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Sinusoidal wave fit indexing of irreversible displacements for crackmeters monitoring of rockfall areas: test at Pietra di Bismantova (Northern Apennines, Italy)

机译:正弦波拟合裂解机监测不可逆位移的索引:在Pietra di Bismantova(意大利北亚平宁山脉)测试

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Temperature changes affect crackmeters monitoring on a daily and a seasonal basis. This is due to rock mass thermal dilatancy and to instrumental matters. The consequent widening closing cycles can mask small irreversible displacements that might be precursors of rock failures. Recently, Weber et al. (Cryosphere 11:567-583, 2017) have proposed a linear fit method between temperature and fracture opening in order to compute the irreversibility index as a metrics to rank irreversible displacements. However, such an approach requires temperature sensors coupled to crackmeters. In order to overcome these limits, we propose an alternative method for deriving a normalised Z-score irreversibility index. It is based on sinusoidal wave fit of cracks opening time series only; thus, it does not require temperature monitoring. The methodology has been tested using data recorded by a wireless sensor network installed at La Pietra di Bismantova rock slab composed of 14 crackmeters and thermometers monitoring potentially unstable rock masses. A comparison of results obtained using the method of Weber et al. (Cryosphere 11:567-583, 2017) and the sinusoidal approach shows that the latter is much less sensitive to the duration of the moving window used to derive the irreversibility index, making it a much more flexible tool for indexing irreversible displacements over short time periods. Moreover, as rapid high-magnitude temperature changes can also be the causal factor of irreversible displacements, their statistical relation with peaks of the Z-score irreversibility index has been investigated. Results have shown that, depending on which crack is examined, correlations between irreversibility peaks and antecedent extreme temperature variations are more or less relevant. In conclusion, we believe that the Z-score sinusoidal wave fit irreversibility index (Z(SFI)) can represent a useful metrics for indexing irreversible displacements in unstable blocks using crackmeters' datasets affected by temperature cycles at the daily and seasonal scale.
机译:温度变化每天和季节性的噼啪作响。这是由于岩石质量热膨胀和仪器事宜。随之而来的闭合循环可以掩盖可能是岩石故障前体的小不可逆位移。最近,Weber等人。 (冷冻圈11:567-583,2017)提出了温度和骨折开口之间的线性拟合方法,以将不可逆指数计算为测量不可逆位移的度量。然而,这种方法需要耦合到噼啪啪的温度传感器。为了克服这些限制,我们提出了一种替代方法,用于导出标准化的Z-得分不可逆性指标。它基于仅限裂缝开口时间序列的正弦波配合;因此,它不需要温度监测。使用安装在La Pietra di Bismantova岩石板上的无线传感器网络记录的数据测试了该方法,该数据由14个噼啪作响和温度计监控潜在不稳定的岩石。使用Weber等人的方法获得的结果比较。 (冰冻圈11:567-583,2017)和正弦方法表明,后者对用于导出不可逆性指数的移动窗口的持续时间不太敏感,使其成为在短时间内索引不可逆位移的更灵活的工具期间。此外,随着快速高幅度的温度变化也可以是不可逆位移的因果因素,研究了与Z-Score不可逆转指数的峰的统计关系已经研究过。结果表明,取决于检查哪个裂纹,不可逆峰值与前温度温度变化之间的相关性或多或少相关。总之,我们认为Z-Score正弦波拟合不可逆转指数(Z(SFI))可以代表使用受温度循环影响的不稳定块在不稳定的块中索引不可逆位移的有用度量。

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