CN219389832U - Energy-gathering cover assembly and gas stove - Google Patents

Energy-gathering cover assembly and gas stove Download PDF

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Publication number
CN219389832U
CN219389832U CN202223403004.3U CN202223403004U CN219389832U CN 219389832 U CN219389832 U CN 219389832U CN 202223403004 U CN202223403004 U CN 202223403004U CN 219389832 U CN219389832 U CN 219389832U
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CN
China
Prior art keywords
cover
assembly
energy
foot
sleeve
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Active
Application number
CN202223403004.3U
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Chinese (zh)
Inventor
苑善通
方松青
贺立军
马晨旭
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Qingdao Haier Smart Technology R&D Co Ltd
Haier Smart Home Co Ltd
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Qingdao Haier Smart Technology R&D Co Ltd
Haier Smart Home Co Ltd
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Priority to CN202223403004.3U priority Critical patent/CN219389832U/en
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    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B40/00Technologies aiming at improving the efficiency of home appliances, e.g. induction cooking or efficient technologies for refrigerators, freezers or dish washers

Abstract

The application relates to the technical field of gas cookers and discloses an energy gathering cover assembly and a gas cooker. The energy concentrating cap assembly includes: a focusing cover; a foot positioned below the energy gathering cover; the supporting claw assembly is positioned above the energy gathering cover and connected with the bottom foot after penetrating through the energy gathering cover; the support claw assembly is connected with the bottom foot through a fastener, and a gap exists between the lower end of the support claw assembly and the bottom foot. This application can reduce the area of contact of claw subassembly and footing, and then reduces the heat of claw subassembly to the footing transmission, further reduces the heat of footing downward transmission.

