The present invention relates to the field of household appliances, and more particularly, relates to a cooking appliance.
With the development of times, cooking appliances are increasingly diverse. At present, a novel barbecue type cooking appliance appears in the market, as shown in
The present invention intends to solve at least one of the technical problems in the prior art.
Thus, the object of the present invention is to provide a cooking appliance with a heat dissipation air duct system in low cost.
In order to fulfill the above object, the embodiment of the present invention provides a cooking appliance for baking the upper and lower surfaces of food and heating the interior of the food with microwave; the cooking appliance includes a base and an oven door articulated with the base, a sunken part is formed on the lower surface of the oven door and/or the upper surface of the base so that an accommodating cavity for accommodating the food is formed between the oven door and the base, the oven door can rotate up and down relative to the base to open or close the accommodating cavity, and an upper heating tube and a lower heating tube are respectively installed on the oven door and the base and located in the accommodating cavity; a first magnetron, a second magnetron, a first high voltage transformer and a second high voltage transformer are installed in the base; the first magnetron and the second magnetron are used for delivering microwave to the accommodating cavity; the cooking appliance further includes an air-cooled radiator, which is installed on the base and provided with an air outlet; and cold air blown out of the air outlet flows through the first magnetron, the second magnetron, the first high voltage transformer and the second high voltage transformer.
The cooking appliance provided by this solution can bake the upper and lower surfaces of food and simultaneously heat the interior of the food with microwave, so that the interior and exterior of the food are heated uniformly to avoid the problem that the outer surface is burnt but the interior is under-heated or under-cooked when food such as sandwich and the like. In this solution, the structure of the heat dissipation air duct system in the cooking appliance is changed, and only one air-cooled radiator is used for dissipating the heat of the two magnetrons and the two high voltage transformers, so that the quantity of heat dissipation fans in the product is reduced and the cost of the product can be reduced. Besides, after the quantity of the heat dissipation fans is reduced, the assembly operation of the product becomes simple, the assembly time is correspondingly shortened, the production and assembly efficiency of the product can be improved, and the input of labor cost is reduced, so that the production cost of the product is further reduced and the market competitiveness of the product is improved.
In the above technical solution, preferably, the first high voltage transformer is arranged close to the first magnetron, the second high voltage transformer is arranged close to the second magnetron, the air outlet includes a first sub air outlet and a second sub air outlet, one part of cold air blown out of the first sub air outlet flows through the first magnetron and the other part flows through the first high voltage transformer, one part of cold air blown out of the second sub air outlet flows through the second magnetron and the other part flows through the second high voltage transformer.
In this solution, the first high voltage transformer is arranged close to the first magnetron, the second high voltage transformer is arranged close to the second magnetron, and such design enables the installation structure of parts inside the product to be compact and reduces the occupied installation space, thereby reducing the size of the product.
Moreover, in the existing product, the heat of one of the two magnetrons is dissipated by air flowing through the high voltage transformer, and the temperature after the air flows through the high voltage transformer is relatively high, so that the heat dissipation effect of the magnetron is poor. In this solution, the heat of the two magnetrons and the two high voltage transformers is directly dissipated by cold air blown out of the air outlet of the air-cooled radiator, and such design ensures that the heat dissipation air duct system can achieve a good heat dissipation effect on each magnetron and each high voltage transformer.
In any of the above technical solutions, preferably, the air-cooled radiator includes a first fan blade, a second fan blade and a motor, a motor shaft of the motor is connected with the first fan blade and the second fan blade and used for driving the first fan blade and the second fan blade to rotate, the first fan blade is used for blowing air to the first magnetron and the first high voltage transformer, and the second fan blade is used for blowing air to the second magnetron and the second high voltage transformer.
The air-cooled radiator drives two fan blades via one motor, the structure of the radiator is simple, and only one motor is used, so that the manufacturing cost of the air-cooled radiator is low and the production cost of the product can be reduced in such design.
In any of the above technical solutions, preferably, the air-cooled radiator further includes a casing, the first fan blade, the second fan blade and the motor are installed in the casing, and the casing is provided with an air inlet and the air outlet.
In any of the above technical solutions, preferably, the base includes an enclosure, which includes a front control panel, a bottom plate, a rear plate, a top plate, a left outer cover and a right outer cover; the first magnetron, the second magnetron, the first high voltage transformer, the second high voltage transformer and the air-cooled radiator are installed in the enclosure.
In any of the above technical solutions, preferably, a fixed support is installed on the bottom plate, and the first high voltage transformer and the second high voltage transformer are installed on the fixed support.
