An integrated stove with cooking appliances

By combining the exhaust gas from the cooking chamber with the cooking fumes in the integrated stove and then venting them outwards, and by incorporating an exhaust grille and condensate box structure, the problems of low exhaust efficiency and backflow of fumes in existing integrated stoves are solved, achieving highly efficient fume treatment and cooking results.

CN111503672BActive Publication Date: 2025-11-14NINGBO FOTILE KITCHEN WARE CO LTD
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Patent Information

Application Number
CN201910090212.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2019-01-30
Publication Date
2025-11-14
Estimated Expiration
2039-01-30

AI Technical Summary

Technical Problem

Existing integrated cooktops are inefficient at handling fumes and steam generated by cooking devices such as steamers or ovens, and there is a risk of backflow of fumes, which affects the cooking results.

Method used

The exhaust gas from the cooking chamber is connected to the air inlet of the stove through an exhaust pipe. The exhaust gas is discharged from bottom to top into the stove and is discharged outside along with the oil fumes generated by the stove. The exhaust grille and condensate box structure are used to treat water vapor. Combined with a centrifugal fan and heat dissipation channel, the exhaust efficiency and effect are improved.

Benefits of technology

It achieves efficient exhaust of fumes, preventing oil fumes from reaching the cooking appliances and affecting food quality, improving exhaust efficiency and reducing the risk of dampness in the cabinets.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to an integrated cooktop with a cooking device, comprising a cooking device having a cooking cavity and a cooktop disposed within the cooking device. The cooktop includes a cooktop shell, an air outlet on the cooking cavity, and an air inlet and an air outlet fluidly connected within the cooktop shell. The air outlet of the cooking cavity is fluidly connected to the air inlet of the cooktop shell. This invention discharges exhaust gas from the cooking cavity from bottom to top into the cooktop and exhausts it along with the fumes generated by the cooktop, achieving overall exhaust of fumes generated by the integrated cooktop with the cooking device, improving exhaust efficiency, and preventing high-concentration fumes generated by the cooktop from entering the steam oven and affecting the cooking quality of food in the steam oven, thereby improving exhaust performance.
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Description

Technical Field

[0001] This invention relates to the field of cooking appliances, and more particularly to an integrated stove with a cooking appliance. Background Technology

[0002] Integration is the future direction of cooking equipment development, offering advantages such as smaller kitchen space requirements and ease of use. Current integrated cooktops typically combine the cooktop with a steamer, oven, dishwasher, or sterilizer. Fume extraction is a crucial issue that integrated cooktops need to address. Current integrated cooktops generally utilize existing kitchen range hoods to handle the fumes generated during operation. While this method effectively addresses fumes from the cooktop itself, it is less effective at handling fumes or steam from other components (such as the steamer or oven).

[0003] Chinese invention patent application number 201610647070.5 (publication number CN106123070A) discloses a side-suction, down-draft, down-mounted fan integrated stove, including a body, a stove assembly, and an oil fume removal device. The oil fume removal device includes a fan, a smoke inlet channel placed inside the body, a smoke collection hood communicating with the smoke inlet channel at the upper rear of the body, and a cavity at the bottom of the body below the cooking chamber of a steam oven, oven, dishwasher, or disinfection cabinet. The fan is placed horizontally in the cavity. After the fan is placed in the cavity, it allows oil fumes to enter the volute from the air inlet on one side of the volute. The smoke inlet channel communicates with the cavity, and the air outlet of the volute is connected to a row of air pipes. This patent directs the fumes generated by the stove and the inner tank to a fume extraction device located below the inner tank. Since fumes tend to move upwards, this patent uses a downward exhaust method, which not only increases the length of the exhaust channel and the difficulty of exhausting fumes, but also reduces the efficiency of exhausting fumes. Furthermore, there is a risk that the fumes generated by the stove may flow back into the steamer or oven. Summary of the Invention

[0004] The technical problem to be solved by the present invention is to provide an integrated stove with cooking device that has high exhaust efficiency and good exhaust effect, in contrast to the prior art.