Description

Energy-gathering cover assembly and gas stove
Technical Field
The application relates to the technical field of gas cookers, for example, to a energy gathering cover assembly and a gas cooker.
Background
At present, the heat efficiency (the ratio of the heat actually absorbed by the cooker to the heat generated by the combustion of the gas) of the household gas cooker is generally low and is about 63-65%. The power of the household gas stove is generally 4.2KW, the power obtained by actual cooking of a user is 4.2 x 63% =2.6 KW, the heat obtained by a cooker during cooking of the user is too low to meet the requirement of Chinese type stir-frying on firepower, and therefore, an additional heat energy adding device is needed to improve the thermal efficiency of the gas stove.
In the related art, the energy-gathering cover of the gas stove can adopt a single-layer metal sheet mode to separate high-temperature flame and smoke from the secondary air channel at the bottom, and meanwhile, the energy-gathering cover adopts a concave structure to increase the lifting time of the high-temperature smoke, so that the high-temperature smoke is subjected to secondary combustion and heat exchange in the energy-gathering cover. Meanwhile, the concave surface of the energy gathering cover can also perform radiation heat exchange on the bottom of the pot after being heated. Or the energy gathering cover is of a double-layer structure, and theoretically, the heat transfer between the upper layer and the lower layer is reduced by using air between the two layers.
In the process of implementing the embodiments of the present disclosure, it is found that at least the following problems exist in the related art:
in the gas stove in the related art, the supporting claws generally penetrate through the energy gathering cover and then are connected with the bottom feet, so that heat of the supporting claws can be transferred to the bottom feet, the bottom feet can transfer the heat to the liquid bearing disc or the glass panel downwards, the liquid bearing disc or the glass panel exchanges heat with surrounding air more after being heated, and the effect of improving the gas stove is not obvious.
It should be noted that the information disclosed in the foregoing background section is only for enhancement of understanding of the background of the present application and thus may include information that does not form the prior art that is already known to those of ordinary skill in the art.
Disclosure of Invention
The following presents a simplified summary in order to provide a basic understanding of some aspects of the disclosed embodiments. This summary is not an extensive overview, and is intended to neither identify key/critical elements nor delineate the scope of such embodiments, but is intended as a prelude to the more detailed description that follows.
The embodiment of the disclosure provides an energy gathering cover assembly and a gas stove so as to improve the energy efficiency of the gas stove
Embodiments of the present disclosure provide a energy concentrating cap assembly comprising: a focusing cover; a foot positioned below the energy gathering cover; the supporting claw assembly is positioned above the energy gathering cover and connected with the bottom foot after penetrating through the energy gathering cover; the support claw assembly is connected with the bottom foot through a fastener, and a gap exists between the lower end of the support claw assembly and the bottom foot.
Optionally, the upper wall surface of the foot is recessed downwards to form a groove, the lower end part of the claw assembly is positioned in the groove, a first gap exists between the lower end part of the claw assembly and the bottom surface of the groove, and the gap comprises the first gap.
Optionally, a second gap exists between the outer peripheral wall of the lower end of the pawl assembly and the inner peripheral wall of the groove, and the gap includes the second gap.
Optionally, the second gap is annular.
Optionally, the footing is equipped with first screw, first screw runs through the footing, the claw subassembly is equipped with the second screw, the fastener is connected first screw with between the second screw, in order to realize the footing with the connection of claw subassembly.
Optionally, the energy gathering cover comprises a lower cover, the bottom leg is provided with a limiting part, the lower cover is provided with a limiting matching part, and when the limiting part is matched with the limiting matching part, the bottom leg and the lower cover are limited to rotate.
Optionally, the limit portion includes one of a protruding post and a limit hole, and the limit fitting portion includes the other of the protruding post and the limit hole.
Optionally, the pawl assembly comprises: the supporting claw is positioned above the energy gathering cover; and the sleeve is connected between the supporting claw and the bottom foot.
Optionally, the sleeve is made of a material different from that of the support claw; and/or the material of the sleeve is different from the material of the bottom foot.
The embodiment of the disclosure also provides a gas stove, which is characterized by comprising the energy gathering cover assembly according to any one of the above embodiments.
The energy concentrating cover assembly and the gas stove provided by the embodiment of the disclosure can realize the following technical effects:
the claw component is positioned above the energy gathering cover and can support the cookware so as to ensure that a gap is reserved between the cookware and the burner of the gas stove and ensure the supply of primary air combusted by the burner. The branch claw component penetrates through the energy gathering cover and then is connected with the bottom foot, so that the connection stability of the branch claw can be improved. And a gap exists between the lower end of the supporting claw component and the bottom foot, and the supporting claw component is connected with the bottom foot through a fastener. Therefore, the contact area between the supporting claw component and the bottom foot can be reduced, the heat transferred from the supporting claw component to the bottom foot is further reduced, and the heat transferred from the bottom foot to the bottom foot is further reduced.
The foregoing general description and the following description are exemplary and explanatory only and are not restrictive of the application.
Drawings
One or more embodiments are illustrated by way of example and not limitation in the figures of the accompanying drawings, in which like references indicate similar elements, and in which like reference numerals refer to similar elements, and in which:
fig. 1 is a schematic structural view of a gas cooker according to an embodiment of the present disclosure;
Fig. 2 is a schematic cross-sectional structure of a gas range according to an embodiment of the present disclosure;
FIG. 3 is an enlarged schematic view of the portion A of FIG. 2;
FIG. 4 is a schematic view of an exploded construction of a pawl, sleeve and foot provided in accordance with an embodiment of the present disclosure;
fig. 5 is another cross-sectional structure schematic view of a gas cooker provided in an embodiment of the present disclosure;
FIG. 6 is an enlarged schematic view of the portion B of FIG. 5;
FIG. 7 is an enlarged schematic view of the portion C of FIG. 5;
FIG. 8 is a schematic view of the structure of a lower housing provided by an embodiment of the present disclosure;
FIG. 9 is a schematic view of the structure of an upper housing provided in an embodiment of the present disclosure;
fig. 10 is a schematic view of a partial structure of a focus cage provided by an embodiment of the present disclosure.
Reference numerals:
1. a gas range; 11. an upper cover; 111. a first wall section; 112. a second wall section; 113. an outer edge; 114. a fifth wall section; 115. a third horizontal segment; 116. a third vertical section; 117. a second flanging; 118. flanging; 119. a protrusion; 1191. a vortex-holding cavity; 1192. a channel; 1193. a third wall section; 1194. a fourth wall section; 1195. an air passage; 12. a middle cover; 121. a second protrusion; 122. a first horizontal segment; 123. a first vertical section; 124. a first hem; 125. a first cavity; 126. a second cavity; 13. a lower cover; 131. a first protrusion; 132. a convex edge; 133. a second horizontal segment; 134. a second vertical section; 2. a supporting claw; 3. a sleeve; 31. a boss; 4. a footing; 41. a groove; 42. a limit part; 5. a fire cover; 51. a fire hole; 52. fire-avoiding part.
Detailed Description
So that the manner in which the features and techniques of the disclosed embodiments can be understood in more detail, a more particular description of the embodiments of the disclosure, briefly summarized below, may be had by reference to the appended drawings, which are not intended to be limiting of the embodiments of the disclosure. In the following description of the technology, for purposes of explanation, numerous details are set forth in order to provide a thorough understanding of the disclosed embodiments. However, one or more embodiments may still be practiced without these details. In other instances, well-known structures and devices may be shown simplified in order to simplify the drawing.
The terms first, second and the like in the description and in the claims of the embodiments of the disclosure and in the above-described figures are used for distinguishing between similar objects and not necessarily for describing a particular sequential or chronological order. It is to be understood that the data so used may be interchanged where appropriate in order to describe embodiments of the present disclosure. Furthermore, the terms "comprise" and "have," as well as any variations thereof, are intended to cover a non-exclusive inclusion.
