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Real-Time Model Predictive Control for Shipboard Power Management Using the IPA-SQP Approach

机译:使用IPA-SQP方法进行船载电源管理的实时模型预测控制

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摘要

Shipboard integrated power systems, the key enablers of ship electrification, call for effective power management control (PMC) to achieve optimal and reliable operation in dynamic environments under hardware limitations and operational constraints. The design of PMC can be treated naturally in a model predictive control (MPC) framework, where a cost function is minimized over a prediction horizon subject to constraints. The real-time implementation of MPC-based PMC, however, is challenging due to computational complexity of the numerical optimization. In this paper, an MPC-based PMC for a shipboard power system is developed and its real-time implementation is investigated. To meet the requirements for real-time computation, an integrated perturbation analysis and sequential quadratic programming (IPA-SQP) algorithm is applied to solve a constrained MPC optimization problem. Several operational scenarios are considered to evaluate the performance of the proposed PMC solution. Simulations and experiments show that real-time optimization, constraint enforcement, and fast load following can be achieved with the IPA-SQP algorithm. Different performance attributes and their tradeoffs can be coordinated through proper tuning of the design parameters.
机译:舰船集成电源系统是船舶电气化的主要推动力,它要求有效的电源管理控制(PMC)以在硬件限制和操作约束下的动态环境中实现最佳和可靠的操作。 PMC的设计可以在模型预测控制(MPC)框架中自然对待,在该模型中,在受约束的预测范围内将成本函数最小化。但是,由于数值优化的计算复杂性,基于MPC的PMC的实时实现具有挑战性。本文开发了一种基于MPC的舰船动力系统PMC,并对其实时性进行了研究。为了满足实时计算的要求,采用集成的扰动分析和顺序二次规划(IPA-SQP)算法来解决约束式MPC优化问题。考虑了几种操作方案来评估建议的PMC解决方案的性能。仿真和实验表明,使用IPA-SQP算法可以实现实时优化,约束执行和快速负载跟踪。可以通过适当调整设计参数来协调不同的性能属性及其折衷。

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