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Influence of vacuum toroidal field on two-fluid flowing equilibria of helicity-driven spherical torus plasmas

机译:真空环形场对螺旋驱动球形环面等离子体双流体流动平衡的影响

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Two-fluid flowing equilibrium configurations of a helicity-driven spherical torus (HD-ST) in the realistic confinement region, including a flux conserver and a coaxial helicity source, are numerically determined by means of the combination of the finite difference and the boundary element methods. It is found from the numerical results that electron fluid near the central conductor is tied to a vacuum toroidal field and ion fluid is not. The magnetic configurations change from the high-q HD-ST (safety factor, q > 1) with a paramagnetic toroidal field and low-beta (volume average beta value, approximate to 2%) through the helicity-driven spheromak and reversed-field pinch to the ultra-low-q HD-ST (0 < q < 1) with a diamagnetic toroidal field and high-beta (approximate to 18%) as the vacuum toroidal field at the inner edge regions decreases and reverses the sign. The two-fluid effects are more significant in this equilibrium transition when the ion diamagnetic drift has the same direction as the ExB one. (c) 2006 American Institute of Physics.
机译:通过有限差分和边界元素的组合,在数值上确定了实际约束区域中螺旋驱动球形环(HD-ST)的两流体流动平衡构型,包括通量守恒器和同轴螺旋源。方法。从数值结果中可以发现,中心导体附近的电子流体被束缚在真空环形场上,而离子流体则没有。磁性结构从具有顺磁环形场的高q HD-ST(安全系数,q> 1)和低β(体积平均β值,<β>大约为2%)到通过螺旋驱动的球面而改变。当内边缘区域的真空环形场减小时,反向场收缩到超低q HD-ST(0

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