In the embodiments of the present disclosure, the terms "upper", "lower", "inner", "middle", "outer", "front", "rear", and the like indicate an azimuth or a positional relationship based on that shown in the drawings. These terms are used primarily to better describe embodiments of the present disclosure and embodiments thereof and are not intended to limit the indicated device, element, or component to a particular orientation or to be constructed and operated in a particular orientation. Also, some of the terms described above may be used to indicate other meanings in addition to orientation or positional relationships, for example, the term "upper" may also be used to indicate some sort of attachment or connection in some cases. The specific meaning of these terms in the embodiments of the present disclosure will be understood by those of ordinary skill in the art in view of the specific circumstances.
In addition, the terms "disposed," "connected," "secured" and "affixed" are to be construed broadly. For example, "connected" may be in a fixed connection, a removable connection, or a unitary construction; may be a mechanical connection, or an electrical connection; may be directly connected, or indirectly connected through intervening media, or may be in internal communication between two devices, elements, or components. The specific meaning of the above terms in the embodiments of the present disclosure may be understood by those of ordinary skill in the art according to specific circumstances.
The term "plurality" means two or more, unless otherwise indicated.
The term "and/or" is an associative relationship that describes an object, meaning that there may be three relationships. For example, a and/or B, represent: a or B, or, A and B.
It should be noted that, without conflict, the embodiments of the present disclosure and features of the embodiments may be combined with each other.
Referring to fig. 1 to 10, an embodiment of the present disclosure provides a energy concentrating cover assembly, as shown in fig. 2, the energy concentrating cover assembly includes an energy concentrating cover, a foot 4 and a claw assembly, the foot 4 is located below the energy concentrating cover, and the claw assembly is located above the energy concentrating cover and connected with the foot 4 after penetrating through the energy concentrating cover; wherein, the claw component is connected with the foot 4 through a fastener, and a gap exists between the lower end of the claw component and the foot 4.
In this embodiment, the feet 4 are capable of supporting the energy concentrating shield such that a fifth gap exists between the energy concentrating shield and the liquid bearing tray or glass table, reducing heat transfer downward from the energy concentrating shield. Meanwhile, secondary air can flow to the fire hole 51 of the burner through the fifth gap at the bottom of the energy gathering cover, so that the combustion efficiency of the burner is improved. The foot 4 is not in direct contact with the claw assembly, and the foot 4 is connected with the claw assembly only through the fastener, so that heat conduction between the claw assembly and the foot 4 can be reduced, only a small part of heat of the claw assembly can be transferred to the foot 4, and heat conduction between the claw assembly and the foot 4 is reduced. Furthermore, the heat transfer of the feet 4 to the tray or glass panel below the feet 4 can be reduced.
For convenience of description, the inner and outer directions of the gas range are shown in fig. 2 and 5.
Optionally, the upper wall of the foot 4 is recessed downward to form a groove 41, and the lower end of the pawl assembly, that is, the lower end of the pawl assembly is located in the groove 41, and a first gap exists between the lower end of the pawl assembly and the bottom surface of the groove 41, so that the lower end of the pawl assembly is not in contact with the bottom surface of the groove 41, wherein the gap includes the first gap.
In this embodiment, the footing 4 is connected with the claw assembly through the fastener, and the upper wall of footing 4 sets up recess 41, can dodge the claw assembly, and the bottom surface of recess 41 does not contact with the lower tip of claw assembly, can reduce the heat conduction between claw assembly and the footing 4.
Optionally, a second gap exists between the outer peripheral wall of the pawl assembly and the inner peripheral wall of the recess 41, the gap comprising the second gap.
In this embodiment, the outer peripheral wall of the claw assembly is not in contact with the inner peripheral wall of the groove 41, that is, the cross-sectional area of the groove 41 is larger than the cross-sectional area of the lower end of the claw assembly, so that the contact between the claw assembly and the foot 4 can be further reduced, and the heat conduction between the claw assembly and the foot 4 can be further reduced.
Optionally, the second gap is annular. In this embodiment, the second gap is annular, so that the circumferential direction of the pawl assembly is not in contact with the inner peripheral wall of the groove 41.
Optionally, the foot 4 is connected to the jaw assembly by fasteners. This facilitates assembly and disassembly of the foot 4 from the jaw assembly.
Optionally, the footing 4 is constructed with first screw, and first screw runs through footing 4 along vertically, and the bottom of the claw subassembly is equipped with the second screw, and first screw and second screw are corresponding, and the fastener stretches into in the second screw after passing first screw, can play the effect of connecting footing 4 and claw subassembly.
Optionally, the energy accumulating cover comprises a lower cover 13, and the foot 4 is abutted against the lower cover 13, that is, the foot 4 is abutted against or close to the lower cover 13, so as to realize the supporting function of the foot 4 on the lower cover 13.
Alternatively, as shown in fig. 3 and 4, the foot 4 is provided with a limit portion 42, and the lower housing 13 is provided with a limit engaging portion, and when the limit portion 42 is engaged with the limit engaging portion, the foot 4 and the lower housing 13 are restricted from rotating.
In this embodiment, the structure of the limiting portion 42 and the limiting engaging portion can prevent the foot 4 from rotating during assembly.
Alternatively, the stop portion 42 includes one of a boss and a stop hole, and the stop mating portion includes the other of the boss and the stop hole.
In this embodiment, the structure of the protruding column and the limiting hole is easy to process, and has obvious effect, and the limiting of the bottom leg 4 and the lower cover 13 can be realized without greatly changing the bottom leg 4 and the lower cover 13.
Optionally, the limiting portion 42 is located at one side of the recess 41, so as to avoid interference between the limiting portion and the recess 41 when the foot 4 is assembled.
The upper surface of the footing 4 is provided with a protruding column, the bottom surface of the lower cover is provided with a limiting hole, and the protruding column can extend into the limiting hole to limit the footing 4 and the lower cover 13. Alternatively, the stopper 42 is located inside the groove 41.
Alternatively, as shown in fig. 1 to 4, the claw assembly includes a claw 2 and a sleeve 3, the claw 2 is disposed above the energy gathering cover, and the claw 2 is used to support a cooker, so that flames of the gas cooker 1 can heat the cooker.
Optionally, a sleeve 3 is connected between the fingers 2 and the energy concentrating shield to reduce heat transfer between the fingers 2 and the energy concentrating shield assembly.
In this embodiment, the claw 2 is connected to the energy collecting cover through the sleeve 3, that is, the claw 2 is not in direct contact with the energy collecting cover, when the gas stove 1 works, the claw 2 is heated first, the heat of the claw 2 is transferred to the sleeve 3, the sleeve 3 transfers the heat to the energy collecting cover component, or the sleeve 3 is made of a heat insulating material, the heat is not transferred to the energy collecting cover component, and thus the heat transferred to the energy collecting cover component by the claw 2 can be reduced. Through the setting of sleeve 3 in this embodiment, can reduce the temperature of gathering the ability cover, reduce gathering the ability cover and external heat transfer, reduce heat loss, improve the energy consumption of gas-cooker 1.
Alternatively, the sleeve 3 is connected between the finger 2 and the foot 4, that is, the lower end of the finger assembly may be the lower end of the sleeve 3. The technical features of the cooperation of the claw assembly and the groove 4 can be the technical features of the sleeve 3.
As an example, as shown in fig. 4, the lower end of the sleeve 3 is provided with a nut structure configured with a second screw hole to achieve connection of the foot with the sleeve.
Optionally, the sleeve 3 is of a different material than the fingers 2.
In this embodiment, the material of the sleeve 3 is different from that of the pawl 2, so that the heat conduction speed is reduced, and the heat transferred from the pawl 2 to the sleeve 3 can be further reduced.
Optionally, the sleeve 3 is of a different material than the energy concentrating cover; and/or, the material of the sleeve 3 and the foot 4 is different
In this embodiment, the materials of the sleeve 3 and the energy-gathering cover or the foot 4 are different, so that the heat conduction speed between the claw 2 and the energy-gathering cover or the foot 4 is reduced, the heat transferred from the sleeve 3 to the foot 4 of the energy-gathering cover can be further reduced, the heat transferred from the claw 2 to the energy-gathering cover and/or the foot 4 below is further reduced, and the energy consumption of the gas stove 1 is improved.
