CN223882404U - Energy-efficient pot support and gas stove - Google Patents

Energy-efficient pot support and gas stove

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Publication number
CN223882404U
CN223882404U CN202520499999.2U CN202520499999U CN223882404U CN 223882404 U CN223882404 U CN 223882404U CN 202520499999 U CN202520499999 U CN 202520499999U CN 223882404 U CN223882404 U CN 223882404U
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CN
China
Prior art keywords
turbulence
assembly
wall
disc
energy
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Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202520499999.2U
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Chinese (zh)
Inventor
李延强
刘汉臣
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Hisense Shandong Kitchen and Bathroom Co Ltd
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Hisense Shandong Kitchen and Bathroom Co Ltd
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Priority to CN202520499999.2U priority Critical patent/CN223882404U/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

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Abstract

本申请提供实施例属于灶具技术,提供一种聚能盘锅支架及燃气灶,聚能盘锅支架包括下盘组件;上盘组件,上盘组件位于上盘组件的顶部,上盘组件与下盘组件形成隔热腔;上盘组件包括上盘,上盘的底部设置有用于避让火盖的避让结构,上盘的上表面设置有第一扰流结构,第一扰流结构靠近上盘的顶部,上盘的上表面设置有第二扰流结构,第二扰流结构靠近上盘的底部;中间盘组件,中间盘组件位于隔热腔,以将隔热腔分隔为不同的区域。本申请实施例提供一种聚能盘锅支架,提高燃气灶热效率的效果较好。

This application provides embodiments related to gas stove technology, offering an energy-concentrating pot support and a gas stove. The energy-concentrating pot support includes a lower plate assembly; an upper plate assembly located on top of the lower plate assembly, forming a heat insulation cavity with the lower plate assembly; the upper plate assembly includes an upper plate, the bottom of which has a clearance structure for avoiding the burner cap, and the upper surface of which has a first turbulence structure near the top of the upper plate, and a second turbulence structure near the bottom of the upper plate; and a middle plate assembly located within the heat insulation cavity to divide the heat insulation cavity into different areas. This application provides an energy-concentrating pot support that effectively improves the thermal efficiency of the gas stove.

