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Reduced model for direct induction startup scenario development on MAST-U and NSTX-U

机译:用于在MAST-U和NSTX-U上直接感应启动方案开发的简化模型

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A reduced semi-empirical model using time-dependent axisymmetric vacuum field calculations is used to develop the prefill and feed-forward coil current targets required for reliable direct induction (DI) startup on the new MA-class spherical tokamaks, MAST-U and NSTX-U. The calculations are constrained by operational limits unique to each device, such as the geometry of the conductive elements and active coils, power supply specifications and coil heating and stress limits. The calculations are also constrained by semi-empirical models for sufficient breakdown, current drive, equilibrium and stability of the plasma developed from a shared database. A large database of DI startup on NSTX and NSTX-U is leveraged to quantify the requirements for achieving a reliable breakdown (I-p similar to 20 kA). It is observed that without preionization, STs access the large E/P regime at modest loop voltage (V-loop) where the electrons in the weakly ionized plasma are continually accelerating along the open field lines. This ensures a rapid (order millisecond) breakdown of the neutral gas, even without pre-ionization or high-quality field nulls. The timescale of the initial increase in I-p on NSTX is reproduced in the reduced model provided a mechanism for impeding the applied electric field is included. Most discharges that fail in the startup phase are due to an inconsistency in the evolution of the plasma current (I-p) and equilibrium field or loss of vertical stability during the burn-through phase. The requirements for the self-consistent evolution of the fields in the weakly and fully-ionized plasma states are derived from demonstrated DI startup on NSTX, NSTX-U and MAST. The predictive calculations completed for MAST-U and NSTX-U illustrate that the maximum I-p ramp rate (dI(p)/d(t)) in the early startup phase is limited by the voltage limits on the poloidal field coils on MAST-U and passive vertical stability on NSTX-U.
机译:使用依赖于时间的轴对称真空场计算的简化的半经验模型来开发预填充和前馈线圈电流目标,以在新型MA级球形托卡马克,MAST-U和NSTX上可靠地直接感应(DI)启动所需-U。这些计算受到每个设备特有的操作限制的约束,例如导电元件和有源线圈的几何形状,电源规格以及线圈发热和应力限制。半经验模型也对计算进行了约束,以便从共享数据库中获得足够的击穿,电流驱动,等离子体的平衡和稳定性。利用NSTX和NSTX-U上的大量DI启动数据库来量化实现可靠故障(I-p类似于20 kA)的要求。可以观察到,在没有预电离的情况下,ST在适度的环路电压(V-loop)下进入较大的E / P区域,其中弱电离的等离子体中的电子沿开放电场线不断加速。即使没有预电离或高质量的场零位,这也可以确保中性气体快速(毫秒级)分解。 NSTX上I-p初始增加的时间尺度可以在简化模型中再现,前提是该模型包含了一种阻止施加电场的机制。在启动阶段失败的大多数放电是由于等离子体电流(I-p)和平衡场的演化不一致,或者是在烧穿阶段期间失去垂直稳定性。在弱电离和完全电离的等离子体状态下,电场自洽演变的要求来自于在NSTX,NSTX-U和MAST上进行的DI演示。对MAST-U和NSTX-U进行的预测计算表明,早期启动阶段的最大Ip斜率(dI(p)/ d(t))受MAST-U上极向场线圈上电压极限的限制和NSTX-U的被动垂直稳定性。

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