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首页> 外文期刊>Intelligence: A Multidisciplinary Journal >Cyclic inelastic behavior and shakedown response of a 2nd generation nickel-base single crystal superalloy under tension-torsion loadings: Experiments and simulations
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Cyclic inelastic behavior and shakedown response of a 2nd generation nickel-base single crystal superalloy under tension-torsion loadings: Experiments and simulations

机译:张力扭转载荷下第二代镍基单晶高温合金的循环非弹性行为和升降响应:实验与仿真

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摘要

Nickel-base single crystal superalloy components are designed to experience extreme and often cyclic multiaxial loads. While much of the literature has provided the foundation to use these materials near critical yield conditions, their use under inelastic design, exploiting safe elastoplastic shakedown behaviors is largely unexplored. In particular, this paper focuses on establishing the conditions for the macroscopic shakedown response of a 2nd generation nickel-base superalloy under tension-torsion loadings from numerical and experimental perspectives. A numerical model is developed to more broadly evaluate shakedown limit loads and it is found that by allowing shakedown to occur, an 18% increase in feasible design load space is expected compared to traditional first-yield design criteria. Experiments on hollow cylindrical specimens are also conducted and used to assess the prediction capabilities of the numerical finite element model.
机译:镍基单晶超合金组件旨在体验极端且经常循环多轴载荷。 虽然大部分文献提供了在临界产量条件下使用这些材料的基础,但它们在无弹性设计下的使用,利用安全的弹性塑料展示的行为在很大程度上是未开发的。 特别是,本文侧重于在数值和实验视角下张紧扭转载荷下建立第2代镍基超合金的宏观升降响应的条件。 开发了一个数值模型,以更广泛地评估Shakedown限制载荷,并发现通过允许Shakedown发生,与传统的第一产量设计标准相比,预期可行的设计负载空间增加18%。 还进行了对空心圆柱形样品的实验,并用于评估数值有限元模型的预测能力。

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