Description

Energy-collecting pan support and gas stove
Technical Field
The embodiment of the application relates to the technical field of household appliances, in particular to an energy-gathering pan bracket and a gas stove.
Background
A gas range is an apparatus for cooking using a combustible gas as a fuel. It generally consists of one or more burners that produce flames by burning natural gas, liquefied petroleum gas, or other combustible gases to heat cookware and food. Gas cookers are common cooking devices in modern kitchens, and are popular for their convenience and efficiency.
In the related art, the gas stove comprises a gas stove body and an energy-collecting tray pot support, wherein the energy-collecting tray pot support is arranged at the top of the gas stove body and used for supporting cookware, and meanwhile, the energy-collecting tray pot support is used for improving the efficiency and safety of the gas stove.
However, the energy-collecting pan support has poor effect of improving the heat efficiency of the gas cooker.
Disclosure of utility model
The embodiment of the application provides an energy-collecting tray pot support and a gas stove, which have good effect of improving the heat efficiency of the gas stove.
In a first aspect, an embodiment of the present application provides an energy harvesting tray pan support, including:
a lower tray assembly;
The upper disc assembly is positioned at the top of the upper disc assembly, and the upper disc assembly and the lower disc assembly form a heat insulation cavity; the upper disc assembly comprises an upper disc, an avoidance structure for avoiding a fire cover is arranged at the bottom of the upper disc, a first turbulence structure is arranged on the upper surface of the upper disc, the first turbulence structure is close to the top of the upper disc, a second turbulence structure is arranged on the upper surface of the upper disc, and the second turbulence structure is close to the bottom of the upper disc;
And the middle disc assembly is positioned in the heat insulation cavity so as to divide the heat insulation cavity into different areas.
It will be appreciated that the energy concentrating pan support provided in this embodiment includes a lower pan assembly, an upper pan assembly and a middle pan assembly. Wherein, the upper disc subassembly is located the top of upper disc subassembly, and upper disc subassembly and lower disc subassembly form the thermal-insulated chamber. The upper disc assembly comprises an upper disc, an avoidance structure for avoiding a fire cover is arranged at the bottom of the upper disc, a first turbulence structure is arranged on the upper surface of the upper disc, the first turbulence structure is close to the top of the upper disc, a second turbulence structure is arranged on the upper surface of the upper disc, and the second turbulence structure is close to the bottom of the upper disc. Like this, first vortex structure and second vortex structure can form the vortex effect of air current disturbance, effectively prevent the inside heat flow to outwards run off in the upper disc, improve gas-cooker's thermal efficiency. Wherein, the middle plate subassembly is located thermal-insulated chamber to separate thermal-insulated chamber into different regions, like this, utilize the cavity of multilayer can improve thermal-insulated effect, improve gas-cooker's thermal efficiency.
In some embodiments, the second turbulence structure protrudes from the upper surface of the upper disc, and the second turbulence structure is wound around the periphery of the avoidance structure.
Like this, the recess that second vortex structure and the upper surface of upper disc formed can play the effect of storage overflow, prevents effectively that the overflow from flowing to fire lid and gas-cooker inside through the upper disc.
In some embodiments, the second spoiler structure comprises:
A first spoiler wall;
The second turbulent flow wall is positioned at one side of the first turbulent flow wall, which is away from the avoidance structure;
The first end of the first vortex wall is connected with the upper surface of the upper disc, the second end of the first vortex wall is connected with the first end of the second vortex wall, the second end of the second vortex wall is connected with the upper surface of the upper disc, the height of the second end of the first vortex wall is higher than that of the first end of the first vortex wall, and the height of the first end of the second vortex wall is higher than that of the second end of the second vortex wall.
Like this, the recess that the upper surface of second vortex wall and upper disc formed can play the effect of storage overflow, prevents effectively that the overflow from flowing to fire lid and gas-cooker inside through the upper disc.
In some embodiments, the second end of the first spoiler wall protrudes above the upper surface of the upper plate by a distance greater than 8mm and less than 12mm.
When the second end of first vortex wall protrusion is less than 8mm in the distance of the upper surface of upper disc, the secondary air upwards flows from dodging the structure, and the height of second vortex structure is less, is unfavorable for dodging the secondary air to dodging the structure be close to the week side position at upper disc top, and the vortex effect of air current disturbance is relatively poor. When the second end of the first turbulence wall protrudes out of the upper surface of the upper disc by a distance of more than 12mm, secondary air flows upwards from the avoidance structure, the height of the second turbulence structure is higher, and the secondary air is easy to overflow from the top of the upper disc.
In some embodiments, the first end of the first spoiler wall is more than 5mm and less than 10mm from the edge of the avoidance structure.
When the upper disc can be processed by a sheet metal stamping mode. When the distance between the first end of the first turbulence wall and the edge of the avoidance structure is less than 5mm, the processing is not easy. When the first end of the first turbulent wall and the distance between the edge of the avoidance structure are greater than 10mm, the inner diameter of the avoidance structure is smaller under the condition that the outer diameter of the upper disc is fixed, and the distance between the inner wall of the avoidance structure and the fire cover is smaller, so that secondary air is not facilitated to flow into the fire cover.
In some embodiments, the first spoiler structure comprises at least one spoiler protrusion, and the spoiler protrusion is wound around the circumferential side of the second spoiler structure;
The distance that the vortex protruding is protruding in the upper surface of upper disc is greater than 3mm, and is less than 5mm.
