期刊文献+

基于TC/TGO/BC界面为理想余弦波形的新型涂层双管系统在热机载荷下的传热和应力分析

Thermal Transmit and Stress Analysis of a Novel Coated Steam Dual Pipe System Under Thermo-Mechanical Loading Based on Ideal Cosine Wave of TC/TGO/BC Interface
原文传递
导出
摘要 采用有限元顺次耦合的方法,开展了热机载荷作用下新型涂层双管系统传热和应力分析,初步研究了关键特征参量对系统传热和应力分布的影响。结果表明:在稳态工作条件下,热障涂层为主蒸汽管道提供了足够的隔热保护,但由温度梯度产生的热应力对系统结构完整性产生了很大影响;系统中环向应力远大于径向应力,最大环向应力出现在TGO/BC界面靠近TGO侧的余弦波峰处;此外,TC层厚度、TC层热膨胀系数、冷却蒸汽的温度和压力决定了系统的温度和应力分布。 Using a sequentially coupled simulation procedure, the thermal transfer and stress analysis of a novel coated steam dual pipe system under thermo-mechanical loading were carried out. The influences of key characteristic parameters on the temperature and stress distribution of the system were investigated. The results show that under steady state working conditions, the thermal barrier coating contributes to the effective thermal insulating protection for the primary steel pipe, but the thermal stress generated due to the significant temperature gradient has a significant impact on the structural integrity of the system. The hoop stress in the system is much larger than the radial stress, and the maximum hoop stress is located at the cosine peak of the TGO/BC interface near the TGO side. In addition, the thickness of the TC, the thermal expansion coefficient of the TC, and the temperature and pressure of the cooling steam determine the temperature and stress distribution of the system.
作者 郭晓峰 张开宇 秦磊 庞自强 Guo Xiaofeng;Zhang Kaiyu;Qin Lei;Pang Ziqiang(School of Mechanical Engineering,Inner Mongolia University of Science and Technology,Baotou 014010,China;Baotou No.1 Thermal Power Plant,China Huaneng Group Co.,Ltd,Baotou 014060,China)
出处 《稀有金属材料与工程》 SCIE EI CAS CSCD 北大核心 2022年第1期260-265,共6页 Rare Metal Materials and Engineering
基金 国家自然科学基金(51805274)。
关键词 涂层双管系统 有限元分析 热生长氧化物 coated steam dual pipe system finite element analysis thermally grown oxides
  • 相关文献

参考文献5

二级参考文献82

  • 1侯平均,王汉功,查柏林,袁晓静.界面粗糙度对双层热障涂层残余应力影响的数值模拟[J].热加工工艺,2007,36(7):82-85. 被引量:5
  • 2Evans A G, Mumm D, Hutchinson J et al. Progress inMaterials *SWe?ce[J],2001, 46: 520.
  • 3Mumm D, Evans A. Acta Materialia[J].2000, 48(8): 1820.
  • 4Cotterell B, Rice J. International Journal of Fracture[J], 1980, 16(2): 158.
  • 5Zhou B, Kokini K. Acta Materialia[J]. 2004, 52(14); 4192.
  • 6Zhou B, Kokini K. Materials Science and Engineering: A[J], 2003,348(1): 275.
  • 7Feng Xue(冯雪).Journal of Applied(应用物理)[J], 2012, 112(2): 023 502.
  • 8Wen Shunda(温顺达),Chen Liqiang(陈立强),Gong Shengkai (宫声凯)et al.稀有金 属材料与工程[J], 2007,36(6): 1013.
  • 9Wang Fenghui(王峰会),Wang Yongjun(王勇军),Wu Yingxi (吴应喜).稀有金属材 料与工程[J]. 2010,39(12): 2123.
  • 10Wang Hong(王洪),Zhang Kun (张坤),Chen Guangnan(陈 光南).金属热处理[J],2001,26(9): 45.

共引文献121

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部