An electric flame integrated stove capable of rapid heat dissipation
Through the dual-pass heat dissipation design, the discharge units and terminals of the plasma stove are cooled in stages using the cooling fan and coolant, which solves the problem of poor heat dissipation of the plasma stove and extends the service life of the electrical components.
Patent Information
- Application Number
- CN202210349710.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-04-02
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2042-04-02
AI Technical Summary
The existing plasma stove lacks effective heat dissipation measures, which leads to partial heat accumulation at the stove and easily damage electronic components.
The dual-pass heat dissipation design is adopted, and the discharge unit and wiring terminals are cooled by combining the heat dissipation fan and the coolant, including the use of the annular air duct and the coolant, so as to achieve phased cooling of heat.
It effectively prevents heat accumulation, extends the service life of electrical components, and improves heat dissipation efficiency.
Smart Images

Figure CN115031265B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of electric flame integrated cooktops, and particularly relates to an electric flame integrated cooktop capable of rapid heat dissipation. Background Art
[0002] Gas cookers use natural gas or liquefied gas, and combustion will produce toxic and greenhouse gases such as carbon monoxide and carbon dioxide. The gas itself is also toxic, especially canned liquefied gas, which is like a time bomb, threatening the lives and property safety of the people.
[0003] A plasma electric flame cooker utilizes the characteristics of plasma, uses high-voltage electricity to break down air to form thermal plasma, converts electrical energy into heat energy, and generates a thermal plasma beam with similar flame characteristics to heat cookware for cooking.
[0004] However, during the cooking process of a plasma cooker, the discharge electrode at the cooker head part discharges, and the flame formed by the thermal plasma beam generated by the discharge heats the cookware. Therefore, a large amount of heat will be generated at the cooker head part, and this part of the heat can conduct downward along the discharge electrode, resulting in heat accumulation. Currently, plasma cookers lack good heat dissipation and are prone to damage the electronic components under the burner head due to overheating. Summary of the Invention
[0005] The present invention provides an electric flame integrated cooktop capable of rapid heat dissipation, aiming to solve the problems mentioned in the above background art.
[0006] The present invention is implemented as follows. An electric flame integrated cooktop capable of rapid heat dissipation includes: a cooker frame, inside which there is a cabinet, and storage spaces are respectively provided in the cooker frames on both sides of the cabinet; a cooking range, which is fixedly connected to the top of the cooker frame, and two cooktops are respectively arranged opposite to each other thereon; above the cooker frame, there is a smoke rack fixedly installed, and an oil fume extractor is arranged on the smoke rack corresponding to the cooking range, and a control panel electrically connected to the oil fume extractor is also arranged on the smoke rack. The cooktop includes:
[0007] a base, with a chamber extending inwardly opened at the top, a wiring terminal is accommodated in the chamber; an electrode base, which is detachably and fixedly connected above the base, and a placement groove is opened at the top, an electrode plate is fixedly installed inside the placement groove, and the electrode plate is electrically connected to the wiring terminal through a wire; a plurality of discharge units, which are evenly distributed on the electrode plate and are electrically connected to the electrode plate, and their tops extend out of the placement groove; and a heat dissipation component, which is fixedly connected to the outer wall of the electrode base and communicates with the placement groove and the chamber respectively to realize the cooling and heat dissipation of the electrical components in the placement groove and the chamber.
[0008] Preferably, the heat dissipation component includes: a air supply component fixedly connected to the outer wall of the electrode seat, a first heat dissipation channel opened in the electrode seat and communicating with the placement groove, and a second heat dissipation channel opened in the base and communicating with the chamber.
[0009] Preferably, the air supply component includes: a mounting seat, the two ends of which are respectively fixedly connected to the outer wall of the electrode seat through connecting pieces. A ventilation groove and a mounting groove are opened in the mounting seat and are communicated with each other. The mounting groove is located on the side of the ventilation groove away from the electrode seat. A heat dissipation fan is fixedly embedded in the mounting groove, and its air supply end faces the ventilation groove. On the inner wall of the ventilation groove opposite to the air supply end of the heat dissipation fan, a diversion mounting plate is fixedly connected. The ventilation groove is divided into a first ventilation path and a second ventilation path through the diversion mounting plate. The first ventilation path corresponds to the first heat dissipation channel, and the second ventilation path corresponds to the second heat dissipation channel.
