基于李雅普诺夫的非对称单致动器饱和托卡马克电流分布反馈控制

S. Paruchuri, A. Pajares, E. Schuster
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引用次数: 0

摘要

先进的托卡马克方案可以通过使用无感加热和电流源来塑造等离子体内部轮廓,从而实现最佳的托卡马克操作。由于动态的复杂性,主动控制每个非感应加热和电流源的功率,一个非负值,可能是必要的,以实现所需的托卡马克性能。然而,由于固有的物理限制,控制器的任意功率处方可能会使加热和电流驱动器饱和。因此,非常需要开发一类主动控制算法来考虑这些执行器的饱和极限。本文提出了一种考虑饱和极限的lyapunov非线性反馈控制算法,用于调节托卡马克环向电流密度的空间分布。该控制器不依赖于约束优化技术,这对于实时实现来说可能是计算昂贵的。此外,控制器还可以处理非对称饱和极限,即上、下饱和极限的绝对值不必相等。对DIII-D托卡马克场景进行了非线性仿真,验证了控制算法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Lyapunov-based Current-Profile Feedback Control in Tokamaks with Nonsymmetric Individual Actuator Saturation∗
Advanced tokamak scenarios can achieve optimal tokamak operation by shaping the plasma internal profiles through the use of noninductive heating and current sources. As a result of the dynamic complexities, active control of the power of each noninductive heating and current source, a non-negative value, may be necessary to achieve the desired tokamak performance. However, due to the inherent physical limitations, arbitrary power prescription by the controller may saturate the heating and current drives. Therefore, it is highly desirable to develop a class of active control algorithms that account for the saturation limits of these actuators. A Lyapunov-based nonlinear feedback control algorithm that intrinsically accounts for saturation limits is proposed in this work to regulate the spatial distribution of the toroidal current density in the tokamak. The controller does not rely on constrained optimization techniques, which can be computationally expensive for real-time implementation. Furthermore, the controller can handle nonsymmetric saturation limits, i.e., the absolute values of the upper and lower saturation limits do not have to be equal. The effectiveness of the control algorithm is demonstrated for a DIII-D tokamak scenario in nonlinear simulations.
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