Experimental Study on Yield Strength Variation Law of Casing Materials under Alternating Thermal–Mechanical Coupling Loads

Processes Pub Date : 2024-03-30 DOI:10.3390/pr12040708
Caihong Lu, Shangyu Yang, Jianjun Wang, Lihong Han, Xinbo Zhao, Yue Qi, Hui Zhang
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Abstract

Unconventional oil and gas reservoirs, characterized by low porosity and permeability, often require multistage fracturing techniques for development. The high-pressure fracturing fluids with large volumes can easily cause alternating changes in both temperature and pressure within the casing. Using a theoretical model and field data from hydraulic fracturing operations, this paper calculated the alternating ranges of axial loads and temperatures in the reservoir section. Based on the calculation results, the temperature–load alternating coupling test of the P110 casing was carried out, and the tensile test was performed to analyze the yield strength variation law of the casing material. The results indicate that the yield strength, ultimate strength, and elastic modulus of casing materials are decreased under alternating thermal–mechanical coupling conditions. As the number of alternating cycles increases, there is an initial rapid decrease followed by a slower declining trend. Moreover, the tension–tension (T–T) cycles induce greater reductions in yield strength and ultimate strength than tension–compression (T–C) cycles. Meanwhile, under the same axial load condition, the higher the circulating temperature, the more significant the reduction in yield strength and ultimate strength. In essence, this is the result of the coupling effect of low-cycle fatigue and temperature aging. Finally, based on the experimental data, a yield strength prediction model of the P110 casing under the alternating thermal–mechanical coupling condition was established. The research results provide theoretical guidance for the safe design and material selection of a casing string under multistage volumetric fracturing conditions of shale gas exploration.
热力-机械交变耦合载荷下套管材料屈服强度变化规律的实验研究
非常规油气藏的特点是孔隙度和渗透率低,通常需要采用多级压裂技术进行开发。大体积的高压压裂液很容易引起套管内温度和压力的交替变化。本文利用理论模型和水力压裂作业的现场数据,计算了储层段轴向载荷和温度的交变范围。根据计算结果,对 P110 套管进行了温度-载荷交变耦合试验,并通过拉伸试验分析了套管材料的屈服强度变化规律。结果表明,在热-机交变耦合条件下,套管材料的屈服强度、极限强度和弹性模量均有所下降。随着交替循环次数的增加,最初会出现快速下降,随后呈缓慢下降趋势。此外,与拉伸-压缩(T-C)循环相比,拉伸-拉伸(T-T)循环导致屈服强度和极限强度的降低幅度更大。同时,在相同的轴向载荷条件下,循环温度越高,屈服强度和极限强度的降低幅度越大。本质上,这是低周疲劳和温度老化耦合效应的结果。最后,基于实验数据,建立了 P110 套管在热机械交变耦合条件下的屈服强度预测模型。研究成果为页岩气开采多级体积压裂条件下套管串的安全设计和材料选择提供了理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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