Integrated cooker
By designing a sliding panel and heat dissipation channels in the integrated stove, combined with the negative pressure drive of the range hood fan, efficient heat dissipation of electrical components is achieved, solving the problems of cabinet door interference and excessive panel temperature rise, thus improving the safety of the integrated stove and the lifespan of electrical components.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- NINGBO FOTILE KITCHEN WARE CO LTD
- Filing Date
- 2023-01-10
- Publication Date
- 2026-05-15
AI Technical Summary
Existing integrated cooktops suffer from cabinet door interference and excessive panel temperature rise during installation, affecting aesthetics and the performance and lifespan of electrical components.
Design an integrated stove with a sliding panel. By setting heat dissipation channels in the stove shell, the opening and closing of the heat dissipation air inlet is controlled by sliding the panel left and right. Combined with the range hood fan, negative pressure is formed to drive the flow of cold air, thereby achieving efficient heat dissipation for electrical components.
The problem of cabinet door interference was solved, the heat dissipation efficiency of electrical components was improved, excessive panel temperature rise was avoided, and user safety and normal operation of electrical components were ensured.
Smart Images

Figure CN116428624B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of cooktops, and more particularly to an integrated cooktop. Background Technology
[0002] An integrated cooktop is a kitchen appliance that combines a range hood, gas stove, and even a disinfection cabinet and storage cabinet into one unit, offering advantages such as space saving and effective fume extraction. Currently, integrated cooktops are typically installed with the cooktop panel flush with the countertop, and the seams between the cooktop and the cabinet are sealed with sealant. For example, there is a Chinese utility model patent with patent number ZL201220633607.X (authorization announcement number CN202891136U).
[0003] However, in actual installation, the seams between the cooktop and the cabinets on both sides of an integrated cooktop can be quite large, affecting the aesthetics after applying sealant. Therefore, some integrated cooktops now feature a protruding, waterfall-style panel structure on the front of the cooktop, with the left and right sides of this panel protruding outwards to conceal the corresponding seams. While this method improves the overall appearance of the integrated cooktop, it can interfere with the protruding parts of the panel structure when the cabinet doors open at a large angle, preventing the doors from opening to 90 degrees and thus affecting the usability of the front of the cabinets.
[0004] Furthermore, integrated cooktops typically use gas cooktops. During operation, the residual heat from the burner is transferred to the cooktop panel, causing it to overheat and posing a risk of burns. Additionally, the lower surface of the panel usually houses electrical components such as a display panel; excessive panel temperature rise can lead to overheating of these components, affecting their performance and lifespan. Summary of the Invention
[0005] The first technical problem to be solved by the present invention is to provide an integrated stove that makes it easy to open the cabinet doors, in contrast to the prior art.
[0006] The second technical problem to be solved by the present invention is to provide an integrated stove that has a heat dissipation function for electrical components in the stove, in contrast to the prior art.
[0007] The third technical problem to be solved by the present invention is to provide an integrated stove that has a heat dissipation function for electrical components in the stove and has high heat dissipation efficiency, in contrast to the prior art.
[0008] The fourth technical problem to be solved by the present invention is to provide an integrated stove that has a heat dissipation function on the surface of the stove, in contrast to the prior art.
[0009] The fifth technical problem to be solved by the present invention is to provide an integrated stove that has a heat dissipation function inside the stove, in contrast to the prior art.
[0010] The technical solution adopted by the present invention to solve at least one of the above-mentioned technical problems is as follows: an integrated stove, comprising a stove with a stove shell, the stove shell including a first panel that is vertically protruding from the front and extends in the left-right direction, characterized in that the first panel is slidably disposed in the left-right direction, and a heat dissipation channel is provided in the stove shell, the heat dissipation channel having a heat dissipation air inlet that communicates with the outside and a heat dissipation air outlet that communicates with the inner cavity of the stove shell.
[0011] Furthermore, in the initial state, the heat dissipation air inlet of the aforementioned heat dissipation channel is closed, while when the aforementioned first panel is moved to the left or right, the heat dissipation air inlet of the aforementioned heat dissipation channel is opened.