Optionally, the sleeve 3 is detachably connected to the pawl 2.
In the embodiment, the sleeve 3 is detachably connected with the support claw 2, so that the support claw 2 and the energy gathering cover are convenient to mount and dismount. In addition, the sleeve 3 and the supporting claws 2 are not of an integral structure, so that heat transferred from the supporting claws 2 to the sleeve 3 can be reduced, and further, the heat of the energy collecting cover can be reduced.
Optionally, the sleeve 3 is configured with an internal thread, and the lower end of the pawl 2 is configured with an external thread, and when the internal thread is matched with the external thread, the sleeve 3 is connected with the pawl 2.
In this embodiment, sleeve 3 passes through screw-thread fit with the branch claw 2 and is connected, need not to establish part connection sleeve 3 and branch claw 2 in addition, has improved sleeve 3 and branch claw 2 assembly's convenience. Moreover, the threaded connection is easy to process and low in cost.
Alternatively, the thread dimensions may be M3, M4, M5, M6, etc. dimensions. Preferably, the thread has a dimension M6.
Alternatively, the number of the claws 2 is plural, and the plural claws 2 are arranged at intervals along the circumferential direction of the energy accumulating cover, wherein the number of the sleeves 3 is the same as and corresponds to the number of the claws 2 one by one.
In this embodiment, the stability to the pan support can be improved to the setting of a plurality of claws 2, and every claw 2 all corresponds and sets up a sleeve 3 for every claw 2 can both reduce the heat of downward transmission, and then reduces the heat loss of whole gas-cooker 1, improves the energy efficiency of whole gas-cooker 1.
Optionally, the energy gathering cover further comprises an upper cover 11, the supporting claws 2 are located above the upper cover 11, the sleeve 3 is located below the upper cover 11, and the supporting claws 2 penetrate through the upper cover 11 and then are connected with the sleeve 3.
In this embodiment, the supporting claw 2 and the upper cover 11 are the first heated parts, and after the upper cover 11 is heated, heat can be radiated to the bottom of the cooker, so that the energy efficiency of the gas stove 1 is improved. Therefore, by connecting the claws 2 and the upper cover 11 and disposing the sleeve 3 below the upper cover 11, the heat transferred downward from the upper cover 11 can be reduced.
Optionally, the pawl 2 is fixedly connected with the upper housing 11. For example, the claws 2 are connected to the upper cover 11 by welding. This can increase the connection stability of the claws 2 and the upper cover 11.
Optionally, the lower end of the pawl 2 is attached to the upper surface of the upper cover 11, so that the heat of the pawl 2 can be transferred to the upper cover 11, and the heat transferred downwards is reduced.
Optionally, a third gap exists between the upper wall surface of the sleeve 3 and the lower wall surface of the upper cover 11, so that the sleeve 3 and the upper cover 11 can be prevented from contacting, and heat conduction between the upper cover 11 and the sleeve 3 can be reduced.
Optionally, the supporting claw 2 extends along the radial direction of the upper cover 11, so that the contact area of the supporting claw 2 and the pot is increased, and the supporting stability of the supporting claw 2 is improved.
Optionally, a part of the outer wall of the sleeve 3 protrudes outwardly 119 forming a boss 31, the boss 31 abutting the energy accumulating housing.
In this embodiment, the outer wall surface portion of the sleeve 3 is outwardly convex 119 to form a boss 31, which facilitates the connection of the sleeve 3 to the energy concentrating housing.
Optionally, the energy collecting cover includes a lower cover 13, the lower cover 13 is located below the upper cover 11, and the lower cover 13 and the upper cover 11 enclose a cavity, and air in the cavity can further isolate heat transferred downwards by the upper cover 11 and the supporting claws 2.
Optionally, the lower cover 13 is provided with a first through hole, the sleeve 3 extends into the first through hole, the edge of the first through hole extends upwards to form a first bulge 131, and the lower surface of the bulge 31 is abutted against the first bulge 131.
In this embodiment, the sleeve 3 is connected between the lower cover 13 and the supporting claw 2, the sleeve 3 extends into the first through hole, the edge of the first through hole extends upwards to form a first bulge 131, and the first bulge 131 is abutted against the lower wall surface of the boss 31. That is, the sleeve 3 is in contact with the lower cover 13 through the first protrusions 131 and the protrusions 31, so that the protrusions 31 do not need to be in surface-to-surface contact with the entire lower cover 13, and the contact area between the sleeve 3 and the lower cover 13 can be reduced, thereby reducing the heat transferred from the sleeve 3 to the lower cover 13.
Alternatively, the cross-sectional area of the first through hole is larger than the cross-sectional area of the sleeve 3, and the inner wall surface of the first through hole is not in contact with the outer wall surface of the sleeve 3. This allows the contact between the sleeve 3 and the lower housing 13 only through the first protrusions 131 and the protrusions 31, reducing the contact area of the sleeve 3 and the lower housing 13, and further reducing the heat conduction between the sleeve 3 and the lower housing 13.
Alternatively, when the number of the sleeves 3 is plural, the number of the first through holes and the number of the first protrusions 131 are the same as and correspond to each other one by one. That is, the sleeve 3 contacts the lower cover 13 only with the plurality of first protrusions 131 and the boss 31, which can achieve connection stability of the claws 2, the sleeve 3 and the lower cover 13 and can reduce heat conduction between the claws 2, the sleeve 3 and the lower cover 13.
Alternatively, the first protrusion 131 is matched with the boss 31, that is, the shape, size, etc. of the first protrusion 131 and the boss 31 are the same or similar, so that the connection stability of the first protrusion 131 and the boss 31 can be increased.
As shown in fig. 3, the boss 31 is annular, and the first boss 131 is annular, so that the sleeve 3 can be ensured to press the lower cover 13, and the lower cover 13 is prevented from rotating.
Optionally, the energy gathering cover further comprises a middle cover 12, the middle cover 12 is located above the lower cover 13, the middle cover 12 is located between the upper cover 11 and the lower cover 13, the middle cover 12 is provided with a second through hole, and the sleeve 3 passes through the second through hole to be abutted with the lower cover 13; the edge of the second through hole extends downwards to form a second protrusion 121, and the upper surface of the boss 31 abuts against the second protrusion 121.
In this embodiment, the gas stove 1 may further be provided with a middle cover 12, and the sleeve 3 passes through the second through hole to realize connection with the lower cover 13, where connection and support between the middle cover 12 and the sleeve 3 are realized through the second protrusion 121 and the boss 31, so that the sleeve 3 can compress the middle cover 12, and avoid rotation of the middle cover 12. The second protrusions 121 are connected to the boss 31 between the intermediate caps 12, so that the contact area between the intermediate caps 12 and the sleeve 3 can be reduced, and heat conduction between the intermediate caps 12 and the sleeve 3 can be further reduced.
Alternatively, the cross-sectional area of the second through hole is larger than the cross-sectional area of the sleeve 3, and a fourth gap is also present between the inner wall surface of the second through hole and the outer wall surface of the sleeve 3, that is, the sleeve 3 is not in contact with the inner wall surface of the second through hole. The middle cover 12 and the sleeve 3 are connected only through the second protrusion 121 and the boss 31, so that the contact area between the sleeve 3 and the middle cover 12 can be further reduced, and the heat conduction between the sleeve 3 and the middle cover 12 can be reduced.
Alternatively, as shown in fig. 5, the middle cover 12 is located in the cavity to divide the cavity into a first cavity 125 and a second cavity 126, the upper cover 11 and the middle cover 12 enclose the first cavity 125, and the middle cover 12 and the lower cover 13 enclose the second cavity 126.
In this embodiment, the structure of the three cover bodies forms two cavities, and the two cavities can further reduce the downward heat conduction between the upper cover 11 and the support claw 2, so as to achieve a good heat insulation effect. Specifically, after the upper cover 11 is heated, a part of heat is transferred to the air in the first cavity 125, and due to the existence of the middle cover 12 and the second cavity 126, the air in the first cavity 125 is not directly contacted with the lower cover 13, so that the heat conduction speed between the upper cover 11 and the lower cover 13 through the air medium is reduced.
In practical applications, the gas cooker 1 may not be provided with the middle cover 12, that is, the gas cooker 1 is provided with only the upper cover 11, the claws 2, the lower cover 13, and the sleeve 3. This can reduce the cost of the gas range 1. Moreover, as the boss 31 structure of the sleeve 3 can be matched with the first boss 131, the gas stove 1 is not provided with the middle cover 12, the assembly of the sleeve 3 and the lower cover 13 is not influenced, the assembly of the whole gas stove 1 is not influenced, and the reusability of the gas stove 1 is improved. Optionally, the gas stove 1 may also be provided with a middle cover 12, so that the downward heat conduction effect of the upper cover 11 and the support claw 2 can be further reduced, and the energy efficiency of the gas stove 1 is improved.