In the existing product, the high voltage transformer is directly installed on the bottom plate of the base, and if the product drops, the high voltage transformer would produce great impact on the bottom plate, causing deformation of the bottom plate. In this solution, a fixed support is added to the base, and the two high voltage transformers are installed on the fixed support, thereby avoiding the problem that the high voltage transformers directly impact the bottom plate during dropping to cause deformation of the bottom plate, to improve the quality of the product.
In any of the above technical solutions, preferably, the left outer cover and the right outer cover are respectively provided with an air inlet, and the rear plate is provided with an exhaust hole.
In any of the above technical solutions, preferably, the first magnetron and the second magnetron are arranged side by side on left and right, and installed close to the center of the enclosure.
In such design, the installation structure of parts inside the product is compact, and the occupied installation space is small, so that the size of the product can be reduced.
In any of the above technical solutions, preferably, the air-cooled radiator is installed on one side of the first magnetron and the second magnetron away from the rear plate, a first exhaust tube is arranged between the first magnetron and the exhaust hole, and a second exhaust tube is arranged between the second magnetron and the exhaust hole.
In this solution, the two exhaust tubes guide hot air flowing through the two magnetrons to the exhaust hole of the rear plate to discharge, and such design improves the discharge effect of the hot air in the base and is beneficial to reducing the temperature inside the base, thereby improving the heat dissipation effect of the high voltage transformers and the magnetrons, and avoiding the problem of product failure caused by too high temperature inside the base.
In any of the above technical solutions, preferably, the top plate is a cavity having an opening upward, the first magnetron is connected with the cavity via a first waveguide tube, and the second magnetron is connected with the cavity via a second waveguide tube.
The additional aspects and advantages of the preset invention will be obvious in the following description or be understood by practice of the present invention.
The above-mentioned and/or additional aspects and advantages of the preset invention will be obvious and easily understood from the description of embodiments in combination with the following drawings, in which:
Wherein, the black thick arrows in
Wherein, the black thick arrows in
In order to more clearly understand the above-mentioned objects, features and advantages of the present invention, the present invention will be further described in detail below in combination with the accompanying drawings and specific embodiments. It should be noted that the embodiments of the present application and the features in the embodiments can be combined with each other without conflicts.
In the following description, numerous specific details are set forth in order to fully understand the present invention. However, the present invention can also be implemented in other ways different from that described herein. Therefore, the protection scope of the present invention is not limited to the specific embodiments disclosed below.
This solution is directed to a novel cooking appliance, which can bake the upper and lower surfaces of food and simultaneously heat the interior of the food with microwave, so that the interior and exterior of the food are heated uniformly, and the problem that the outer surface is burnt but the interior is under-heated or under-cooked when food such as sandwich and the like is heated is avoided. The structure of the heat dissipation air duct system in the cooking appliance provided by the present invention is changed, and only one air-cooled radiator is used for dissipating the heat of two magnetrons and two high voltage transformers, so that the quantity of heat dissipation fans in the product is reduced and the cost of the product can be reduced. Besides, after the quantity of the heat dissipation fans is reduced, the assembly operation of the product becomes simple, the assembly time is correspondingly shortened, the production and assembly efficiency of the product can be improved, and the input of labor cost is reduced, so that the production cost of the product is further reduced and the market competitiveness of the product is improved.
As shown in
In the above embodiment, preferably, the first high voltage transformer 3a is arranged close to the first magnetron 2a, the second high voltage transformer 3b is arranged close to the second magnetron 2b, the air outlet includes a first sub air outlet and a second sub air outlet, one part of cold air blown out of the first sub air outlet flows through the first magnetron 2a and the other part flows through the first high voltage transformer 3a, one part of cold air blown out of the second sub air outlet flows through the second magnetron 2b and the other part flows through the second high voltage transformer 3b.
In this solution, the first high voltage transformer 3a is arranged close to the first magnetron 2a, the second high voltage transformer 3b is arranged close to the second magnetron 2b, and such design enables the installation structure of parts inside the product to be compact and reduces the occupied installation space, thereby reducing the size of the product.
Moreover, in the existing product, the heat of one of the two magnetrons is dissipated by air flowing through the high voltage transformer, and the temperature after the air flows through the high voltage transformer is relatively high, so that the heat dissipation effect of the magnetron is poor. In this solution, the heat of the two magnetrons and the two high voltage transformers is directly dissipated by cold air blown out of the air outlet of the air-cooled radiator, and such design ensures that the heat dissipation air duct system can achieve a good heat dissipation effect on each magnetron and each high voltage transformer.
