[1]顾 浩, 孙建芳, 秦学杰, 等. 稠油热采不同开发技术潜力评价[J]. 油气地质与采收率, 2018(3): 112-116. Gu Hao, Sun Jianfang, Qin Xuejie, et al. Potential evaluation of different thermal-recovery technologies for heavy oil[J]. Petroleum Geology and Recovery Efficiency, 2018(3): 112-116. [2]贾江鸿. 热采井套损机理及套管强度优化设计[J]. 中国安全生产科学技术, 2011, 7(9): 121-125. Jia Jianghong. Casing failure mechanism of thermal production wells and casing strength optimization design[J]. Journal of Safety Science and Technology, 2011, 7(9): 121-125. [3]张 毅, 翟 勇, 姜泽菊, 等. 注汽工艺管柱对热采井套损的影响[J]. 石油机械, 2004, 32(2): 26-29. Zhang Yi, Zhai Yong, Jiang Zeju, et al. Influence of steam injection technology string on casing failure in thermal recovery wells[J]. China Petroleum Machinery, 2004, 32(2): 26-29. [4]王大为, 周耐强, 牟 凯. 稠油热采技术现状及发展趋势[J]. 西部探矿工程, 2008, 20(12): 129-131. Wang Dawei, Zhou Naiqiang, Mou Kai. Present situation and development trend of heavy oil thermal recovery technology[J]. West-China Exploration Engineering, 2008, 20(12): 129-131. [5]Крейн E B, 黄 鹂, 黄忠廉. 油田稠油热采技术综述[J]. 石油石化节能, 1997, 13(1): 9-10. Крейн E B, Huang Li, Huang Zhonglian. Review of heavy oil thermal recovery technology in oil field[J]. Energy Conservation in Petroleum and Petrochemical Industry, 1997, 13(1): 9-10. [6]罗全民, 张清军, 罗晓惠, 等. 稠油热采高效驱油技术应用研究[J]. 石油天然气学报, 2010(3): 361-363. Luo Quanmin, Zhang Qingjun, Luo Xiaohui, et al. Application of high efficiency oil displacement technology in heavy oil thermal recovery[J]. Journal of Oil and Gas Technology, 2010(3): 361-363. [7]魏文澜, 韩礼红, 王建国, 等. 10Cr3Mo钢与N80钢的高温力学性能[J]. 金属热处理, 2016, 41(2): 23-27. Wei Wenlan, Han Lihong, Wang Jianguo, et al. High temperature mechanical properties of 10Cr3Mo and N80 steels[J]. Heat Treatment of Metals, 2016, 41(2): 23-27. [8]魏文澜, 王 航, 韩礼红, 等. 80SH钢中温临界应力条件下的稳态蠕变速率与机理[J]. 金属热处理, 2019, 44(3): 27-31. Wei Wenlan, Wang Hang, Han Lihong, et al. Steady creep rate and mechanism of 80SH steel under intermediate temperature critical stress condition[J]. Heat Treatment of Metals, 2019, 44(3): 27-31. [9]卢小庆, 李 勤, 李春香. 高强度稠油热采井专用套管TP110H的开发[J]. 钢管, 2007, 36(5): 14-17. Lu Xiaoqing, Li Qin, Li Chunxiang. Development of TP110H Hi-strength special casing for service in thickened oil hot well[J]. Steel Pipe, 2007, 36(5): 14-17. [10]李亚欣, 刘雅政, 赵金锋, 等. P110级25MnV钢石油套管热处理工艺的优化[J]. 特殊钢, 2009, 30(6): 36-38. Li Yaxin, Liu Yazhen, Zhao Jinfeng, et al. Optimization of heat treatment process of P110 oil casing tube of steel 25MnV[J]. Special Steel, 2009, 30(6): 36-38. [11]王建军, 杨尚谕, 薛承文, 等. 稠油热采井套管柱应变设计方法[J]. 中国石油大学学报(自然科学版), 2017, 41(1): 150-155. Wang Jianjun, Yang Shangyu, Xue Chengwen, et al. Strain design method for casing strings in heavy oil thermal recovery well[J]. Journal of China University of Petroleum(Edition of Natural Science), 2017, 41(1): 150-155. [12]韩礼红, 谢 斌, 王 航, 等. 稠油蒸汽吞吐热采井套管柱应变设计方法[J]. 钢管, 2016, 45(3): 11-18. Han Lihong, Xie Bin, Wang Hang, et al. Strain-based design of casing strings for serving cyclic steam stimulation thermal well[J]. Steel Pipe, 2016, 45(3): 11-18. [13]冯耀荣, 韩礼红, 张福祥, 等. 油气井管柱完整性技术研究进展与展望[J]. 天然气工业, 2014, 34(11): 73-81. Feng Yaorong, Han Lihong, Zhang Fuxiang, et al. Research progress and prospect of oil and gas well tubing string integrity technology[J]. Natural Gas Industry, 2014, 34(11): 73-81. [14]Wei W, Feng Y, Han L, et al. Cyclic hardening and dynamic strain aging during low-cycle fatigue of Cr-Mo tempered martensitic steel at elevated temperatures[J]. Materials Science and Engineering A, 2018, 734: 20-26. [15]Wei W, Feng Y, Han L, et al. High-temperature low-cycle fatigue behavior of HS80H ferritic-martensitic steel under dynamic strain aging[J]. Journal of Materials Engineering and Performance, 2018, 27(12): 6629-6635. |