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首页> 外文期刊>Journal of Applied Physics >Cryogenic resonant microwave compressors with energy extraction through 'warm' interference switches
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Cryogenic resonant microwave compressors with energy extraction through 'warm' interference switches

机译:通过“暖”干扰开关提取能量的低温共振微波压缩机

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摘要

A method of switching cryogenic resonant microwave compressors from the energy accumulation mode to the energy release mode is proposed and analyzed. The switching process is based on the resonant transfer of the microwave energy from a cryogenic storage cavity to a room temperature commutation cavity. The transfer can be realized using a cascade interference microwave switch weakly coupled to the storage cavity and consisting of two H-plane waveguide tees connected in series. The tees are made of a normally conducting material, located outside the cryostat, and contain commuting units in shorted side arms. The length of the cascade input arm (from the storage cavity to the first tee) is non-resonant, while the space between the storage cavity and the second tee is resonant. The weak coupling of the storage cavity to the cascade and the non-resonant length of its input arm allow one to minimize losses during the energy accumulation phase. When the commuting unit in the first tee is ignited, the tee opens, and the non-resonant volume of the cascade input arm is transformed into the volume of the resonant commutation cavity. The microwave energy is then transferred in a resonant way from the storage cavity to the commutation cavity, and when the transfer is complete, the commuting unit in the second tee is ignited to extract the energy into a load. It is shown analytically that, at a certain value of the coupling (the cryogenic storage cavity to the normally conducting cascade of tees) and length of the cascade input arm, the power gain in the storage cavity can be kept high. It is also shown that the energy accumulated in the storage cavity can be effectively transferred to the commutation cavity and from the commutation cavity to the load.
机译:提出并分析了一种将低温谐振微波压缩机从能量积累模式转换为能量释放模式的方法。切换过程基于微波能量从低温存储腔到室温换向腔的共振转移。可以使用弱耦合到存储腔并由两个串联的H平面波导三通组成的级联干扰微波开关来实现传输。这些三通由位于低温恒温器外部的正常导电材料制成,并在短边臂中包含换向单元。级联输入臂的长度(从存储腔到第一T形管)是非谐振的,而存储腔和第二个T形管之间的空间是谐振的。存储腔与叶栅的弱耦合以及其输入臂的非谐振长度使能量存储阶段的损耗最小化。当第一个三通中的换向单元被点燃时,三通打开,并且级联输入臂的非共振体积转化为共振换向腔的体积。然后,微波能量以共振的方式从存储腔传递到换向腔,并且当传递完成时,第二个T形管中的换向单元被点燃,将能量提取到负载中。分析地显示,在一定的耦合值(低温存储腔与三通的正常传导的三通管串联)和级联输入臂的长度的情况下,可以保持存储腔内的功率增益较高。还显示出,积聚在存储腔中的能量可以有效地传递到换向腔并且从换向腔传递到负载。

著录项

  • 来源
    《Journal of Applied Physics 》 |2016年第1期| 014501.1-014501.6| 共6页
  • 作者单位

    Institute of Physics and Technology, National Research Tomsk Polytechnic University, Tomsk 634050, Russia;

    Institute of Physics and Technology, National Research Tomsk Polytechnic University, Tomsk 634050, Russia;

    Physics Department, Technion, Haifa 32000, Israel;

    Institute of Physics and Technology, National Research Tomsk Polytechnic University, Tomsk 634050, Russia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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