In any of the above embodiments, preferably, the air-cooled radiator includes a first fan blade, a second fan blade and a motor, a motor shaft of the motor is connected with the first fan blade and the second fan blade and used for driving the first fan blade and the second fan blade to rotate, the first fan blade is used for blowing air to the first magnetron 2a and the first high voltage transformer 3a, and the second fan blade is used for blowing air to the second magnetron 2b and the second high voltage transformer 3b.
The air-cooled radiator drives two fan blades via one motor, the structure of the radiator is simple, and only one motor is used, so that the manufacturing cost of the air-cooled radiator is low and the production cost of the product can be reduced in such design.
In any of the above embodiments, preferably, a fixed support 16 is installed on the bottom plate 12, and the first high voltage transformer 3a and the second high voltage transformer 3b are installed on the fixed support 16.
In the existing product, the high voltage transformer is directly installed on the bottom plate of the base, and if the product drops, the high voltage transformer produces great impact on the bottom plate, causing deformation of the bottom plate. In this solution, a fixed support 16 is added to the base 1, and the two high voltage transformers are installed on the fixed support 16, thereby avoiding the problem that the high voltage transformers directly impact the bottom plate 12 during dropping to cause deformation of the bottom plate 12, to improve the quality of the product.
In any of the above embodiments, preferably, the left outer cover 13a and the right outer cover 13b are respectively provided with an air inlet, and the rear plate 14 is provided with an exhaust hole.
In any of the above embodiments, preferably, the first magnetron 2a and the second magnetron 2b are arranged side by side on left and right, and installed close to the center of the enclosure. The first magnetron 2a is connected with the cavity 15 via a first waveguide tube 6a, and the second magnetron 2b is connected with the cavity 15 via a second waveguide tube 6b.
In such design, the installation structure of parts inside the product is compact, and the occupied installation space is small, so that the size of the product can be reduced.
In any of the above embodiments, preferably, the air-cooled radiator is installed on one side of the first magnetron 2a and the second magnetron 2b away from the rear plate 14, a first exhaust tube 5a is arranged between the first magnetron 2a and the exhaust hole, and a second exhaust tube 5b is arranged between the second magnetron 2b and the exhaust hole.
In this solution, the two exhaust tubes guide hot air flowing through the two magnetrons to the exhaust hole of the rear plate 14 to discharge, and such design improves the discharge effect of the hot air in the base 1 and is beneficial to reducing the temperature inside the base 1, thereby improving the heat dissipation effect of the high voltage transformers and the magnetrons, and avoiding the problem of product failure caused by too high temperature inside the base.
In the description of the specification, it should be understood that the orientation or position relations indicated by terms “upper”, “lower”, “front”, “rear”, “left”, “right”, “top”, “bottom”, “inner” and “outer” are based on those shown in the accompanying drawings, are only used for facilitating the description of the present invention and simplifying the description, instead of indicating or implying that the indicated devices or elements must have specific orientations and be constructed and operated in the specific orientations, and thus cannot be understood as limiting the present invention.
In the description of the specification, the descriptions of the terms “one embodiment”, “some embodiments”, “specific embodiment” and the like mean that features, structures, materials or characteristics described in combination with the embodiments or examples are included in the at least one embodiment or example of the present invention. In the specification, the schematic expression of the terms may not indicate the same embodiments or examples. Besides, the described specific features, structures, materials or characteristics can be combined appropriately in any one or more embodiments or examples.
In the description of the present invention, the terms “first” and “second” are merely used for the purpose of description, but cannot be understood as indicating or implying relative importance, unless otherwise specified and defined; the terms “connected”, “installed”, “fixed” and the like should be broadly understood, e.g., “connected” may be fixedly connected, detachably connected, integrally connected, directly connected, or indirectly connected via an intermediary. Those of ordinary skill in the art can understand the specific meanings of the terms in the present invention according to specific circumstances.
Described above are merely preferred embodiments of the present invention, which are not used for limiting the present invention. Various modifications and changes can be made to the present invention for those skilled in the art. Any modification, equivalent substitution, improvement and the like made within the spirit and principle of the present invention shall fall into the protection scope of the present invention.
Number | Date | Country | Kind |
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2017 1 0114719 | Feb 2017 | CN | national |
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First Office Action dated Aug. 2, 2019 received in Chinese Patent Application No. CN 201710114719.1 together with an English language translation. |
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Number | Date | Country | |
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20180249537 A1 | Aug 2018 | US |