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首页> 外文期刊>Oxidation of Metals >Stress Analysis of the Steam-Side Oxide of Boiler Tubes: Contributions from Thermal Strain, Interface Roughness, Creep, and Oxide Growth
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Stress Analysis of the Steam-Side Oxide of Boiler Tubes: Contributions from Thermal Strain, Interface Roughness, Creep, and Oxide Growth

机译:锅炉管蒸汽侧氧化物的应力分析:热应变,界面粗糙度,蠕变和氧化物生长的贡献

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摘要

Stresses in the steam-side oxide of boiler tubes are evaluated based on analytical derivations and numerical simulations. With only thermal strain considered, analytical solutions of stress distribution are obtained for a cylindrical geometry representative of boiler tubes and a flat-plate geometry-a typical simplification assumed in the literature to represent boiler tubes with extremely thin oxide scale. In these analytical derivations, the substrate metal has finite dimensions or is assumed to be very thick. The solutions under the approximations of flat-plate geometry and very thick substrate are employed to examine the accuracy of various approximations adopted in the literature to analyze the stress distribution in boiler tubes. For more complicated situations where the contributions from thermal strain, interface roughness, creep of the oxide and metal, and oxide growth are considered, numerical simulations are performed for a cylindrical geometry to evaluate the stress distribution in boiler tubes. The simulation results reveal that: (1) the local radial stress at curved oxide-metal interfaces is enhanced by interface roughness with implications about interfacial crack growth; (2) contrary to the general belief that creep relieves the oxide stresses, creep may actually increase the stresses in the oxide due to different creep rates of the oxide and substrate metal; and (3) the geometrically induced oxide growth strain substantially increases the magnitudes of the hoop and axial stresses in the oxide. Based on the assumption that the failure of the oxide scales is caused by crack growth which is dominated by the stress intensity factor, damage maps are plotted directly using the hoop, axial, and radial stresses as the critical variables. Our work provides a quantitative understanding of the interactions between different thermomechanochemical processes and oxide scale failure in boiler tubes. Graphic
机译:基于分析衍生和数值模拟评估锅炉管的蒸汽侧氧化物中的应力。仅考虑了热应变,获得应力分布的分析解,用于锅炉管的圆柱形几何形状和平板几何形状 - 在文献中假设的典型简化,以表示具有极薄氧化物尺度的锅炉管。在这些分析衍生中,基板金属具有有限尺寸,或者假设非常厚。采用平板几何形状和非常厚的基板近似的溶液来检查文献中采用的各种近似的精度,以分析锅炉管中的应力分布。对于来自热应变,界面粗糙度,氧化物和金属的蠕变,蠕变和氧化物生长的贡献的更加复杂的情况,对圆柱形几何进行数值模拟,以评估锅炉管中的应力分布。仿真结果表明:(1)曲面氧化物 - 金属界面的局部径向应力通过界面粗糙度提高了关于界面裂纹生长的影响; (2)与蠕变缓解氧化物应力的一般信念相反,由于氧化物和衬底金属的不同蠕变速率,蠕变可能实际上增加氧化物中的应力; (3)几何诱导的氧化物生长株基本上增加了氧化物中环箍和轴向应力的幅度。基于氧化物尺度的故障是由由应力强度因子支配的裂缝生长引起的,损伤地图直接使用箍,轴向和径向应力作为临界变量绘制。我们的作品提供了对锅炉管中不同热机组织化学工艺和氧化物尺度失效之间的相互作用的定量理解。形象的

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