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Flow Stress Behavior of AZ81 Magnesium Alloy under Dynamic Loads

机译:AZ81镁合金在动态载荷下的流量应力行为

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The performance of a structure depends on its material characteristics under various conditions of loadings, strain rate, and temperature, and therefore, it is necessary to understand these characteristics properly for the safe and reliable design of structures. In this paper, the flow stress behavior of AZ81 magnesium alloy is determined under tensile, compressive, and flexural loads at different strain rates and temperatures. An electromechanical universal testing machine of capacity 250 kN is used to perform quasi-static tests (0.0001-0.1 s~(-1)) under tension and compression; and three-point bending (flexure) tests using suitable fixtures at crosshead speeds (1-100 mm/min) for varying span lengths (80-160 mm) and orientations (flat and transverse) at room temperature, 25°C. The thermal and fracture behaviors of the alloy at various temperatures (25°C, 100°C, 150°C, and 200°C) are studied under quasi-static tension (0.001 s~(-1)). The heating rate of the tensile specimens is 20°C/min and the soaking time is 15 min. Dynamic tensile (850-1,400 s~(-1)) and compressive (1,900-3,300 s~(-1)) experiments are conducted using appropriate arrangements of Hopkinson bar systems. The effects of specimen geometry on the flow stress of the alloy are observed under compression. Ductility and toughness are determined to establish the energy dissipation capacity of the alloy. Fractographs of the fractured tensile specimens are studied by scanning electron microscope (SEM). Also, the applicability of the existing Cowper-Symonds and Johnson-Cook models in the aforementioned loading conditions is discussed.
机译:结构的性能取决于其在各种负载,应变速率和温度条件下的材料特性,因此,需要适当地了解这些特性,以确保安全可靠的结构设计。本文在不同应变率和温度下的拉伸,压缩和弯曲载荷下测定AZ81镁合金的流量应力行为。电容250 kn的机电通用试验机用于在张力和压缩下进行准静态测试(0.0001-0.1 s〜(-1));和三点弯曲(弯曲)使用合适的夹具在十字头速度(1-100mm / min)以不同的跨度长度(80-160mm)和室温(室温(平坦和横向),25°C时的方向(平坦和横向)测试。在准静态张力下研究各种温度(25℃,100℃,150℃和200℃)的合金的热和断裂行为(0.001 s〜(-1))。拉伸样品的加热速率为20℃/ min,浸泡时间为15分钟。使用适当的Hopkinson Bar系统进行动态拉伸(850-1,400 s〜(-1))和压缩(1,900-3,300 s〜(-1))实验。样品几何形状对压缩观察到合金的流量应力的影响。确定延展性和韧性以确定合金的能量耗散能力。通过扫描电子显微镜(SEM)研究了破碎拉伸样品的特征。此外,讨论了现有的Cowper-Symonds和Johnson-Cook模型的适用性在上述装载条件下。

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