Optionally, the gas range 1 further comprises a thermal insulation arranged between the sleeve 3 and the energy accumulating cover assembly.
In this embodiment, the heat insulating member is disposed at a position where the sleeve 3 contacts the energy collecting cover assembly, so that heat conduction between the sleeve 3 and the energy collecting cover can be further reduced, and further downward heat conduction of the support claws 2 can be reduced.
Specifically, a heat insulator is provided at the junction of the sleeve 3 and the lower cover 13, that is, at the junction of the lower wall surface of the boss 31 and the first boss 131, to reduce heat conduction between the sleeve 3 and the lower cover 13.
A heat insulator may be provided at the junction of the sleeve 3 and the middle cap 12, that is, at the junction of the upper wall surface of the boss 31 and the second protrusion 121, to reduce heat conduction between the sleeve 3 and the middle cap 12.
Alternatively, the insulation may be sheet metal, aerogel, felt, or the like that reduces heat transfer.
Alternatively, as shown in fig. 8, the top of the outer edge of the lower cover 13 is configured with a plurality of flanges 132, and the plurality of flanges 132 are sequentially spaced apart in the circumferential direction of the lower cover 13, wherein each flange 132 extends upward, and the lower wall surface of the middle cover 12 abuts against the upper wall surface of the flange 132.
In the present embodiment, the lower cover 13 and the middle cover 12 are contacted by the plurality of convex edges 132, so that the contact area between the lower cover 13 and the middle cover 12 can be reduced, and the heat conduction between the middle cover 12 and the lower cover 13 can be further reduced.
Optionally, the middle cover 12 is annular, the middle cover 12 includes a first horizontal section 122, a first vertical section 123, and a first folded edge 124, one end of the first vertical section 123 is connected to an outer end of the first horizontal section 122, and the first vertical section 123 extends upward along a direction from inside to outside; the first folded edge 124 is connected to the other end of the first vertical section 123 and extends in a direction away from the first horizontal section 122, and a lower wall surface of the first folded edge 124 abuts against an upper wall surface of the flange 132.
In this embodiment, the first horizontal section 122 of the middle cover 12 extends the middle cover 12 in the radial direction, and the first vertical section 123 extends upward in the direction from inside to outside, so that the volume of the first cavity 125 between the upper cover 11 and the middle cover 12 can be increased, and thus the air heat insulation effect between the upper cover 11 and the middle cover 12 can be improved. The first flange 124 is connected to the other end of the first vertical section 123 and extends in a direction away from the first horizontal section 122, so that the first flange 124 can cooperate with the flange 132 of the lower cover 13 to reduce the contact area between the middle cover 12 and the lower cover 13 and further reduce heat conduction therebetween.
Alternatively, as shown in fig. 6, the lower cover 13 includes a second horizontal section 133 and a second vertical section 134, one end of the second vertical section 134 being connected to an outer end of the second horizontal section 133 and extending upward; wherein the convex edge 132 is disposed at the other end of the second vertical section 134 and extends upward, and the outer edge of the lower cover 13 includes the second vertical section 134.
In this embodiment, the second horizontal section 133 of the lower cover 13 and the first horizontal section 122 of the middle cover 12 form a second cavity 126, and the second vertical section 134 can increase the height space of the second cavity 126, thereby increasing the air amount between the middle cover 12 and the lower cover 13, and reducing the heat conduction between the middle cover 12 and the lower cover 13.
Alternatively, as shown in fig. 7, the middle cap 12 and the lower cap 13 are each annular, and a first gap exists between the inner end of the middle cap 12 and the inner end of the lower cap 13 so that the inner end of the middle cap 12 and the inner end of the lower cap 13 do not contact.
In this embodiment, the middle and lower covers 12 and 13 are contacted with the first folded edge 124 only through the convex edge 132 of the outer end portion, the inner end portion of the middle and lower covers 12 and 13 are not contacted, so that heat conduction does not occur at the inner end portions of the middle and lower covers 12 and 13, and heat conduction between the middle and lower covers 12 and 13 is further reduced.
Optionally, the first flange 124 extends in a horizontal direction to facilitate engagement of the first flange 124 with the flange 132.
Alternatively, the lower wall surface of the outer edge 113 of the upper cover 11 abuts against the upper wall surface of the first folded edge 124.
In this embodiment, the upper cover 11 and the middle cover 12 are in surface contact, so that the connection stability of the upper cover 11 and the middle cover 12 can be improved.
Alternatively, as shown in fig. 7, the upper cover 11 is also annular, with a second gap between the inner end of the upper cover 11 and the inner end of the middle cover 12.
In this embodiment, the outer ends of the upper cover 11 and the middle cover 12 are abutted, and the inner ends of the two are not in contact, so that heat conduction between the inner ends of the upper cover 11 and the middle cover 12 can be avoided, and the heat transferred downwards by the upper cover 11 is further reduced.
Optionally, the upper cover 11 includes a third horizontal section 115, a third vertical section 116, a second flange 117, and a flange 118, one end of the third vertical section 116 is connected to an inner end of the third horizontal section 115, and the third vertical section 116 extends upward in the inside-out direction; the second folded edge 117 is connected to the other end of the third vertical section 116, extends in a direction away from the third horizontal section 115, and the lower surface of the second folded edge 117 abuts against the upper surface of the first folded edge 124; the flange 118 is connected to the second flange 117, and the flange 118 extends downwardly below the flange 132.
In this embodiment, the third horizontal segment 115 and the third vertical segment 116 enable the upper cover 11 to form a concave structure, the concave structure enables the upper cover 11 to reside in the flue gas, and improves the residence time of the high-temperature flue gas, so that the high-temperature flue gas can perform secondary heat exchange with the cooker. The second flange 117 is adapted to abut against the first flange 124 to effect the connection between the upper and middle hoods 11 and 12. The upper cover 11 is further provided with a flanging 118 structure, the flanging 118 structure extends downwards to the lower part of the convex edge 132, and here, as the convex edges 132 arranged at intervals are abutted between the middle cover 12 and the lower cover 13, gaps exist between the middle cover 12 and the lower cover 13 at positions without the convex edges 132, and the flanging 118 can shield the gaps between the middle cover 12 and the lower cover 13, so that soup, greasy dirt and the like are prevented from entering the second cavity 126.
Optionally, the gas range 1 further includes a first heat insulating member provided between a lower wall surface of the outer edge 113 of the upper cover 11 and an upper wall surface of the outer edge 113 of the middle cover 12.
In the present embodiment, the first heat insulator is provided at the contact portion between the intermediate cover 12 and the lower cover 13, so that the heat conduction between the upper cover 11 and the intermediate cover 12 can be further reduced.
Optionally, an insulating material is disposed within the first cavity 125 and/or the second cavity 126.
In the embodiment of the disclosure, the first cavity 125 and/or the second cavity 126 are filled with the heat insulating material, so that the heat insulating efficiency of the first cavity 125 and the second cavity 126 can be improved, and the heat conduction among the upper cover 11, the middle cover 12 and the lower cover 13 can be further reduced.
Alternatively, the insulating material is a material capable of reducing thermal conductivity, such as an inorganic insulating material, a glass fiber wool board or mat, a Mao Ningjiao mat, or the like.
Optionally, the gas range 1 further includes a second heat insulating member located between the lower wall surface of the middle cover 12 and the upper wall surface of the protrusion 119.
In this embodiment, the second heat insulator is provided at the junction of the middle cover 12 and the lower cover 13, so that the heat conduction between the middle cover 12 and the lower cover 13 can be further reduced.
Alternatively, the first insulation member may be a metal sheet, aerogel, felt, or the like material that reduces heat transfer. Alternatively, the second insulation member may be a metal sheet, aerogel, felt, or the like, which reduces heat transfer. Wherein the first heat insulating member and the second heat insulating member may be the same or different.