[0012] Furthermore, the heat dissipation channel extends forward and backward, and also includes a fume extraction device, which includes a fume extraction fan. At least when the heat dissipation inlet of the heat dissipation channel is open, the heat dissipation outlet of the heat dissipation channel is in fluid communication with the fume inlet of the fume extraction fan. The fume extraction fan generates a strong negative pressure during operation, thereby driving cold outside air to flow rapidly into the heat dissipation channel, thus improving the heat dissipation efficiency of the electrical components in the stove.
[0013] Furthermore, the heat dissipation channel is located on the front side of the inner cavity of the stove shell, and the heat dissipation outlet of the channel is located in front of the burner of the stove. The stove shell includes a base with an upper opening and a second panel covering the opening of the base. The heat dissipation outlet of the heat dissipation channel is adjacent to the second panel. A large portion of the waste heat generated by the burner is transferred to the second panel, causing the surface temperature of the second panel to become too high, posing a risk of burns to the user. Since the display panel of the stove is mounted on the lower surface of the second panel, the above design not only better dissipates heat from the display panel but also from the second panel, preventing the surface temperature of the second panel from becoming too high.
[0014] Furthermore, the heat dissipation channel has a vertically extending air inlet and a horizontally extending air outlet. This allows the opening and closing of the air inlet to be controlled by moving the first panel a small distance in the left-right direction, and also allows the air outlet of the heat dissipation channel to flow near the lower surface of the second panel, thereby better dissipating heat from the second panel and the electrical components mounted on it.
[0015] Furthermore, the heat dissipation channel comprises, from front to back, an air inlet section, an air guide section, and an air outlet section. The top wall of the heat dissipation channel extends approximately horizontally from front to back, while the bottom wall extends in a bent manner from front to back. The bottom wall portions corresponding to the air inlet and air outlet sections extend approximately horizontally, while the bottom wall portion corresponding to the air guide section slopes upwards from front to back. The cross-sectional size of the air inlet section remains essentially constant from front to back, the cross-sectional size of the air guide section decreases from front to back, and the cross-sectional size of the air outlet section increases from front to back. The front end of the air inlet section forms the heat dissipation air inlet of the heat dissipation channel, and the rear end of the air outlet section forms the heat dissipation air outlet of the heat dissipation channel. In this way, the air inlet section smoothly introduces cool outside air, the air guide section accelerates the airflow speed and directs the airflow to the second panel, and finally, the air outlet section allows the airflow to flow out smoothly, thereby ensuring sufficient heat exchange with the second panel and the electrical components mounted on it.
[0016] There are several ways to open and close the heat dissipation air inlet. Preferably, when the rear surface of the first panel covers the heat dissipation air inlet of the heat dissipation channel, the heat dissipation air inlet is closed. In this way, the opening and closing of the heat dissipation air inlet can be controlled by moving the first panel to cover or open the heat dissipation air inlet.
[0017] Furthermore, the heat dissipation channels are two in number and are respectively located on the left and right sides of the inner cavity of the aforementioned stove shell.
[0018] Initially, the air inlets of all heat dissipation channels are closed.
[0019] With the first panel shifted to the left, the air intake vents of the heat dissipation channel on the left remain closed, while the air intake vents of the heat dissipation channel on the right are open.
[0020] With the first panel moved to the right, the air inlet of the heat dissipation channel on the right side remains closed, while the air inlet of the heat dissipation channel on the left side is open. Since most cooktops are dual-burner cooktops (i.e., with two burners), setting heat dissipation channels on both the left and right sides can better counteract the impact of residual heat from each burner on the internal temperature rise of the cooktop shell, improving heat dissipation. Furthermore, moving the first panel left and right allows for better control of the opening and closing of the two heat dissipation channels.
[0021] Furthermore, to better control the left and right movement of the first panel, a drive mechanism for driving the movement of the first panel is also included.
[0022] The drive mechanism includes a drive motor, a first rack, and a transmission gear set. The first rack is fixed to the rear surface of the first panel in the left-right direction, and the transmission gear set is used to link the output shaft of the drive motor with the first rack.
