| Literature DB >> 35891132 |
Sangsu Choi1, Jungyub Woo1, Jun Kim2, Ju Yeon Lee3.
Abstract
A digital twin is a virtual model of a process, product, or service, which is one of the key technologies in the fourth industry. The pairing of the virtual and physical world allows analysis of data and monitoring of systems to head off problems before they occur. This paper presents a digital twin architecture and a system based on an interoperable data model. It explains how to build a digital twin for the integrated control monitoring using edge devices, data analytics, and realistic 3D visualization. The system allows continuous collaboration between field engineers for data gathering, designers for modeling 3D models, and layout engineers for layout changing by generating 3D digital twin models automatically. The system helps stakeholders focus on their respective roles to build digital twins. Examples applied to the Korean automotive parts makers are also introduced in this paper. The system can be easily used by small and medium-sized enterprises (SMEs) as well as large companies. Beyond simply watching the production site with CCTV, the production site can be intuitively managed based on the digital twin.Entities:
Keywords: cyber-physical systems; digital twin; monitoring system; smart factory; smart manufacturing
Mesh:
Year: 2022 PMID: 35891132 PMCID: PMC9319650 DOI: 10.3390/s22145450
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.847
Figure 1Overall architecture.
Figure 2Factory design and improvement (FDI) reference activity model.
Figure 3FDI data model schema.
Element of FDI data model.
| Element | Description |
|---|---|
| Product | Product type, parts that make up the product |
| Machine | Sensing information, setting value (setup time, cycle time, MTTR, MTBF, etc.) |
| Labor | Gender, working hours, skill, etc. |
| Material Handling | Material handling module ID (Ex: Container), quantity, cycle time, etc. |
| Material Handling | Part ID, quantity, etc. |
| Routing | Process order and distance, etc. |
| Process | Standby, loading, operation, unloading, setup, information, etc. |
| Layout | Building, floor, geometry information, process area information, etc. |
| KPI | Respond ability, OEE, automation rare, space utilization, yield, throughput, energy consumption, CO2 emission, etc. |
| Rule | Legal aisle width, number of gaps between columns, legal regulations such as door position, etc. |
| SimulationModelInfo | Information related to the model by the simulation (e.g., simulation purpose, tool information etc.) |
| SimulationRunInfo | Information related to the simulation performance (e.g., simulation execution time, etc.) |
| UnitofMeasurement | Units used in the schema (e.g., length in m, time in sec, etc.) |
Figure 4System Functions: (a) Resource Library, (b) Factory Layout Design Tool, (c) Web-based 3D Visualization, (d) Design Review using VR, (e) Mobile Visualization, (f) Dashboard Screen.
Figure 5Application Case of the company “N”: (a) Die-Casting Machines, (b) CNC Machines, (c) 2D Chart Dashboard, (d) 3D Dashboard of Die-Casting Machines, (e) 3D Dashboard of CNC Machines, (f) Screenshot of Shop floor.
Figure 6Installed edge devices.
Figure 7Application Case of the company “K”: (a) Injection Molding Machines, (b) 3D model of Injection Molding Machines, (c) Integrated Dashboard of Shopfloor, (d) Work-through mode.
Comparison of file format.
| Type | Main Data | Size |
|---|---|---|
| Original CAD | History, Constraints, PMI, BREP, Attributes, Facets | |
| Lightweight file | PMI, Precise BREP, Attributes, LODs, Bounding Box | <30% |
| Proposed file | LOD, Tessellation, Attributes, Texture, Animation | <10% |