Escuela Técnica Superior de Ingenieros Industriales (ETSII), Universidad Politécnica de Madrid, José Gutiérrez Abascal 2, 28006 Madrid, Spain.
Exposure, Epidemiology, and Risk Program, Department of Environmental Health, Harvard T.H. Chan School of Public Health, Boston, MA 02115, USA.
Sensors (Basel). 2020 Apr 3;20(7):2011. doi: 10.3390/s20072011.
Recent advances in technology have empowered the widespread application of cyber-physical systems in manufacturing and fostered the Industry 4.0 paradigm. In the factories of the future, it is possible that all items, including operators, will be equipped with integrated communication and data processing capabilities. Operators can become part of the smart manufacturing systems, and this fosters a paradigm shift from independent automated and human activities to Vhuman-cyber-physical systems (HCPSs). In this context, a Healthy Operator 4.0 (HO4.0) concept was proposed, based on a systemic view of the Industrial Internet of Things (IIoT) and wearable technology. For the implementation of this relatively new concept, we constructed a unified architecture to support the integration of different enabling technologies. We designed an implementation model to facilitate the practical application of this concept in industry. The main enabling technologies of the model are introduced afterward. In addition, a prototype system was developed, and relevant experiments were conducted to demonstrate the feasibility of the proposed system architecture and the implementation framework, as well as some of the derived benefits.
近年来,技术的进步使得网络物理系统在制造业中的广泛应用成为可能,并推动了工业 4.0 范式的发展。在未来的工厂中,所有物品,包括操作人员,都有可能配备集成的通信和数据处理能力。操作人员可以成为智能制造系统的一部分,这促进了从独立的自动化和人类活动到人机网络物理系统(HCPS)的范式转变。在这种情况下,提出了基于工业物联网(IIoT)和可穿戴技术的系统观点的健康操作员 4.0(HO4.0)概念。为了实现这个相对较新的概念,我们构建了一个统一的架构来支持不同使能技术的集成。我们设计了一个实施模型,以促进该概念在工业中的实际应用。随后介绍了该模型的主要使能技术。此外,还开发了一个原型系统,并进行了相关实验,以验证所提出的系统架构和实施框架的可行性,以及一些衍生的好处。