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Studies on plasma direct energy converters for thermal and fusion-produced ions using slanted cusp magnetic and distributed electric fields

机译:使用倾斜尖端磁场和分布电场的热能和聚变离子的等离子直接能量转换器的研究

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摘要

Two types of direct energy converters, cusp direct energy converter (CUSPDEC) and travelling-wave (TW) DEC, used to produce electricity from thermal ions and fusion products in an advanced fuelled fusion, are investigated using small-scale devices. In CUSPDEC, magnetized electrons are deflected along the field lines of the cusp magnetic field to the line cusp region and collected by an electron collector, while weakly magnetized ions can traverse the separatrix and enter into the point cusp region. Thus, ions are separated from electrons, and flow into an ion collector to produce dc power. Efficiencies of energy conversion of separated ions with large thermal spread of energy are measured to be ~55%. An additional lateral electrode, together with the existing collector, constitutes a two-stage ion collector that provides distributed ion-decelerating fields. From the measured voltage-current characteristics, the efficiency of this collector is estimated to be improved to 65-70%, which is consistent with the calculation. Fusion-produced fast ions enter into TWDEC and are velocity-modulated by RF fields, bunched and then decelerated by RF travelling-wave fields on the decelerator to produce RF power. The TWDEC device has shown that the energies of ions of 3-6 keV can be decreased by 10-15% for a one-wavelength decelerator. This would give a total efficiency of 60-70% for a full-length decelerator. A novel system is being investigated for further improvement, in which the incoming ions are deflected transversely, according to each energy, to form a fan-shaped beam and a distributed electrode array for modulation and deceleration generates travelling-waves appropriate to each ion path depending on the energy.
机译:使用小型设备研究了两种类型的直接能量转换器,即尖峰直接能量转换器(CUSPDEC)和行波(TW)DEC,它们用于在先进的燃料聚变中由热离子和聚变产物产生电能。在CUSPDEC中,磁化的电子沿着尖端磁场的磁力线偏转到尖端区域并由电子收集器收集,而弱磁化的离子可以穿过皮层并进入尖端区域。因此,离子与电子分离,并流入离子收集器以产生直流电。能量经过大幅度热扩散的分离离子的能量转换效率据测为〜55%。附加的横向电极与现有的收集器一起构成了两级离子收集器,可提供分布式的离子减速场。根据测得的电压-电流特性,估计该集电极的效率提高到65-70%,与计算结果一致。聚变产生的快速离子进入TWDEC,并通过RF场进行速度调制,成束然后通过减速器上的RF行波场减速以产生RF功率。 TWDEC装置显示,对于一波长减速器,3-6 keV离子的能量可以降低10-15%。对于全长减速器,这将使总效率达到60-70%。为了进一步改进,正在研究一种新颖的系统,在该系统中,入射离子根据每种能量横向偏转,以形成扇形束,而用于调制和减速的分布式电极阵列会生成适合于每个离子路径的行波,具体取决于在能源上。

著录项

  • 来源
    《Nuclear fusion》 |2009年第7期|75009.1-75009.9|共9页
  • 作者单位

    Department of Electrical and Electronic Engineering, Kobe University, Kobe 657-8501, Japan;

    Department of Electrical and Electronic Engineering, Kobe University, Kobe 657-8501, Japan;

    Department of Electrical and Electronic Engineering, Kobe University, Kobe 657-8501, Japan;

    Department of Electrical and Electronic Engineering, Kobe University, Kobe 657-8501, Japan;

    Department of Electrical and Electronic Engineering, Kobe University, Kobe 657-8501, Japan;

  • 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
  • 中图分类
  • 关键词

    magnetic mirrors; gas dynamic traps; direct energy conversion and storage; transport properties;

    机译:磁镜气体动态阱直接能量转换和存储;运输性质;

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