A Semantic Ontology-Based Approach to Support Model-Based Systems Engineering Design for an Aircraft Prognostic Health Management System

Jinwei Chen, Yifan Chen, Zhenchao Hu, Jinzhi Lu, Xiaochen Zheng, Hui-sheng Zhang, Dimitris Kiritsis 
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引用次数: 1

Abstract

The Prognostic and Health Management (PHM) system of an aircraft has complex structures and diverse functions. It is highly coupled with other systems, such as the avionics system and flight management system. The Model-based Systems Engineering (MBSE) method is effective to support the design and verification of the aircraft PHM system. As a powerful semantic web construction method, ontology has been widely used to express design information, such as the concepts and the relationships between them. However, traditional graphical MBSE models have a natural weakness in transforming into ontology. In this paper, a semantic MBSE method is proposed to support the transform of the ontology model. Firstly, according to the design characteristics of the aircraft PHM system, a meta-model library of the aircraft PHM system is developed to support the design and evaluation. An MBSE modeling method based on requirement analysis, function analysis, logical architecture design, and physic architecture design is applied in the PHM design process. Secondly, the semantic system modeling language KARMA based on “graph, object, property, point, relationship, role, and extension” (GOPPRRE) is used to transfer the graphical MBSE model to the semantic MBSE model, which can be easily transformed to an ontology model. Finally, an ontology based on semantic modeling is developed to describe the MBSE entities and to support MBSE design. In this paper, a case study of an aircraft fuel PHM system is carried out to validate the proposed method. Based on the developed meta-model library, a complete MBSE design process for the aircraft PHM system is realized. And then an ontology model supporting PHM system design is generated from the semantic MBSE model. The MBSE ontology provides a shareable capability to help designers communicate effectively. Quantitative analysis based on ontology is also provided to verify the complexity and scale of the MBSE design process. Moreover, logical reasoning ability can also be provided to support the early requirement traceability for MBSE design. In general, the case study results show the feasibility and effectiveness of the proposed method for the aircraft PHM system design.
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基于语义本体的飞机预估健康管理系统工程设计支持方法
飞机预测与健康管理(PHM)系统结构复杂,功能多样。它与其他系统高度耦合,如航空电子系统和飞行管理系统。基于模型的系统工程(MBSE)方法为飞机PHM系统的设计和验证提供了有效的支持。本体作为一种强大的语义web构建方法,已被广泛用于表达设计信息,如概念及其之间的关系。然而,传统的图形化MBSE模型在向本体转换方面存在着天然的弱点。本文提出了一种支持本体模型转换的语义MBSE方法。首先,根据飞机PHM系统的设计特点,建立了飞机PHM系统的元模型库,为飞机PHM系统的设计和评估提供支持。在PHM的设计过程中,采用了基于需求分析、功能分析、逻辑架构设计和物理架构设计的MBSE建模方法。其次,利用基于“图、对象、属性、点、关系、角色、扩展”的语义系统建模语言KARMA (GOPPRRE),将图形化的MBSE模型转换为语义化的MBSE模型,从而方便地转化为本体模型;最后,提出了一个基于语义建模的本体来描述MBSE实体,为MBSE设计提供支持。最后,以某型飞机燃油PHM系统为例,对所提方法进行了验证。基于所建立的元模型库,实现了飞机PHM系统的完整MBSE设计过程。然后在语义MBSE模型的基础上生成支持PHM系统设计的本体模型。MBSE本体提供了可共享的功能,以帮助设计人员进行有效的沟通。基于本体的定量分析验证了MBSE设计过程的复杂性和规模。此外,还可以提供逻辑推理能力,支持MBSE设计的早期需求跟踪。总体而言,实例研究结果表明了该方法在飞机PHM系统设计中的可行性和有效性。
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