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Configuration Optimization of Supercavitating Underwater Vehicles With Maneuvering Constraints

机译:带有操纵约束的超空泡水下航行器的结构优化。

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This paper presents configuration optimization studies on supercavitating underwater vehicles. These innovative vehicles operate at extremely high speeds due to the drag reduction achieved through the supercavitating regime. Their dynamic behavior is complex and highly nonlinear which makes their guidance and control particularly challenging. The extreme performance of the vehicles and the complexity of their dynamic behavior drive the need for an integrated design tool that incorporates operational requirements as part of the design process. This study is a first attempt at optimizing the configuration of supercavitating vehicles, in terms of overall dimensions, mass distributions, and control surfaces size, while accounting for specific requirements related to operation at trim and during maneuvers. The optimization problem is formulated by considering range in straight level flight as the objective to be maximized, and by introducing conditions on trim operation and unsteady maneuvers as constraints. The maneuver requirements are defined by the solution of an optimal control problem, which, for a given vehicle configuration, yields optimal control inputs and corresponding vehicle state time histories. Results are presented to demonstrate the feasibility of the process and to investigate the effect of operational constraints on the final optimal vehicle configuration. The presented methodology considers a limited spectrum of operating conditions, but it is formulated in a way that allows its extension to include a number of such operational constraints, as required by specific mission requirements.
机译:本文介绍了超空化水下航行器的结构优化研究。由于通过超空化方式实现了减阻,这些创新的车辆以极高的速度运转。它们的动态行为复杂且高度非线性,这使得它们的引导和控制特别具有挑战性。车辆的出色性能及其动态行为的复杂性促使人们需要集成设计工具,该设计工具将操作要求纳入设计过程的一部分。这项研究是在总体尺寸,质量分布和控制表面尺寸方面优化超空化车辆配置的首次尝试,同时考虑了与微调和操纵操作有关的特定要求。最优化问题是通过将直线飞行的范围作为要最大化的目标,并通过引入平飞操作和不稳定操纵的条件作为约束条件来制定的。操纵要求是由最佳控制问题的解决方案定义的,对于给定的车辆配置,该问题会产生最佳控制输入和相应的车辆状态时间历史。给出结果以证明该过程的可行性,并研究操作约束对最终最佳车辆配置的影响。提出的方法考虑到了有限的运行条件,但其制定方式允许其扩展,以包括特定任务要求所要求的许多此类运行限制。

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