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Condition-based opportunistic maintenance strategy for multi-component wind turbines by using stochastic differential
Hongsheng Su1, Qian Cao2, Yuqi Li1
1School of Automation and Electrical Engineering, Lanzhou Jiaotong University, Lanzhou, 730070, China.
Scientific Reports
|January 29, 2024
Summary
This study introduces a new maintenance strategy for wind turbines to reduce high failure rates and costs. The Condition-Based Opportunistic Maintenance model optimizes upkeep by analyzing operational data and failure probabilities.
Area of Science:
- Engineering
- Reliability Engineering
- Maintenance Strategy
Background:
- Wind turbines operate in harsh environments, leading to high failure rates and maintenance costs.
- Complex component structures exacerbate reliability challenges in wind energy systems.
- Existing maintenance strategies often fail to adequately address the dynamic nature of wind turbine degradation.
Purpose of the Study:
- To develop a novel Condition-Based Opportunistic Maintenance strategy for wind turbines.
- To address the high failure rates and associated maintenance costs in wind turbine operations.
- To integrate operational time and equipment state for accurate failure rate prediction.
Main Methods:
- A stochastic differential equation model was developed to simulate harsh operating conditions and random disturbances using Brownian motion.
- A new failure rate model was established based on Weibull distribution, incorporating operating time and equipment state.
- Higher-Order Moment and Bayesian methods were employed for parameter estimation from monitoring data.
- Analysis of Time-Based Maintenance and Condition-Based Maintenance yielded opportunity and preventive maintenance thresholds.
Main Results:
- The study successfully derived opportunity and preventive maintenance threshold curves.
- A comprehensive Condition-Based Opportunistic Maintenance strategy was formulated.
- The proposed strategy demonstrated effectiveness in improving wind turbine maintenance through validated arithmetic examples.
Conclusions:
- The developed Condition-Based Opportunistic Maintenance strategy effectively addresses the challenges of high failure rates and costs in wind turbines.
- Integrating operational data and probabilistic models enhances maintenance planning and execution.
- The findings provide a robust framework for optimizing wind turbine reliability and operational efficiency.
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