Capponi Lorenzo, Tribbiani Giulio, Medici Vittoria, Fabri Sara, Prato Andrea, Castellini Paolo, Schiavi Alessandro, Paone Nicola, Rossi Gianluca
Department of Industrial Engineering and Mathematical Sciences, Polytechnic University of Marche, Via Brecce Bianche 12, 60128 Ancona, Italy.
Department of Industrial Engineering, University of Perugia, Via G. Duranti 93, 06125 Perugia, Italy.
Sensors (Basel). 2024 Dec 17;24(24):8050. doi: 10.3390/s24248050.
Turbomachinery engines face significant failure risks due to the combination of thermal loads and high-amplitude vibrations in turbine and compressor blades. Accurate stress distribution measurements are critical for enhancing the performance and safety of these systems. Blade tip timing (BTT) has emerged as an advanced alternative to traditional measurement methods, capturing blade dynamics by detecting deviations in blade tip arrival times through sensors mounted on the stator casing. This research focuses on developing an analytical model to quantify the uncertainty budget involved in designing a calibration setup for BTT systems, ensuring targeted performance levels. Unlike existing approaches, the proposed model integrates both operational variability and sensor performance characteristics, providing a comprehensive framework for uncertainty quantification. The model incorporates various operating and measurement scenarios to create an accurate and reliable calibration tool for BTT systems. In the broader context, this advancement supports the use of BTT for qualification processes, ultimately extending the lifespan of turbomachinery through condition-based maintenance. This approach enhances performance validation and monitoring in power plants and aircraft engines, contributing to safer and more efficient operations.
由于涡轮机和压缩机叶片中的热负荷与高振幅振动相结合,透平机械发动机面临重大故障风险。准确的应力分布测量对于提高这些系统的性能和安全性至关重要。叶片尖端定时(BTT)已成为传统测量方法的一种先进替代方案,通过安装在定子壳体上的传感器检测叶片尖端到达时间的偏差来捕捉叶片动态。本研究的重点是开发一个分析模型,以量化为BTT系统设计校准装置时所涉及的不确定性预算,确保达到目标性能水平。与现有方法不同,所提出的模型整合了运行变异性和传感器性能特征,为不确定性量化提供了一个全面的框架。该模型纳入了各种运行和测量场景,以创建一个准确可靠的BTT系统校准工具。在更广泛的背景下,这一进展支持将BTT用于鉴定过程,最终通过基于状态的维护延长透平机械的使用寿命。这种方法增强了发电厂和飞机发动机中的性能验证和监测,有助于实现更安全、更高效的运行。