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Modular and Distributed Supervisory Control Framework for Intelligent Micro-Manufacturing Systems with Unreliable
Gaosen Dong1, Zhengfeng Ming1, Hesuan Hu1
1School of Electro-Mechanical Engineering, Xidian University, Xi'an 710071, China.
This study introduces a novel framework for intelligent micro-manufacturing systems (MMSs) to handle failures. The approach ensures fault-tolerant operations through distributed control and state detection, enhancing system reliability and scalability.
Area of Science:
- Manufacturing Engineering
- Control Systems Engineering
- Computer Science
Background:
- Increasing demand for scalable and reliable supervisory control in micro- and smart manufacturing.
- Limitations of conventional centralized or Petri net-based control methods for complex systems.
Purpose of the Study:
- To present a modular and distributed supervisory control integration framework for intelligent micro-manufacturing systems (MMSs) capable of handling event-level failures.
- To ensure fault-tolerant evolution of system behaviors through real-time local decisions.
- To provide a scalable and robust control layer for next-generation manufacturing architectures.
Main Methods:
- Development of a detector automaton for each subsystem to classify runtime states (Strictly robust, Recoverably robust, Non-robust).
- Implementation of distributed supervisors for real-time local decision-making.
- Quantitative comparisons and simulation studies to validate the framework's performance and scalability.
Main Results:
- The proposed automaton-based framework supports modular design and structural scalability.
- Robustness-detection cost scales approximately linearly with the summed sizes of local graphs, indicating good structural scalability.
- Simulation studies validate the framework's feasibility, scalability, and effectiveness in maintaining production cycle reachability.
Conclusions:
- The developed framework offers a robust and deployable control layer for intelligent micro-manufacturing integration.
- It demonstrates significant integration potential for micro-electro-mechanical systems (MEMS)-based production lines, micro-fabrication platforms, and smart factory environments.
- The approach overcomes limitations of traditional methods by enabling modularity and distributed decision-making for enhanced fault tolerance.
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