东京工业大学非平衡等离子体MHD发电

IF 0.5 Q4 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Complex Systems Pub Date : 2008-02-27 DOI:10.1063/1.2897867
T. Murakami, Y. Okuno, H. Yamasaki
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引用次数: 0

摘要

本文综述了东京工业大学射频(rf)电磁场辅助磁流体动力(MHD)发电实验的最新进展。一个电感耦合射频场(13.56 MHz)连续提供给圆盘形霍尔型MHD发生器。本文的第一部分介绍了一种利用射频电源对等离子体进行预电离和加热,从而提高纯氩等离子体MHD发电机输出功率的方法。射频加热增强了氩气的电离,使自由电子居群的温度高于没有射频加热时名义上较低的4500 K温度。这反过来又提高了等离子体的导电性,使MHD发电成为可能。我们演示了射频加热时的增强功率输出,大约是射频发生器输入功率的5倍。本文的第二部分是对电离不稳定性rf -稳定化的物理现象的证明,这一现象已经被推测了一段时间,但尚未在实验中看到。射频加热抑制了等离子体行为中的电离不稳定性,使等离子体结构的不均匀性均匀化。在宽播种条件下,射频功率显著提高了发电性能。2%左右的焓萃取比增量显著大于净射频功率占热输入的0.16%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Non‐Equilibrium Plasma MHD Electrical Power Generation at Tokyo Tech
This paper reviews the recent activities on radio‐frequency (rf) electromagnetic‐field‐assisted magnetohydrodynamic (MHD) power generation experiments at the Tokyo Institute of Technology. An inductively coupled rf field (13.56 MHz) is continuously supplied to the disk‐shaped Hall‐type MHD generator. The first part of this paper describes a method of obtaining increased power output from a pure Argon plasma MHD power generator by incorporating an rf power source to preionize and heat the plasma. The rf heating enhances ionization of the Argon and raises the temperature of the free electron population above the nominally low 4500 K temperatures obtained without rf heating. This in turn enhances the plasma conductivity making MHD power generation feasible. We demonstrate an enhanced power output when rf heating is on approximately 5 times larger than the input power of the rf generator. The second part of this paper is a demonstration of a physical phenomenon of the rf‐stabilization of the ionization instability, that had been conjectured for some time, but had not been seen experimentally. The rf heating suppresses the ionization instability in the plasma behavior and homogenizes the nonuniformity of the plasma structures. The power‐generating performance is significantly improved with the aid of the rf power under wide seeding conditions. The increment of the enthalpy extraction ratio of around 2% is significantly greater than the fraction of the net rf power, that is, 0.16%, to the thermal input.
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来源期刊
Complex Systems
Complex Systems MATHEMATICS, INTERDISCIPLINARY APPLICATIONS-
CiteScore
1.80
自引率
25.00%
发文量
18
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