[0023] Furthermore, the first rack consists of two racks, respectively fixed to the upper and lower sides of the rear surface of the first panel. The output shaft of the drive motor extends vertically. The transmission gear set includes a first transmission gear mounted on the output shaft and a vertically arranged transmission shaft. A second transmission gear, an upper transmission gear, and a lower transmission gear are respectively mounted on the transmission shaft. The second transmission gear meshes with the first transmission gear, the upper transmission gear meshes with the first rack located on the upper side, and the lower transmission gear meshes with the first rack located on the lower side. In this way, the drive motor drives the first transmission gear to rotate, which in turn drives the second transmission gear to rotate. The rotation of the transmission shaft then drives the upper and lower transmission gears to rotate, and the upper and lower transmission gears synchronously drive the corresponding transmission racks, thereby realizing the left and right movement of the first panel.
[0024] Furthermore, the base of the stove shell includes a rectangular mounting frame located on the front and vertically arranged. The first panel is covered on the front opening of the mounting frame and can be guided and engaged with the left and right edges of the front opening. This allows the first panel to move smoothly left and right.
[0025] Furthermore, of the front frame opening of the mounting frame and the rear surface of the first panel, one has a left-right extending guide groove, and the other has a left-right extending guide strip protruding from it. The guide strip is fitted into the guide groove and can move back and forth along it. When the guide strip is located at either end of the guide groove, the first panel moves to the corresponding end of its travel. This allows the first panel to move more smoothly left and right, and also makes it more securely confined to the leftmost or rightmost end of its travel.
[0026] Furthermore, the upper end of the first panel is located to the side of the front end of the second panel, and a left-right extending gap is formed between the two, in which a decorative strip is embedded. This makes the front appearance of the stove and integrated stove more aesthetically pleasing.
[0027] Furthermore, the base is a vertically oriented frame, with the first panel located at the front end of the frame and the second panel covering the upper opening of the frame.
[0028] It also includes a cooking device located below the aforementioned stove, the cooking device comprising an inner pot and an upper mounting plate located above the inner pot.
[0029] The aforementioned fume extraction device is located after the stove and cooking apparatus, and includes a bellows box. The fume extraction fan is installed in the bellows box, and the fume inlet of the fan communicates with the inner cavity of the bellows box. The stove shell, upper mounting plate, and front side plate of the bellows box form a mounting cavity, and the front side plate of the bellows box has an air guide opening communicating with its inner cavity. During operation, the residual heat generated by the stove and cooking apparatus is concentrated in the mounting cavity, causing the temperature of the mounting cavity to become too high, affecting the performance and lifespan of the electrical components installed in the mounting cavity. The strong negative pressure of the fume extraction fan helps to dissipate heat from the mounting cavity.
[0030] Compared with the prior art, the advantages of this invention are as follows: By sliding the first panel left and right, on the one hand, it facilitates the user to open the cabinet doors of the left and right cabinets. Specifically, when the user needs to open the left cabinet door, the first panel is moved to the right, and when the user needs to open the right cabinet door, the first panel is moved to the left. On the other hand, by moving the first panel left or right, the heat dissipation air inlet of the heat dissipation channel in the stove shell is opened. Driven by the pressure difference formed by the temperature difference between the inside and outside (when the stove is working), cold air from the outside enters the stove shell through the heat dissipation channel, thereby dissipating heat from the electrical components (power board, display board, etc.) installed in the stove shell and avoiding the problem of excessively high working environment temperature caused by the residual heat of the burner. Attached Figure Description
[0031] Figure 1 This is a schematic diagram of the installation structure of the integrated stove in its initial state in an embodiment of the present invention;
[0032] Figure 2 This is a schematic diagram of the installation structure of the integrated stove in the first panel rightward state according to an embodiment of the present invention;
[0033] Figure 3 This is a schematic diagram of the installation structure of the integrated stove in the first panel leftward state in an embodiment of the present invention;
[0034] Figure 4 This is a partial exploded view of the integrated stove in an embodiment of the present invention;
[0035] Figure 5 This is a schematic diagram of the stove structure in an embodiment of the present invention;
[0036] Figure 6 This is an exploded view of a portion of the stove's structure in an embodiment of the present invention;
[0037] Figure 7 for Figure 6 A schematic diagram of the structure from another direction;
[0038] Figure 8 This is a schematic diagram of the air duct structure in an embodiment of the present invention;
[0039] Figure 9 This is a cross-sectional view of the air duct in an embodiment of the present invention. Detailed Implementation
[0040] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments.
