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White-box regression (elastic net) modeling of earth pressure balance shield machine advance rate

机译:地球压力平衡屏蔽机推进率的白盒回归(弹性网)建模

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摘要

This paper addresses the elastic net modeling of earth pressure balance shield machine (EPBM) advance rate for which there is no published physical model. Elastic net polynomial regression is employed to model the advance rate using data collected during the excavation of Sound Transit Northgate Link tunnels (N125) in Seattle, Washington, USA. The EPBM data was partitioned based on the geological profile to examine the influence of the soil type through which the EPBM was tunneling. The feature set for regression analyses included net thrust force, cutterhead rotation speed, conditioning foam flow rate, cutterhead torque, screw conveyor torques, as well as depths below ground surface and groundwater table. Third order polynomial models were able to model over 75% of the advance rate response on independent test data with normalized RMSE less than 20%. Using stratified sampling, only 10% of the EPBM data is required for model training to achieve these levels of accuracy and efficacy. Advance rate models were found to be considerably different across soil units indicating the soil type plays a significant role in EPBM response. The most influential parameters varied across soil types. Conditioning foam flow rate was the most important parameter in three of five soil units, while net thrust force and screw conveyor torque were the most influential features in two of five soil units. Partial dependence and individual conditional expectation analysis revealed that advance rate is positively related (increasing advance rate with increasing parameter value) and/or negatively related (decreasing advance rate with increasing parameter value) to varying degrees as a function of parameter value, all of which is strongly soil dependent.
机译:本文介绍了地球压力平衡屏蔽机(EPBM)的弹性净建模,没有公开的物理模型。弹性净多项式回归用于使用在美国华盛顿州西雅图的声音过境Northgate Link隧道(N125)的挖掘过程中收集的数据来模拟预先速率。基于地质型材分区EPBM数据,以检查土壤类型的影响,EPBM隧道隧道。用于回归分析的功能集包括净推力,切削刀头转速,调节泡沫流量,切割扭矩扭矩,螺旋输送机扭矩,以及地面和地下水台下方的深度。三阶多项式模型能够在独立的测试数据中造型超过75%的预先速率响应,归一化RMSE小于20%。使用分层采样,仅需要10%的EPBM数据来实现这些水平的准确性和功效。发现预先率模型在指示土壤类型在ePBM反应中发挥着重要作用的土壤单元相当不同。土壤类型中最有影响力的参数变化。调节泡沫流量是五个土单位中三个中最重要的参数,而净推力和螺旋输送机扭矩是五种土壤单元中最有影响力的特征。部分依赖性和个人有条件期望分析显示,前提率与参数值的增加(增加参数值的提高率增加了提前率)与参数值的函数,增加(将提前速率降低)呈正相关(增加提前速率)。依赖强烈的土壤。

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  • 来源
    《Automation in construction》 |2020年第7期|103208.1-103208.12|共12页
  • 作者单位

    Colorado Sch Mines Ctr Underground Construct & Tunneling Golden CO 80401 USA;

    Colorado Sch Mines Appl Math & Stat Golden CO 80401 USA;

    Colorado Sch Mines Ctr Underground Golden CO 80401 USA;

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  • 正文语种 eng
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