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首页> 外文期刊>Materials Characterization >Microstructure control to improve creep strength of alumina-forming austenitic heat-resistant steel by pre-strain
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Microstructure control to improve creep strength of alumina-forming austenitic heat-resistant steel by pre-strain

机译:[r> r>]张制以提高铝形成奥氏体耐热钢蠕变强度的组织控制

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摘要

At 700 degrees C and 200 MPa, the creep rupture time of W-containing alumina-forming austenitic heat-resistant (WAFA) steel increases from 1044 to 3119 h by pre-strain. Pre-strain introduces a lot of dislocation into the matrix and most of the dislocations remain stable to the end of creep without recovery and recrystallization. In addition, the dislocations have enabled secondary NbC and Laves phase to be uniformly distributed and refined. However, the dislocations lower grain boundary strength due to the coarsening of precipitates along grain boundaries Therefore, the increase in the creep rupture time in spite of deterioration of grain boundary strength is attributed to the dislocation strengthening and enhanced precipitation hardening within grains.
机译:在700℃和200MPa,含W含氧化铝 - 形成奥氏体耐热(WAFA)钢的蠕变破裂时间通过预余应菌株从1044-3119h增加。 预应力引入大量位错入基质中,大部分脱臼在不恢复和重结晶的情况下对蠕变结束保持稳定。 此外,脱位使次级NBC和Laves阶段能够均匀分布和精制。 然而,由于沿晶界沉淀物的沉淀物粗糙度,脱位较低的晶界强度,尽管晶界强度劣化的蠕变破裂时间的增加归因于晶粒内的位错强化和增强的沉淀硬化。

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