[0005] The technical solution adopted by the present invention to solve the above-mentioned technical problems is as follows: an integrated stove with a cooking device, comprising a cooking device having a cooking cavity and a stove set in the cooking device, wherein the stove set includes a stove shell, characterized in that the cooking cavity is provided with an air outlet, and the stove shell is provided with an air inlet and an air outlet that are fluidly connected inside the stove shell, wherein the air outlet of the cooking cavity is fluidly connected to the air inlet of the stove shell.

[0006] The fluid connection between the air outlet of the cooking cavity and the air inlet of the stove shell can be achieved in various ways. For example, when the air outlet and the air inlet are adjacent, the air outlet and the air inlet can be directly connected. In order to ensure the reliability of the fluid connection, the cooking cavity and the air inlet of the stove shell are connected through an exhaust pipe.

[0007] Furthermore, preferably, the stove shell includes a chassis and a panel covering the chassis, the exhaust port is opened on the panel, the air inlet is opened on the bottom wall of the chassis, the air outlet is opened on the back of the cooking cavity, one end of the exhaust pipe is connected to the air outlet, and the other end is connected to the air inlet.

[0008] To avoid the exhaust gas from the exhaust port from interfering with the user, the exhaust port is located at the rear end of the panel.

[0009] To prevent exhaust gas entering the stove shell through the exhaust pipe from wandering around the stove shell and affecting the combustion and exhaust efficiency of the burner in the stove, an exhaust chamber is provided in the stove shell, and the exhaust pipe and exhaust port are respectively connected to the exhaust chamber.

[0010] The exhaust chamber can be implemented in various ways. Preferably, the stove shell is provided with an exhaust box, the panel is placed on the opening of the exhaust box to form the exhaust chamber, and the panel has a hole at the corresponding position to form the exhaust port. Furthermore, the bottom wall of the exhaust box is provided with a first air inlet, the opening of the first air inlet extends vertically downward and passes through the air inlet to form a first air inlet exposed on the chassis, and the upper pipe of the exhaust pipe is sleeved on the first air inlet.

[0011] Preferably, an exhaust grille is embedded in the exhaust port. When exhaust gas passes through the grille, some of the water vapor in the exhaust gas condenses and flows back into the exhaust chamber, preventing excessive moisture from escaping from the exhaust port and causing the cabinet where the integrated stove is installed to become damp and moldy. Furthermore, the condensation of water vapor reduces the air pressure at the exhaust port, thus guiding the exhaust gas in the exhaust pipe towards the exhaust port, thereby directing the exhaust gas towards the exhaust port.

[0012] To better contain condensate, a condensate box is embedded in the exhaust box. A second air inlet is provided on the bottom wall of the condensate box. The edge of the second air inlet extends downward to form a second air inlet interface, which extends into the first air inlet interface.

[0013] Preferably, the inner bottom surface of the condensate box set up There is a vent pipe, and the second air inlet is located in this vent pipe, with the height of the vent pipe lower than the height of the condensate box. This prevents condensate from overflowing from the condensate box and entering the interior of the cooktop.

[0014] Preferably, the second air intake port is fitted with a sealing ring, which is sandwiched between the outer peripheral wall of the second air intake port and the inner peripheral wall of the first air intake port. The sealing ring prevents exhaust gas from entering the gap between the exhaust box and the condensate box through the gap between the first and second air intake ports.

[0015] Compared with the prior art, the advantages of the present invention are as follows: The present invention exhausts the exhaust gas in the cooking cavity from bottom to top into the stove and exhausts it out along with the oil fumes generated by the stove, thereby realizing the overall exhaust of the fumes generated by the integrated stove with cooking device, improving exhaust efficiency, and preventing the high concentration of oil fumes generated by the stove from entering the cooking device and affecting the cooking quality of the food in the cooking device, thereby improving the exhaust effect. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the integrated stove with cooking device in Embodiment 1 of the present invention;

[0017] Figure 2 for Figure 1 A schematic diagram of the structure from another direction;

[0018] Figure 3 for Figure 1 A schematic diagram of the structure in another direction;

[0019] Figure 4 This is a top view of the integrated stove with cooking device in Embodiment 1 of the present invention;

[0020] Figure 5 for Figure 4 A cross-sectional view along the AA direction;

