期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
喷射成形LSHR合金原始颗粒边界形成及时效形核机理
1
作者 郭磊 徐轶 +4 位作者 吴超超 方鹏均 尹航博策 赵安龙 孙传水 《功能材料》 EI CAS CSCD 北大核心 2016年第3期163-169,共7页
原始颗粒边界(PPB)作为粉末高温合金3大缺陷之一受到广泛关注。本文对喷射成形LSHR高温合金中PPB形貌进行观察分析,探讨PPB的抑制方法,并在704℃下分别进行100,200,500和800h的时效处理,观察PPB形态演变及碳化物、强化相特征变化,探讨... 原始颗粒边界(PPB)作为粉末高温合金3大缺陷之一受到广泛关注。本文对喷射成形LSHR高温合金中PPB形貌进行观察分析,探讨PPB的抑制方法,并在704℃下分别进行100,200,500和800h的时效处理,观察PPB形态演变及碳化物、强化相特征变化,探讨长期时效PPB形核、生长机理。结果表明,喷射成形LSHR合金PPB析出相主要由碳氮化物、硼化物及少量大颗粒γ′组成。熔滴的激冷和Ti、Al、C、B等元素在表面富集是促使PPB形成的主要原因。经高温固溶处理能够消除PPB,但同时导致晶界强度降低。经长期时效处理,碳化物和γ′在热驱动力下重新形核,并发生长大,导致PPB加剧。 展开更多
关键词 喷射成形 lshr 原始颗粒边界 碳化物 长期时效
下载PDF
Hot deformation behavior of spray forming LSHR alloy using constitutive equation and processing map
2
作者 徐轶 汪杰 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2016年第4期1032-1043,共12页
Flow behaviors of spray forming low solvus high refractory (LSHR) alloy were investigated using hot compression tests performed on a Gleeble?3500 thermal mechanical simulator at temperatures of 1020?1150 °C and s... Flow behaviors of spray forming low solvus high refractory (LSHR) alloy were investigated using hot compression tests performed on a Gleeble?3500 thermal mechanical simulator at temperatures of 1020?1150 °C and strain rates of 0.0003?1.0 s?1. The constitutive equation was established, power dissipation (η) maps and hot processing maps were plotted. The microstructure evolution and dislocation distribution of domains with different values of η in power dissipation maps were also observed. The results show that the flow stress increases with decreasing temperature and increasing strain rate. The activation energy of the spray forming LSHR alloy is 1243.86 kJ/mol. When the value of η is 0.36 at the strain of 0.5, the domain in the processing map shows characteristics of typical dynamic recrystallization (DRX) and low dislocation density. According to the microstructure evolution and processing maps, the optimum processing condition for good hot workability of spray forming LSHR alloy can be summed up as:temperature range 1110?1150 °C; strain rate range 0.01?0.3 s?1. 展开更多
关键词 low solvus high refractory alloy flow behavior WORKABILITY power dissipation map processing map dynamic recrystallization
下载PDF
上一页 1 下一页 到第
使用帮助 返回顶部