When the distance that the vortex protruding is less than 3mm in upper surface of upper disc, secondary air flows from the top and peripheral edge position of upper disc internal fire lid position, and the protruding height of vortex is less, and the vortex effect of air current disturbance is relatively poor. When the distance that the vortex protruding is protruding in the upper surface of upper disc is greater than 5mm, the secondary air flows from the top of upper disc and peripheral edge position orientation upper disc internal fire lid position, and the protruding height of vortex is great, and is stronger to the barrier effect of secondary air, is unfavorable for the secondary air to flow to in the fire lid.
In some embodiments, the lower tray assembly is removably connected to the upper tray assembly and the middle tray assembly is removably disposed in the insulating cavity.
Like this, the lower disc subassembly can dismantle with the upper disc subassembly and be connected to be convenient for dismantle and install lower disc subassembly and upper disc subassembly, be convenient for the user clean and maintain lower disc subassembly and upper disc subassembly. After the upper disc assembly and the lower disc assembly are separated, the middle disc assembly is adjusted according to the requirement, so that energy-collecting disc pot supports of different layers are formed, the requirements of different heat efficiencies are met, the flexibility of the upper disc assembly, the lower disc assembly and the middle disc assembly is good, and the universality of materials is enhanced.
In some embodiments, the upper tray assembly includes an upper leg connected to the upper tray;
The middle disc assembly comprises at least one middle disc, and the middle disc is detachably connected with the upper supporting claw.
Therefore, the heat insulation cavity is partitioned through the middle plate, and the gas efficiency of the gas stove is improved.
In some embodiments, the intermediate disk assembly comprises at least two intermediate disks, the at least two intermediate disks comprising a first intermediate disk and a second intermediate disk;
the first middle disc is detachably connected with the upper supporting claw;
the second intermediate disk is located the below of first intermediate disk, and the second intermediate disk is connected with last claw detachably.
Therefore, the first middle disc and the second middle disc are used for separating the heat insulation cavity, so that the gas efficiency of the gas stove is improved.
In a second aspect, an embodiment of the present application provides a gas range, including a housing;
at least one energy-collecting tray pot bracket is arranged at the top of the shell;
The furnace end is embedded on the shell, and part of the furnace end is positioned in the shell;
The fire cover is arranged at the top of the furnace end, is positioned outside the shell and is positioned in an area surrounded by the avoidance structure of the energy-collecting pan support.
Thus, the heat efficiency of the gas cooker is high.
Drawings
In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings that are required in the embodiments or the description of the prior art will be briefly described, and it is obvious that the drawings in the following description are some embodiments of the present application, and other drawings may be obtained according to these drawings without inventive effort for a person skilled in the art.
Fig. 1 is a schematic structural view of an energy-collecting pan support provided by an embodiment of the present application;
FIG. 2 is a cross-sectional view of FIG. 1;
FIG. 3 is an enlarged view of a portion of FIG. 2 at A;
fig. 4 is a schematic structural diagram of a top plate assembly in a bracket of an energy-collecting pan according to an embodiment of the present application;
FIG. 5 is a schematic view of the structure of FIG. 4 at another angle;
FIG. 6 is a cross-sectional view taken along the direction B-B in FIG. 5;
FIG. 7 is an enlarged view of a portion of FIG. 6 at C;
FIG. 8 is a schematic diagram of the structure of the upper support claw in the energy accumulating pan support provided by the embodiment of the application;
FIG. 9 is a schematic diagram of a lower tray assembly in a support for a solar pan in accordance with an embodiment of the present application;
fig. 10 is a schematic structural view of a lower claw in a bracket of an energy-collecting pan provided by an embodiment of the application;
FIG. 11 is a schematic view of a first middle plate in a bracket of an energy concentrating plate according to an embodiment of the present application;
FIG. 12 is a schematic view of the structure of FIG. 11 at another angle;
FIG. 13 is an enlarged view of a portion of FIG. 12 at D;
fig. 14 is a schematic structural view of a second middle plate in the energy-collecting plate pan support according to the embodiment of the present application;
fig. 15 is a schematic view of another angle of fig. 14.
Reference numerals illustrate:
100-upper disc assembly, 110-upper disc, 120-avoiding structure, 130-first turbulence structure, 131-turbulence bulge, 140-second turbulence structure, 141-first turbulence wall, 142-second turbulence wall, 150-upper claw, 151-first connecting part, 152-second connecting part, 153-first mounting hole and 154-second mounting hole;
200-lower disc assembly, 210-lower disc, 220-lower support claw, 221-third connecting part, 222-fourth connecting part and 223-third mounting hole;
300-middle plate assembly, 310-first middle plate, 311-fifth mounting hole, 320-second middle plate, 321-sixth mounting hole;
400-insulating chamber.
Detailed Description
As described in the background art, the energy-collecting tray pot support can reduce heat loss of the gas stove and effectively improve combustion heat efficiency. In pursuit of higher thermal efficiency, energy harvesting discs are gradually evolving from single layers, double layers to three and more layers. Experiments show that when the number of layers of the energy collecting disc reaches four, the effect of simply increasing the number of layers on the improvement of energy efficiency is very little.
In order to solve the technical problems, the energy-collecting pan support provided by the application comprises a lower pan assembly, an upper pan assembly and a middle pan assembly. Wherein, the upper disc subassembly is located the top of upper disc subassembly, and upper disc subassembly and lower disc subassembly form the thermal-insulated chamber. The upper disc assembly comprises an upper disc, an avoidance structure for avoiding a fire cover is arranged at the bottom of the upper disc, a first turbulence structure is arranged on the upper surface of the upper disc, the first turbulence structure is close to the top of the upper disc, a second turbulence structure is arranged on the upper surface of the upper disc, and the second turbulence structure is close to the bottom of the upper disc. Like this, first vortex structure and second vortex structure can form the vortex effect of air current disturbance, effectively prevent the inside heat flow to outwards run off in the upper disc, improve gas-cooker's thermal efficiency. Wherein, the middle plate subassembly is located thermal-insulated chamber to separate thermal-insulated chamber into different regions, like this, can improve thermal-insulated effect, improve gas-cooker's thermal efficiency.