[0010] Preferably, the first heat dissipation channel includes: an annular air duct opened in the electrode seat, which communicates with the first ventilation path. A plurality of air outlets communicating with the annular air duct are circumferentially opened on the inner wall of the placement groove. Wherein, a first air discharge port communicating with the placement groove is further opened on the outer wall of the electrode seat.
[0011] Preferably, the second heat dissipation channel includes: an air inlet opened on the outer wall of the base and corresponding to communicate with the second ventilation path, which communicates into the chamber. A second air discharge port communicating with the chamber is further opened on the outer wall of the base.
[0012] Preferably, each discharge unit includes: an electrode connecting rod, which is vertically inserted into the placement groove and is electrically connected to the electrode sheet at the bottom end. A discharge head is integrally formed at the top end of the electrode connecting rod. Along the vertical direction of the outer wall of the electrode connecting rod, a plurality of heat dissipation fins are sequentially and equally spaced. Each heat dissipation fin is made of aluminum alloy material, and a grounding rod, which penetrates the base and the electrode seat.
[0013] Preferably, a heat insulation sheet is also attached to the electrode sheet. Wherein, a plurality of first through holes for the electrode connecting rod and the grounding rod to penetrate are opened on the heat insulation sheet. The heat insulation sheet is made of asbestos material.
[0014] Preferably, a heat insulation sheet is also attached to the electrode sheet. Wherein, a plurality of first through holes for the electrode connecting rod and the grounding rod to penetrate are opened on the heat insulation sheet. The heat insulation sheet is made of asbestos material.
[0015] Preferably, a first sealing ring is disposed around the outer side of the top wall of the base, and a second sealing ring matching the first sealing ring is disposed around the outer wall of the bottom wall of the electrode base. The first sealing ring and the second sealing ring are hermetically connected.
[0016] Preferably, it further includes a plurality of cooling components, which are sequentially and equidistantly distributed on the connection terminals. Each cooling component includes: an annular tube, the bottom end of which abuts against the connection terminal. A flow path is provided inside the annular tube, and a coolant is filled in the flow path.
[0017] Compared with the prior art, the beneficial effects of the present invention are as follows: An electric flame integrated stove capable of quickly dissipating heat according to the present invention:
[0018] The cold air output by the cooling fan enters the first ventilation path and the second ventilation path respectively. The first heat dissipation channel communicated with the first ventilation path inputs the cold air along the annular air duct to the positions of each air outlet. The cold air blows on the heat dissipation fins outside each click connecting rod to cool the heat dissipation fins. The hot air containing heat is discharged from the first air outlet to the placement groove, realizing the cooling and heat dissipation of the discharge unit.
[0019] Part of the cold air enters the second ventilation path and then enters the chamber along the air inlet. Since the heat generated by the connection terminal during operation will be absorbed by the coolant in the annular tube, the cold air blows on the annular tube to dissipate the heat in the coolant. The air containing heat is discharged from the second air outlet to the chamber, realizing the cooling and heat dissipation of the connection terminal and the cooling component.
[0020] This solution provides a dual-channel heat dissipation path, which can ensure that when the heat is transferred downward, it can be controlled layer by layer, and the heat can be cooled in stages, ensuring that the electrical components are not damaged, thereby improving their service life. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 is the overall schematic diagram of the electric flame integrated stove of the present invention
[0022] Figure 2 is the front sectional view of the present invention;
[0023] Figure 3 is the present invention Figure 1 expansion view;
[0024] Figure 4 is the present invention Figure 3 partial enlarged view of part A in;
[0025] Figure 5 is the present invention Figure 3 partial enlarged view of part B in;
[0026] Figure 6 Schematic diagram of the discharge unit in the present invention;
[0027] Figure 7 Schematic diagram and partial front sectional view of the annular tube in the present invention;
[0028] In the figure:
[0029] 1. Base; 11. Chamber; 12. Terminal; 13. First sealing ring;
[0030] 2. Electrode base; 21. Placement groove; 22. Electrode plate; 23. Second sealing ring;
[0031] 3. Discharge unit; 31. Electrode connecting rod; 32. Discharge head; 33. Heat sink; 34. Grounding rod;
[0032] 4. Heat dissipation assembly; 41. Air supply assembly; 411. Mounting base; 412. Heat dissipation fan; 413. Air supply end; 414. Flow guide mounting plate; 415. First ventilation path; 416. Second ventilation path; 42. First heat dissipation channel; 421. Annular air duct; 422. Air outlet; 423. First exhaust air port; 43. Second heat dissipation channel; 431. Air inlet; 432. Second exhaust air port;
[0033] 5. Heat insulation sheet;
[0034] 6. Decorative panel;
[0035] 7. Cooling component; 71. Annular tube; 72. Flow path. Detailed implementation manner
[0036] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0037] Please refer to Figure 1-2 and 5, the present invention provides a technical solution:
[0038] An electric flame integrated stove capable of rapid heat dissipation, comprising:
[0039] A stove frame 100, inside which a cabinet body 101 is provided, storage spaces 102 are respectively arranged in the stove frames 100 on both sides of the cabinet body 101, a stove top 103, which is fixedly connected to the top of the stove frame 100, and two stove heads are respectively arranged opposite to each other thereon. Above the stove frame 100, an oil fume rack 110 is fixedly installed, an oil fume machine 111 is arranged corresponding to the stove top 103 on the oil fume rack 110, and a control screen 112 electrically connected to the oil fume machine 111 is also arranged on the oil fume rack 110.
