the outer ring gas outlet channel 501.

[0195] In the embodiment, the arc-shaped outer ring gas outlet channel 501 and the middle ring gas outlet channel 502 can be matched with the annular gas distribution cover 40 and the flame cover, so that the gas can flow more uniformly along the circumference.

[0196] The first lower ejector channel 5032, the second lower ejector channel 5034 and the third lower ejector channel 5036 all extend along the radial direction of the gas distribution seat 50 and are linear, which can reduce the flow path of the gas in the ejector 503 and improve the ejecting effect of the gas.

[0197] Alternatively, the gas distribution seat 50 further comprises a first partition 5061, the first partition 5061 is located in the outer ring gas outlet channel 501 and separates the outer ring gas outlet channel 501 into a first gas outlet channel 5011 and a second gas outlet channel 5012, the first gas outlet channel 5011 is located on the outer side of the second gas outlet channel 5012, the first gas outlet channel 5011 is communicated between the first lower ejector channel 5032 and the first mixing chamber, and the second gas outlet channel 5012 is communicated between the second lower ejector channel 5034 and the second mixing chamber.

[0198] In the embodiment, the first partition part 5061 divides the outer ring gas outlet passage 501 into two gas outlet passages, and the two gas outlet passages can provide gas for two gas mixing chambers of the outer ring gas mixing chamber, thereby ensuring the independence, flexibility and reliability of the gas inlet of the first gas mixing chamber and the second gas mixing chamber. Moreover, the two lower injection passages can provide gas for the two gas outlet passages, thereby improving the compactness of the burner structure and increasing the flexibility of the firepower adjustment of the burner.

[0199] Optionally, the gas distribution seat 50 further comprises a second partition part 5062 located in the middle ring gas outlet passage 502 and dividing the middle ring gas outlet passage 502 into a third gas outlet passage 5021 and a fourth gas outlet passage 5022, the third gas outlet passage 5021 is located outside the fourth gas outlet passage 5022, the third gas outlet passage 5021 is connected between the first lower injection passage 5032 and the third gas mixing chamber, and the fourth gas outlet passage 5022 is connected between the second lower injection passage 5034 and the fourth gas mixing chamber.

[0200] In the embodiment, the second partition part 5062 divides the middle ring gas outlet passage 502 into two gas outlet passages, and the two gas outlet passages can provide gas for two gas mixing chambers of the middle ring gas mixing chamber, thereby ensuring the independence, flexibility and reliability of the gas inlet of the first gas mixing chamber and the second gas mixing chamber. Moreover, the two lower injection passages can provide gas for the two gas outlet passages, thereby improving the compactness of the burner structure and increasing the flexibility of the firepower adjustment of the burner.

[0201] Optionally, when the gas distribution cover 40 is arranged above the gas distribution seat 50, the first partition part 5061 abuts against the lower surface of the gas distribution cover 40, so as to avoid the first gas outlet passage 5011 and the second gas outlet passage 5012 from being in gas communication with each other. Similarly, when the gas distribution cover 40 is arranged above the gas distribution seat 50, the second partition part 5062 abuts against the lower surface of the gas distribution cover 40, so as to avoid the third gas outlet passage 5021 and the fourth gas outlet passage 5022 from being in gas communication with each other.

[0202] Optionally, the gas distribution seat 50 comprises a partition plate 504 connected between the inlets of two adjacent lower injection passages, the partition plate 504 and the two adjacent lower injection passages jointly define a secondary air flow channel 5041, and the secondary air flow channel 5041 is in communication with the middle fire cover 20 and the outer fire cover 10.

[0203] In the embodiment, the gas flow rate at the inlet of the lower injection passage is fast, and the surrounding primary air can be injected, which can affect the flow of the surrounding secondary air, resulting in poor secondary air supplement between the outer fire cover 10 and the middle fire cover 20, and high flue gas. Through the arrangement of the partition plate 504, the influence of the primary air on the flow of the secondary air can be reduced, the supply amount of the secondary air can be ensured, and the flue gas can be reduced.

[0204] Optionally, the second body 5081 is arranged outside the first lower injection channel 5032 and the second lower injection channel 5034 and extends in an arc shape along the circumference of the gas distribution seat 50, and the line connecting the two ends of the second body 5081 intersects with the first lower injection channel 5032 and the second lower injection channel 5034; the gas distribution seat 50 comprises a reinforcing rib 505 connected between at least one end of the second body 5081 and the inlet of the first lower injection channel 5032 and / or the inlet of the second lower injection channel 5034.

[0205] In the embodiment, the second body 5081 matches the outer ring gas outlet channel 501, which can be understood as that the shape and size of the second body 5081 are the same as or similar to those of the outer ring gas outlet channel 501. In this way, the manufacturing cost of the gas distribution seat 50 can be reduced, and the weight of the burner can be reduced. The arrangement of the reinforcing rib 505 can fix the two ends of the second body 5081 and increase the structural strength of the gas distribution seat 50 as a whole, so as to ensure the stable use of the burner.

[0206] When the number of fire covers is three, the lower end surface of the gas distribution seat 50 defines the first upper injection channel 4093, the second upper injection channel 4094 and the third upper injection channel 4095, wherein the first upper injection channel 4093 and the first lower injection channel 5032 jointly enclose the first ejector 5031; the second upper injection channel 4094 and the second lower injection channel 5034 jointly enclose the second ejector 5033; and the third upper injection channel 4095 and the third lower injection channel 5036 jointly enclose the third ejector 5035.

