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Constitutive behavior of as-cast aluminum alloys AA3104, AA5182 and AA6111 at below solidus temperatures

机译:固相线温度以下的铸造铝合金A33104,AA5182和A6111的本构行为

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摘要

Over the past decade thermomechanical models of the direct chill (DC) casting process have been developed in an effort to mitigate casting defects such as hot tearing as well as to develop a more scientific understanding of the thermal stress and strains which develop during the casting process. A key input to these models is the constitutive behavior of the material in the solid state under thermomechanical conditions that are typical of those experienced during DC casting (strain rates from 1 × 10~(-1) s~(-1) to 1 × 10~(-5) s~(-1) and temperatures from solidus down to room temperature). This research work presents use of an empirical model (the extended Ludwik equation) to predict the high and low temperature constitutive behavior of aluminum alloys in the solid state under deformation conditions relevant for DC casting. The effect of temperature, strain and strain rate has been studied for three commercially important alloys, namely: AA3104, AA5182 and AA6111. Material parameters used in the constitutive equation were calculated based on experimental measurements using a Gleeble 3500. To validate the constitutive equations developed, complex thermomechanical history tests were performed using the Gleeble 3500 that more closely resemble those experienced by the material during industrial DC casting. These measurements were then compared to the material response based on an ABAQUS finite element (FE) simulation of the test which modeled the material behavior using tabular data and included the effects of temperature, strain and strain rate. When using a commercial FE package such as ABAOJJS, it was found that strain softening needs to be considered in situations where the temperature is changing during the simulation. An empirical model was developed to account for strain softening which occurs during continuous cooling tests based on the measured work hardening parameter "n".
机译:在过去的十年中,已经开发出直接冷却(DC)铸造过程的热力学模型,以减轻铸造缺陷(例如热撕裂),并更科学地了解铸造过程中产生的热应力和应变。 。这些模型的关键输入是材料在热机械条件下的固态本构行为,这是直流铸造(从1×10〜(-1)s〜(-1)到1× 10〜(-5)s〜(-1),温度从固相线降至室温)。这项研究工作提出了使用经验模型(扩展的Ludwik方程)来预测与DC铸造相关的变形条件下固态铝合金的高低温本构行为。温度,应变和应变率的影响已经针对三种商业上重要的合金进行了研究,即:AA3104,AA5182和A6111。本构方程中使用的材料参数是根据使用Gleeble 3500进行的实验测量计算得出的。为了验证所开发的本构方程,使用Gleeble 3500进行了复杂的热机械历史测试,该测试与材料在工业DC铸造过程中所经历的更为相似。然后将这些测量结果与基于测试的ABAQUS有限元(FE)模拟进行的材料响应进行比较,该测试使用表格数据对材料的行为进行建模,并包括温度,应变和应变率的影响。发现使用诸如ABAOJJS之类的商业有限元分析软件包时,发现在模拟过程中温度变化的情况下需要考虑应变软化。开发了一个经验模型来解释应变软化,应变软化是基于测得的加工硬化参数“ n”在连续冷却测试期间发生的。

著录项

  • 来源
    《Materials Science and Engineering》 |2010年第30期|p.7812-7820|共9页
  • 作者

    Alankar Alankar; Mary A. Wells;

  • 作者单位

    Materials Engineering Department. Frank Forward Building, 309-6350 Stores Road, The University of British Columbia, Vancouver, B.C., Canada, V6T1Z4,Department of Microstructure Physics and Metal Forming, Max-Planck Institute for Iron Research, Max-Planck Str. 1, D- 40237 Dusseldorf, Germany;

    Materials Engineering Department. Frank Forward Building, 309-6350 Stores Road, The University of British Columbia, Vancouver, B.C., Canada, V6T1Z4,Mechanical and Mechatronics Engineering, University of Waterloo, Waterloo, Ontario N2L 3G1, Canada.;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    direct chill casting; constitutive behavior; aluminum alloys; gleeble 3500; extended ludwik equation;

    机译:直接冷铸;本构行为;铝合金3500;扩展的ludwik方程;

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