[0040] The cooking range includes: a base 1, at the top of which there is a chamber 11 extending inwards, and a terminal block 12 is disposed in the chamber 11;
[0041] An electrode base 2, which is detachably and fixedly connected above the base 1, and at the top there is a placement groove 21, and an electrode plate 22 is fixedly installed inside the placement groove 21, and the electrode plate 22 and the terminal block 12 are electrically connected by a wire;
[0042] A plurality of discharge units 3, which are evenly distributed on the electrode plate 22, and are all electrically connected to the electrode plate 22, and the top ends thereof extend out of the placement groove 21;
[0043] Each discharge unit 3 includes: an electrode connecting rod 31, which is vertically inserted into the placement groove 21, and the bottom end is electrically connected to the electrode plate 22, and a discharge head 32 is integrally formed at the top end of the electrode connecting rod 31. Along the vertical direction on the outer wall of the electrode connecting rod 31, a plurality of heat dissipation fins 33 are sequentially and equally spaced. Each heat dissipation fin 33 is made of aluminum alloy material, and a grounding rod 34, which penetrates the base 1 and the electrode base 2;
[0044] An insulating sheet 5 is also attached to the electrode plate 22. Among them, a plurality of first through holes for the electrode connecting rod 31 and the grounding rod 34 to penetrate are opened on the insulating sheet 5, and the insulating sheet 5 is made of asbestos material.
[0045] It further includes: a decorative plate 6 fitted at the top end position of the placement groove 21, on which a plurality of second through holes for the electrode connecting rod 31 and the grounding rod 34 to penetrate are opened, and the decorative plate 6 is made of ceramic material.
[0046] Specifically, the cooking range 100 includes a cabinet body 101. Storage spaces 102 for storing and accommodating objects are respectively arranged on both sides of the cabinet body 101. On the top of the cooking range 100, a cooking table 103 is installed and fixed. Two cooking ranges are respectively arranged on the cooking table 103. At a position corresponding to the upper part of the cooking table 103, an oil fume rack 110 fixedly connected to the cooking range 100 is also installed and fixed. When a cooking utensil is used on the cooking range, the oil fume generated will be absorbed by an oil fume machine 111 arranged on the oil fume rack 110, and the user can control the operation of the oil fume machine 111 through a control panel 112 electrically connected to the oil fume machine 111;
[0047] Regarding the cooking range, the electrode base 2 it contains can be fixedly connected to the base 1 through bolt fitting or the fitting connection of buckles and card slots. During the actual installation process, the terminal 12 and the electrode piece 22 can be electrically connected by means of wire connection. Thus, the electrical energy on the terminal 12 can be transmitted to the electrode piece 22 through the wire. Multiple electrode connecting rods 31 fixedly connected to the electrode piece 22 will transmit the electrical energy to the position of the discharge head 32 at the top thereof. An arc spark is generated via the discharge head 32. During the process of heating the pot body, the grounding rod 34 abuts against the bottom of the pot body. After working for a certain period of time, heat energy will be stored on the electrode connecting rod 31 and the discharge head 32. The heat sinks 33 sequentially arranged on the outer wall of the electrode connecting rod 31 will absorb the heat energy. Thus, when the subsequent cold air blows onto the heat sinks 33, the heat dissipation efficiency of the electrode connecting rod 31 can be improved;
[0048] In addition, the heat insulation sheet 5 fitted on the electrode piece 22 is preferably made of asbestos material. The purpose is to effectively isolate the heat, thereby avoiding the high temperature being transmitted to the electrode piece 22 and causing damage to the electrode piece 22.