The gas stove 1 comprises a energy gathering cover and a burner, the burner comprises a fire cover 5, the fire cover 5 is provided with a fire hole 51, the energy gathering cover is arranged on the outer side of the fire cover 5, the energy gathering cover defines a secondary air channel 1195, the secondary air channel 1195 is communicated with the fire hole 51 and supplies secondary air to the fire hole 51, the fire cover 5 is provided with the fire hole 51, air-fuel mixture gas flowing out of the fire hole 51 of the fire cover 5 is ignited to form gas in a combustion state, and meanwhile, the surrounding secondary air is required to be supplied in the combustion process to realize complete combustion.
Optionally, as shown in fig. 1 and 9, the upper cover 11 is partially protruded upwards to form a protrusion 119, and a trapped vortex chamber 1191 is formed between the protrusion 119 and the outer edge 113 of the upper cover 11, where the trapped vortex chamber 1191 is used for trapping smoke.
In this embodiment, the upper cover 11 constructs a standing vortex chamber 1191, and high-temperature flue gas can reside in the standing vortex chamber 1191, so that the residence time of the high-temperature flue gas in the upper cover 11 is improved, and the high-temperature flue gas can perform radiation heat exchange on a cooker in the standing vortex chamber 1191, so that the energy efficiency of the gas stove 1 is improved.
Alternatively, as shown in fig. 10, the thick arrow in fig. 10 indicates the flow direction of secondary air, the thin arrow indicates the flow direction of flue gas, and the upper cover 11 includes a first wall section 111, a second wall section 112, and an outer edge 113, which are disposed in this order in the inside-out direction, wherein the first wall section 111 is inclined upward in the inside-in direction.
In this embodiment, the first wall section 111 is inclined upwards along the direction from inside to outside, so that the first wall section 111 can guide the high-temperature flue gas generated by the gas stove 1, and the high-temperature flue gas flows along the first wall section 111 until contacting with the bottom of the pan, so that the flow of the high-temperature flue gas in the first wall section 111 is not oriented (such as flowing or divergent flowing in other directions) due to the fact that the first wall section 111 is a plane or other shapes, and the flow of the combustion gas and the high-temperature flue gas is smoother, so that the supply of secondary air is more beneficial to reaching the root of the fire hole 51.
Optionally, the second wall section 112 is inclined upwardly in an inside-out direction; the outer rim 113 is connected to the bottom of the second wall section 112; the height of the top of the first wall section 111 and the height of the top of the second wall section 112 are both less than or equal to the height of the top of the outer rim 113.
The high temperature flue gas generated by the combustion of the gas stove 1 firstly flows upwards to the top of the first wall section 111 along the first wall section 111, then contacts with the pan bottom above the gas stove 1, exchanges heat with the pan bottom, then flows outwards along the sixth gap between the upper cover 11 and the pan bottom, when the high temperature flue gas flows to the outer edge 113, the outer edge 113 can block part of the high temperature flue gas from flowing out when the high temperature flue gas flows to the outer edge 113 because the top of the outer edge 113 is higher than the heights of the top of the first wall section 111 and the top of the second wall section 112, part of the high temperature flue gas flows back, and because the outer edge 113 is connected with the bottom of the second wall section 112, the back-flowing high temperature flue gas flows downwards along the outer edge 113 and flows to the bottom of the second wall section 112, and then flows upwards along the second wall section 112, the high temperature smoke gas flowing back flows to the top of the second wall section 112 and exchanges heat with the pan bottom again, then the high temperature smoke gas flowing back partially is converged with the high temperature smoke gas newly generated by the gas stove 1 at the top of the first wall section 111 and the top of the second wall section 112, the converged high temperature smoke gas flows outwards along the sixth gap between the upper cover 11 and the pan bottom to start the next circulation, in the continuous circulation, the high temperature smoke gas continuously exchanges heat with the pan bottom, the residence time and the heat exchange time of the smoke gas are improved, in the circulation process, because the high temperature smoke gas continuously accumulates, a certain pressure difference is generated with the outside air, part of the circulated high temperature smoke gas is discharged through the sixth gap between the pan bottom and the upper cover 11, the generated CO is ensured not to exceed standard, in this circulation, under the conditions that the heat load is certain, the heat convection coefficient is certain, the heat exchange area and other parameters cannot be improved, the heat efficiency of the gas range 1 is improved.
Optionally, the outer rim 113 is inclined upwardly in the inside-to-outside direction.
The pan bottom, the second wall section 112 and the outer edge 113 together form a semi-closed cavity with orderly inlet and outlet, and high-temperature flue gas flows orderly inside and does not interfere with the high-temperature flue gas at the first wall section 111.
Optionally, the upper cover 11 is annular, the upper cover 11 encloses an air channel 1195, a channel 1192 is formed between adjacent protrusions 119, and the channel 1192 communicates with the trapped vortex chamber 1191 and the air channel 1195 inside the upper cover 11.
Alternatively, the number of the projections 119 is plural, and the plural projections 119 are arranged at intervals in order in the circumferential direction of the upper cover 11.
In this embodiment, the plurality of protrusions 119 are arranged at intervals, that is, the protrusions 119 of the upper cover 11 are not circumferential protrusions 119 of a whole circle, so that the standing vortex chambers 1191 formed by the protrusions 119 are also arranged separately, and thus the standing vortex chambers 1191 formed by the protrusions 119 are also arranged separately, and further the standing vortex chambers 1191 formed by the protrusions 119 are also arranged separately, and thus the standing vortex chambers can be reduced properly, and thus when the supply amount of secondary air required by the flame of the fire cover 5 is ensured, the amount of secondary air ejected by the flame of the fire cover 5 is reduced properly, and further the thermal efficiency of the gas stove 1 can be improved.
The upper cover 11 is provided with a plurality of protrusions 119, that is, the protrusions 119 are not annular and extend circumferentially, but are divided into a plurality of segments of protrusions 119, and channels 1192 formed by adjacent protrusions 119 are communicated with the standing vortex chamber 1191, so that the standing vortex chamber 1191 is easy to store liquid when the pot overflows due to the fact that the standing vortex chamber 1191 is a lower concave cavity. If not cleaned in time, dirt is easily formed in trapped vortex cavity 1191 which is difficult to clean. The channels 1192 between adjacent protrusions 119 can timely drain the liquid in the standing vortex cavity 1191, so that dirt is prevented from forming in the standing vortex cavity 1191. It can be understood that: the channels 1192 form drainage channels.
Optionally, the upper housing 11 further comprises a third wall section 1193 and a fourth wall section 1194, the first wall section 111 being inclined upwards in an inside-out direction; the second wall section 112 is inclined downward in the inside-out direction, and the inner end of the second wall section 112 is connected to the outer end of the first wall section 111; a third wall segment 1193 is connected between one end of the first wall segment 111 and one end of the second wall segment 112; a fourth wall segment 1194 is connected between the other end of the first wall segment 111 and the other end of the second wall segment 112; wherein the first wall section 111, the second wall section 112, the third wall section 1193 and the fourth wall section 1194 enclose a protrusion 119.
In this embodiment, the first wall section 111, the second wall section 112, the third wall section 1193 and the fourth wall section 1194 are connected from four directions to form a protrusion 119, and the protrusion 119 encloses a vortex-trapped cavity 1191 with the outer edge 113 of the upper cover 11, so that the upper cover 11 can form the protrusion 119.
Optionally, the first wall section 111 and the second wall section 112 each extend in an arc shape along the circumferential direction of the upper cover 11, such that the protrusion 119 is in a fan shape, which can increase the volume of the trapped vortex chamber 1191.
Optionally, the outer edge 113 of the upper cover 11 is connected to the outer end of the second wall section 112, and the outer edge 113 of the upper cover 11 is inclined upwards in the direction from inside to outside, and a standing vortex chamber 1191 is formed at the connection between the outer edge 113 of the upper cover 11 and the second wall section 112.
In this embodiment, the outer edge 113 of the upper housing 11 includes the third vertical section 116, and the outer edge 113 of the upper housing 11 is inclined upward in the direction from inside to outside, so that the outer edge 113 of the upper housing 11 can form the trapped vortex chamber 1191 with the protrusion 119, and the volume of the trapped vortex chamber 1191 is ensured.
Optionally, as shown in fig. 1, pawl 2 is disposed within channel 1192.
In this embodiment, the height of the channel 1192 is lower, and the pawl 2 is disposed in the channel 1192, so that the height of the pawl 2 is not increased, and the pawl 2 is convenient to support the pot.