For the purposes of making the objects, embodiments and advantages of the present application more apparent, an exemplary embodiment of the present application will be described more fully hereinafter with reference to the accompanying drawings in which exemplary embodiments of the application are shown, it being understood that the exemplary embodiments described are merely some, but not all, of the examples of the application.
It should be noted that the brief description of the terminology in the present application is for the purpose of facilitating understanding of the embodiments described below only and is not intended to limit the embodiments of the present application. Unless otherwise indicated, these terms should be construed in their ordinary and customary meaning.
Furthermore, the terms "comprise" and "have," and any variations thereof, are intended to cover a non-exclusive inclusion, such that a product or apparatus that comprises a list of elements is not necessarily limited to those elements expressly listed, but may include other elements not expressly listed or inherent to such product or apparatus.
In the description of the present application, it should be understood that the terms "center," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," and the like indicate orientations or positional relationships based on the orientation or positional relationships shown in the drawings, merely to facilitate describing the present application and simplify the description, and do not indicate or imply that the devices or elements referred to must have a specific orientation, be configured and operated in a specific orientation, and thus should not be construed as limiting the present application.
The terms "first," "second," and the like, are used for descriptive purposes only and are not to be construed as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Thus, a feature defining "a first" or "a second" may explicitly or implicitly include one or more such feature. In the description of the present application, unless otherwise indicated, the meaning of "a plurality" is two or more.
In the description of the present application, unless explicitly stated or limited otherwise, the terms "mounted," "connected," and "connected" are to be construed broadly, and may be, for example, fixedly connected, detachably connected, or integrally connected, mechanically connected, electrically connected, directly connected, indirectly connected via an intervening medium, or in communication between two elements. The specific meaning of the above terms in the present application will be understood in specific cases by those of ordinary skill in the art.
The following description of the embodiments of the present application will be made clearly and completely with reference to the accompanying drawings, in which it is apparent that the embodiments described are only some embodiments of the present application, but not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the application without making any inventive effort, are intended to be within the scope of the application.
The embodiment of the application provides a gas stove, which comprises a gas stove body and at least one energy-collecting tray pot support, wherein the energy-collecting tray pot support is arranged at the top of the gas stove body.
The number of the energy collecting tray pot supports is at least one. Illustratively, the number of energy harvesting tray holders may be one, two, three, etc.
In some embodiments, the gas cooker body includes a housing that can function to house and protect other devices.
In some embodiments, the housing includes a bottom shell. Wherein, the drain pan encloses the installation cavity that has the opening. The mounting cavity may be used to house components of a burner or the like.
Specifically, in some embodiments, the bottom chassis may include side plates and a bottom plate. The side plate is arranged on one side of the bottom plate and surrounds one circle of the bottom plate. The bottom plate and the side plates enclose the mounting cavity.
Illustratively, the bottom and side panels may enclose a rectangular parallelepiped-shaped mounting cavity. It will be appreciated that the shape of the mounting cavity may be designed according to the actual situation and is not further limited herein.
In some embodiments, the housing comprises a panel. The panels may be used to carry and support articles.
Wherein, the panel lid is established at the top of drain pan, and the panel is used for covering the partial opening of installation cavity.
In some embodiments, the panel has a touch area thereon. The touch control area can be used for performing operations such as switch control, firepower adjustment, function selection and the like on the gas stove. The touch control area of the panel can enable a user to conveniently operate the flat plate type gas stove, and intelligent operation of the flat plate type gas stove is achieved.
In some embodiments, the gas cooker body includes a burner. The burner may be used to generate flame and heat to effect heating of the cookware.
Wherein, the combustor inlays the top of establishing at the casing. Specifically, the panel is provided with an avoidance port, and the avoidance port is used for avoiding the burner. The avoidance port may be used to place a burner such that the burner may heat the cookware.
In some embodiments, the energy accumulating pan support is sleeved outside the burner, and the energy accumulating pan support is arranged at the top of the shell. The bottom of the energy-collecting tray pot bracket is abutted with the top of the shell.
The number of burners is at least one. The burner provided in this embodiment may be a normal burner or a flat plate burner, or may be an anti-dry burner, so the type of burner is not particularly limited.
In some embodiments, the number of burners is at least two, with at least two burners being spaced apart.
The number of burners may be, for example, one, two, three, four, etc.
Specifically, the burner includes a burner head and a fire cover. The furnace end is inlayed and is established on the casing, and partial furnace end is located the casing, and fire lid is established at the top of furnace end, and the fire lid is located the outside of casing, and the fire lid is located the area that dodges the structure and enclose of energy collection dish pot support.
