在生命控制器设计中应用安全概念和原则

F. Shi
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引用次数: 0

摘要

至关重要的控制器对安全至关重要,如果不能及时减轻其故障,可能会导致应用程序系统中的危险。随着电子技术的进步和自动化程度的提高,重要控制器的复杂性不断增加,为设计和评估其安全完整性水平带来了挑战。通常,传统的安全工程方法无法有效地为重要控制器的设计提供系统指导,也无法证明其安全完整性的成本效益。通过开发多个基于通信的列车控制系统的实践,我们已经确定了一种方法,使用一套安全概念作为安全关键控制器设计及其安全完整性评估的指导。这些安全概念可分为内在故障安全、反应性故障安全和复合故障安全。它们的有效组合是在设计控制器架构的检查冗余技术中应用复合故障安全概念,在每个检查冗余通道中识别自我测试和监控机制的反应安全概念,以及确保与其他控制器和被控设备的安全接口的固有故障安全概念。本文介绍了这些安全概念的应用方法,并讨论了它们的应用原则和验证因素,以实现控制器的高安全完整性水平。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Applying Safety Concepts and Principles in Vital Controller Design
A vital controller is safety critical and its failures, if not mitigated in time, can contribute to hazards in the application system. With electronics advancing and automation increasing, the expanding complexity of a vital controller creates challenges in designing it and assessing its safety integrity level. Typically, traditional safety engineering approaches are not effective for providing systematic guidance to design vital controllers and also not cost efficient for justifying their safety integrity. Through practice on developing multiple Communications-Based Train Control systems, we have identified an approach to using a set of safety concepts as guidance for both safety critical controller design and its safety integrity assessment. These safety concepts are categorized as intrinsic fail-safe, reactive fail-safe, and composite fail-safe. An effective combination of them is applying the composite fail-safe concept in checked redundancy techniques for designing the architecture of a controller, the reactive safety concept for identifying self-testing and monitoring mechanisms in each checked redundant channel, and the intrinsic fail-safe concept for ensuring safe interfaces to other controllers and controlled devices. This paper presents the approach for using these safety concepts and discusses their application principles and verification factors for achieving high safety integrity level of a controller.
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