[0049] The surface of the decorative plate 6 can be provided with different patterns or designs according to actual needs. On the one hand, it can increase the market competitiveness of this device and also enhance the applicable scope of this device. On the other hand, the decorative plate 6 made of ceramics can isolate the high temperature from the discharge head 32 above it, preventing the high temperature from continuously dissipating into the placement groove 21, effectively ensuring the cooling and heat insulation inside the electrode base 2.
[0050] Preferably, a first sealing ring 13 is arranged around the outer side of the top wall of the base 1, and a matching second sealing ring 23 is arranged correspondingly around the outer wall of the bottom wall of the electrode base 2. The first sealing ring 13 and the second sealing ring 23 are hermetically connected.
[0051] Specifically, when the electrode base 2 and the base 1 are connected to each other, the first sealing ring 13 and the second sealing ring 23 are mutually fitted, thereby sealing the gap between the electrode base 2 and the base 1, avoiding dust or water stains from entering the interior of this device during the subsequent use of this device, and forming a protection for this device.
[0052] Please refer to Figure 1-2 As shown in FIGS. 5 and 6, it further includes cooling components 7. There are multiple of them and they are sequentially and equally spaced on the terminal 12. Each cooling component 7 includes: an annular tube 71, the bottom end of which abuts against the terminal 12. A flow path 72 is opened inside the annular tube 71, and a coolant is filled in the flow path 72.
[0053] Specifically, when the terminal 12 is in operation, it generates heat, which accumulates in the chamber 11. If the heat cannot be discharged for a long time, it will cause damage to the terminal 12. Preferably, there are multiple annular tubes 71 on the terminal 12, and at least one side of each annular tube 71 abuts against the terminal 12. The coolant flowing in the flow path 72 will absorb the heat generated when the terminal 12 is working, thereby reducing the working temperature of the terminal 12 and extending its lifespan.
[0054] Please refer to Figure 1-4 , and a heat dissipation component 4, which is fixedly connected to the outer wall of the electrode base 2 and communicates with the placement groove 21 and the chamber 11 respectively, for cooling and dissipating heat from the electrical components in the placement groove 21 and the chamber 11;
[0055] The heat dissipation component 4 includes: a blower component 41 fixedly connected to the outer wall of the electrode base 2, a first heat dissipation channel 42 opened in the electrode base 2 and communicating with the placement groove 21, and a second heat dissipation channel 43 opened in the base 1 and communicating with the chamber 11;
[0056] The blower component 41 includes: a mounting seat 411, whose two ends are respectively fixedly connected to the outer wall of the electrode base 2 through connecting pieces. A ventilation groove and a mounting groove are opened inside the mounting seat 411. The mounting groove is located on the side of the ventilation groove away from the electrode base 2. A heat dissipation fan 412 is fixedly embedded in the mounting groove, and its air supply end 413 faces the ventilation groove. On the inner wall of the ventilation groove opposite to the air supply end 413, a diversion mounting plate 414 is fixedly connected. The ventilation groove is divided into a first ventilation path 415 and a second ventilation path 416 by the diversion mounting plate 414. The first ventilation path 415 corresponds to the first heat dissipation channel 42, and the second ventilation path 416 corresponds to the second heat dissipation channel 43;
[0057] The first heat dissipation channel 42 includes: an annular air duct 421 opened in the electrode base 2, which communicates with the first ventilation path 415. A plurality of air outlets 422 communicating with the annular air duct 421 are circumferentially opened on the inner wall of the placement groove 21. Among them, a first air exhaust port 423 communicating with the placement groove 21 is also opened on the outer wall of the electrode base 2;
[0058] The second heat dissipation channel 43 includes: an air inlet 431 opened on the outer wall of the base 1 and correspondingly communicating with the second ventilation path 416, which communicates into the chamber 11. A second air exhaust port 432 communicating with the chamber 11 is also opened on the outer wall of the base 1.