In some embodiments, the burner body includes a liquid tray. The liquid containing disc can guide the liquid splashed during cooking to the top wall of the shell, so that the liquid is effectively prevented from entering the shell.
Wherein, hold the liquid dish cover and establish in the outside of combustor, hold the liquid dish and inlay the top of establishing at the casing.
Fig. 1 is a schematic structural view of a bracket of an energy-collecting pan provided by an embodiment of the present application, and fig. 2 is a cross-sectional view of fig. 1.
Referring to fig. 1 and 2, an embodiment of the present application provides a energy concentrating pan support including an upper pan assembly 100. The upper tray assembly 100 is used to form the upper surface of the energy concentrating tray pan support, as well as to support the cookware.
In some embodiments, the energy concentrating pan support includes a lower pan assembly 200. The lower tray assembly 200 is used to form the lower surface of the energy concentrating tray pan support and to support the entire energy concentrating tray pan support.
Wherein the lower tray assembly 200 is positioned at the bottom of the upper tray assembly 100, and the lower tray assembly 200 and the upper tray assembly 100 form an insulating chamber 400. Wherein, the heat insulation cavity 400 is favorable for blocking heat from being dissipated outwards, thereby improving the combustion efficiency of the gas stove.
Specifically, the lower tray assembly 200 has a gap with the edge of the outer wall of the upper tray assembly 100, thereby making the insulating chamber 400 in a non-closed state, and thus facilitating the flow of air within the insulating chamber 400.
In some embodiments, the energy concentrating pan support includes a middle pan assembly 300. The middle plate assembly 300 serves to divide the heat insulating chamber 400 into different regions, thereby changing the heat insulating effect and improving the combustion efficiency of the gas range.
Fig. 3 is a partial enlarged view of a portion a in fig. 2, fig. 4 is a schematic structural view of a top plate assembly in a bracket for a solar pan according to an embodiment of the present application, fig. 5 is a schematic structural view of another angle of fig. 4, fig. 6 is a sectional view of fig. 5 along a direction B-B, and fig. 7 is a partial enlarged view of a portion C in fig. 6.
Referring to fig. 3 to 7, the upper tray assembly 100 includes an upper tray 110.
The bottom of the upper plate 110 is provided with a dodging structure 120 for dodging the fire cover.
Specifically, the avoidance structure 120 is a circular hole. The fire cover is inserted into the avoidance structure 120, that is, the upper plate 110 is sleeved on the circumference side of the fire cover.
The upper surface of the upper plate 110 is provided with a first turbulence structure 130, and the first turbulence structure 130 is close to the top of the upper plate 110. The first turbulence structures 130 form a vortex effect of airflow turbulence, so that heat flow in the energy-collecting disc is effectively prevented from losing outwards, and combustion heat efficiency is improved. Specifically, flows outwardly through an opening in the top of the upper tray 110.
The second spoiler structure 140 is disposed on the upper surface of the upper plate 110, and the second spoiler structure 140 is close to the bottom of the upper plate 110. The second turbulence structures 140 form a vortex effect of airflow turbulence, so that heat flow in the energy collecting disc is effectively prevented from being lost outwards through the avoiding structures 120, and combustion heat efficiency is improved.
It will be appreciated that the energy concentrating pan support provided in this embodiment includes a lower pan assembly 200, an upper pan assembly 100 and an intermediate pan assembly 300. Wherein the upper tray assembly 100 is positioned on top of the upper tray assembly 100, the upper tray assembly 100 and the lower tray assembly 200 form an insulating cavity 400. The upper plate assembly 100 comprises an upper plate 110, an avoidance structure 120 for avoiding a fire cover is arranged at the bottom of the upper plate 110, a first turbulence structure 130 is arranged on the upper surface of the upper plate 110, the first turbulence structure 130 is close to the top of the upper plate 110, a second turbulence structure 140 is arranged on the upper surface of the upper plate 110, and the second turbulence structure 140 is close to the bottom of the upper plate 110. In this way, the first turbulence structure 130 and the second turbulence structure 140 can form a vortex effect of airflow turbulence, so that the heat flow in the upper plate 110 is effectively prevented from being lost outwards, and the heat efficiency of the gas stove is improved. Wherein, the middle plate assembly 300 is positioned in the heat insulation cavity 400 to divide the heat insulation cavity 400 into different areas, thus, the heat insulation effect can be improved and the heat efficiency of the gas cooker can be improved by utilizing the multi-layer cavity.
Referring to fig. 3 and 4, in some embodiments, the second spoiler 140 protrudes from the upper surface of the upper plate 110, and the second spoiler 140 is wound around the circumferential side of the avoidance structure 120. Thus, the second turbulence structure 140 and the groove formed on the upper surface of the upper plate 110 can play a role in storing the spilled liquid, and effectively prevent the spilled liquid from flowing into the fire cover and the gas stove through the upper plate 110.
Referring to fig. 3, in some embodiments, the second spoiler structure 140 includes a first spoiler wall 141.
In some embodiments, the second spoiler structure 140 includes a second spoiler wall 142.
The second spoiler 142 is located on a side of the first spoiler 141 facing away from the avoidance structure 120.
The first end of the first spoiler 141 is connected to the upper surface of the upper disc 110, the second end of the first spoiler 141 is connected to the first end of the second spoiler 142, the second end of the second spoiler 142 is connected to the upper surface of the upper disc 110, the second end of the first spoiler 141 is higher than the first end of the first spoiler 141, and the first end of the second spoiler 142 is higher than the second end of the second spoiler 142.
The height direction is a direction indicated by the Z axis.
It will be appreciated that the grooves formed in the second turbulence wall 142 and the upper surface of the upper plate 110 can function to store the spilled liquid, effectively preventing the spilled liquid from flowing through the upper plate 110 to the fire cover and the gas range.