[0041] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," etc., indicating orientation or positional relationships, are based on the orientation or positional relationships shown in the accompanying drawings and are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Since the embodiments disclosed in this invention can be arranged in different directions, these terms indicating direction are only for illustration and should not be regarded as limitations. For example, "upper" and "lower" are not necessarily limited to directions opposite to or consistent with the direction of gravity. In addition, features defined with "first" and "second" may explicitly or implicitly include one or more of such features.
[0042] like Figures 1-9 As shown, an integrated stove includes a casing 1, in which a cooking device 3 and a fume extraction device 4 are respectively installed. The fume extraction device 4 is located behind the cooking device 3, and a cooktop 2 is installed on the top of the casing 1. The cooking device 3 includes an inner liner (not shown) and an upper mounting plate 31 located above the inner liner, while the fume extraction device 4 includes a bellows 41 and a fume fan (not shown) installed in the bellows 41. The fume inlet of the fume fan communicates with the inner cavity of the bellows 41.
[0043] Furthermore, the aforementioned cooktop 2 includes a cooktop shell 20, which includes a first panel 21 that protrudes vertically from the front of the cooktop 2 and extends in the left-right direction. In this invention, the first panel 21 is slidably disposed in the left-right direction, and the cooktop shell 20 is provided with a heat dissipation channel 60 extending front-back. The heat dissipation channel 60 has a heat dissipation air inlet 601 that communicates with the outside and a heat dissipation air outlet 602 that communicates with the inner cavity of the cooktop shell 20. In the initial state, the heat dissipation air inlet 601 of the heat dissipation channel 60 is closed, while when the first panel 21 is moved to the left or right, the heat dissipation air inlet 601 of the heat dissipation channel 60 is opened. By sliding the first panel 21 left and right, it is convenient for the user to open the cabinet doors 51 of the left and right cabinets 5. Specifically, when the user needs to open the cabinet door 51 of the left cabinet 5, the first panel 21 is moved to the right, and when the user needs to open the cabinet door 51 of the right cabinet 5, the first panel 21 is moved to the left. On the other hand, by moving the first panel 21 to the left or right, the heat dissipation inlet 601 of the heat dissipation channel 60 in the stove shell 20 is opened. Driven by the pressure difference formed by the temperature difference between the inside and outside (when the stove 2 is working), the outside cold air enters the stove shell 20 through the heat dissipation channel 60, thereby dissipating heat from the electrical components (power board, display board, etc.) installed in the stove shell 20, and avoiding the problem of excessively high working environment temperature caused by the residual heat of the burner 25 (fully top-inlet burner).
[0044] Preferably, at least when the heat dissipation inlet 601 of the heat dissipation channel 60 is open, the heat dissipation outlet 602 of the heat dissipation channel 60 is in fluid communication with the fume inlet of the range hood. When the range hood is operating, it generates a strong negative pressure, which drives cold outside air to flow rapidly into the heat dissipation channel 60, thereby improving the heat dissipation efficiency of the electrical components in the cooktop 2. In this embodiment, the cooktop shell 20 includes a base 23 with an upper opening and a second panel 22 covering the opening of the base 23. The heat dissipation channel 60 is located on the front side of the inner cavity of the cooktop shell 20, and the heat dissipation outlet 602 of the heat dissipation channel 60 is located in front of the burner 25 of the cooktop 2, adjacent to the second panel 22. A large portion of the residual heat generated by the burner 25 is transferred to the second panel 22, causing the surface temperature of the second panel 22 to be too high, posing a risk of burns to users. Furthermore, the display panel of the stove 2 is installed on the lower surface of the second panel 22. Therefore, through the above arrangement, not only can the display panel be better cooled, but the second panel 22 can also be cooled, preventing the surface temperature of the second panel 22 from becoming too high.
