...
首页> 外文期刊>Frattura e Integrita Strutturale >In-plane anisotropy in deformation micro-mechanism of commercially pure titanium during monotonic tension and cyclic loading
【24h】

In-plane anisotropy in deformation micro-mechanism of commercially pure titanium during monotonic tension and cyclic loading

机译:市售纯钛在单调张力和循环载荷作用下变形微观机制的面内各向异性

获取原文
   

获取外文期刊封面封底 >>

       

摘要

In the present investigation in-plane anisotropy in tensile and ratcheting behavior of cold rolled and annealed commercially pure titanium plate has been studied. Flat tensile and fatigue test specimen oriented at 0, 45, and 90 degree to the rolling direction in the rolling direction–transverse direction (RD–TD) plane of the plate has been machined out. Specimens with loading axis at 0, 45 and 90 degree to RD have been designated as 0T, 45T and 90T for tensile and 0R, 45R and 90R for fatigue. Owing to initial TD split basal texture of as received plate, 0T sample has crystallographic direction ??aligned with loading axis. It shows lowest yield strength but highest ductility in monotonic tension. Although ultimate tensile strength (UTS) and strain to failure of samples 45T and 90T are similar, the former has significantly lower yield strength than the latter, indicating different strain-hardening behavior due to different slip/twin activity. On the other hand, 0R sample exhibits longer ratcheting life while 90R sample accumulates highest ratcheting strain. This is attributed to higher propensity for twinning with the formation of intersecting multiple variant twins during cyclic deformation of 0R sample. Viscoplastic self-consistent (VPSC) simulations of one-cycle tension-compression-reload tension indicate that there is alternate activity of pyramidal slip and extension twinning during cyclic loading. This induces cross slip activity and detwinning of extension twins in 90R which causes rapid accumulation of strain leading to early failure.
机译:在本研究中,已经研究了冷轧和退火的商业纯钛板的拉伸和棘轮行为的面内各向异性。在板材的轧制方向-横向(RD-TD)平面上,以与轧制方向成0度,45度和90度的方向取向的平面拉伸和疲劳试验样品已经被加工出来。相对于RD的加载轴位于0、45和90度的标本被指定为0T,45T和90T(对于拉伸),0R,45R和90R(对于疲劳)。由于初始的TD分裂基体为接收板,0T样品的晶体学方向与加载轴对齐。它显示出最低的屈服强度,但在单调张力下具有最高的延展性。尽管样品45T和90T的极限抗拉强度(UTS)和断裂应变相似,但前者的屈服强度明显低于后者,表明由于不同的滑移/孪生活动而导致的不同的应变硬化行为。另一方面,0R样品具有更长的棘轮寿命,而90R样品具有最高的棘轮应变。这归因于较高的孪生倾向,即在0R样品的循环变形过程中,相交的多个变异双胞胎的形成。一周期张力-压缩-再加载张力的粘塑性自洽(VPSC)模拟表明,在循环加载过程中,锥体滑移和延伸孪生具有交替活动。这会引起交叉滑移活动和90R延伸双胞胎的解缠,从而引起应变的快速积累,从而导致早期失效。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号