混合模态条件下CSTBD应力场和强度因子的解析解

Q4 Earth and Planetary Sciences
N. A. Ghavidel, H. Memarian, Soheil Mohamadi, M. Heydarizadeh
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引用次数: 3

摘要

岩石在拉应力作用下破坏更快,因此岩石抗拉强度在爆破、岩石破碎、边坡稳定、水力压裂、盖层完整性、地热能开采等应用中具有重要意义。抗拉强度的测量有直接和间接两种方法。由于直接方法总是包含测试设置的困难,间接方法,特别是巴西试验,通常用于抗拉强度测量。从技术上讲,拉伸破坏归因于岩石中的裂纹扩展。断裂力学在确定裂纹行为和扩展模式方面具有重要的潜力。为了应用巴西试验,国际岩石力学学会(ISRM)建议采用裂纹盘的几何形状。因此,有必要对试件中心裂纹周围的应力场和应力强度因子(SIF)进行综合研究。本文采用位错法和复应力函数法两种方法,将叠加原理应用于直通式巴西盘(CSTBD)的裂纹问题。计算了裂纹尖端附近的应力场和SIF。利用该方法,可以预测结构裂纹起裂临界荷载的大小。该方法适用于任意长度和角度的任何裂纹。此外,还对巴西圆盘进行了数值模拟。最后,将解析解与数值模拟结果进行了比较,结果表明两种方法的结果相同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analytical Solution for Stress Field and Intensity Factor in CSTBD under Mixed Mode Conditions
Considering the fact that rocks fail faster under tensile stress, rock tensile strength is of great importance in applications such as blasting, rock fragmentation, slope stability, hydraulic fracturing, caprock integrity, and geothermal energy extraction. There are two direct and indirect methods to measure tensile strength. Since direct methods always encompass difficulties in test setup, indirect methods, specifically the Brazilian test, have often been employed for tensile strength measurement. Tensile failure is technically attributed to crack propagation in rock. Fracture mechanics has significant potential for the determination of crack behaviour as well as propagation pattern. To apply Brazilian tests, cracked disc geometry has been suggested by the International Society for Rock Mechanics ISRM. Accordingly, a comprehensive study is necessary to evaluate stress field and stress intensity factor (SIF) around the crack in the centre of the specimen. In this paper, superposition principle is employed to solve the problem of cracked straight-through Brazilian disc (CSTBD), using two methods of dislocation and complex stress function. Stress field and SIF in the vicinity of the crack tip are then calculated. With the proposed method, the magnitude of critical load for crack initiation in structures can be predicted. This method is valid for any crack of any arbitrary length and angle. In addition, numerical modelling has been carried out for the Brazilian disc. Finally, the analytical solution has been compared with numerical modelling results showing the same outcome for both methods.
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来源期刊
International Journal of Mining and Geo-Engineering
International Journal of Mining and Geo-Engineering Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
0.80
自引率
0.00%
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0
审稿时长
12 weeks
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