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Toward a methodology for the system integration of adaptive resilience in armor

机译:提出一种用于装甲自适应弹性系统集成的方法

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This article introduces a novel augmentation to systems engineering methodology based on the integration of adaptive capacity, which produces enhanced resilience in technological systems that operate in complex operating environments. The implementation of this methodology enhances system resistance to top-level function failure or accelerates the system's functional recovery in the event of a top-level function failure due to functional requirement shift, evolutions, or perturbations. The research expands system engineering, design, and integration methodologies, which currently do not explicitly address system adaptation and resilience, through the definition and demonstration of a methodology to integrate adaptive resilience and demonstrates its implementation in a relevant armor system case study. The methodology accomplishes this objective by defining adaptive design considerations, identifying controllable adaptive performance factors, characterizing adaptive performance factors and configurations, mapping and integrating adaptive components, and verifying and validating the adaptive components and configurations that achieve system requirements and adaptive design considerations. The utility of this research is demonstrated through development of an adaptive resilient armor system called the mechanically adaptive armor linkage (MAAL), which was designed, developed, and validated using the methodology for the system integration of adaptive resilience (MSIAR). The conceptual validity of the methodology is proven through a physical comparative test and evaluation of the system described in the case study. The research and resulting methodology supplements and enhances traditional systems engineering processes by offering systems designers the opportunity to integrate adaptive capacity into systems, enhancing their resilient resistance, or recovery to top-level function failure in complex operating environments.
机译:本文介绍了一种基于自适应能力集成的系统工程方法的新颖扩充,它可以增强在复杂操作环境中运行的技术系统的弹性。此方法的实施增强了系统对顶级功能故障的抵抗力,或者在由于功能需求转移,发展或扰动而导致顶级功能故障时加速了系统的功能恢复。这项研究扩展了系统工程,设计和集成方法,这些方法目前尚未通过定义和演示集成自适应弹性的方法论并在相关的装甲系统案例研究中进行演示来明确说明系统适应性和弹性。该方法通过定义自适应设计考虑因素,识别可控制的自适应性能因素,表征自适应性能因素和配置,映射和集成自适应组件以及验证和验证达到系统要求和自适应设计考虑因素的自适应组件和配置来实现此目标。这项研究的实用性通过开发称为机械适应装甲连杆机构(MAAL)的适应性弹性装甲系统得到了证明,该系统是使用适应性弹性系统集成(MSIAR)的方法进行设计,开发和验证的。通过物理比较测试和案例研究中描述的系统评估,证明了该方法的概念有效性。该研究和由此产生的方法论通过为系统设计人员提供机会,将自适应能力集成到系统中,增强其弹性抵抗力或恢复复杂操作环境中的顶级功能故障,从而补充并增强了传统的系统工程流程。

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