Empirical Validation of Design Principles for Survivable System Architecture

M. Richards, A. Ross, D. Hastings, D. Rhodes
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引用次数: 21

Abstract

Survivability, the ability of a system to minimize the impact of a finite-duration disturbance on end-user value delivery, is increasingly recognized beyond military contexts as an enabler of maintaining system performance in operational environments characterized by dynamic disturbances. Seventeen general design principles are proposed to inform concept generation of survivable system architectures. Six of these design principles focus on a survivability strategy of susceptibility reduction: (1.1) prevention, (1.2) mobility, (1.3) concealment, (1.4) deterrence, (1.5) preemption, and (1.6) avoidance. Eleven of the principles focus on vulnerability reduction: (2.1) hardness, (2.2) redundancy, (2.3) margin, (2.4) heterogeneity, (2.5) distribution, (2.6) failure mode reduction, (2.7) fail-safe, (2.8) evolution, (2.9) containment, (2.10) replacement, and (2.11) repair. In this paper, the completeness, taxonomic precision, and domain-specific applicability of the design principle framework is empirically tested through case applications to survivability features of the F-16C combat aircraft and Iridium satellite system. Integrating results of these two tests with previous tests (e.g., UH-60A Blackhawk helicopter, A-10A aircraft), the validity of the design principle framework for aerospace systems is demonstrated.
可生存系统架构设计原则的经验验证
生存能力,即系统将有限持续时间的干扰对最终用户价值交付的影响最小化的能力,越来越多地在军事背景之外被认为是在以动态干扰为特征的作战环境中维持系统性能的推动者。提出了17个通用设计原则,为可生存系统架构的概念生成提供信息。这些设计原则中的六个侧重于降低易感性的生存能力策略:(1.1)预防,(1.2)机动性,(1.3)隐蔽性,(1.4)威慑,(1.5)先发制人,(1.6)回避。其中11个原则侧重于脆弱性减少:(2.1)硬度,(2.2)冗余,(2.3)裕度,(2.4)异质性,(2.5)分布,(2.6)故障模式减少,(2.7)故障安全,(2.8)进化,(2.9)包容,(2.10)替换,(2.11)修复。通过对F-16C战斗机和铱星系统生存性特征的实例应用,对设计原则框架的完备性、分类精度和领域适用性进行了实证检验。将这两项试验的结果与之前的试验(如UH-60A黑鹰直升机、A-10A飞机)相结合,证明了航空航天系统设计原则框架的有效性。
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