ELECTROMAGNETIC WAVE HEATING DEVICE
20180324905 ยท 2018-11-08
Inventors
Cpc classification
H05B6/647
ELECTRICITY
International classification
Abstract
To realize a reduction in size of an electromagnetic wave heating system that utilizes water vapor. The electromagnetic wave heating system comprises a heat chamber having a first wall surface and a second wall surface different from the first wall surface, in which an object is placed to be heated, a flat antenna arranged on the first wall surface of the heat chamber and configured to emit an electromagnetic wave so as to heat an object inside the heating chamber, a discharger arranged on the second wall surface and configured to generate a discharge plasma by occurring a high voltage through a resonation structure of the electromagnetic wave, and an oscillator formed by a semiconductor element and configured to output the electromagnetic wave, and it is configured that the electromagnetic wave outputted from the oscillator is supplied into the flat antenna and the discharger.
Claims
1. An electromagnetic wave heating system comprising: a heat chamber having a first wall surface and a second wall surface different from the first wall surface, in which an object is placed to be heated; a flat antenna arranged on the first wall surface of the heat chamber and configured to emit an electromagnetic wave so as to heat the object inside the heat chamber; a discharger arranged on the second wall surface and configured to generate a discharge plasma by occurring a high voltage through a resonation structure of the electromagnetic wave; and an oscillator formed by a semiconductor element and configured to output the electromagnetic wave, wherein it is configured that the electromagnetic wave outputted from the oscillator is supplied into the flat antenna and the discharger.
Description
BRIEF DESCRIPTION OF FIGURES
[0010]
[0011]
[0012]
[0013]
[0014]
EMBODIMENTS FOR IMPLEMENTING THE INVENTION
[0015] In below, embodiments of the present invention are described in details based on figures. Note that, following embodiments are essentially preferable examples, and the scope of the present invention, the application, or the use is not intended to be limited.
First Embodiment
[0016] Referring to
[0017] Referring to
[0018] Referring to
[0019] The first substrate 12 is a substrate made of, for example, ceramics with insulation characteristics, and sixteen metal patterns formed in spiral manner are formed on the surface thereof. Each metal pattern functions as a small size antenna 11.
[0020] The second substrate 13 on the back surface includes a power feed point 14 formed at base configured to receive a microwave supply from the switcher 4. Further, the metal pattern for delivering microwave starting from the power feed point 14 to respective small antennas 11 is formed on the surface.
[0021] Each small sized antenna 11 is formed spirally at the center of a power receiving end 11a inputted of the microwave, and formed such that a distance from the power receiving end 11a to an opening end 11b becomes approximately wavelength of microwave. Moreover, a through hole is formed at the position of the power receiving end 11a of each small sized antenna 11 of the first substrate 12. A via is filled with in the through hole, and the metal pattern of the first substrate 12 is connected to the metal pattern of the second substrate 13 through the via.
[0022] Arrangement is performed such that the distance from the power feed point 14 to each power receiving end 11a of the corresponding antenna 11 in total number of sixteen, becomes equal. Accordingly, the sixteen antennas simultaneously becomes ON or OFF based on an output pattern from the oscillator 3 in principle since microwave in same phase is supplied into each of the sixteen antennas.
[0023] Referring to
[0024] Microwave inputted from an input terminal 32 of the input part 3a is transmitted into the coupling part 3b by a first center electrode 33. A dielectric material 39a such as ceramics is provided between the first center electrode 33 and the casing 31.
[0025] The coupling part 3b is a part that attains an impedance matching between the coaxial line (for example, having 50 impedance) and the resonation part 3c (about 10 for example at microwave frequency band). A second center electrode 34 is formed in cylindrical manner provided with a bottom part at the resonation/discharge part 3c side, and the cylindrical part surrounds the first center electrode 33. The stick type first center electrode 33 opposes to the inner wall of the cylindrical second center electrode 34, and the microwave from the first center electrode 33 is transmitted to the second center electrode 34 by capacitively-coupling at the opposing part. The dielectric material 39b made of ceramics and etc. is filled with at the cylindrical part of the second center electrode 34, and the dielectric material 39c made of ceramics is also provided between the second center electrode 34 and the casing 31. A desired impedance matching can be attained by designing suitably length of these members and distance between members.
[0026] A third center electrode 35 of the resonation/discharge part 3c is connected to the second center electrode 34, and the microwave of the second center electrode 34 is transmitted into the third center electrode 35. The length of the third center electrode 35 is set to be approximately wavelength of microwave substantially. If it is designed such that a node of microwave is set at a position between the third center electrode 35 and the second center electrode 34, an anti-node of microwave becomes positioned at the distal end of the third center electrode 35, specifically at the discharge electrode 36, and as the result, the potential becomes largest. The dielectric material 39d, ceramics, is partially filled with between the third center electrode 35 and the casing 31. Here, it is better to fill ceramics with from the viewpoint of mechanical strength securing for the discharger 3; however, if the potential, so called Q factor of the discharger 3 is aimed to be enhanced, it is better not to fill ceramics with. Accordingly, these trade-off are taken into account, and the ceramics is partially filled with at the discharger 3.
[0027] According to the discharger 3, when the microwave lkW is supplied from the input part 3a, some tons KV of high voltage occurs between the discharge electrode 36 and the casing 31, and the discharge is caused between the discharge electrode 36 and the casing 31. Since the discharge plasma can be generated by the discharge, food heat cooking by the low temperature plasma can be achieved by utilizing the discharger 3 to the microwave oven 10.
[0028] Note that, the discharger 3 uses a microwave resonation structure, and therefore, discharging in series can be performed. Since the discharger 3 differs in this point from many types of dischargers such as spark plug that has no choice but to perform intermittent discharge, it can be said that the discharger 3 is suitable for the heat cooker such as microwave oven.
[0029] Moreover, the discharger 3 causes high voltage by using microwave generated in the oscillator 7. The oscillator 7 also functions as a power source of microwave irradiated from the flat antenna 1. Accordingly, both low temperature plasma generation and microwave heating can be achieved only by one oscillator 7.
Second Embodiment
[0030] In replace of the above discharger 3, an injector/discharger 40 illustrated in
[0031] By using together the injector/discharger 40 and the above flat antenna 1, the below cooking way is considered. Firstly, the temperatures of food and the heat chamber on which the food is put, are warmed up by microwave heating. Under th situation, heating suitable for eggs and dairy products that requires, for example, a delicate heat control can be performed by injecting the water vapor from the injection pipe 42 and further generating the discharge plasma.
INDUSTRIAL APPLICABILITY
[0032] As explained as above, the present invention is effective to an electromagnetic wave heating system such as a microwave oven.
NUMARAL SYMBOLS EXPLANATION
[0033] 1. Flat Antenna [0034] 2. Heat Chamber [0035] 3. Discharger [0036] 4. Switcher [0037] 5. Controller [0038] 6. Coaxial Line [0039] 7. Oscillator [0040] 11. Small-sized Antenna [0041] 12. First Substrate [0042] 13. Second Substrate [0043] 14. Power Feed Point