Cai Jingxuan, Wang Mu, Zhou Shiming, Cheng Xiaowei
School of New Energy and Materials, Southwest Petroleum University, Chengdu, 610500, P. R. China.
Key Laboratory of Oil and Gas Reservoir Geology and Exploitation, Southwest Petroleum University, Chengdu, 610500, P. R. China.
ACS Omega. 2022 Apr 16;7(16):14148-14159. doi: 10.1021/acsomega.2c00717. eCollection 2022 Apr 26.
Under the condition of heavy oil thermal recovery, the cement sheath is easy to crack in the high temperature environment, resulting in the decrease of cement paste strength, which may further cause sealing failure and oil and gas production safety accidents. In this paper, the influence of graphite on the mechanical properties of cement paste under the simulated thermal recovery of heavy oil was studied, and its mechanism is explored by testing and analyzing the microstructure. The phase composition and microstructure of graphite-cement composites were determined by X-ray diffraction analysis (XRD) and scanning electron microscope (SEM), and the thermogravimetric analyzer (TG/DTG) was used to analyze the heat resistance of the graphite-cement composites. The results show that the addition of graphite significantly improved the strength and deformation resistance of the Class G oil well cement at high temperature (300, 400, and 500 °C) and low temperature (50 °C), and the optimal addition amount is 0.07%. The microscopic analysis shows that the incorporation of graphite promoted the formation of hydration products, and played a role in filling pores and reducing microcracks in cement pastes. At the same time, due to the better thermal conductivity of graphite, it can balance the internal thermal stress of the cement pastes and inhibit the strength decline of cement pastes under high temperature environments. The integrity of cement pastes was guaranteed through the mechanism of "crack deflection" and "crack bridging". The research results of this paper have presented a certain theoretical basis and new ideas for the development of cementing slurry systems in heavy oil thermal recovery wells.
在稠油热采条件下,水泥环在高温环境中易开裂,导致水泥浆强度下降,进而可能引发密封失效和油气生产安全事故。本文研究了石墨在模拟稠油热采条件下对水泥浆力学性能的影响,并通过对微观结构的测试与分析来探究其作用机理。采用X射线衍射分析(XRD)和扫描电子显微镜(SEM)确定石墨 - 水泥复合材料的相组成和微观结构,利用热重分析仪(TG/DTG)分析石墨 - 水泥复合材料的耐热性。结果表明,添加石墨显著提高了G级油井水泥在高温(300、400和500℃)和低温(50℃)下的强度和抗变形能力,最佳添加量为0.07%。微观分析表明,石墨的掺入促进了水化产物的形成,起到填充孔隙和减少水泥浆微裂缝的作用。同时,由于石墨具有较好的导热性,可平衡水泥浆内部的热应力,抑制高温环境下水泥浆强度的下降。通过“裂纹偏转”和“裂纹桥接”机制保证了水泥浆的完整性。本文的研究成果为稠油热采井固井水泥浆体系的发展提供了一定的理论依据和新思路。