含裂纹管道结构的三维应力强度因子数值仿真
Numerical Simulation of Three-Dimensional Stress Intensity Factor of Cracked Pipe Structure
DOI: 10.12677/IJM.2022.114010, PDF,   
作者: 钟启濠, 曾 伟, 陈振良, 张 熙:广东电网有限责任公司东莞供电局,广东 东莞;谢颍河:中国能源建设集团广东省电力设计研究院有限公司,广东 广州
关键词: 应力强度因子管道结构ANSYS有限元建模Stress Intensity Factor Pipe Structure ANSYS Finite Element Modeling
摘要: 含裂纹管道结构的应力强度因子对结构的安全评估至关重要,对于非穿透型裂纹来说,很难得到其理论解,必须采用数值仿真得到近似解。本文基于ANSYS软件给出了管道结构三维应力强度因子的数值建模方法,并利用含穿透型裂纹直管结构验证了本文方法的精度和可行性。进一步针对含非穿透型裂纹的弯管结构的三维应力强度因子进行了参数影响研究,分析了轴向及环向裂纹深度和长度对裂尖应力强度因子的影响规律。本文所建立的三维应力强度因子数值仿真方法可推广用于其它工程结构应力强度因子的计算评估。
Abstract: The stress intensity factor is very important to the safety evaluation of cracked pipe structures, and it is very hard to obtain the theoretical solution for part-through cracks, so numerical simulation is always employed to obtain the approximate solution. The present paper shows the numerical modeling approach for the three-dimensional stress intensity factor of pipe structure with ANSYS software, and the cracked straight pipe is employed to verify the accuracy and feasibility of the proposed approach. The influence of parameters on the three-dimensional stress intensity factor of elbow pipe structure with a part-through crack was investigated. The influence of depth and length of axial and radial part-through cracks on stress intensity factor was analyzed. The numerical simulation approach of the three-dimensional stress intensity factor proposed in this paper could be used for calculating and evaluating the stress intensity factor of other engineering structures.
文章引用:钟启濠, 曾伟, 陈振良, 张熙, 谢颍河. 含裂纹管道结构的三维应力强度因子数值仿真[J]. 力学研究, 2022, 11(4): 79-98. https://doi.org/10.12677/IJM.2022.114010

参考文献

[1] 白永强, 汪彤, 吕良海, 帅健, 孙亮, 陈钢. 油气管道内部轴向表面半椭圆裂纹弹塑性断裂分析[J]. 石油化工高等学校学报, 2009, 22(3): 71-74.
[2] 于培师, 赵军华, 郭万林. 三维损伤容限设计: 离面约束理论与疲劳断裂准则[J]. 机械工程学报, 2021, 57(16): 87-105.
[3] 王永伟, 林哲. 表面裂纹的三维模拟及应力强度因子计算[J]. 中国海洋平台, 2006, 21(3): 23-26.
[4] 伊军, 闻拓, 闫兴清, 喻健良. 内压作用下弯管环向穿透裂纹应力强度因子分析[J]. 机械设计与制造, 2013(8): 95-97.
[5] 喻健良, 闻拓, 闫兴清, 伊军. 直管外表面轴向半椭圆裂纹应力强度因子KI的有限元分析[J]. 化工装备技术, 2012, 33(1): 10-13.
[6] 鞠峰, 王和慧, 鞠鹏翔, 曹凯. 含轴向穿透裂纹的三通管道应力强度因子有限元分析[J]. 化工科技, 2014, 22(5): 36-41.
[7] 王冉, 李惠荣, 闻拓. 内压作用下斜接弯管纵向半穿透裂纹应力强度因子研究[J]. 化工装备技术, 2012, 33(4): 14-17.
[8] 于桂杰, 董校峰, 李建文. 直管道外表面斜裂纹应力强度因子有限元分析[J]. 石油矿场机械, 2016, 45(2): 26-31.
[9] 俞树荣, 吴艳萍, 荆炀. 表面裂纹的三维模型及应力强度因子计算[J]. 兰州理工大学学报, 2017, 43(1): 160-164.
[10] 贾旭, 胡绪腾, 宋迎东. 复杂载荷下偏心穿透裂纹应力强度因子的计算方法[J]. 航空动力学报, 2018, 33(6): 1464-1474.
[11] Subbaiah, A. and Bollineni, R. (2020) Stress Intensity Factor of Inclined Internal Edge Crack in Cylin-drical Pressure Vessel. Journal of Failure Analysis and Prevention, 20, 1524-1533.
[12] 帅健. 管线力学[M]. 北京: 科学出版社, 2010.