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Damage and fracture behaviours in advanced heat resistant materials during slow strain rate test at high temperature

机译:高温慢应变速率测试中高级耐热材料的损伤和断裂行为

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As a renewable energy resource, biomass or biomass co-firing in coal-fired power plants with high efficiency are desired which corresponding to elevated temperature and high pressure. An upgrade of the material performance to austenitic stainless steels is therefore required in order to meet the increased demands due to the higher temperature and the more corrosive environment. These materials suffer from creep and fatigue damage during the service. In this study, these behaviours are evaluated using slow strain rate testing (SSRT) with strain rate down to 1*10-6/s at temperature up to 700°C. The influence of temperature and strain rate on strength and ductility in one austenitic stainless steel and one nickel base alloys are investigated. The damage and fracture due to the interaction between moving dislocations and precipitates are studied using electron channelling contrast imaging (ECCI) and electron backscattering diffraction (EBSD). The deformation and damage mechanisms active during SSRT are essentially the same as under creep. The influence of dynamic strain ageing (DSA) phenomena that appears in the tested temperature and strain rate regime is also discussed, DSA is intensified by increased temperature and decreased strain rate.
机译:作为可再生能源,期望在燃煤发电厂中高效地燃烧生物质或生物质,这对应于高温和高压。因此,由于更高的温度和更腐蚀性的环境,需要将材料性能升级为奥氏体不锈钢,以满足日益增长的需求。这些材料在使用过程中会遭受蠕变和疲劳损伤。在这项研究中,使用慢应变速率测试(SSRT)在高达700°C的温度下应变速率低至1 * 10-6 / s的情况下评估了这些行为。研究了温度和应变速率对一种奥氏体不锈钢和一种镍基合金的强度和延展性的影响。使用电子通道对比成像(ECCI)和电子反向散射衍射(EBSD)研究了由于移动位错和沉淀物之间的相互作用而造成的破坏和断裂。 SSRT期间活动的变形和破坏机制与蠕变下的机制和破坏机制基本相同。还讨论了在测试的温度和应变速率范围内出现的动态应变老化(DSA)现象的影响,温度升高和应变速率降低会加剧DSA。

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