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Response Surface Based Performance Analysis of an Air-Defense Missile System Against Maneuvering Targets

机译:对机动目标防空导弹系统的响应面基于性能分析

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The performance of an Air Defense Missile System (ADMS), namely the probability of hit (PoH) performance, is evaluated using full grid analysis approach and response surface approach. For this purpose, a detailed six degrees of freedom missile simulation model is employed. The parameters are varied with prescribed uncertainties for performing Monte-Carlo runs in order to estimate the PoH of a hypothetical missile. Because such high-fidelity models are necessary for performance analysis, the analysis process is usually very time consuming and computationally expensive. Moreover, engagement scenarios directly depend on target capabilities. Such capabilities enforce the analyst to run more simulations to obtain accurate results under various error and uncertainty conditions. In this paper, a response surface method is employed using fundamental parameters that affect the PoH. Engagement downrange and altitude, and seeker lock-on-range of the missile are selected as the fundamental inputs. Sampling points related to conventional grid and response surfaces in the experimental design are analyzed by the ADMS modeling and simulation tool. The concepts, techniques and practical applications of Design of Experiments (DoE) methods are investigated for ADMS to obtain the optimum target evasive maneuvering situation. The number of simulations required to determine the performance of ADMS against a maneuvering target is analyzed for minimizing the required number of runs. The target is assumed to have full information about the pursuing missile as a worst-case scenario. In this topic, the main idea focuses on Response Surface Methodology (RSM) with second-order models to predict a mathematical model related to the engagement for the whole operational volume.
机译:防空导弹系统(ADMS)的性能,即使用完整的网格分析方法和响应面方法评估击中(POH)性能的可能性。为此目的,采用详细的六个自由导弹仿真模型。参数随着用于执行Monte-Carlo的规定的不确定性而变化,以估计假设导弹的PoH。由于这种高保真模型是性能分析所必需的,因此分析过程通常是非常耗时和计算昂贵的。此外,接合方案直接取决于目标功能。此类功能强制执行分析师,以便在各种误差和不确定性条件下获得更多模拟以获得准确的结果。在本文中,使用影响POH的基本参数来使用响应面方法。参与下游和高度,导弹的寻求者锁定范围是基本投入。 ADMS建模和仿真工具分析了与实验设计中的传统网格和响应表面相关的采样点。研究了实验设计(DOE)方法的概念,技术和实际应用,以获得ADMS以获得最佳目标回避操纵情况。分析了确定ADMS对机动目标的性能所需的模拟数量以最小化所需的运行数量。假设目标有关于追求导弹作为最坏情况的完整信息。在本主题中,主要思想侧重于具有二阶模型的响应面方法(RSM),以预测与整个操作卷的参与相关的数学模型。

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