[0207] Optionally, the inner fire cover 30 further comprises an upper flame stabilizing groove and a lower flame stabilizing groove, the upper flame stabilizing groove is located above the first fire hole 301, and the lower flame stabilizing groove is located above the first fire hole 301. The upper flame stabilizing groove and the lower flame stabilizing groove are arranged alternately, and the projections of the upper flame stabilizing groove and the lower flame stabilizing groove in the height direction can partially overlap and form a circumference, so that the gas outlet of the upper flame stabilizing groove and the lower flame stabilizing groove can cover the entire circumference of the first fire hole 301, preventing the flame from being separated from the flame.

[0208] Optionally, the distance between the upper flame stabilizing groove and the first fire hole 301 is 1mm-2mm. The distance between the lower flame stabilizing groove and the first fire hole 301 is 1mm-2mm.

[0209] The embodiments of the present disclosure also provide a gas stove, which comprises the burner of any one of the above.

[0210] The gas stove provided by the embodiments of the present disclosure comprises the burner of any one of the above, so it has the beneficial effects of the burner of any one of the above, and also has the beneficial effects of the fire cover of any one of the above, which will not be described herein again.

[0211] It should be noted that the fire hole form of the fire cover provided by the embodiments of the present disclosure is suitable for various forms of burners, including but not limited to: updraft burners, downdraft burners, or full-draft burners, etc.

[0212] The above description and drawings suffice to fully illustrate the embodiments of the present disclosure to enable a person skilled in the art to practice them. Other embodiments can include structural and other changes. The embodiments only represent possible variations. Unless explicitly required, individual components and functions are optional, and the order of operations can be changed. Parts and features of some embodiments can be included or replaced by parts and features of other embodiments. The embodiments of the present disclosure are not limited to the structures that have been described above and shown in the drawings, and various modifications and changes can be made without departing from the scope thereof. The scope of the present disclosure is limited only by the appended claims.

Claims

1. A fire cap for a burner, characterized in that Comprise: a top wall, annular; an inner side wall, annular, below the top wall; an outer side wall, annular, below the top wall and outside the inner side wall, the outer side wall, the inner side wall and the top wall together enclosing a mixing chamber; the fire cover is provided with a fire transmission groove, the fire transmission groove penetrates the inner side wall, the top wall and the outer side wall in turn, and the fire transmission groove is in communication with the mixing chamber; the inner side wall is provided with a fire transmission hole in communication with the mixing chamber, the fire transmission hole corresponds to the fire transmission groove, wherein the inner wall surface of the mixing chamber corresponding to the fire transmission hole is recessed to form an accumulation groove; the burner comprises a gas distribution cover, the fire cover is adapted to be covered above the gas distribution cover, and the upper end of the gas distribution cover is provided with a first protrusion; the top wall of the fire cover defines a first groove matched with the first protrusion, the first groove cooperates with the first protrusion to divide the mixing chamber into an outer mixing chamber and an inner mixing chamber, the first groove is in communication with the fire transmission groove; the fire cover further comprises a sealing protrusion, the sealing protrusion is arranged at least one groove wall of the first groove corresponding to the fire transmission groove, and the sealing protrusion extends downward, when the fire cover is covered on the gas distribution cover, the sealing protrusion can be fitted with the first protrusion to realize the radial sealing of the fire cover at the fire transmission groove and the gas distribution cover.

2. The fire cover for the burner according to claim 1, wherein the inner groove wall of the first groove is provided with a first groove-shaped channel, the first groove-shaped channel is in communication with the fire transmission hole and the first groove.

3. The fire cover for the burner according to claim 2, wherein the outer side wall of the first groove extends downward to form a second sealing protrusion, the second sealing protrusion is adapted to be fitted with the first protrusion to realize the radial sealing of the second sealing protrusion and the first protrusion.

4. The fire cover for the burner according to claim 3, wherein the second sealing protrusion and the inner wall surface of the outer side wall are in one-piece structure; wherein the fire cover is further provided with a straight-through hole, the straight-through hole penetrates the second sealing protrusion and the outer side wall in turn, the straight-through hole is in communication with the first groove and the outside, and the straight-through hole corresponds to and is in communication with the first groove-shaped channel.

5. The fire cover for the burner according to claim 4, wherein the upper end of the straight-through hole is in communication with the lower end of the fire transmission groove.

6. The fire cover for the burner according to claim 4, wherein the straight-through hole is inclined upward along the direction from inside to outside.

7. The fire cover for the burner according to claim 6, wherein the angle between the straight-through hole and the horizontal direction ranges from 0° to 10°.

8. The fire cover for the burner according to any one of claims 4 to 7, wherein the outer wall surface of the outer side wall is provided with a flame stabilizing groove, the bottom of the second sealing protrusion is provided with a flame stabilizing hole, the flame stabilizing hole penetrates the second sealing protrusion and the outer side wall in turn, and the flame stabilizing hole is in communication with the mixing chamber and the flame stabilizing groove.

9. A gas hob, characterized in that The burner comprises the fire cap for the burner as claimed in any one of claims 1 to 8.

10. The gas hob according to claim 9, characterized in that When the top wall of the fire cap is configured with the first groove, the burner further comprises: a gas distribution cap located below the fire cap, the upper end of the gas distribution cap being provided with a first protrusion which is matched with the first groove to separate the gas mixing chamber into an outer gas mixing chamber and an inner gas mixing chamber; wherein the first protrusion is provided with a second slot-shaped passage which corresponds to and communicates with the first slot-shaped passage to communicate the fire hole and the straight-through hole.

Citation Information

Patent Citations

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    CN112762450A

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