JPS6212640B2 - - Google Patents
Info
- Publication number
- JPS6212640B2 JPS6212640B2 JP51145470A JP14547076A JPS6212640B2 JP S6212640 B2 JPS6212640 B2 JP S6212640B2 JP 51145470 A JP51145470 A JP 51145470A JP 14547076 A JP14547076 A JP 14547076A JP S6212640 B2 JPS6212640 B2 JP S6212640B2
- Authority
- JP
- Japan
- Prior art keywords
- heating chamber
- antenna
- frequency
- waveguide
- small hole
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Expired
Links
Landscapes
- Constitution Of High-Frequency Heating (AREA)
- Variable-Direction Aerials And Aerial Arrays (AREA)
- Details Of Aerials (AREA)
Description
【発明の詳細な説明】
本発明は高周波加熱装置、いわゆる家庭用電子
レンジに関するもので、電界分布の均一化をはか
るのはもちろんのこと、100g程度の小さい食品
の高周波出力も2の水負荷と同程度出すことを
可能とし、さらに銚子などの垂直に長い負荷につ
いても上下の温度差がない効率的な高周波加熱装
置を提供するものである。DETAILED DESCRIPTION OF THE INVENTION The present invention relates to a high-frequency heating device, a so-called household microwave oven, which not only aims to make the electric field distribution uniform, but also has a high-frequency output for food as small as 100g, with a water load of 2. The present invention provides an efficient high-frequency heating device that can produce the same amount of heat and also has no temperature difference between the top and bottom even when dealing with vertically long loads such as Choshi.
従来から高周波加熱装置の均一加熱の方法につ
いては種々の方法があるが、主にスタラー方式と
ターンテーブル方式があり、又これら2つを組合
わせた方法などがある。 Conventionally, there have been various methods for uniform heating using high-frequency heating devices, and the main ones include a stirrer method and a turntable method, and there are also methods that combine these two methods.
さらに他の方式についても種々の方法があるが
銚子などの垂直に長い負荷については上下で温度
差が生じ、又100g程度の高周波出力については
2水負荷時の出力の75%程度しか出ない。した
がつて600W出力の電子レンジでも実際の小さい
負荷なら450W程度の出力で加熱していることに
なり、効率が大変悪い。 Furthermore, there are various other methods, but for vertically long loads such as Choshi, there will be a temperature difference between the top and bottom, and the high frequency output of about 100g will only be about 75% of the output when loaded with two water. Therefore, even if a microwave oven has an output of 600W, if the actual load is small, it will be heated with an output of about 450W, which is very inefficient.
そこで本発明は簡単な構成により上記従来の欠
点を解消するものであり、以下本発明の実施例に
ついて説明する。 Therefore, the present invention solves the above-mentioned conventional drawbacks with a simple configuration, and embodiments of the present invention will be described below.
第1図において、マグネトロン1からの高周波
電波は導波管2を通り、モータ3で回転されるア
ンテナ4に給電され、加熱室5に放射されて食品
を加熱する。6は食品を載置する台であり高周波
損失の少い材料で構成されている。なお導波管2
と加熱室5は使用電波の1/2波長以下の小孔Hで
連通され、この小孔Hを通してアンテナ4が回転
自在に設けられている。 In FIG. 1, high-frequency radio waves from a magnetron 1 pass through a waveguide 2, are fed to an antenna 4 rotated by a motor 3, and are radiated into a heating chamber 5 to heat food. Reference numeral 6 denotes a table on which food is placed, and is made of a material with low high frequency loss. Note that waveguide 2
The heating chamber 5 is communicated with a small hole H having a wavelength of less than 1/2 of the radio wave used, and an antenna 4 is rotatably provided through this small hole H.
上記アンテナ4は2mm厚の金属板で構成されて
おり、加熱室5側には高さを違えて水平方向に2
本の放射源7,8を持つており、この2本の放射
源の電波放射量の割合を調整するための三角部9
を持つている。(第2図参照)、
上記構成のアンテナを備えた高周波加熱装置で
実験したところ電波の放射源が回転するので均一
化がはかれたのはいうまでもなく、銚子などの垂
直方向に長い被加熱物の上下の温度差は2℃以内
と非常に良い結果が得られた。又100g程度の食
品の高周波出力も2の水負荷時の出力の90%程
度に達することがわかり、500W出力の電子レン
ジで従来の600W出力の電子レンジと同程度の時
間で調理でき、消費電力の軽減が図れることが判
明した。 The antenna 4 is made of a 2 mm thick metal plate, and on the side of the heating chamber 5 there are two horizontally arranged antennas at different heights.
