González Isaías, Calderón Antonio José, Barragán Antonio Javier, Andújar José Manuel
Department of Electrical Engineering, Electronics and Automation, University of Extremadura, Avenida de Elvas, s/n, 06006 Badajoz, Spain.
Department of Electronic, Computer Science and Automatic Engineering, University of Huelva, Escuela Técnica Superior, Crta. Huelva-Palos de la Fra, Palos de la Fra, 21919 Huelva, Spain.
Sensors (Basel). 2017 Jun 27;17(7):1512. doi: 10.3390/s17071512.
The interconnection between sensors, controllers and instruments through a communication network plays a vital role in the performance and effectiveness of a control system. Since its inception in the 90s, the Object Linking and Embedding for Process Control (OPC) protocol has provided open connectivity for monitoring and automation systems. It has been widely used in several environments such as industrial facilities, building and energy automation, engineering education and many others. This paper presents a novel OPC-based architecture to implement automation systems devoted to R&D and educational activities. The proposal is a novel conceptual framework, structured into four functional layers where the diverse components are categorized aiming to foster the systematic design and implementation of automation systems involving OPC communication. Due to the benefits of OPC, the proposed architecture provides features like open connectivity, reliability, scalability, and flexibility. Furthermore, four successful experimental applications of such an architecture, developed at the University of Extremadura (UEX), are reported. These cases are a proof of concept of the ability of this architecture to support interoperability for different domains. Namely, the automation of energy systems like a smart microgrid and photobioreactor facilities, the implementation of a network-accessible industrial laboratory and the development of an educational hardware-in-the-loop platform are described. All cases include a Programmable Logic Controller (PLC) to automate and control the plant behavior, which exchanges operative data (measurements and signals) with a multiplicity of sensors, instruments and supervisory systems under the structure of the novel OPC architecture. Finally, the main conclusions and open research directions are highlighted.
传感器、控制器和仪器通过通信网络的互连在控制系统的性能和有效性方面起着至关重要的作用。自20世纪90年代问世以来,过程控制对象链接与嵌入(OPC)协议为监控和自动化系统提供了开放的连接性。它已广泛应用于工业设施、建筑与能源自动化、工程教育等多种环境中。本文提出了一种基于OPC的新颖架构,以实现专门用于研发和教育活动的自动化系统。该提议是一个新颖的概念框架,分为四个功能层,其中不同的组件被分类,旨在促进涉及OPC通信的自动化系统的系统设计和实施。由于OPC的优势,所提出的架构具有开放连接性、可靠性、可扩展性和灵活性等特点。此外,还报告了在埃斯特雷马杜拉大学(UEX)开发的这种架构的四个成功实验应用案例。这些案例证明了该架构支持不同领域互操作性的能力。具体而言,描述了诸如智能微电网和光生物反应器设施等能源系统的自动化、网络可访问工业实验室的实施以及教育硬件在环平台的开发。所有案例都包括一个可编程逻辑控制器(PLC),用于自动化和控制工厂行为,该控制器在新颖的OPC架构结构下与多个传感器、仪器和监控系统交换操作数据(测量值和信号)。最后,突出了主要结论和开放的研究方向。