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Constitutive modelling of high strength titanium alloy Ti-6Al-4 V for sheet forming applications at room temperature

机译:高强度钛合金Ti-6Al-4 V在室温下板材成形的本构模型

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To enable the design and optimisation of forming processes at room temperature the material behaviour of Ti-6Al-4 V needs to be accurately represented in numerical analysis and this requires an advanced material model. In particular, an accurate representation of the shape and size of the yield locus as well as its evolution during forming is important. In this study a rigorous set of experiments on the quasi-static deformation behaviour of a Ti-6Al-4 V alloy sheet sample at room temperature was conducted for various loading conditions and a constitutive material model developed. To quantify the anisotropy and asymmetry properties, tensile and compression tests were carried out for different specimen orientations. To examine the Bauschinger effect and the transient hardening behaviour in - plane tensile - compression and compression - tensile tests were performed. Balanced biaxial and plane strain tension tests were conducted to construct and validate the yield surface of the Ti-6Al-4 V alloy sheet sample at room temperature. A recently proposed anisotropic elastic-plastic constitutive material model, so-called HAH, was employed to describe the behaviour, in particular for load reversals. The HAH yield surface is composed of a stable component, which includes plastic anisotropy and is distorted by a fluctuating component. The key of the formulation is the use of a suitable yield function that reproduces the experimental observations well for the stable component. Meanwhile, the rapid evolution of the material structure must be captured at the macro - scale level by the fluctuating component embedded in the HAH model. Compared to conventional hardening equations, the proposed model leads to higher accuracy in predicting the Bauschinger effect and the transient hardening behaviour for the Ti-6Al-4 V sheet sample tested at room temperature. (C) 2015 Elsevier Ltd. All rights reserved.
机译:为了能够在室温下设计和优化成型工艺,需要在数值分析中准确表示Ti-6Al-4 V的材料性能,这需要先进的材料模型。尤其重要的是,准确描述屈服轨迹的形状和大小及其在成型过程中的演变非常重要。在这项研究中,针对各种载荷条件,对室温下的Ti-6Al-4 V合金薄板样品的准静态变形行为进行了严格的实验,并建立了本构材料模型。为了量化各向异性和不对称特性,针对不同的样本方向进行了拉伸和压缩测试。为了检查鲍辛格效应和在平面内拉伸-压缩和压缩-拉伸试验中的瞬态硬化行为。进行了平衡的双轴和平面应变拉伸试验,以构造和验证室温下Ti-6Al-4 V合金薄板样品的屈服面。最近提出了一种各向异性的弹塑性本构材料模型,即所谓的HAH,用于描述这种行为,特别是对于反向载荷。 HAH屈服面由稳定的成分组成,该成分包括塑性各向异性,并由于波动的成分而变形。制剂的关键是使用合适的屈服函数,该函数很好地再现了稳定成分的实验观察结果。同时,必须通过嵌入到HAH模型中的波动分量,在宏观尺度上捕捉材料结构的快速演变。与传统的硬化方程相比,该模型在预测室温下测试的Ti-6Al-4 V薄板样品的鲍辛格效应和瞬态硬化行为方面具有更高的准确性。 (C)2015 Elsevier Ltd.保留所有权利。

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