Sensor Selection Framework for Designing Fault Diagnostics System
Amol Kulkarni1, Janis Terpenny2, Vittaldas Prabhu1
1Department of Industrial and Manufacturing Engineering, The Pennsylvania State University, State College, PA 16801, USA.
Sensors (Basel, Switzerland)
|October 13, 2021
Summary
Selecting the optimal number and specifications of sensors is crucial for accurate system health monitoring. This study introduces a new framework, OFCCaTS, to balance fault detection rates with sensor costs for complex engineered systems.
Area of Science:
- Engineering
- Systems Science
- Data Science
Background:
- Complex engineered systems and their manufacturing processes are increasingly intricate, posing risks of cascading failures.
- Effective health monitoring and prognostic maintenance are vital for ensuring the reliability and quality of these systems.
- Current sensor selection methods often overlook critical sensor specifications, limiting cost-effectiveness and accuracy.
Purpose of the Study:
- To address limitations in existing sensor selection approaches for complex engineered systems.
- To propose a novel method, OFCCaTS (Optimal Framework for Cost-Conscious sensor Configuration and Targeting), for sensor selection.
- To enhance system health monitoring accuracy while minimizing associated costs.
Main Methods:
- Developed a scalable multi-objective framework for sensor selection.
- Integrated sensor specifications and cost considerations into the selection process.
- Utilized a wind turbine gearbox as a case study to demonstrate the framework's efficacy.
Main Results:
- The OFCCaTS framework effectively balances maximizing fault detection rates with minimizing total sensor costs.
- Demonstrated the ability to select an optimal subset of informative sensors, avoiding redundancy.
- Successfully applied the framework to a real-world engineering system (wind turbine gearbox).
Conclusions:
- The proposed OFCCaTS method offers a significant improvement over existing sensor selection techniques.
- Optimizing sensor selection is key to cost-effective and accurate prognostic health management in complex systems.
- This framework provides a practical approach for designers to enhance system reliability and reduce operational expenses.
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