[0045] Specifically, the base 23 is a vertically arranged frame. The first panel 21 is located at the front end of the frame, and the second panel 22 covers the upper frame opening. The left side panel 11 and right side panel 12 of the outer shell 1, the stove shell 20 of the stove 2, the upper mounting plate 31, and the front side panel of the air box 41 form a mounting interlayer. The front side panel of the air box 41 has an air guide vent 411 communicating with its inner cavity. In the working state, the residual heat generated by the stove 2 and the cooking device 3 is concentrated in the mounting interlayer, causing the temperature of the mounting interlayer to be too high, which affects the performance and service life of the electrical components installed in the mounting interlayer. The strong negative pressure of the range hood can be used to dissipate heat from the mounting interlayer. In this embodiment, the left and right side panels 11 and 12 of the outer casing 1 are respectively provided with ventilation openings that communicate with the mounting interlayer. The heat dissipation outlet 602 of the heat dissipation channel 60 is always in fluid communication with the oil fume inlet of the oil fume fan. In this way, even if the heat dissipation inlet 601 of the heat dissipation channel 60 is not open, cold air from the outside can enter the mounting interlayer through the ventilation opening to achieve heat dissipation of the mounting interlayer. When the heat dissipation inlet 601 of the heat dissipation channel 60 is open, cold air enters from the front of the heat dissipation inlet 601, while the ventilation openings on the left and right sides enter cold air from the sides. The combination of the two can improve the heat dissipation effect of the mounting interlayer. The heat dissipation channel 60 can focus on dissipating heat from the second panel 22 and the electrical components installed on it.
[0046] Furthermore, the heat dissipation inlet 601 of the aforementioned heat dissipation channel 60 extends vertically, while the heat dissipation outlet 602 extends horizontally. This allows the first panel 21 to move only a small distance in the left-right direction to control the opening and closing of the heat dissipation inlet 601, and enables the airflow from the heat dissipation channel 60 to flow near the lower surface of the second panel 22, thereby better dissipating heat from the second panel 22 and the electrical components mounted on it. Preferably, in this embodiment, the aforementioned heat dissipation channel 60 includes, from front to back, an inlet section 6a, a guide section 6b, and an outlet section 6c, and the top wall of the aforementioned heat dissipation channel 60 extends approximately horizontally from front to back while the bottom wall extends in a bent manner from front to back. In this design, the bottom wall portions corresponding to the air inlet section 6a and air outlet section 6c extend approximately horizontally, while the bottom wall portion corresponding to the air guide section 6b slopes upwards from front to back. Furthermore, the cross-sectional size of the air inlet section 6a remains essentially constant from front to back, the cross-sectional size of the air guide section 6b decreases from front to back, and the cross-sectional size of the air outlet section 6c increases from front to back. The front end of the air inlet section 6a forms the heat dissipation inlet 601 of the heat dissipation channel 60, while the rear end of the air outlet section 6c forms the heat dissipation outlet 602 of the heat dissipation channel 60. In this way, the air inlet section 6a smoothly introduces cool outside air, the air guide section 6b accelerates the airflow speed and directs the airflow upwards towards the second panel 22, and finally, the air outlet section 6c allows the airflow to flow out smoothly, thus enabling sufficient heat exchange with the second panel 22 and the electrical components mounted on it.
[0047] Furthermore, there are various ways to open and close the heat dissipation air inlet 601. Preferably, when the rear surface of the first panel 21 covers the heat dissipation air inlet 601 of the heat dissipation channel 60, the heat dissipation air inlet 601 is closed. Thus, by moving the first panel 21 to cover or open the heat dissipation air inlet 601, the opening and closing of the heat dissipation air inlet 601 can be controlled. In addition, there are various ways to implement the heat dissipation channel 60. In this embodiment, the stove shell 20 is provided with an air guide duct 6, and the inner cavity of the air guide duct 6 constitutes the heat dissipation channel 60.
