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Superplastic gas pressure forming of fine-grained AZ61 magnesium alloy sheet

机译:AZ61镁合金薄板的超塑性气压成型

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Superplastic deformation behavior of fine-grained AZ61 magnesium alloy sheet during equi-biaxial tensile deformation has been investigated. Thin circular diaphragms were successfully deformed into the hemispherical domes at 673 K in applied gas pressure range of 0.46-1.20 MPa. In this pressure range, average shell stress in range of 7-23 MPa and average deformation rate in range of 2 x 10~(-4) to 5 x 10~(-3) s~(-1) were imposed on the deforming hemisphere. The thickness profile of the resulting shape, which is sensitive to strain-rate sensitivity (m) and the extent of deformation, was examined and compared with the analytical model. For the low pressure condition (0.46 MPa) the forming process obeyed the model but not at high pressures (0.8 and 1.2 MPa). In the latter cases, according to the deformation mechanism map for Mg, the rate-controlling deformation mechanism changes from lattice diffusion (D_L) controlled GBS to D_L -controlled dislocation climb creep during the forming process due to dynamic grain growth. The extent of uniformity in thickness distribution is less than predicted by the theoretical model. The reduction of m-value resulted from this change of deformation mechanism.
机译:研究了细晶AZ61镁合金薄板在等双轴拉伸变形过程中的超塑性变形行为。在施加压力为0.46-1.20 MPa的情况下,薄的圆形隔膜在673 K下成功变形为半球形圆顶。在此压力范围内,变形施加的平均壳应力为7-23 MPa,平均变形速率为2 x 10〜(-4)至5 x 10〜(-3)s〜(-1)。半球。检查了对应变率灵敏度(m)和变形程度敏感的最终形状的厚度轮廓,并将其与分析模型进行了比较。对于低压条件(0.46 MPa),成型过程遵循模型,但在高压(0.8和1.2 MPa)下不遵循。在后一种情况下,根据Mg的变形机理图,由于动态晶粒长大,速率控制变形机理从晶格扩散(D_L)控制的GBS变为D_L控制的位错爬升蠕变。厚度分布的均匀程度小于理论模型所预测的程度。 m值的减小是由于这种变形机制的变化引起的。

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