It has book radiation sources 7 and 8, and a triangular part 9 for adjusting the ratio of radio wave radiation amount of these two radiation sources.
have. (Refer to Figure 2) Experiments using a high-frequency heating device equipped with an antenna with the above configuration revealed that the radio wave radiation source rotated, which resulted in uniformity. Very good results were obtained, with the temperature difference between the top and bottom of the heated object being within 2°C. It was also found that the high-frequency output of food weighing about 100g reaches about 90% of the output when water is loaded in step 2, meaning that a 500W output microwave oven can cook food in about the same time as a conventional 600W output microwave oven, and consumes less power. It was found that it was possible to reduce the
第3図は本発明の他の実施例で、アンテナ4の
両側に金属反射板10を設けてあり、位置を固定
するために低損失性誘電体で作られた支え棒11
でアンテナ4と金属反射板10を固定している。
又このアンテナ4の両側の金属反射板10はお互
いに金属板で接続されている。 FIG. 3 shows another embodiment of the present invention, in which a metal reflector plate 10 is provided on both sides of the antenna 4, and a support rod 11 made of a low-loss dielectric material is used to fix the position.
The antenna 4 and the metal reflector 10 are fixed.
Further, the metal reflecting plates 10 on both sides of this antenna 4 are connected to each other by a metal plate.
実験によればアンテナ4に金属板射板10を取
り付けることにより、前述のアンテナ分布性能よ
り高い性能が得られることがわかつた。 According to experiments, it was found that by attaching the metal radiation plate 10 to the antenna 4, higher performance than the antenna distribution performance described above can be obtained.
第4図に示す実施例はアンテナ4をマグネトロ
ンの冷却風で回転駆動するために低損失性誘電体
で作られた羽根車12をアンテナ4と一体に取り
つけた構成である。 The embodiment shown in FIG. 4 has a configuration in which an impeller 12 made of a low-loss dielectric material is attached integrally with the antenna 4 in order to rotate the antenna 4 with cooling air from a magnetron.
第5図は第4図の羽根車12とアンテナ4の斜
視図である。なお13はマグネトロン冷却用の送
風機で、マグネトロン1を冷却した後冷却風を加
熱室5内に入れ、羽根車12に当ててアンテナ4
を回転駆動するものである。 FIG. 5 is a perspective view of the impeller 12 and antenna 4 of FIG. 4. Reference numeral 13 denotes a blower for cooling the magnetron. After cooling the magnetron 1, cooling air is introduced into the heating chamber 5, and is applied to the impeller 12 to blow the cooling air to the antenna 4.
It rotates and drives.
以上説明したように本発明によれば簡単な構成
により電界分布が改善され、しかも軽負荷時の高
周波出力の効率を高めることができる。 As explained above, according to the present invention, the electric field distribution can be improved with a simple configuration, and the efficiency of high frequency output at light loads can be increased.
また垂直に長い食品の上下の温度差がほとんど
なくなるなどきわめて使い勝手のよい高効率の高
周波加熱装置を提供することができる。 Furthermore, it is possible to provide a highly efficient high-frequency heating device that is extremely user-friendly and has almost no temperature difference between the top and bottom of a vertically long food.
第1図は本発明の一実施例を示す高周波加熱装
置の縦断面図、第2図は同要部アンテナの斜視
図、第3図は同アンテナの他の実施例の斜視図、
第4図は本発明の他の実施例の縦断面図、第5図
は同要部アンテナ部の斜視図である。
1……マグネトロン、2……導波管、3……モ
ータ、4……アンテナ、5……加熱室、6……
台、7,8……放射源、10……金属反射板、1
2……羽根車。
FIG. 1 is a longitudinal cross-sectional view of a high-frequency heating device showing one embodiment of the present invention, FIG. 2 is a perspective view of the main part of the antenna, and FIG. 3 is a perspective view of another embodiment of the same antenna.
FIG. 4 is a longitudinal sectional view of another embodiment of the present invention, and FIG. 5 is a perspective view of the main antenna section. 1... Magnetron, 2... Waveguide, 3... Motor, 4... Antenna, 5... Heating chamber, 6...
Base, 7, 8...Radiation source, 10...Metal reflector, 1
2... Impeller.
