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水力发电学报 ›› 2024, Vol. 43 ›› Issue (5): 54-67.doi: 10.11660/slfdxb.20240506

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考虑监测数据时序特征和空间分布的堆石坝参数反演研究

  

  • 出版日期:2024-05-25 发布日期:2024-05-25

Study on parameter inversion of rockfill dams considering time series features and spatial distribution of monitoring data

  • Online:2024-05-25 Published:2024-05-25

摘要: 随着安全监测技术的发展,柔性智能位移计、管道机器人等新型监测技术逐步被用于堆石坝的安全监测。高堆石坝在其生命期内中积累了海量的监测数据,充分利用这些数据,开展参数反演分析,可以提高堆石坝数值模拟的准确性,有助于合理评估堆石坝安全性态。论文基于时间序列聚类从海量监测数据选择有代表性、多样性的测点组合,提取时序特征构造目标函数,反映堆石坝变形的时空演化特性,采用多目标优化算法进行堆石坝各分区的材料参数反演。与现有参数反演方法相比,本文方法能合理利用堆石坝大量监测数据,充分反映其在填筑、蓄水和运行过程中的变形发展和空间分布特性,基于反演分析的材料参数其计算沉降值与实测值吻合良好,能够显著提升参数反演的精度。

关键词: 堆石坝, 监测数据, 时序特征, 参数反演, 测点优选, 多目标优化

Abstract: With the advancement of safety monitoring technology, new technologies, such as the flexible intelligent displacement meter and pipeline robot, have been increasingly employed in the safety monitoring of rockfill dams. Over the lifespan of a high rockfill dam, an extensive amount of monitoring data has been accumulated. Using these data to conduct parameter inversion analysis can help enhance the accuracy of numerical simulations of rockfill dams and improve assessment of dam safety. This study develops a new method for using time series clustering to identify the representative and diverse sets of measurement points from the vast monitoring data. This method extracts time series features to construct an objective function that captures the spatiotemporal evolution characteristics of deformation in rockfill dams, and adopts a multi-objective optimization algorithm to perform material parameter inversion for each zone of the rockfill dam. Compared to the conventional methods of parameter inversion, it enables systematic use of a substantial amount of rockfill dam monitoring data, effectively capturing the deformation development and spatial distribution characteristics in the filling, impounding, and operational stages. The calculations of dam settlement obtained through the inversion analysis exhibit a favorable agreement with the measurements, demonstrating a significant improvement in the accuracy of parameter inversion.

Key words: rockfill dam, monitoring data, time series feature, parameter inversion, measuring point selection, multi-objective optimization

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