[0021] Figure 6 for Figure 5 Enlarged view of section C;

[0022] Figure 7 This is a partial structural diagram of the integrated stove with cooking device in Embodiment 1 of the present invention;

[0023] Figure 8 for Figure 7 A schematic diagram of the structure from another direction;

[0024] Figure 9 This is a partial exploded view of the integrated stove with cooking device in Embodiment 1 of the present invention;

[0025] Figure 10 This is another partial structural diagram of the integrated stove with cooking device in Embodiment 1 of the present invention;

[0026] Figure 11 This is a schematic diagram of the exhaust box structure in Embodiment 1 of the present invention;

[0027] Figure 12 for Figure 11 A schematic diagram of the structure from another direction;

[0028] Figure 13 This is a schematic diagram of the condensate box in Embodiment 1 of the present invention;

[0029] Figure 14 for Figure 13 A schematic diagram of the structure from another direction;

[0030] Figure 15 This is a partial structural diagram of the integrated stove with cooking device in Embodiment 2 of the present invention;

[0031] Figure 16 This is a schematic diagram of the integrated stove with cooking device in Embodiment 3 of the present invention;

[0032] Figure 17 for Figure 16 A schematic diagram of the structure from another direction;

[0033] Figure 18 for Figure 17 Schematic diagram of the structure along the BB direction;

[0034] Figure 19 for Figure 18 Enlarged view of section D;

[0035] Figure 20 This is a partial structural diagram of the integrated stove with cooking device in Embodiment 3 of the present invention;

[0036] Figure 21 for Figure 20 A schematic diagram of the structure from another direction;

[0037] Figure 22 This is a schematic diagram of the air guide shroud in Embodiment 3 of the present invention. Detailed Implementation

[0038] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments.

[0039] Example 1:

[0040] like Figures 1-14As shown, an integrated stove with a cooking device includes a stove and a cooking device having a cooking cavity 11. The stove includes a stove shell 2, and the top surface of the stove shell 2 is provided with a structure for placing pots. In this embodiment, the structure for placing pots is a pot support 10. In addition, in this embodiment, the cooking device with the cooking cavity 11 is a steam oven, which includes a housing 1 and the cooking cavity 11 disposed in the housing 1. The cooking cavity 11 is connected to the stove shell 2 through an exhaust pipe 3, and the stove shell 2 has an exhaust port 24. In this way, the expanding hot air, barbecue fumes, and water vapor in the cooking cavity 11 can enter the stove shell 2 through the exhaust pipe 3, and then be discharged through the exhaust port 24. The discharged fumes are drawn into the common flue by a range hood. The exhaust gas in the cooking cavity 11 is discharged from bottom to top into the stove and discharged outward along with the oil fumes generated by the stove. This achieves the overall exhaust of the fumes generated by the integrated stove with cooking device, improves exhaust efficiency, and prevents the high concentration of oil fumes generated by the stove from entering the steam oven and affecting the cooking quality of the food in the steam oven.

[0041] The aforementioned cooktop shell 2 includes a base 22 and a panel 20 covering the base 22. An exhaust port 110 is provided on the back of the cooking cavity 11, and an air inlet 224 is provided on the bottom wall of the base 22. One end of the exhaust pipe 3 is connected to the exhaust port 110, and the other end is connected to the air inlet 224. The exhaust port 24 is located at the rear end of the panel 20. In this way, the exhaust gas in the cooking cavity 11 can be discharged through the exhaust pipe 3, enter the cooktop shell 2, and then be vertically upwards and outwards from the exhaust port 24 under the suction of the range hood, thereby further improving exhaust efficiency.

