Engineering Methods and Tools for Cyber–Physical Automation Systems
Инженерные методы и инструменты для киберфизических систем автоматизации
2016-03-21
SCID: 54.1/tg7pbz4n
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Industry 4.0automation systems engineeringcomponent-based engineeringcyber-physical systemsvirtual and physical engineering
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Abstract (AI)
Much has been published about potential benefits of the adoption of cyber-physical systems (CPSs) in manufacturing industry. However, less has been said about how such automation systems might be effectively configured and supported through their lifecycles and how application modeling, visualization, and reuse of such systems might be best achieved. It is vitally important to be able to incorporate support for engineering best practice while at the same time exploiting the potential that CPS has to offer in an automation systems setting. This paper considers the industrial context for the engineering of CPS. It reviews engineering approaches that have been proposed or adopted to date including Industry 4.0 and provides examples of engineering methods and tools that are currently available. The paper then focuses on the CPS engineering toolset being developed by the Automation Systems Group (ASG) in the Warwick Manufacturing Group (WMG), University of Warwick, Coventry, U.K. and explains via an industrial case study how such a component-based engineering toolset can support an integrated approach to the virtual and physical engineering of automation systems through their lifecycle via a method that enables multiple vendors' equipment to be effectively integrated and provides support for the specification, validation, and use of such systems across the supply chain, e.g., between end users and system integrators.
Key Findings
1
An industrial case study demonstrates support for integrating equipment from multiple vendors and coordinating end users with system integrators.
2
It reviews industrial CPS engineering approaches, including Industry 4.0, and surveys currently available engineering methods and tools.
3
The WMG/ASG component-based toolset integrates virtual and physical engineering of automation systems throughout their lifecycle.
4
The paper identifies lifecycle configuration, application modeling, visualization, and reuse as underdeveloped aspects of cyber–physical automation systems.
5
The toolset supports specification, validation, and system use across the supply chain, embedding engineering best practices in CPS deployment.
Research Object
industrial cyber–physical automation systems
Research Subject
lifecycle engineering, modeling, visualization, reuse, and multi-vendor integration of cyber–physical automation systems
Publication Details
Publication Date
2016-03-21
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