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Enhancement of damage tolerance in Ti-6554 alloy through twinning and hetero-deformation induced strengthening synergy
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作者 FU Ming-zhu LUO Wei +7 位作者 LI Si-yun YAO Wen-xi PENG Shu-xian LIU Yi-kui LIU Ji-xiong ZHANG Ping-hui LIU Hui-qun PAN Su-ping 《Journal of Central South University》 2025年第3期744-759,共16页
Heterogeneous structure exhibits superiority in improving mechanical properties,whereas their effects on fatigue damage properties have rarely been studied.In this work,we employed a high-throughput gradient heat trea... Heterogeneous structure exhibits superiority in improving mechanical properties,whereas their effects on fatigue damage properties have rarely been studied.In this work,we employed a high-throughput gradient heat treatment method(757−857℃)to rapidly acquire the solution microstructure of the Ti-6554 alloy with different recrystallization degrees(0%,40%and 100%),followed by the same aging treatment.The results showed that theβ-hetero structure exhibited a yield strength(σ_(YS))of 1403 MPa,an increase of 6.7%,and a remarkable improvement in uniform elongation(UE)of 109.7%,reaching 6.5%,compared to the homogeneous structure.Interestingly,introducing a heterogeneous structure not only overcame the traditional trade-off between strength and ductility but also enhanced fatigue crack propagation(FCP)performance.During FCP process,β-hetero structure,through hetero-deformation induced(HDI)strengthening effects,promoted the accumulation of geometric necessary dislocations(GNDs)within coarseα_(S) phase,enabling faster attainment of the critical shear stress of twinning and increasing twinning density.This facilitated stress relief,improved plastic deformation in the crack tip zone,and increased the critical fast fracture threshold from 30.4 to 36.0 MPa·m^(1/2)showing an enlarged steady state propagation region.This study provides valuable insights on tailoring fatigue damage tolerance through heterogeneous structure for titanium alloys. 展开更多
关键词 ti-6554 alloy fatigue crack propagation hetero-deformation induced(HDI)strengthening deformation induced nano-scale twins
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热变形参数对Ti-6554合金流动软化行为的影响
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作者 王宇航 董显娟 +2 位作者 黄龙 张殿 吴轩轩 《精密成形工程》 北大核心 2023年第8期65-71,共7页
目的研究不同热变形参数下Ti-6554合金对应变速率敏感指数m、应变硬化指数n的影响。方法采用Gleeble-3500热模拟实验机,在变形温度为810~930℃、应变速率为0.001~10s^(-1)条件下,对Ti-6554合金进行等温恒应变速率热压缩实验。结果应变... 目的研究不同热变形参数下Ti-6554合金对应变速率敏感指数m、应变硬化指数n的影响。方法采用Gleeble-3500热模拟实验机,在变形温度为810~930℃、应变速率为0.001~10s^(-1)条件下,对Ti-6554合金进行等温恒应变速率热压缩实验。结果应变速率敏感指数m随应变速率的升高和变形温度的降低而减小,当真应变为0.9时,m在变形温度为930℃、应变速率为0.001 s^(-1)的条件下达到峰值,为0.43。应变硬化指数n随应变速率的升高呈先升高后降低的趋势,在高温区间(870~930℃)的软化程度较大。结论Ti-6554合金对变形温度、应变速率等热变形参数十分敏感,该合金的流动应力随着应变速率的升高和变形温度的降低而增大。分析微观组织可知,从应变速率敏感指数m角度考虑,该合金发生软化行为的最佳区域是变形温度为870~930℃、应变速率为0.001 s^(-1)。从应变硬化指数n的角度考虑,在变形温度为870~930℃条件下,Ti-6554合金在低应变速率区间(0.001~0.01 s^(-1))的软化行为以动态再结晶(DRX)为主,在高应变速率区间(0.1~10 s^(-1))的软化行为以动态回复(DRV)为主。 展开更多
关键词 ti-6554合金 热变形参数 软化行为 应变速率敏感指数 应变硬化指数
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