[0042] To prevent exhaust gas entering the stove shell 2 through the exhaust pipe 3 from escaping and affecting the combustion and exhaust efficiency of the burner in the stove, an exhaust chamber is provided in the stove shell 2. The exhaust pipe 3 and the exhaust port 24 are respectively connected to the exhaust chamber. The exhaust gas discharged from the exhaust pipe 3 enters the exhaust chamber and is then discharged through the exhaust port 24. Specifically, an exhaust box 6 is provided in the stove shell 2. The panel 20 covers the opening of the exhaust box 6 to form the exhaust chamber, and the panel 20 has corresponding openings to form the exhaust port 24. To facilitate the disassembly and assembly of the exhaust box 6, the panel 20 includes a main plate 21 and an auxiliary plate 23. The main plate 21 has burner holes and is located in the front middle of the chassis 22. The auxiliary plate 23 covers the rear side of the chassis 22 and covers the opening of the exhaust box 6. The exhaust port 24 is located on the auxiliary plate 23. An exhaust grille 25 is embedded in the exhaust port 24. When the exhaust gas passes through the exhaust grille 25, some of the water vapor in the exhaust gas will condense upon contact with the exhaust grille 25 and flow back into the exhaust chamber, preventing excessive moisture from being discharged from the exhaust port 24 and causing the cabinet where the integrated stove with the cooking device is installed to become damp and moldy. A first air inlet 61 is provided on the bottom wall of the exhaust box 6. The opening of the first air inlet 61 extends vertically downward to form a first air inlet interface 62. The first air inlet interface 62 passes through the air inlet 224 and is exposed at the bottom of the chassis 22. The upper pipe opening of the exhaust pipe 3 is fitted onto the first air inlet interface 62.

[0043] The aforementioned stove shell 2 is equipped with a heat dissipation system 4, which includes a motor 41, a centrifugal fan 42, and a heat dissipation channel 430. The motor 41 is installed at the bottom of the chassis 22, the centrifugal fan 42 is installed on the inner bottom surface of the chassis 22 and mounted on the output shaft of the motor 41, and the centrifugal fan 42 is located at the air inlet of the aforementioned heat dissipation channel 430. The first air outlet 430a of the heat dissipation channel 430 leads to the aforementioned exhaust box 6, and a first ventilation opening 221 is provided on the side wall of the chassis 22. In this way, the motor 41 drives the centrifugal fan 42 to rotate, and a negative pressure is formed in the center of the centrifugal fan 42. Cold air enters the stove shell 2 through the first vent 221, and after being acted upon by the centrifugal fan 42, it enters the heat dissipation channel 430. The exhaust box 6 is cooled through the first air outlet 430a, and the exhaust gas is discharged to the exhaust box 6, which reduces the air pressure at the first air inlet 61. This allows the exhaust gas in the exhaust pipe 3 to be diverted, so that the exhaust gas can be blown out more smoothly from the exhaust port 24. In addition, the mixed gas blown out of the heat dissipation channel 430 mixes with the exhaust gas discharged from the exhaust pipe 3, thereby reducing the temperature of the exhaust gas and preventing the airflow blown out of the exhaust port 24 from being too hot and burning the user.

[0044] After the exhaust box 6 is cooled by the heat dissipation channel 430, the water vapor discharged from the cooking cavity 11 into the exhaust box 6 is condensed. The condensed water flows into the exhaust pipe 3, which will cause the exhaust pipe 3 to be obstructed and affect the exhaust. Therefore, the exhaust box 6 is fitted with a condensate box 7. The bottom wall of the condensate box 7 is provided with a second air inlet 71. The edge of the second air inlet 71 extends downward to form a second air inlet interface 72. The second air inlet interface 72 extends into the first air inlet interface 62. The second air inlet interface 72 is fitted with a sealing ring 8. The sealing ring 8 is sandwiched between the outer peripheral wall of the second air inlet interface 72 and the inner peripheral wall of the first air inlet interface 62. The sealing ring 8 can prevent exhaust gas from entering the gap between the exhaust box 6 and the condensate box 7 through the gap between the first air inlet interface 62 and the second air inlet interface 72.

[0045] A duct 73 is vertically arranged on the inner bottom surface of the condensate box 7, centered on the second air inlet 71. The duct 73 not only better guides exhaust gas into the condensate box 7, but also allows the condensate box 7 to hold a certain amount of condensate, preventing condensate from directly entering the exhaust pipe 3 through the second air inlet 71 and clogging it. Preferably, the height of the duct 73 is lower than the height of the condensate box 7, thus preventing condensate from overflowing from the condensate box 7 and entering the interior of the stove shell 2 or the aforementioned heat dissipation channel 430. To better cool the exhaust gas discharged into the condensate box 7, the upper end of the front wall of the condensate box 7 is recessed downwards to form a notch 74, and an air inlet 63 is provided on the corresponding side wall of the exhaust box 6. The first air outlet 430a of the aforementioned heat dissipation channel 430 is opposite to the air inlet 63, and the height of the duct 73 is lower than the air inlet 63. In this embodiment, the air inlet 63 is an elongated hole extending along the length of the exhaust box 6, and there are multiple holes spaced apart along the length of the exhaust box 6.

