AbstractThe effects of different cooling rates, as achieved by varying the interlayer time interval, o'/> Fatigue Behavior and Modeling of Additively Manufactured Ti-6Al-4V Including Interlayer Time Interval Effects
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Fatigue Behavior and Modeling of Additively Manufactured Ti-6Al-4V Including Interlayer Time Interval Effects

机译:疲劳行为和模型加上制造的Ti-6Al-4V,包括层间时间间隔效应

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摘要

AbstractThe effects of different cooling rates, as achieved by varying the interlayer time interval, on the fatigue behavior of additively manufactured Ti-6Al-4V specimens were investigated and modeled via a microstructure-sensitive fatigue model. Comparisons are made between two sets of specimens fabricated via Laser Engineered Net Shaping (LENS?), with variance in interlayer time interval accomplished by depositing either one or two specimens per print operation. Fully reversed, strain-controlled fatigue tests were conducted, with fractography following specimen failure. A microstructure-sensitive fatigue model was calibrated to model the fatigue behavior of both sets of specimens and was found to be capable of correctly predicting the longer fatigue lives of the single-built specimens and the reduced scatter of the double-built specimens; all data points fell within the predicted upper and lower bounds of fatigue life. The time interval effects and the ability to be modeled are important to consider when producing test specimens that are smaller than the production part (i.e., property–performance relationships).]]>
机译:<![cdata [ <标题>抽象 ara id =“par1”>通过不同的冷却速率的影响研究互连制造的Ti-6Al-4V样本的疲劳行为的层间时间间隔并通过微结构敏感的疲劳模型进行了模拟和建模。通过激光工程网整形(透镜)制造的两组样本之间的比较,通过沉积每个印刷操作的一个或两个样本来实现的层间时间间隔的差异。完全逆转,进行应变控制的疲劳试验,随后发生碎片失效。校准了微观敏感疲劳模型,以模拟两组样本的疲劳行为,并发现能够正确预测单构造标本的较长疲劳寿命和双构建标本的散射减少;所有数据点均落入预测的疲劳寿命的上下边界。在产生小于生产部分的试样(即属性 - 性能关系)时,需要考虑时间间隔效应和建模的能力是重要的。 ]]>

著录项

  • 来源
    《JOM》 |2017年第12期|共8页
  • 作者

    Brian Torries; Nima Shamsaei;

  • 作者单位

    Laboratory for Fatigue &

    Additive Manufacturing Excellence (FAME) Department of Mechanical Engineering Auburn University;

    Laboratory for Fatigue &

    Additive Manufacturing Excellence (FAME) Department of Mechanical Engineering Auburn University;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有色金属冶炼;金属学与金属工艺;
  • 关键词

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