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Innovative Application of Geophysical Techniques for Design of Direct-Embedded Pole Structures

机译:地球物理技术在直埋杆结构设计中的创新应用

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This paper reports a Southern Company-wide research effort to develop a geophysical method (Spectral Analysis of Surface Waves, SASW) for determining the stability design of directly embedded pole structures. For transmission lines, directly embeding of pole structures is a rapid construction process. The conventional design approach recommends a 10% of pole height plus two feet embedment depth, but does not differentiate between pole types, design loads, or inherent soil stiffness and strength. This paper describes the SASW soil analysis and an analytical method for determining the moment equilibrium of a directly embedded pole. The SASW method relies on the generation of small-strain stress wave propagation through soil media utilizing non-intrusive equipment. The tests have proven to be relatively easy to conduct, and inexpensive when compared to soil borings. Hence, it is an ideal technique for rapid site characterization. The analytical method determines pole stability and soil strain by limiting the ground line deflection. The results from five field studies with different site conditions prove that the method makes accurate predictions of pole capacities when compared with actual pull tests.
机译:本文报告了南部公司范围内的研究工作,以开发一种地球物理方法(表面波谱分析,SASW)来确定直接埋入式杆结构的稳定性设计。对于传输线,直接嵌入杆结构是一个快速的施工过程。传统的设计方法建议杆高度的10%加上两英尺的嵌入深度,但不能区分杆类型,设计载荷或固有的土壤刚度和强度。本文介绍了SASW土质分析和一种确定直接埋入式杆矩平衡的分析方法。 SASW方法依靠利用非侵入性设备通过土壤介质传播小应变应力波来产生。与土壤钻孔相比,该测试已被证明相对容易进行且价格便宜。因此,这是用于快速站点表征的理想技术。该分析方法通过限制地线挠度来确定杆的稳定性和土壤应变。来自五个在不同现场条件下进行的现场研究的结果证明,与实际拉力测试相比,该方法可以准确预测极容量。

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