In some embodiments, the distance d by which the second end of the first spoiler 141 protrudes from the upper surface of the upper plate 110 is greater than 8mm and less than 12mm.
In some embodiments, the second end of the first spoiler 141 protrudes from the upper surface of the upper plate 110 by a distance d of 9mm, 10mm or 11mm.
It will be appreciated that when the distance d between the second end of the first turbulence wall 141 protruding from the upper surface of the upper plate 110 is less than 8mm, the secondary air flows upward from the avoidance structure 120, the height of the second turbulence structure 140 is smaller, which is unfavorable for guiding the secondary air to the peripheral side of the avoidance structure 120 near the top of the upper plate 110, and the swirling effect of the air flow disturbance is poor.
When the distance d of the second end of the first turbulence wall 141 protruding from the upper surface of the upper plate 110 is greater than 12mm, the secondary air flows upward from the avoidance structure 120, the height of the second turbulence structure 140 is high, and the secondary air is liable to overflow from the top of the upper plate 110.
Also, when the distance d by which the second end of the first spoiler 141 protrudes from the upper surface of the upper plate 110 is greater than 12mm, the secondary air flows from the top and peripheral edge positions of the upper plate 110 toward the fire cover position in the upper plate 110, and the height of the second spoiler 140 is high, the secondary air does not easily flow to the fire cover position.
In some embodiments, the distance e of the first end of the first spoiler 141 from the edge of the avoidance structure 120 is greater than 5mm and less than 10mm.
It will be appreciated that the upper plate 110 may be machined by sheet metal stamping. When the distance between the first end of the first spoiler 141 and the edge of the avoidance structure 120 is less than 5mm, it is not easy to process.
When the distance e between the first end of the first turbulence wall 141 and the edge of the avoidance structure 120 is greater than 10mm, the inner diameter of the avoidance structure 120 is smaller under the condition that the outer diameter of the upper disc 110 is fixed, the distance between the inner wall of the avoidance structure 120 and the fire cover is smaller, secondary air is not beneficial to flowing into the fire cover, and the flue gas is larger when the gas stove burns.
Referring to fig. 6 and 7, in some embodiments, the first spoiler structure 130 includes at least one spoiler protrusion 131, and the spoiler protrusion 131 is wound around a circumferential side of the second spoiler structure 140.
Illustratively, the number of the spoiler protrusions 131 may be two or three, etc.
In some embodiments, the distance f that the spoiler protrusion 131 protrudes from the upper surface of the upper plate 110 is greater than 3mm and less than 5mm.
When the distance by which the turbulence protrusions 131 protrude from the upper surface of the upper plate 110 is less than 3mm, the height of the turbulence protrusions 131 is small and the swirling effect of the air flow disturbance is poor when the secondary air flows from the top and peripheral edge positions of the upper plate 110 toward the fire cover position in the upper plate 110.
When the distance f of the turbulence protrusions 131 protruding from the upper surface of the upper plate 110 is greater than 5mm, the height of the turbulence protrusions 131 is large when the secondary air flows from the top of the upper plate 110 and the peripheral edge position toward the fire cover position in the upper plate 110, and the blocking effect on the secondary air is strong, so that the secondary air is not facilitated to flow into the fire cover.
In some embodiments, lower disc assembly 200 is removably connected to upper disc assembly 100.
It will be appreciated that the lower disc assembly 200 is detachably connected to the upper disc assembly 100, thereby facilitating the disassembly and assembly of the lower disc assembly 200 and the upper disc assembly 100, and facilitating the cleaning and maintenance of the lower disc assembly 200 and the upper disc assembly 100 by a user.
Specifically, the middle plate assembly 300 is detachably disposed in the insulating chamber 400. In this way, replacement of the middle plate assembly 300 is facilitated. Thus, after the upper disc assembly 100 and the lower disc assembly 200 are separated, the middle disc assembly 300 is adjusted according to the needs, so that energy-collecting disc pot supports of different layers are formed, the requirements of different heat efficiencies are met, the flexibility of the upper disc assembly 100, the lower disc assembly 200 and the middle disc assembly 300 is good, and the material universality is enhanced.
It should be noted that the middle disc assembly 300 may be detachably connected to the upper disc assembly 100. The middle tray assembly 300 may be detachably connected with the lower tray assembly 200. The middle tray assembly 300 may be detachably coupled to the upper tray assembly 100 while being detachably coupled to the lower tray assembly 200. The detachable connection may be a buckle, a screw, a bolt, or the like, and the embodiment is not particularly limited herein.
It can be appreciated that, compared with the multi-layer energy-gathering dish pot support structure integrally welded in the related art, the multi-layer energy-gathering dish pot support structure provided by the embodiment has the advantages of smaller processing difficulty and lower processing cost.
In some embodiments, the middle tray assembly 300 is removably connected to the upper tray assembly 100.
Fig. 8 is a schematic structural view of an upper supporting claw in a bracket of an energy-collecting pan according to an embodiment of the present application.
Referring to fig. 4 and 8, in some embodiments, upper tray assembly 100 includes an upper leg 150, upper leg 150 being coupled to upper tray 110.
Specifically, the upper plate 110 is provided with a through hole in which the upper jaw 150 is inserted. Part of upper leg 150 is located on the side of upper disc 110 that faces lower disc assembly 200.
Illustratively, upper jaw 150 may be welded to upper disc 110.
In some embodiments, the number of upper fingers 150 is a plurality, with the plurality of upper fingers 150 being spaced apart.
Specifically, the number of upper claws 150 may be four or the like.
In some embodiments, the upper jaw 150 includes a first connection portion 151 and a second connection portion 152, the extension plane of the first connection portion 151 and the extension plane of the second connection portion 152 having an angle. Wherein the second connection portion 152 and a portion of the first connection portion 151 are located at a side of the upper tray 110 facing the lower tray assembly 200.
