Cloud/VPN-Based Remote Control of a Modular Production System Assisted by a Mobile Cyber-Physical Robotic System-Digital Twin Approach.

IF 3.5 3区 综合性期刊 Q2 CHEMISTRY, ANALYTICAL Sensors Pub Date : 2025-01-20 DOI:10.3390/s25020591
Georgian Simion, Adrian Filipescu, Dan Ionescu, Adriana Filipescu
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Abstract

This paper deals with a "digital twin" (DT) approach for processing, reprocessing, and scrapping (P/R/S) technology running on a modular production system (MPS) assisted by a mobile cyber-physical robotic system (MCPRS). The main hardware architecture consists of four line-shaped workstations (WSs), a wheeled mobile robot (WMR) equipped with a robotic manipulator (RM) and a mobile visual servoing system (MVSS) mounted on the end effector. The system architecture integrates a hierarchical control system where each of the four WSs, in the MPS, is controlled by a Programable Logic Controller (PLC), all connected via Profibus DP to a central PLC. In addition to the connection via Profibus of the four PLCs, related to the WSs, to the main PLC, there are also the connections of other devices to the local networks, LAN Profinet and LAN Ethernet. There are the connections to the Internet, Cloud and Virtual Private Network (VPN) via WAN Ethernet by open platform communication unified architecture (OPC-UA). The overall system follows a DT approach that enables task planning through augmented reality (AR) and uses virtual reality (VR) for visualization through Synchronized Hybrid Petri Net (SHPN) simulation. Timed Petri Nets (TPNs) are used to control the processes within the MPS's workstations. Continuous Petri Nets (CPNs) handle the movement of the MCPRS. Task planning in AR enables users to interact with the system in real time using AR technology to visualize and plan tasks. SHPN in VR is a combination of TPNs and CPNs used in the virtual representation of the system to synchronize tasks between the MPS and MCPRS. The workpiece (WP) visits stations successively as it is moved along the line for processing. If the processed WP does not pass the quality test, it is taken from the last WS and is transported, by MCPRS, to the first WS where it will be considered for reprocessing or scrapping.

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基于云/ vpn的模块化生产系统远程控制与移动网络-物理机器人系统-数字孪生方法。
本文讨论了在移动网络物理机器人系统(MCPRS)的辅助下,在模块化生产系统(MPS)上运行的处理、再处理和报废(P/R/S)技术的“数字孪生”(DT)方法。主要硬件结构包括四个线形工作站(WSs)、一个配备机器人机械手(RM)的轮式移动机器人(WMR)和一个安装在末端执行器上的移动视觉伺服系统(MVSS)。系统架构集成了一个分层控制系统,其中MPS中的四个ws都由可编程逻辑控制器(PLC)控制,所有ws都通过Profibus DP连接到中央PLC。除了与WSs相关的四个PLC通过Profibus连接到主PLC之外,还有其他设备连接到本地网络,局域网Profinet和局域网以太网。通过开放平台通信统一架构(OPC-UA),通过广域网以太网连接到Internet、云和虚拟专用网(VPN)。整个系统采用DT方法,通过增强现实(AR)实现任务规划,并通过同步混合Petri网(SHPN)模拟使用虚拟现实(VR)实现可视化。定时Petri网(TPNs)用于控制MPS工作站内的进程。连续Petri网(cpn)处理MCPRS的运动。AR中的任务规划使用户能够使用AR技术实时与系统交互,以可视化和规划任务。虚拟现实中的SHPN是tpn和cpn的组合,用于系统的虚拟表示,以同步MPS和MCPRS之间的任务。工件(WP)在沿着生产线移动进行加工时依次访问工位。如果处理过的WP未通过质量测试,则由MCPRS从最后一个WS取出并运输到第一个WS,在那里它将被考虑进行再处理或报废。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Sensors
Sensors 工程技术-电化学
CiteScore
7.30
自引率
12.80%
发文量
8430
审稿时长
1.7 months
期刊介绍: Sensors (ISSN 1424-8220) provides an advanced forum for the science and technology of sensors and biosensors. It publishes reviews (including comprehensive reviews on the complete sensors products), regular research papers and short notes. Our aim is to encourage scientists to publish their experimental and theoretical results in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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