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Controlled and spontaneous magnetic field generation in a gun-driven spheromak

机译:枪支驱动的球形球中受控和自发的磁场产生

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摘要

In the Sustained Spheromak Physics Experiment, SSPX [E. B. Hooper, D. Pearlstein, and D. D. Ryutov, Nucl. Fusion 39, 863 (1999)], progress has been made in understanding the mechanisms that generate fields by helicity injection. SSPX injects helicity (linked magnetic flux) from 1 m diameter magnetized coaxial electrodes into a flux-conserving confinement region. Control of magnetic fluctuations (delta B/B similar to 1% on the midplane edge) yields T-e profiles peaked at > 200 eV. Trends indicate a limiting beta (beta(e)similar to 4%-6%), and so we have been motivated to increase T-e by operating with stronger magnetic field. Two new operating modes are observed to increase the magnetic field: (A) Operation with constant current and spontaneous gun voltage fluctuations. In this case, the gun is operated continuously at the threshold for ejection of plasma from the gun: stored magnetic energy of the spheromak increases gradually with delta B/B similar to 2% and large voltage fluctuations (delta V similar to 1 kV), giving a 50% increase in current amplification, I-tor/I-gun. (B) Operation with controlled current pulses. In this case, spheromak magnetic energy increases in a stepwise fashion by pulsing the gun, giving the highest magnetic fields observed for SSPX (similar to 0.7 T along the geometric axis). By increasing the time between pulses, a quasisteady sustainment is produced (with periodic good confinement), comparing well with resistive magnetohydrodynamic simulations. In each case, the processes that transport the helicity into the spheromak are inductive and exhibit a scaling of field with current that exceeds those previously obtained. We use our newly found scaling to suggest how to achieve higher temperatures with a series of pulses.
机译:在持续的Spheromak物理实验中,SSPX [E.胡珀(B. Fusion 39,863(1999)],在了解通过螺旋注入产生磁场的机制方面已取得进展。 SSPX将直径为1 m的磁化同轴电极的螺旋线(链接的磁通量)注入到保持通量的限制区域中。控制磁涨落(δB / B类似于中平面边缘上的1%)会产生T-e轮廓,其峰值大于200 eV。趋势表明存在一个有限的beta(类似于4%-6%的beta(e)),因此我们被激励通过在更强的磁场下运行来提高T-e。观察到两种新的操作模式会增加磁场:(A)在恒定电流和自发喷枪电压波动的情况下运行。在这种情况下,喷枪将在从喷枪喷出血浆的阈值下连续运行:球体的存储磁能以增量B / B约为2%且电压波动较大(增量V类似于1 kV)逐渐增加,电流放大I-tor / I-gun增加了50%。 (B)在受控电流脉冲下运行。在这种情况下,通过对喷枪施加脉冲,会产生逐渐变大的磁能,从而使SSPX观察到的磁场最高(类似于沿几何轴的0.7 T)。通过增加脉冲之间的时间,可以产生准稳态维持(具有周期性良好的限制),并与电阻磁流体动力学模拟进行了比较。在每种情况下,将螺旋度转移到球形胶体中的过程都是感应性的,并且在超过当前所获得的电流的情况下,电流的场比例缩放。我们使用新发现的缩放比例来建议如何通过一系列脉冲来达到更高的温度。

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