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首页> 外文期刊>Canadian Geotechnical Journal >Experimental investigation of pull loads and borehole pressures during horizontal directional drilling installations
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Experimental investigation of pull loads and borehole pressures during horizontal directional drilling installations

机译:水平定向钻井装置中的拉力和井眼压力的实验研究

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摘要

Installation loads during 19 commercial horizontal directional drilling (HDD) installations were monitored using new in-hole monitoring cell technology. Fifteen of these installations were part of an 8.3 km section of 203 mm diameter by 4 mm wall thickness steel gas distribution line. The predominant soil type was silty clay, and similar construction practices were employed for all installations. The resistance to pipe advancement within the bore was found to increase in an approximately linear manner, varying from 0.20 to 0.31 kN/m, with a mean of 0.26 kN/m and standard deviation sigma(x) = 0.03 kN/m. Local peaks caused by borehole curvature or borehole anomalies were found to dissipate, usually within 10 m, before the underlying linear trend resumed. The remaining four installations were evaluated to determine the relationship between measured pull head load and borehole pressure. The correlation observed provides new insight into the factors that contribute to pulling forces during HDD installations. Based on the findings, a conceptual framework is proposed for an improved HDD design model. The framework outlines two development stages: stage 1, based on tabulated measurements of pulling force per length of pipe inserted; and stage 2, involving significant modifications to an existing prediction model to better represent field conditions.
机译:使用新的井内监控单元技术监控了19个商业水平定向钻井(HDD)安装期间的安装负载。这些设备中有15个是8.3 km截面的一部分,该截面直径为203 mm,壁厚为4 mm的钢制气体分配管线。主要的土壤类型是粉质粘土,并且所有设施均采用类似的施工方法。发现对孔内管道前进的阻力以近似线性的方式增加,从0.20到0.31 kN / m不等,平均值为0.26 kN / m,标准偏差sigma(x)= 0.03 kN / m。在井下线性趋势恢复之前,通常会在10 m内消散由井眼弯曲或井眼异常引起的局部峰值。对其余四个装置进行了评估,以确定测得的拉头载荷与井眼压力之间的关系。观察到的相关性为在HDD安装期间导致拉力的因素提供了新的见解。基于这些发现,提出了用于改进的HDD设计模型的概念框架。该框架概述了两个开发阶段:第1阶段,基于每根插入管道的拉力的列表测量;第二阶段涉及对现有预测模型进行重大修改以更好地表示现场条件。

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