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Steady State Tokamak Equilibrium with Specified Magnetic Axis and Two Magnetic Null Points

机译:具有指定磁轴和两个磁零点的稳态托卡马克平衡

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An analysis method of tokamak plasma equilibrium by a relaxation method with specified magnetic axis and null points (two magnetic separatrix points) is developed. The six degrees of freedom due to designated positions of the magnetic axis and null points is possible by using six poloidal field coil currents. Stable steady state tokamak plasma equilibria are calculated along with the MHD (magnetohydrodynamic) potential energy. Assuming an RF heating plasma, the plasma generates a plasma current which partially or fully cancels the magnetic field from the poloidal field coils. For low-temperature plasmas, the plasma current distribution is centrally peaked; for high-temperature plasmas, the plasma current has a hole. A centrally peaked current distribution in a low-temperature plasma is evolved into a current distribution with a hole by increasing the plasma pressure by heating. These calculations show that, under sufficient heating, the pressure driven current in tokamak plasmas form a current hole which minimizes the MHD potential energy.
机译:提出了用规定的磁轴和零点(两个磁分离点)的弛豫方法分析托卡马克等离子体平衡的方法。通过使用六个极向场线圈电流,可以归因于磁轴的指定位置和零点而产生六个自由度。稳定的稳态托卡马克等离子体平衡与MHD(磁流体动力学)势能一起计算。假设RF加热等离子体,则等离子体产生等离子体电流,该等离子体电流部分或完全抵消了来自极向场线圈的磁场。对于低温等离子体,等离子体电流分布在中心达到峰值。对于高温等离子体,等离子体电流有一个孔。通过加热增加等离子体压力,低温等离子体中的中心峰值电流分布会演变成带孔的电流分布。这些计算表明,在充分加热的条件下,托卡马克等离子体中的压力驱动电流会形成电流孔,从而使MHD势能最小化。

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