[0059] Specifically, when the cooling fan 412 operates, it sucks the cold air outside the mounting base 411 into the mounting groove, and then outputs it to the ventilation groove through the air supply end 413 of the cooling fan 412. During the process of the cold air flowing towards the ventilation groove, it will contact the diversion mounting plate 414, which will separate the cold air and respectively convey it into the first ventilation path 415 and the second ventilation path 416 to achieve subsequent dual-channel cooling;
[0060] The cold air conveyed into the first ventilation path 415 then enters the connected annular air duct 421. Since a number of air outlets 422 communicating with the annular air duct 421 are circumferentially provided on the inner peripheral wall of the placement groove 21, the cold air will enter the placement groove 21 along the air outlets 422 and blow on a plurality of heat sinks 33 on the outer wall of the electrode connecting rod 31, carrying the heat on the heat sinks 33. Then, the air containing heat will be discharged from the placement groove 21 along the first air outlet 423 provided on the electrode base 2, completing the cooling of the discharge unit 3;
[0061] The cold air conveyed into the second ventilation path 416 enters the connected air inlet 431, and then enters the chamber 11 through the air inlet 431, blowing on the coolant in a plurality of annular tubes 71 on the wiring terminal 12 and taking away the heat contained in the coolant. Then, the air with heat is discharged from the chamber 11 along the second air outlet 432 provided on the base 1, completing the cooling of the wiring terminal 12.
[0062] Working principle and usage process of the present invention: After the present invention is installed,
[0063] In summary, when the cooling fan 412 operates, it sucks the cold air outside the mounting base 411 into the mounting groove, and then outputs it to the ventilation groove through the air supply end 413 of the cooling fan 412. During the process of the cold air flowing towards the ventilation groove, it will contact the diversion mounting plate 414, which will separate the cold air and respectively convey it into the first ventilation path 415 and the second ventilation path 416 to achieve subsequent dual-channel cooling;
[0064] The cold air conveyed into the first ventilation path 415 then enters the connected annular air duct 421. Since a number of air outlets 422 communicating with the annular air duct 421 are circumferentially provided on the inner peripheral wall of the placement groove 21, the cold air will enter the placement groove 21 along the air outlets 422 and blow on a plurality of heat sinks 33 on the outer wall of the electrode connecting rod 31, carrying the heat on the heat sinks 33. Then, the air containing heat will be discharged from the placement groove 21 along the first air outlet 423 provided on the electrode base 2, completing the cooling of the discharge unit 3;
[0065] The cold air delivered into the second ventilation path 416 enters the connected air inlet 431, and then enters the chamber 11 through the air inlet 431, blowing the coolant in the multiple annular tubes 71 on the wiring terminal 12 to take away the heat contained in the coolant. Then, the air with heat is discharged from the chamber 11 along the second air outlet 432 formed on the base 1, completing the cooling of the wiring terminal 12.
[0066] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. An electric flame integrated cooking stove capable of rapid heat dissipation, comprising: A stove frame (100) with a cabinet (101) opened inside it, and storage spaces (102) are respectively arranged inside the stove frame (100) on both sides of the cabinet (101); A cooking stove top (103) fixedly connected to the top of the stove frame (100), and two cooking stove heads are respectively arranged opposite to each other on it; above the stove frame (100), an oil fume rack (110) is fixedly installed, an oil fume extractor (111) is arranged corresponding to the cooking stove top (103) on the oil fume rack (110), and a control screen (112) electrically connected to the oil fume extractor (111) is also arranged on the oil fume rack (110); It is characterized in that the cooking stove head includes: A base (1) with a chamber (11) extending inwards opened at the top, and a wiring terminal (12) is placed inside the chamber (11); An electrode seat (2) detachably and fixedly connected above the base (1), and a placement groove (21) is opened at the top, an electrode plate (22) is fixedly installed inside the placement groove (21), and the electrode plate (22) is electrically connected to the wiring terminal (12) through a wire; A plurality of discharge units (3) evenly distributed on the electrode plate (22), and all are electrically connected to the electrode plate (22), and their tops extend out of the placement groove (21); And a heat dissipation component (4) fixedly connected to the outer wall of the electrode seat (2), and respectively communicating with the placement groove (21) and the chamber (11) to realize the cooling and heat dissipation of the electrical components in the placement groove (21) and the chamber (11); wherein the heat dissipation component (4) includes a first heat dissipation channel (42) opened in the electrode seat (2) and communicating with the placement groove (21); The first heat dissipation channel (42) includes: an annular air duct (421) opened in the electrode seat (2), and a plurality of air outlets (422) communicating with the annular air duct (421) are circumferentially opened on the inner wall of the placement groove (21); wherein, a first air exhaust port (423) communicating with the placement groove (21) is also opened on the outer wall of the electrode seat (2); The integrated cooking stove further includes a plurality of cooling components (7) which are arranged in sequence and equidistantly distributed on the wiring terminal (12); each cooling component (7) includes: an annular tube (71) whose bottom end abuts against the wiring terminal (12); a flow path (72) is opened inside the annular tube (71), and a coolant is filled in the flow path (72).
