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Development of steady-state operation using ion cyclotron heating in the Large Helical Device

机译:在大型螺旋装置中利用离子回旋加速器进行稳态运行的开发

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Using a handshake shape (HAS) antenna phasing dipole for ion cyclotron heating (ICH), the heating efficiency was higher than that using a previous poloidal array antenna in the Large Helical Device. In order to sustain the dipole operation, real-time feedback for impedance matching and maintaining the same phase and power was adopted during long-pulse discharge. The HAS antenna was designed to reduce parasitic losses associated with energetic particle and radio-frequency (RF) sheath effects by field-aligned current concentration on the midplane. Local hot spots and the inhomogeneity of the diverter heat profile in the toroidal direction were reduced. The long-pulse discharge with an electron density (n_(e0)) of 1 × 10~(19) m~(-3), center electron temperature (T_(e0)) of 2.5 keV, a plasma duration time (t_d) of 19min, and RF heating power (P_(RF)) of 1MW was achieved by ICH and electron cyclotron heating.
机译:使用用于离子回旋加速器加热(IC​​H)的握手形状(HAS)天线定相偶极子,其加热效率要比使用大型螺旋装置中以前的多倍体阵列天线高。为了维持偶极子工作,在长脉冲放电期间采用了实时反馈来进行阻抗匹配并保持相同的相位和功率。 HAS天线的设计旨在通过中平面上的场对准电流集中来减少与高能粒子和射频(RF)护套效应相关的寄生损耗。减少了局部热点和环向方向的分流热分布的不均匀性。电子密度(n_(e0))为1×10〜(19)m〜(-3),中心电子温度(T_(e0))为2.5 keV,等离子持续时间(t_d)的长脉冲放电通过ICH和电子回旋加速器加热,达到19分钟,RF加热功率(P_(RF))达到1MW。

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