Specifically, the extension plane of the first connection portion 151 is perpendicular to the extension plane of the second connection portion 152.
In some embodiments, the first connection part 151 and the second connection part 152 may be connected to each other after being separately provided. Or the first connection part 151 and the second connection part 152 may be integrally provided.
In some embodiments, the first connection portion 151 is provided with at least one first mounting hole 153, and the first mounting hole 153 may be a screw hole. The first mounting hole 153 is used to mount the middle plate assembly 300.
In some embodiments, the number of the first mounting holes 153 is at least two, and at least two first mounting holes 153 are spaced apart.
In some embodiments, the second connection portion 152 is provided with a second mounting hole 154, and the second mounting hole 154 may be a threaded hole. The second mounting hole 154 is used to mount the lower plate assembly 200.
Fig. 9 is a schematic structural view of a lower disc assembly in a support for a solar panel pot according to an embodiment of the present application, and fig. 10 is a schematic structural view of a lower claw in a support for a solar panel pot according to an embodiment of the present application.
Referring to fig. 9 and 10, in some embodiments, lower tray assembly 200 includes lower tray 210.
In some embodiments, lower disc 210 assembly 200 includes lower leg 220.
Wherein the lower leg 220 is inserted on the lower plate 210.
Specifically, lower tray 210 is provided with a through-hole in which lower leg 220 is inserted. Lower leg 220 may be welded to lower disc 210.
In some embodiments, lower jaw 220 includes a third connection 221 and a fourth connection 222. The extension plane of the third connecting portion 221 forms an angle with the extension plane of the fourth connecting portion 222. Wherein the third connection portion 221 is located at a side of the lower tray 210 facing the upper tray assembly 100. A portion of fourth connecting portion 222 is located on a side of lower disc 210 facing away from upper disc assembly 100.
Specifically, the extension plane of the third connection portion 221 is perpendicular to the extension plane of the fourth connection portion 222.
In some embodiments, the third connection part 221 and the fourth connection part 222 may be connected to each other after being separately provided. Or the third connection part 221 and the fourth connection part 222 may be integrally provided.
In some embodiments, the third connection part 221 is provided with a third mounting hole 223, and the third mounting hole 223 may be a screw hole or a light hole. The third mounting hole 223 is for connection with the upper tray assembly 100.
In some embodiments, the third connection portion 221 and the second connection portion 152 are the same shape. The third connection portion 221 and the second connection portion 152 abut against each other.
In some embodiments, lower tray 210 is provided with a fourth mounting hole. The fourth mounting hole may be a threaded hole or a light hole. The fourth mounting holes are provided in one-to-one correspondence with the third mounting holes 223. Fasteners are inserted through the fourth mounting holes, the third mounting holes 223, and over the second mounting holes 154 to connect the lower tray assembly 200 and the upper tray assembly 100.
Illustratively, the fastener may be a screw.
Fig. 11 is a schematic structural view of a first middle plate in the energy-collecting plate pan support according to the embodiment of the present application, fig. 12 is a schematic structural view of another angle of fig. 11, and fig. 13 is a partial enlarged view of D in fig. 12.
Referring to fig. 11-13, in some embodiments, intermediate plate assembly 300 includes at least one intermediate plate that is removably coupled to upper leg 150.
In some embodiments, the middle plate assembly 300 includes a first middle plate 310.
Wherein first intermediate plate 310 is removably coupled to upper jaw 150.
In some embodiments, the first intermediate disk 310 is provided with a fifth mounting hole 311. The fifth mounting hole 311 may be a screw hole or a light hole. A fastener is inserted into the first mounting hole 153 through the fifth mounting hole 311 to connect the first middle plate 310 and the upper plate assembly 100.
Illustratively, the fastener may be a screw.
Fig. 14 is a schematic structural view of a second middle plate in the energy-collecting plate pan support according to the embodiment of the present application, and fig. 15 is a schematic structural view of another angle of fig. 14.
Referring to fig. 14 and 15, in some embodiments, intermediate disk assembly 300 includes a second intermediate disk 320.
Wherein second intermediate disk 320 is removably coupled to upper jaw 150.
In some embodiments, the second middle plate 320 is provided with a sixth mounting hole 321. The sixth mounting hole 321 may be a screw hole or a light hole. Fasteners are inserted through the sixth mounting holes 321 into the first mounting holes 153 to connect the second intermediate plate 320 and the upper plate assembly 100.
Illustratively, the fastener may be a screw.
In some embodiments, the middle plate assembly 300 includes at least two middle plates, including a first middle plate 310 and a second middle plate 320.
Wherein the second intermediate disk 320 is located below the first intermediate disk 310. First intermediate disk 310 and second intermediate disk 320 are each removably connected to upper leg 150.
It should be noted that the above embodiments are merely for illustrating the technical solution of the present application and not for limiting the same, and although the present application has been described in detail with reference to the above embodiments, it should be understood by those skilled in the art that the technical solution described in the above embodiments may be modified or some or all of the technical features may be equivalently replaced, and these modifications or substitutions do not make the essence of the corresponding technical solution deviate from the scope of the technical solution of the embodiments of the present application.
The foregoing description, for purposes of explanation, has been presented in conjunction with specific embodiments. The illustrative discussions above are not intended to be exhaustive or to limit the embodiments to the precise forms disclosed above. Many modifications and variations are possible in light of the above teaching. The embodiments were chosen and described in order to best explain the principles and the practical application, to thereby enable others skilled in the art to best utilize the embodiments and various embodiments with various modifications as are suited to the particular use contemplated.

