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用于原位燃烧的经等离子体处理的玄武岩纤维增强铝酸钙水泥的力学性能

Mechanical Properties of Calcium Aluminate Cement Reinforced with Plasma-Treated Basalt Fibers for In Situ Combustion.

作者信息

Zhang Hua, Cheng Xiaowei, Guo Jintang, Cai Jingxuan, Ni Xiucheng

机构信息

School of Chemical Engineering and Technology, Tianjin University, Tianjin 300350, P. R. China.

School of New Energy and Materials, Southwest Petroleum University, Chengdu 610500, China.

出版信息

ACS Omega. 2023 Jan 3;8(2):1864-1875. doi: 10.1021/acsomega.2c00617. eCollection 2023 Jan 17.

Abstract

Brittleness and poor tensile/flexural properties restrict the application of calcium aluminate cement (CAC) in oil and gas wells. Reinforcing CAC with fibers is an effective method for improving its strength and toughness and overcoming the shortcomings of its mechanical properties. In this article, as an auxiliary cementing material, slag does not affect the thickening time of CAC. After adding slag, the cement slurry meets the thickening time during cementing construction, and basalt fiber is selected as the toughening material. The enhancement effect of basalt fiber on the mechanical properties of CAC slag composites is studied, including the evaluation of the macroscopic mechanical properties and microstructure at a high temperature (500 °C). The optimum composition of basalt and fiber-reinforced CAC was determined. Basalt fibers were added to CAC at different contents of 0, 0.1, 0.2, 0.3, 0.4, and 0.5% based on the weight of the cement. All the results showed that the introduction of basalt fibers could significantly enhance the strength of the cement at high temperatures. Compared with the control samples, an additional increase in the compressive and tensile strengths of the samples of 35.1 and 85.2%, respectively, was achieved at high temperature with approximately 0.4% fiber content. Plasma treatment further improved the reinforcing effect of the basalt fibers, where the high-temperature compressive and tensile strengths of the samples increased from 28.88 and 1.52 to 35.23 and 1.87 MPa, respectively, an increase of 21.98 and 20.6%, respectively, compared with the untreated basalt fibers. When the cement paste is cured by simulated curing for 28 d, the high-temperature compressive strength and tensile strength with plasma modification increased from 28.26 and 1.5 to 29.1 and 2.15 MPa, respectively, an increase of 3.0 and 43.3%, respectively. The structure of the formed hydrates was studied using scanning electron microscopy. Furthermore, toughening of the basalt fiber-reinforced CAC-based composites resulted mainly from crack bridging and fiber pull-out.

摘要

脆性以及较差的拉伸/弯曲性能限制了铝酸钙水泥(CAC)在油气井中的应用。用纤维增强CAC是提高其强度和韧性并克服其机械性能缺点的有效方法。在本文中,矿渣作为辅助胶凝材料,不影响CAC的稠化时间。添加矿渣后,水泥浆在固井施工期间满足稠化时间,并且选择玄武岩纤维作为增韧材料。研究了玄武岩纤维对CAC矿渣复合材料力学性能的增强效果,包括在高温(500℃)下的宏观力学性能和微观结构评估。确定了玄武岩和纤维增强CAC的最佳组成。基于水泥重量,以0、0.1、0.2、0.3、0.4和0.5%的不同含量向CAC中添加玄武岩纤维。所有结果表明,引入玄武岩纤维可显著提高水泥在高温下的强度。与对照样品相比,在纤维含量约为0.4%时,高温下样品的抗压强度和抗拉强度分别额外提高了35.1%和85.2%。等离子体处理进一步改善了玄武岩纤维的增强效果,其中样品的高温抗压强度和抗拉强度分别从28.88和1.52MPa提高到35.23和1.87MPa,与未处理的玄武岩纤维相比,分别提高了21.98%和20.6%。当水泥浆通过模拟养护28d时,经等离子体改性的高温抗压强度和抗拉强度分别从28.26和1.5MPa提高到29.1和2.15MPa,分别提高了3.0%和43.3%。使用扫描电子显微镜研究了形成的水合物的结构。此外,玄武岩纤维增强的基于CAC的复合材料的增韧主要源于裂纹桥接和纤维拔出。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/81c8/9850753/4f5f6376183c/ao2c00617_0002.jpg

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