[0046] In this embodiment, the heat dissipation system 4 further includes an air guide shroud 43, which includes a head 431 and a body 432. The connection between the head 431 and the body 432 is the air inlet. The head 431 is volute-shaped, with a circular air inlet 4310 eccentrically formed on its top surface. The head 431 covers the centrifugal fan 42, which is concentrically positioned with the air inlet 4310. The eccentric arrangement of the centrifugal fan 42 increases its airflow. The body 432 covers the inner bottom surface of the chassis 22 to form the heat dissipation channel 430. The body 432 has a square cross-section, with an opening at its rear end to form the first air outlet 430a. The right front side has the air inlet, and the head 431 is connected to this air inlet. The center of the air inlet 4310 is close to the right rear side of the body 432. In this embodiment, the head 431 and body 432 are integral components. The front sidewall of the body 432 is aligned and connected to the front sidewall of the head 431 and is straight, while the front sidewall of the body 432 smoothly transitions to its left sidewall. The height of the front end of the body 432 is consistent with and equal to the height of the head 431, while the height of the rear end increases from front to back. In this way, the air outlet of the centrifugal fan 42 can be quickly blown into the heat dissipation channel 430 from right to left along the front end of the heat dissipation channel 430, and then guided to the first air outlet port 430a through the smooth transition between the front and left sidewalls of the body 432. Since the height of the rear end of the body 432 increases from front to back, the air outlet efficiency can be greatly improved. To ensure that the airflow from the first air outlet port 430a is more concentrated and directed towards the condensate box 7, the top surface of the rear end of the air guide shroud 43 is parallel to the horizontal plane. Furthermore, the longitudinal section of the rear end of the heat dissipation channel 430 gradually increases and then decreases to form a horizontal channel, the port of which is the aforementioned first air outlet port 430a. This first air outlet port 430a is directly opposite the aforementioned air inlet 63, and its height and length match the aforementioned notch 74. To achieve the gradual increase and decrease in the longitudinal section of the rear end of the heat dissipation channel 430 to form a horizontal channel, a platform 45 is provided on the inner bottom surface of the chassis 22 below the rear end of the air guide shroud 43. The top surface of this platform 45 and the top surface of the rear end of the air guide shroud 43 together form the rear end of the heat dissipation channel 430. To ensure a sufficiently large airflow in the heat dissipation channel 430, the area of ​​the aforementioned air inlet 4310 is 1.2 times the area of ​​the first air outlet port 430a.

[0047] Furthermore, the bottom of the aforementioned chassis 22 is recessed downward to form a recessed platform 220. The size of the recessed platform 220 matches the size of the aforementioned head 431. The centrifugal fan 42 is installed in the recessed platform 220, and the motor 41 is installed at the bottom of the recessed platform 220. By setting the recessed platform 220 structure, the axial space of the centrifugal fan 42 can be increased, the height of the centrifugal fan blades of the centrifugal fan 42 can be increased, and thus the air volume of the centrifugal fan 42 can be increased.

[0048] The bottom of the aforementioned panel 20 is equipped with electronic components 5 that generate heat during operation, such as controllers. These electronic components 5 are located in the front center of the chassis 22. The centrifugal fan 42 is positioned on one side of the electronic component 5, while the first vent 221 is located on the other side. When the motor 41 drives the centrifugal fan 42 to rotate, a negative pressure is created at the center of the centrifugal fan 42. This guides cold air from the first vent 221 into the stove shell 2, where it passes over the electronic component 5 and mixes with the hot air in the chassis 22 before entering the air inlet 4310 of the centrifugal fan 42. This allows the cold air entering through the first vent 221 to carry away the heat generated by the electronic component 5, thus dissipating heat and extending its lifespan. In this embodiment, the first vent 221 is located on the front side of the left side wall of the chassis 22, while the centrifugal fan 42 is located on the rear right side of the chassis 22. This increases the residence time of the cold air entering through the first vent 221 at the electronic component 5, further enhancing the heat dissipation effect of the cold air on the electronic component 5.