Optionally, the supporting claw 2 is attached to the upper surface of the upper cover 11, the outer edge 113 of the upper cover 11 is abutted to the outer end of the supporting claw 2, and the inner end of the channel 1192 is flush with the inner end of the supporting claw 2, so as to isolate two adjacent standing vortex cavities 1191.
In this embodiment, the supporting claw 2 is attached to the upper surface of the upper cover 11, that is, there is no gap between the lower end of the supporting claw 2 and the upper cover 11, the outer end of the supporting claw 2 is abutted against the outer edge 113 of the upper cover 11, and the inner end of the supporting claw 2 is abutted against the inner end of the upper cover 11, that is, the supporting claw 2 can completely separate two adjacent standing vortex chambers 1191, so as to avoid the mutual influence of the smoke in the two standing vortex chambers 1191, and further improve the heat exchange efficiency of the high temperature smoke in the standing vortex chambers 1191 and the bottom of the pot.
Optionally, the fire holes 51 of the fire cover 5 are multiple, the multiple fire holes 51 are sequentially arranged at intervals along the circumferential direction of the fire cover 5, wherein the multiple fire holes 51 form multiple fire hole groups, the multiple fire hole groups are sequentially arranged at intervals along the circumferential direction of the fire cover 5, fire avoiding portions 52 are formed between adjacent fire hole groups, and the channels 1192 correspond to the fire avoiding portions 52.
In this embodiment, the structure of the protrusion 119 and the standing vortex cavity 1191 enables the high-temperature flue gas to be discharged in time, so that the injection capacity of the flame of the fire cover 5 to secondary air is improved. However, excessive secondary air injection may result in reduced thermal efficiency of the burner. Therefore, the fire hole group is correspondingly provided with the protrusion 119, the first wall section 111 guides the flue gas, and the secondary air injection quantity at the fire hole 51 is improved. The fire avoiding part 52 without the fire hole 51 corresponds to the channel 1192, so that the injection amount of secondary air in the part can be reduced, the fire cover 5 can inject the secondary air, the combustion sufficiency of flame is ensured, the injection amount of the secondary air can be properly controlled, and the excessive injection of the secondary air is avoided.
Alternatively, the projections 119 correspond to the fire hole groups, and the projections 119 have the same or similar size as the fire hole groups to ensure supply of secondary air at the fire holes 51.
Optionally, the channels 1192 slope downward in an outside-in direction, or the channels 1192 extend in a horizontal direction.
In this embodiment, the channel 1192 is inclined to the inner end, so that the channel 1192 has a certain gradient, so as to facilitate the complete discharge of the liquid in the standing vortex cavity 1191.
Alternatively, the channel 1192 may be a concave structure.
Optionally, the flow area of the channels 1192 increases gradually in the inside-out direction.
In this embodiment, the flow area of the outer end of the channel 1192 is larger, so that the liquid in the standing vortex cavity 1191 can flow into the channel 1192 faster, and the flow area of the inner end of the channel 1192, that is, the outlet of the channel 1192, is smaller, so that the liquid such as the soup in the standing vortex cavity 1191 can flow out of the upper cover 11 more intensively, and the range of the soup outflow is reduced.
Optionally, the first wall section 111, the second wall section 112 and the outer rim 113 of the upper cover 11 are arranged in this order in the inside-out direction. The upper housing 11 further comprises a fifth wall section 114, the fifth wall section 114 being connected between the inner end of the outer rim 113 and the outer end of the second wall section 112, the fifth wall section 114, the outer rim 113 and the second wall section 112 enclosing a trapped vortex chamber 1191, wherein the fifth wall section 114 forms a bottom wall of said trapped vortex chamber 1191.
In this embodiment, the fifth wall segment 114 forms a bottom wall of the standing vortex chamber 1191, so that the volume of the standing vortex chamber 1191 can be increased, and the residence time of the flue gas and the heat exchange time with the bottom of the pan can be further improved.
Optionally, the fifth wall segment 114 extends at least partially in a horizontal direction in an inside-out direction.
In this embodiment, the fifth wall segment 114 extends at least partially in the horizontal direction, so that the bottom of the standing vortex chamber 1191 is smoother, and the residence time of the flue gas is increased.
Alternatively, the fifth wall segment 114 may extend in a horizontal direction or may extend partially in a horizontal direction. It should be noted that: the fifth wall segment 114 in this embodiment extends along a horizontal direction, which is not strictly horizontal, and the fifth wall segment 114 may be slightly concave or slightly convex, which can increase the residence volume of the standing vortex chamber 1191, which is an alternative embodiment of the present application.
Optionally, the height of the inner end of the outer rim 113 is the same as the height of the outer end of the second wall section 112.
In this embodiment, the fifth wall segment 114 is connected between the inner end of the outer rim 113 and the outer end of the upper cover 11, wherein the inner end of the outer rim 113 and the outer end of the second wall segment 112 are the same in height, and the fifth wall segment 114 is connected between the bottom of the outer rim 113 and the bottom of the second wall segment 112, so that the heights of the two ends of the fifth wall segment 114 are uniform, and the volume of the trapped vortex cavity 1191 can be increased.
It can be understood that: the second wall section has a first included angle with the horizontal direction, the outer edge has a third included angle with the horizontal direction, and when the fifth wall section has the third included angle with the horizontal direction, the third included angle is different from the first included angle and the second included angle.
Optionally, the height of the protrusion 119 is smaller than the height of the pawl 2.
In this embodiment, the height of the protrusion 119 is smaller than that of the pawl 2, and the pawl 2 can separate adjacent protrusions 119, so that the injection areas at the first wall section 111 corresponding to two adjacent protrusions 119 are not interfered with each other, and the influence of air flow disturbance on injection is prevented.
Optionally, the fourth angle a of the first wall section 111 to the horizontal is in the range of 0 ° -70 °.
In this embodiment, the fourth angle a between the first wall section 111 and the horizontal direction is greater than 70 °, so that the inclination angle of the first wall section 111 is too large, which increases the resistance of the flue gas flowing, so that the flue gas loss is more, and the flue gas cannot smoothly flow into the standing vortex cavity 1191.
For example, the fourth angle a of the first wall section 111 to the horizontal may be 10 °, 20 °, 30 °, 40 °, 50 °, 60 °. Preferably, the first wall section 111 forms a 40 ° with the fourth angle a in the horizontal direction.
Optionally, the second wall segment 112 is at an angle b in the range of 30 ° -90 ° to the horizontal.
In this embodiment, when the first included angle b between the second wall section 112 and the horizontal direction is smaller than 30 °, the depth of the standing vortex chamber 1191 is lower, which is inconvenient for the residence of the flue gas.
For example, the first angle b of the second wall segment 112 with respect to the horizontal may be 35 °, 40 °, 50 °, 60 °, 70 °, 80 °, etc. Preferably, the second wall section 112 is at an angle b of 55 ° to the first horizontal direction.
Optionally, the second angle c of the outer edge 113 to the horizontal is in the range of 30 ° -90 °.
In this embodiment, the second included angle c between the outer edge 113 and the horizontal direction is smaller than 30 °, so that the depth of the standing vortex chamber 1191 is lower, which is inconvenient for the standing of the flue gas.
For example, the second angle c between the outer edge 113 and the horizontal direction may be 35 °, 40 °, 50 °, 60 °, 70 °, 80 °, and the like. Preferably, the second wall section 112 is at a second angle c of 50 ° to the horizontal.
The disclosed embodiments also provide a gas cooker 1, the gas cooker 1 comprising the energy concentrating cover assembly of any one of the embodiments described above.
The gas stove 1 provided in the embodiments of the present disclosure, because of including the energy concentrating cover assembly according to any one of the embodiments, has the beneficial effects of the energy concentrating cover assembly according to any one of the embodiments, and is not described herein again.
The above description and the drawings illustrate embodiments of the disclosure sufficiently to enable those skilled in the art to practice them. Other embodiments may include structural and other modifications. The embodiments represent only possible variations. Individual components and functions are optional unless explicitly required, and the sequence of operations may vary. Portions and features of some embodiments may be included in, or substituted for, those of others. 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 may be made without departing from the scope thereof. The scope of the present disclosure is limited only by the appended claims.

