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Strain rate dependency of dynamic flow stress of FCC metals at very high strain rate and high temperature

机译:FCC金属动态流量应变依赖性在非常高的应变率和高温下的依赖性

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摘要

Strain rate sensitivity in FCC metals is known to increase dramatically when the strain rate exceeds about 5×10{sup}3/s. The phenomenon has been interpreted by transition in rate controlling mechanism of dislocation motion from thermal activation to viscous phonon drag. It is generally known that the phonon drag increases with temperature. Usually, however, the experimental flow stress in the viscous flow range shows opposite temperature dependency. In order to clarify the above contradiction andthe mechanism, high strain rate tests are performed for high-purity polycrystalline aluminum and copper in the strain rate range from about 1×10{sup}3~2×10{sup}4/s and at temperatures ranging up to 600K. A simplified model for the dislocation kineticsunder dynamic plastic deformation is used to consider the deformation mechanism in the above strain rate and temperature ranges. The flow stress calculated in consideration of the temperature dependency of the mobile dislocation density shows fairly goodagreement with the flow stress directly measured. The increase in mobile dislocation density with increasing temperature lowers the flow stress and shifts the transition region to the higher strain rate side.
机译:当应变速率超过约5×10 {sup} 3 / s时,已知FCC金属中的应变率灵敏度显着增加。通过从热激活到粘性声子阻力的脱位运动的速率控制机制的转变来解释该现象。通常已知声振阻力随温度增加。然而,通常,粘性流量范围中的实验流量应力显示相反的温度依赖性。为了澄清上述矛盾和机理,高应变速率测试对于高纯度的多晶铝和应变率的铜,其应变率范围为约1×10 {sup} 3〜2×10 {sup} 4 / s。温度范围高达600k。动态塑性变形的脱位动力学的简化模型用于考虑上述应变速率和温度范围的变形机制。考虑到移动位错密度的温度依赖性计算的流量应力显示了与直接测量的流量应力相当造成的。温度升高的移动位错密度的增加降低了流量应力并将过渡区域移位到更高的应变率侧。

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