2. The electric flame integrated stove capable of rapid heat dissipation according to claim 1, characterized in that The heat dissipation component (4) further includes: a air supply component (41) fixedly connected to the outer wall of the electrode seat (2); And a second heat dissipation channel (43) opened in the base (1) and communicating with the chamber (11).
3. The electric flame integrated stove capable of rapid heat dissipation according to claim 2, characterized in that, The air supply component (41) includes: A mounting seat (411) whose two ends are respectively fixedly connected to the outer wall of the electrode seat (2) through connecting pieces; The mounting seat (411) is provided with a connected ventilation slot and a mounting slot inside, the mounting slot is located on a side of the ventilation slot away from the electrode seat (2), and a cooling fan (412) is embedded and fixed in the mounting slot, with its air supply end (413) facing the ventilation slot; A guide mounting plate (414) is fixedly connected to the inner wall of the ventilation slot opposite to the air supply end (413), and the ventilation slot is divided into a first ventilation path (415) and a second ventilation path (416) by the guide mounting plate (414); The first ventilation path (415) corresponds to the first heat dissipation channel (42), and the second ventilation path (416) corresponds to the second heat dissipation channel (43).
4. The electric flame integrated stove capable of rapid heat dissipation as claimed in claim 3, characterized in that: The annular air duct (421) is connected to the first ventilation path (415).
5. The electric flame integrated stove capable of rapid heat dissipation according to claim 3, wherein The second heat dissipation channel (43) comprises: An air inlet (431) is provided on the outer wall of the base (1) and corresponds to the air inlet (431) connected to the second ventilation path (416), and connected to the chamber (11); A second air outlet (432) communicating with the chamber (11) is also provided on the outer wall of the base (1).
6. The electric flame integrated stove capable of rapid heat dissipation according to claim 1, characterized in that, Each of the discharge units (3) comprises: An electrode connecting rod (31) is inserted vertically into the placement groove (21), and its bottom end is electrically connected to the electrode sheet (22); a discharge head (32) is integrally formed at the top of the electrode connecting rod (31); A plurality of heat sinks (33) are arranged in a vertical direction on the outer wall of the electrode connecting rod (31) at regular intervals, and each heat sink (33) is made of an aluminum alloy. And, a grounding rod (34) which passes through the base (1) and the electrode seat (2).
7. The electric flame integrated stove capable of rapid heat dissipation according to claim 6, characterized in that, The electrode sheet (22) is also fitted with a heat insulating sheet (5); the heat insulating sheet (5) is provided with a plurality of first through holes for the electrode connecting rod (31) and the grounding rod (34) to pass through, and the heat insulating sheet (5) is made of asbestos material.
8. The electric flame integrated stove capable of rapid heat dissipation according to claim 7, characterized in that It also includes: a decorative plate (6) embedded in the top position of the placement groove (21), on which a plurality of second through holes for the electrode connecting rods (31) and the grounding rods (34) to pass through are opened, and the decorative plate (6) is made of ceramic material.
9. The electric flame integrated stove capable of rapid heat dissipation according to claim 1, characterized in that, A first sealing ring (13) is disposed around the outer side of the top wall of the base (1), and a matching second sealing ring (23) is disposed around the outer wall of the bottom wall of the electrode holder (2) corresponding to the first sealing ring (13); the first sealing ring (13) and the second sealing ring (23) are sealed and connected.
Citation Information
Patent Citations
Cooking range structure with double heat dissipation channels and plasma stove
CN112747342A