[0048] Preferably, there are two heat dissipation channels 60, which are respectively arranged on the left and right sides of the inner cavity of the stove shell 20. In the initial state, the heat dissipation air inlets 601 of each heat dissipation channel 60 are closed; when the first panel 21 is moved to the left, the heat dissipation air inlet 601 of the heat dissipation channel 60 on the left side remains closed while the heat dissipation air inlet 601 of the heat dissipation channel 60 on the right side is open; when the first panel 21 is moved to the right, the heat dissipation air inlet 601 of the heat dissipation channel 60 on the right side remains closed while the heat dissipation air inlet 601 of the heat dissipation channel 60 on the left side is open. The stove 2 is generally a double burner (i.e., it has two burners 25), so by setting heat dissipation channels 60 on the left and right sides respectively, the influence of the residual heat generated by each burner 25 on the internal temperature rise of the stove shell 20 can be better counteracted, improving the heat dissipation effect. Furthermore, the left and right movement of the first panel 21 can effectively control the opening and closing of the two heat dissipation channels 60. As can be seen, when the cabinet door 51 of the left cabinet 5 needs to be opened, the first panel 21 moves to the right, at which time the heat dissipation inlet 601 of the left heat dissipation channel 60 opens. When the cabinet door 51 of the right cabinet 5 needs to be opened, the first panel 21 moves to the left, at which time the heat dissipation inlet 601 of the right heat dissipation channel 60 opens. At the same time, when the burner 25 on the left is used, the first panel 21 can be moved to the right, and by opening the heat dissipation inlet 601 of the left heat dissipation channel 60, the heat dissipation of the left side of the second panel 22 is focused on. Similarly, when the burner 25 on the right is used, the first panel 21 can be moved to the left, and by opening the heat dissipation inlet 601 of the right heat dissipation channel 60, the heat dissipation of the right side of the second panel 22 is focused on. When both burners 25 are used at the same time, the first panel 21 can be moved to the left or right to open the heat dissipation inlet 601 of one of the heat dissipation channels 60, in conjunction with the vents on the outer casing 1 and the range hood, for heat dissipation.
[0049] To better control the left and right movement of the first panel 21, a drive mechanism 7 for driving the first panel 21 to move is also included. The drive mechanism 7 includes a drive motor 71, a first rack 72, and a transmission gear set 73. The first rack 72 is fixed to the rear surface of the first panel 21 in the left and right direction, and the transmission gear set 73 is used to link the output shaft 711 of the drive motor 71 with the first rack 72. Specifically, there are two first racks 72, which are respectively fixed to the upper and lower sides of the rear surface of the first panel 21. The output shaft 711 of the drive motor 71 extends vertically. The transmission gear set 73 includes a first transmission gear 731 mounted on the output shaft 711 and a vertically arranged transmission shaft 730. A second transmission gear 732, an upper transmission gear 733, and a lower transmission gear 734 are respectively mounted on the transmission shaft 730. The second transmission gear 732 meshes with the first transmission gear 731, the upper transmission gear 733 meshes with the first rack 72 located on the upper side, and the lower transmission gear 734 meshes with the first rack 72 located on the lower side. In this way, the drive motor 71 drives the first transmission gear 731 to rotate, which in turn drives the second transmission gear 732 to rotate. The transmission shaft 730 rotates, which in turn drives the upper transmission gear 733 and the lower transmission gear 734 to rotate. The upper and lower transmission gears 733 and 734 synchronously drive the corresponding transmission racks, thereby realizing the left and right movement of the first panel 21. Furthermore, through the meshing action of each transmission rack and the corresponding transmission gear, the first panel 21 can be stably locked in the desired position.