Claims (10)

1. A energy harvesting tray pan support, comprising:
A lower tray assembly (200);
The upper plate assembly (100), the upper plate assembly (100) is located at the top of the upper plate assembly (100), the upper plate assembly (100) and the lower plate assembly (200) form a heat insulation cavity (400), the upper plate assembly (100) comprises an upper plate (110), an avoidance structure (120) for avoiding a fire cover is arranged at the bottom of the upper plate (110), a first turbulence structure (130) is arranged on the upper surface of the upper plate (110), the first turbulence structure (130) is close to the top of the upper plate (110), a second turbulence structure (140) is arranged on the upper surface of the upper plate (110), and the second turbulence structure (140) is close to the bottom of the upper plate (110);
-a middle tray assembly (300), the middle tray assembly (300) being located in the insulating chamber (400) to divide the insulating chamber (400) into different areas.
2. The energy-gathering disk pan support according to claim 1, wherein the second turbulence structure (140) protrudes out of the upper surface of the upper disk (110), and the second turbulence structure (140) is wound around the circumference side of the avoidance structure (120).
3. The energy concentrating pan support according to claim 1, wherein the second turbulence structure (140) comprises:
A first spoiler wall (141);
A second spoiler wall (142), wherein the second spoiler wall (142) is positioned at one side of the first spoiler wall (141) away from the avoidance structure (120);
The first end of the first turbulence wall (141) is connected with the upper surface of the upper disc (110), the second end of the first turbulence wall (141) is connected with the first end of the second turbulence wall (142), the second end of the second turbulence wall (142) is connected with the upper surface of the upper disc (110), the height of the second end of the first turbulence wall (141) is higher than that of the first end of the first turbulence wall (141), and the height of the first end of the second turbulence wall (142) is higher than that of the second end of the second turbulence wall (142).
4. A dish pan support according to claim 3, characterized in that the distance by which the second end of the first turbulence wall (141) protrudes from the upper surface of the upper dish (110) is more than 8mm and less than 12mm.
5. A support according to claim 3, characterized in that the first end of the first turbulence wall (141) is more than 5mm and less than 10mm from the edge of the avoidance structure (120).
6. The energy concentrating pan support according to any one of claims 1 to 5, wherein the first turbulence structure (130) comprises at least one turbulence protrusion (131), the turbulence protrusion (131) being arranged around the circumference of the second turbulence structure (140);
The distance that the turbulence bulge (131) protrudes from the upper surface of the upper disc (110) is more than 3mm and less than 5mm.
7. The energy harvesting pan support according to any of claims 1 to 5, wherein the lower pan assembly (200) is detachably connected to the upper pan assembly (100), the intermediate pan assembly (300) being detachably arranged in the insulating cavity (400).
8. The energy harvesting pan support according to claim 7, wherein the upper pan assembly (100) comprises an upper leg (150), the upper leg (150) being connected to the upper pan (110);
The intermediate plate assembly (300) includes at least one intermediate plate that is removably coupled to the upper leg (150).
9. The energy concentrating tray pan support of claim 8 wherein the intermediate tray assembly (300) comprises at least two intermediate trays, the at least two intermediate trays comprising a first intermediate tray (310) and a second intermediate tray (320);
the first middle disc (310) is detachably connected with the upper supporting claw (150);
The second middle disc (320) is located below the first middle disc (310), and the second middle disc (320) is detachably connected with the upper supporting claw (150).
10. A gas cooker, characterized by comprising:
a housing;
at least one energy concentrating pan support according to any one of claims 1 to 9, which is arranged on top of the housing;
The furnace end is embedded on the shell, and part of the furnace end is positioned in the shell;
the fire cover is arranged at the top of the furnace end and is positioned outside the shell, and the fire cover is positioned in an area surrounded by the avoidance structure of the energy-collecting pan support.
CN202520499999.2U 2025-03-20 2025-03-20 Energy-efficient pot support and gas stove Active CN223882404U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202520499999.2U CN223882404U (en) 2025-03-20 2025-03-20 Energy-efficient pot support and gas stove

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202520499999.2U CN223882404U (en) 2025-03-20 2025-03-20 Energy-efficient pot support and gas stove

Publications (1)

Publication Number Publication Date
CN223882404U true CN223882404U (en) 2026-02-06

Family

ID=98634290

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202520499999.2U Active CN223882404U (en) 2025-03-20 2025-03-20 Energy-efficient pot support and gas stove

Country Status (1)

Country Link
CN (1) CN223882404U (en)

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