[0049] Example 2:

[0050] like Figure 15As shown, unlike Embodiment 1, in this embodiment, the heat dissipation channel 430 also has a second air outlet port 430b, which is positioned opposite to the electronic component 5. A second ventilation opening 222 is provided on the right side wall of the chassis 22. The motor 41 drives the centrifugal fan 42 to rotate, creating a negative pressure at the center of the centrifugal fan 42. Since the centrifugal fan 42 is close to the second ventilation opening 222, it can guide outside cold air from the second ventilation opening 222 into the air inlet 4310 of the centrifugal fan 42. The air in the chassis 22 enters the air inlet 4310 along with the outside cold air, and after being centrifuged by the centrifugal fan 42, it is thrown into the heat dissipation channel 430 and blown out from the first air outlet port 430a and the second air outlet port 430b respectively. In this embodiment, the air blown from the first air outlet 430a cools and guides the exhaust gas discharged into the condensate box 7 from the exhaust pipe 3, while the air blown from the second air outlet 430b forces convection exchange (temperature difference and negative pressure suction of the centrifugal fan 42) into the left side space of the chassis 22 and exits from the first ventilation port 221 on the left side of the chassis 22, thereby dissipating heat from the electronic components 5 such as the controller in the chassis 22. Meanwhile, the right side area of ​​the chassis 22 can directly draw in cold air from the outside through the second ventilation port 222 under the negative pressure of the centrifugal fan 42 for forced convection cooling. Specifically, in this embodiment, the first ventilation port 221 and the second ventilation port 222 are arranged opposite each other and are respectively opposite to the electronic components 5. The second air outlet 430b is opened on the front side wall of the body 432 and extends to the junction of the front side wall and the left side wall of the body 432, thus ensuring the air outlet needs of the second air outlet 430b without affecting the air outlet of the first air outlet 430a.

[0051] Example 3:

[0052] like Figures 16-22As shown, unlike Embodiment 2, a third ventilation opening 223 is provided on the front side wall of the chassis 22, the first ventilation opening 221 is not provided on the left side wall, while a second ventilation opening 222 is provided on the right side wall. The aforementioned housing 1 includes a door 12, which includes an outer glass 121, a middle glass 122, and an inner glass 123. A ventilation channel 120 is provided between the outer glass 121 and the middle glass 122. The ventilation channel 120 includes an inlet 120a located at the top and an outlet 120b located at the bottom. The air outlet 223 can blow into the ventilation channel 120, thereby cooling the door 12. In order to facilitate the airflow from the third vent 223 into the ventilation channel 120, a guide plate 9 is provided on the front side of the stove shell 2. The guide plate 9 is inclined from top to bottom, with its upper end fixed to the stove shell 2 (in this embodiment, it is fixed to the front side wall of the chassis 22) and its lower end suspended. When viewed from the front of the integrated stove with cooking device, the guide plate 9 can completely block the third vent 223. When the door 12 is closed, the lower end of the guide plate 9 is guided along the inlet 120a.

[0053] To better divert the airflow entering the heat dissipation channel 430 and allow it to exit from the first air outlet 430a and the second air outlet 430b respectively, in this embodiment, a partition 44 is provided at the front end of the body 432. The partition 44 divides the heat dissipation channel 430 into an upper channel 4301 and a lower channel 4302. The airflow blown in from the air inlet is diverted into two streams after encountering the partition 44 and enters the upper and lower channels 4301 and 4302 respectively. The second air outlet 430b is located in the upper channel 4301, so the airflow in the upper channel 4301 can be blown out from the second air outlet 430b, pass over the electronic component 5, and then be blown out from the third vent 223 into the ventilation channel 120. Meanwhile, the airflow in the lower channel 4302 enters the front end of the body 432 and cools the exhaust gas entering the condensate box 7.