Claims (1)
通じて加熱室に送り込む構成とし、導波管は加熱
室下部において加熱室と1/2波長以下の小孔で連
通し、この小孔の中心には回転自在のアンテナを
設け、上記アンテナは小孔を設けた加熱室壁と平
行にこの加熱室壁と間隔の異なる複数の金属導体
を設け、上記金属導体と、上記アンテナの回転軸
部分との接合部に適宜三角部を設けた高周波加熱
装置。 2 上記アンテナを平偏状に構成した特許請求の
範囲第1項記載の高周波加熱装置。 3 高周波発振器からの高周波電磁波を導波管を
通じて加熱室に送り込む構成とし、導波管は加熱
室下部において加熱室と1/2波長以下の小孔で連
通し、この小孔の中心には回転自在のアンテナを
設け、上記アンテナは小孔を設けた加熱室壁と平
行にこの加熱室壁と間隔の異なる複数の金属導体
を設け、上記金属導体と前記アンテナの回転軸部
分との接合部に適宜三角部を設け、かつアンテナ
と同軸で回転する複数の電磁波反射板を上記金属
導体と対向する位置に設けるとともに上記複数の
電磁波反射板を互に電気的接続した高周波加熱装
置。 4 高周波発振器からの高周波電磁波を導波管を
通じて加熱室に送り込む構成とし、導波管は加熱
室下部において加熱室と1/2波長以下の小孔で連
通し、この小孔の中心には回転自在のアンテナを
設け、上記アンテナは小孔を設けた加熱室壁と平
行にこの加熱室壁と間隔の異なる複数の金属導体
を設け、かつ上記アンテナには風力駆動するため
の低損失性誘電体よりなる羽根車を設けた高周波
加熱装置。[Claims] 1. The configuration is such that high-frequency electromagnetic waves from a high-frequency oscillator are sent into the heating chamber through a waveguide, and the waveguide communicates with the heating chamber at the bottom of the heating chamber through a small hole of 1/2 wavelength or less. A rotatable antenna is provided at the center of the hole, and the antenna is provided with a plurality of metal conductors at different intervals from the heating chamber wall parallel to the heating chamber wall in which the small hole is provided, and the rotation of the metal conductor and the antenna is A high-frequency heating device with an appropriate triangular section at the joint with the shaft. 2. The high-frequency heating device according to claim 1, wherein the antenna is configured to have a flattened shape. 3 High-frequency electromagnetic waves from a high-frequency oscillator are sent into the heating chamber through a waveguide, and the waveguide communicates with the heating chamber through a small hole of 1/2 wavelength or less at the bottom of the heating chamber. A flexible antenna is provided, and the antenna is provided with a plurality of metal conductors at different intervals from the heating chamber wall parallel to the heating chamber wall provided with a small hole, and at the joint between the metal conductor and the rotating shaft portion of the antenna. A high-frequency heating device comprising a triangular portion as appropriate, a plurality of electromagnetic wave reflecting plates rotating coaxially with an antenna at positions facing the metal conductor, and electrically connecting the plurality of electromagnetic wave reflecting plates to each other. 4 High-frequency electromagnetic waves from a high-frequency oscillator are sent into the heating chamber through a waveguide, and the waveguide communicates with the heating chamber through a small hole of 1/2 wavelength or less at the bottom of the heating chamber. A flexible antenna is provided, and the antenna is provided with a plurality of metal conductors at different intervals from the heating chamber wall in parallel with the heating chamber wall provided with a small hole, and the antenna is equipped with a low-loss dielectric material for wind drive. A high-frequency heating device equipped with an impeller.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP14547076A JPS5369954A (en) | 1976-12-02 | 1976-12-02 | High frequency heating system |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
JP14547076A JPS5369954A (en) | 1976-12-02 | 1976-12-02 | High frequency heating system |
Publications (2)
Publication Number | Publication Date |
---|---|
JPS5369954A JPS5369954A (en) | 1978-06-21 |
JPS6212640B2 true JPS6212640B2 (en) | 1987-03-19 |
Family
ID=15385976
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
JP14547076A Granted JPS5369954A (en) | 1976-12-02 | 1976-12-02 | High frequency heating system |
Country Status (1)
Country | Link |
---|---|
JP (1) | JPS5369954A (en) |
Families Citing this family (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS57212797A (en) * | 1981-06-23 | 1982-12-27 | Matsushita Electric Ind Co Ltd | High frequency heater |
Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS4735733U (en) * | 1971-04-20 | 1972-12-20 | ||
JPS49119249A (en) * | 1973-03-07 | 1974-11-14 |
Family Cites Families (1)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS5198851U (en) * | 1975-02-07 | 1976-08-07 |
-
1976
- 1976-12-02 JP JP14547076A patent/JPS5369954A/en active Granted
Patent Citations (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPS4735733U (en) * | 1971-04-20 | 1972-12-20 | ||
JPS49119249A (en) * | 1973-03-07 | 1974-11-14 |
Also Published As
Publication number | Publication date |
---|---|
JPS5369954A (en) | 1978-06-21 |
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