首页 | 本学科首页   官方微博 | 高级检索  
     检索      


The role of internal stresses on the plastic deformation of the Al–Mg–Si–Cu alloy AA6111
Authors:H Proudhon  X Wang  Y Bréchet
Institution:1. Department of Materials Engineering , The University of British Columbia , 309-6350 Stores Road, Vancouver BC V6T1Z4, Canada;2. Department of Material Science and Engineering , Master University , 1280 Main St. West, Hamilton ON L8S4L7, Canada;3. LTPCM , INP Grenoble , BP75, 38402, St. Martin d'Heres, France
Abstract:In this work, we have investigated the internal stress contribution to the flow stress for a commercial 6xxx aluminium alloy (AA6111). In contrast to stresses from forest and precipitation hardening, the internal stress cannot be assessed properly with a uniaxial tensile test. Instead, tension–compression tests have been used to measure the Bauschinger stress and produce a comprehensive study which examines its evolution with (i) the precipitation structure, and (ii) a wide range of applied strain. A large set of ageing conditions was investigated to explore the effect of the precipitation state on the development of internal stress within the material. It is shown that the Bauschinger stress generally increases with the applied strain and critically depends on the average radius of the precipitate and is thus linked to the shearable/non-shearable transition. Further work in the case of non-shearable particles shows that higher strain eventually leads to particle fracture and the Bauschinger stress then rapidly decreases. Following the seminal work of Brown et al. a physically based approach including plastic relaxation and particle fracture is developed to predict the evolution of the internal stress as a function of the applied strain. Knowing the main characteristics of the precipitation structure–such as the average precipitate radius, length and volume fraction–allows one to estimate accurately the internal stress contribution to the flow stress with this model.
Keywords:Bauschinger effect  dislocation storage  non-shearable precipitates  work hardening
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号