[0054] Motor 41 drives centrifugal fan 42 to rotate, creating a negative pressure at the center of centrifugal fan 42. Since centrifugal fan 42 is close to the second vent 222, it can guide outside cold air from the second vent 222 into the fan's air inlet 4310. The second air outlet 430b blows air directly onto the controller and other electronic components 5, thereby dissipating heat from the hotter areas in the chassis 22. The mixed gas, after passing through the electronic components 5, continues to blow forward, replenishing outside cold air from the right side through the second vent 222, thereby lowering the temperature of the mixed gas. The airflow passes through the third vent 223 and is guided by the guide plate 9 into the ventilation channel 120, cooling the door 12 from top to bottom.

Claims

1. An integrated stove with a cooking device, comprising a cooking device having a cooking cavity (11) and a stove mounted on the upper part of the cooking device, wherein the stove includes a stove shell (2), characterized in that, The cooking cavity (11) is provided with an air outlet (110), and the stove shell (2) is provided with an air inlet (224) and an air outlet (24) that are fluidly connected inside the stove shell (2). The air outlet (110) of the cooking cavity (11) is fluidly connected to the air inlet (224) of the stove shell (2). The aforementioned stove casing (2) includes a base (22) and a panel (20) covering the opening of the base (22), and the aforementioned exhaust port (24) is located on the panel (20). The aforementioned stove casing (2) is provided with an exhaust box (6), and the aforementioned panel (20) covers the opening of the exhaust box (6) to form an exhaust chamber, and the panel (20) has openings at corresponding locations to form the aforementioned exhaust port (24). Furthermore, a heat dissipation system (4) is provided in the aforementioned stove shell (2). The heat dissipation system (4) includes a centrifugal fan (42) and a heat dissipation channel (430). The centrifugal fan (42) is located at the air inlet of the aforementioned heat dissipation channel (430), and the first air outlet (430a) of the heat dissipation channel (430) leads to the aforementioned exhaust box (6). A first ventilation opening (221) is provided on the side wall of the chassis (22).

2. The integrated stove with cooking device as described in claim 1, characterized in that, The air outlet (110) of the cooking cavity (11) is connected to the air inlet (224) of the stove shell (2) through the exhaust pipe (3).

3. The integrated stove with cooking device as described in claim 2, characterized in that, The air inlet (224) of the stove shell (2) is located on the bottom wall of the chassis (22), and the air outlet (110) of the cooking cavity (11) is located on the back of the cooking cavity (11). One end of the exhaust pipe (3) is connected to the air outlet (110), and the other end is connected to the air inlet (224).

4. The integrated stove with cooking device as described in claim 3, characterized in that, The exhaust port (24) is located at the rear end of the panel (20).

5. The integrated stove with cooking device as described in claim 1, characterized in that, The exhaust box (6) has a first air inlet (61) on its bottom wall. The opening of the first air inlet (61) extends vertically downward to form a first air inlet interface (62). The first air inlet interface (62) passes through the air inlet (224) and is exposed at the bottom of the chassis (22). The upper pipe opening of the exhaust pipe (3) is fitted onto the first air inlet interface (62).

6. The integrated stove with cooking device as described in claim 5, characterized in that, An exhaust grille (25) is embedded in the exhaust port (24).

7. The integrated stove with cooking device as described in claim 6, characterized in that, The exhaust box (6) is fitted with a condensate box (7), and a second air inlet (71) is provided on the bottom wall of the condensate box (7). The edge of the second air inlet (71) extends downward to form a second air inlet interface (72), which extends into the first air inlet interface (62).

8. The integrated stove with cooking device as described in claim 7, characterized in that, A duct (73) is vertically arranged on the inner bottom surface of the condensate box (7). The second air inlet (71) of the condensate box (7) is located in the duct (73), and the height of the duct (73) is lower than the height of the condensate box (7).

9. The integrated stove with cooking device as described in claim 7, characterized in that, The second air intake port (72) is fitted with a sealing ring (8), which is sandwiched between the outer peripheral wall of the second air intake port (72) and the inner peripheral wall of the first air intake port (62).

Citation Information

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