[0050] To enable the first panel 21 to move smoothly left and right, the base 23 of the stove shell 20 includes a rectangular mounting frame 231 located on the front and vertically positioned. The first panel 21 covers the front opening of the mounting frame 231 and can be guided left and right with the edge of the front opening. Preferably, one of the edges of the front opening of the mounting frame 231 and the rear surface of the first panel 21 has a left-right extending guide groove 2313, while the other has a left-right extending guide strip 213 protruding from it. The guide strip 213 is embedded in the guide groove 2313 and can move back and forth along the guide groove 2313. When the guide strip 213 is located at either end of the guide groove 2313, the first panel 21 moves to the corresponding end of its travel. This allows the first panel 21 to move more smoothly left and right, and also makes the first panel 21 more securely limited to the leftmost or rightmost end of its travel. Specifically, the first panel 21 includes a rectangular panel frame 212 and a panel glass 211 covering the front frame opening of the panel frame 212. The guide strips 213 are respectively protruding from the upper left and right ends and the lower left and right ends of the rear frame opening edge of the panel frame 212. The mounting frame 231 includes an upper frame beam 2311 and a lower frame beam 2312. The drive shaft 730 is pivotally connected to the upper and lower frame beams 2311 and 2312. The front sides of the upper and lower frame beams 2311 and 2312 are respectively provided with guide grooves 2313 corresponding to the guide strips 213.
[0051] Furthermore, in this embodiment, the upper end of the first panel 21 is located beside the front end of the second panel 22, and a left-right extending gap is formed between them. A decorative strip 24 is embedded in this gap, thereby making the front appearance of the stove 2 and the integrated stove more aesthetically pleasing. Moreover, the decorative strip 24 is made of an elastic material (such as rubber), and its bottom surface extends horizontally in the left-right direction. The upper edge of the first panel 21 can move back and forth along the bottom surface of the decorative strip 24, thereby enabling the first panel 21 to move more smoothly left and right.
[0052] The term "fluid connectivity" as used in this invention refers to the spatial relationship between two components or parts (hereinafter referred to as the first part and the second part, respectively), that is, a fluid (gas, liquid, or a mixture of both) can flow from the first part along a flow path and / or be transported to the second part. This can be a direct connection between the first part and the second part, or an indirect connection between the first part and the second part through at least one third party. This third party can be a fluid channel such as a pipe, channel, conduit, guide, hole, or groove, or a chamber that allows fluid to flow through, or a combination of the above.
Claims
1. An integrated stove, comprising a stove (2) having a stove shell (20), the stove shell (20) including a first panel (21) vertically protruding from the front and extending in the left-right direction, characterized in that, The first panel (21) is slidably disposed in the left and right direction, and the stove shell (20) is provided with a heat dissipation channel (60). The heat dissipation channel (60) has a heat dissipation air inlet (601) that can communicate with the outside and a heat dissipation air outlet (602) that communicates with the inner cavity of the stove shell (20). Furthermore, in the initial state, the heat dissipation air inlet (601) of the aforementioned heat dissipation channel (60) is closed, while when the aforementioned first panel (21) is moved to the left or right, the heat dissipation air inlet (601) of the aforementioned heat dissipation channel (60) is opened. With the rear surface of the first panel (21) covered by the heat dissipation inlet (601) of the aforementioned heat dissipation channel (60), the heat dissipation inlet (601) is closed. The heat dissipation channels (60) are two in number and are respectively located on the left and right sides of the inner cavity of the stove shell (20). In the initial state, the air inlets (601) of each heat dissipation channel (60) are closed. When the first panel (21) is moved to the left, the heat dissipation air inlet (601) of the heat dissipation channel (60) on the left side remains closed, while the heat dissipation air inlet (601) of the heat dissipation channel (60) on the right side is open. When the first panel (21) is moved to the right, the heat dissipation air inlet (601) of the heat dissipation channel (60) on the right side remains closed while the heat dissipation air inlet (601) of the heat dissipation channel (60) on the left side is open.
2. The integrated stove as described in claim 1, characterized in that, The heat dissipation channel (60) extends forward and backward and also includes a fume extraction device (4), which includes a fume extraction fan. At least when the heat dissipation inlet (601) of the heat dissipation channel (60) is open, the heat dissipation outlet (602) of the heat dissipation channel (60) is in fluid communication with the fume inlet of the fume extraction fan.
3. The integrated stove as described in claim 2, characterized in that, The heat dissipation channel (60) is located on the front side of the inner cavity of the stove shell (20), and the heat dissipation outlet (602) of the heat dissipation channel (60) is located in front of the burner (25) of the stove (2). The stove shell (20) includes a base (23) with an upper opening and a second panel (22) covering the opening of the base (23). The heat dissipation outlet (602) of the heat dissipation channel (60) is adjacent to the second panel (22).