Claims (10)

1. A energy concentrating cap assembly, comprising:
a focusing cover;
a foot positioned below the energy gathering cover;
the supporting claw assembly is positioned above the energy gathering cover and connected with the bottom foot after penetrating through the energy gathering cover;
the support claw assembly is connected with the bottom foot through a fastener, and a gap exists between the lower end of the support claw assembly and the bottom foot.
2. The energy concentrating shield assembly of claim 1 wherein,
the upper wall of the foot is recessed downwards to form a groove, the lower end part of the supporting claw assembly is positioned in the groove, a first gap exists between the lower end part of the supporting claw assembly and the bottom surface of the groove, and the gap comprises the first gap.
3. The energy concentrating shield assembly of claim 2 wherein,
and a second gap is formed between the outer peripheral wall of the lower end of the pawl assembly and the inner peripheral wall of the groove, and the gap comprises the second gap.
4. The energy concentrating shield assembly of claim 3 wherein,
the second gap is annular.
5. The energy concentrating shield assembly of claim 1 wherein,
the foot is provided with a first screw hole, the first screw hole penetrates through the foot, the supporting jaw component is provided with a second screw hole, and the fastener is connected between the first screw hole and the second screw hole so as to realize connection of the foot and the supporting jaw component.
6. The energy concentrating shield assembly of claim 1 wherein,
the energy gathering cover comprises a lower cover, wherein the bottom foot is provided with a limiting part, the lower cover is provided with a limiting matching part, and when the limiting part is matched with the limiting matching part, the bottom foot and the lower cover are limited to rotate.
7. The energy concentrating shield assembly of claim 6 wherein,
the limiting part comprises one of a protruding column and a limiting hole, and the limiting matching part comprises the other of the protruding column and the limiting hole.
8. The energy concentrating shield assembly of any one of claims 1 to 7 wherein the pawl assembly comprises:
the supporting claw is positioned above the energy gathering cover;
and the sleeve is connected between the supporting claw and the bottom foot.
9. The energy concentrating shield assembly of claim 8 wherein,
the sleeve is made of different materials from the supporting claws; and/or, the material of the sleeve is different from the material of the bottom foot.
10. A gas range comprising a energy concentrating cover assembly according to any one of claims 1 to 9.
CN202223403004.3U 2022-12-19 2022-12-19 Energy-gathering cover assembly and gas stove Active CN219389832U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202223403004.3U CN219389832U (en) 2022-12-19 2022-12-19 Energy-gathering cover assembly and gas stove

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202223403004.3U CN219389832U (en) 2022-12-19 2022-12-19 Energy-gathering cover assembly and gas stove

Publications (1)

Publication Number Publication Date
CN219389832U true CN219389832U (en) 2023-07-21

Family

ID=87199449

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202223403004.3U Active CN219389832U (en) 2022-12-19 2022-12-19 Energy-gathering cover assembly and gas stove

Country Status (1)

Country Link
CN (1) CN219389832U (en)

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