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Comparison of Flow Stress of Aluminum Alloy 6061-T6 Obtained From Chip Pulling Orthogonal Cutting and Kolsky Bar Testing

机译:芯片拉动正交切割和KOLSKY棒检测中铝合金6061-T6流量应力比较

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Machining can be used as a test for the flow stress of materials under conditions of high strain (ε > 1) and strain rate (10~2/s to 10~6/s). Constitutive models of metallic materials are conventionally obtained by dynamic compression tests such as the Split-Hopkinson (Kolsky) bar test at lower strain (ε < 0.3) and strain rate (10~3/s to 10~4/s). To compare the flow stress obtained from both tests under identical conditions, the strain in the primary shear zone (PSZ) in orthogonal cutting tests has been lowered using high rake angle (a = 45°) cutting tools to ε ~ 0.8, and by adding chip pulling to e ~ 0.5. To our knowledge this is the first time that flow stress estimates are obtained from machining at such low strain values. With some modifications, the strain in Kolsky bar testing has been increased up to ε = 0.8, and the stress-strain curve obtained is compared to flow stress estimates from orthogonal cutting tests under the same strain and similar strain rates. The results work, show for the first time, that the flow stress measured from cutting tests agree closely with those obtained from Kolsky bar testing.
机译:加工可用作在高菌株(ε1)和应变率(10〜2 / s至10〜6 / s)的条件下材料的试验。金属材料的本构模型通常通过动态压缩试验获得,例如在较低菌株(ε<0.3)和应变率(10〜3 / s至10〜4 / s)下的分离霍普金森(Kolsky)棒试验。为了比较从相同条件下的两种测试获得的流量应力,使用高耙角(a = 45°)切削工具到ε〜0.8,并通过加入来降低正交切割测试中的初级剪切区(PSZ)中的应变。芯片拉到e〜0.5。据我们所知,这是第一次在这种低应变值中加工获得流量估计。随着一些修改,KOLSKY棒检测中的应变已经增加到ε= 0.8,并且将获得的应力 - 应变曲线进行比较,以与相同的应变和类似的应变率下的正交切削测试的流量应力估计。结果工作首次出现,从切割测试中测量的流量应力与从Kolsky Bar测试中获得的那些相提并论。

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