4. The integrated stove as described in claim 3, characterized in that, The heat dissipation channel (60) has a heat dissipation inlet (601) that extends vertically and a heat dissipation outlet (602) that extends horizontally.
5. The integrated stove as described in claim 4, characterized in that, The heat dissipation channel (60) includes an air inlet section (6a), an air guide section (6b), and an air outlet section (6c) from front to back. The top wall of the heat dissipation channel (60) extends horizontally from front to back, while the bottom wall extends in a bent manner from front to back. The bottom wall portions corresponding to the air inlet section (6a) and the air outlet section (6c) extend horizontally, while the bottom wall portion corresponding to the air guide section (6b) slopes upward from front to back. The cross-sectional size of the air inlet section (6a) remains basically unchanged from front to back, the cross-sectional size of the air guide section (6b) decreases from front to back, and the cross-sectional size of the air outlet section (6c) increases from front to back. The front port of the air inlet section (6a) constitutes the heat dissipation air inlet (601) of the heat dissipation channel (60), and the rear port of the air outlet section (6c) constitutes the heat dissipation air outlet (602) of the heat dissipation channel (60).
6. The integrated stove as described in any one of claims 1 to 5, characterized in that, It also includes a drive mechanism (7) for moving the first panel (21) mentioned above. The drive mechanism (7) includes a drive motor (71), a first rack (72), and a transmission gear set (73). The first rack (72) is fixed to the rear surface of the first panel (21) in the left-right direction, and the transmission gear set (73) is used to link the output shaft (711) of the drive motor (71) with the first rack (72).
7. The integrated stove as described in claim 6, characterized in that, The first rack (72) consists of two racks, which are respectively fixed to the upper and lower sides of the rear surface of the first panel (21). The output shaft (711) of the drive motor (71) extends vertically. The transmission gear set (73) includes a first transmission gear (731) mounted on the output shaft (711) and a vertically arranged transmission shaft (730). A second transmission gear (732), an upper transmission gear (733), and a lower transmission gear (734) are respectively mounted on the transmission shaft (730). The second transmission gear (732) meshes with the first transmission gear (731), the upper transmission gear (733) meshes with the first rack (72) located on the upper side, and the lower transmission gear (734) meshes with the first rack (72) located on the lower side.
8. The integrated stove as described in any one of claims 1 to 5, characterized in that, The base (23) of the stove shell (20) includes a rectangular mounting frame (231) located on the front and vertically arranged. The first panel (21) is covered on the front frame opening of the mounting frame (231) and can be guided and matched with the left and right guide edges of the front frame opening.
9. The integrated stove as described in claim 8, characterized in that, Of the two surfaces of the mounting frame (231) and the rear surface of the first panel (21), one has a left-right extending guide groove (2313) and the other has a left-right extending guide strip (213). The guide strip (213) is fitted into the guide groove (2313) and can move back and forth along the guide groove (2313). When the guide strip (213) is located at either end of the guide groove (2313), the first panel (21) moves to the corresponding end of its travel.
10. The integrated stove as described in any one of claims 3 to 5, characterized in that, The upper end of the first panel (21) is located on the side of the front end of the second panel (22), and a left-right extending gap is formed between the two, in which a decorative strip (24) is embedded.
11. The integrated stove as described in any one of claims 3 to 5, characterized in that, The base (23) is a vertically arranged frame. The first panel (21) is located at the front end of the frame, while the second panel (22) covers the upper frame opening of the frame. It also includes a cooking device (3) located below the aforementioned stove (2), the cooking device (3) including an inner pot and an upper mounting plate (31) located above the inner pot. The above-mentioned fume extraction device (4) is located after the stove (2) and cooking device (3), and the fume extraction device (4) includes a bellows (41). The above-mentioned fume fan is installed in the bellows (41), and the fume inlet of the fume fan is connected to the inner cavity of the bellows (41). The stove shell (20), the upper mounting plate (31) of the stove (2) and the front side plate of the bellows (41) form a mounting interlayer, and the front side plate of the bellows (41) is provided with an air guide (411) that communicates with its inner cavity.