...
首页> 外文期刊>Fortschritte der Physik >Design and Evaluation of a Low-Power Sensor Device for Induced Rockfall Experiments
【24h】

Design and Evaluation of a Low-Power Sensor Device for Induced Rockfall Experiments

机译:低功率传感器装置的诱导岩石实验的设计与评价

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Rockfalls have over the last decades become a serious and frequent hazard, especially due to larger variations in precipitation and temperatures, destabilizing rocky slopes in mountainous regions. Hence, civil engineers are applying the latest simulation tools to perform risk assessments and plan mitigation strategies. These tools are based on various models with many parameters that should be calibrated and evaluated with real-world in-field measurement data. In this paper, we present a rugged low-power multisensor node termed StoneNode that has been designed to acquire and log accurate inertial sensor measurements during induced in-field experiments with falling rocks. The node hosts low-power microelectromechanical system sensors with high dynamic ranges sampled up to 1 kHz, and provides a long battery lifetime of up to 56 h, enabling long-lasting field studies with a duration of several working days. Exhaustive in-field experiments have been carried out with several differently shaped rocks on typical terrain in the Swiss alpine region. The experiments comprise more than 100 induced tests with several heavy impacts of >400 g. This paper gives a detailed summary of these results, including unprecedented in situ data of rockfall trajectories and postexperimental validation where we compare simulated rockfall deposition distributions and motion traces with in-field measurements after calibration of the simulation module. Our results and experience gained infield confirm that the StoneNode is a reliable easy-to-use device, which greatly facilitates the data acquisition process. Further, the results obtained with the calibrated simulation tool show good quantitative and qualitative congruence with the experiments, further reaffirming our methodological approach.
机译:岩石在过去十年中有一个严肃而频繁的危害,特别是由于降水和温度的变化,荒谬的岩石坡在山区。因此,土木工程师正在应用最新的仿真工具,以进行风险评估和计划缓解策略。这些工具基于各种型号,具有许多参数,应使用现实世界的现场测量数据进行校准和评估。在本文中,我们介绍了一种被称为稳定的低功率多传感器节点,其被设计为在诱导岩石的现场实验期间获得和记录准确的惯性传感器测量。该节点托管低功率微机电系统传感器,具有高达1 kHz的高动态范围,并提供长达56小时的长电池寿命,使得持续时间持续几个工作日。在瑞士高山地区的典型地形上进行了详尽的现场实验。实验包含超过100种诱导的试验,具有> 400g> 400g的几个重击。本文给出了这些结果的详细摘要,包括岩石轨迹的原位数据,并在校正模拟模块校准后比较模拟的岩石沉积分布和运动痕迹。我们的结果和经验获得了Infield确认StoneNode是一种可靠的易用设备,这极大地促进了数据采集过程。此外,通过校准仿真工具获得的结果显示出良好的定量和定性与实验同一致性,进一步重申了我们的方法论方法。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号