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High Temperature Deformation and Crystallographic Orientation Distribution for an Al-Mg-Mn Alloy Sheet Worked by Continuous Cyclic Bending

机译:通过连续循环弯曲工作的Al-Mg-Mn合金板的高温变形和晶体取向分布

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High temperature deformation and Crystallographic orientation distribution of the Al-Mg-Mn sheet worked by the continuous cyclic bending (CCB) and the subsequent annealing have been investigated. The sheet consists of a coarse-grained surface and fine-grained center layers. The elongation to failure has a peak value at 713K at initial strain rates of 5.6×10{sup}(-4)s{sup}(-1) and 5.6×10{sup}(-3)s{sup}(-1) in both of as-received sample (OP) with fine grains and CCBent and annealed one (20P_A) with the coarse and the fine grains in spite of different microstructures. The m value decreases for 20P_A and increases for OP with increasing temperature. However, the increase of the m value is not correspondent to the change in the elongation. The deformation mechanism is discussed with relation to activation energy. The SEM micrographs of the original surfaces of tensile specimens deformed to failure reveal that at the relatively high temperatures many cracks are formed inside the coarse grains. The change in Crystallographic orientation distribution is investigated during tensile testing in consideration of the deformation mechanism.
机译:研究了由连续环状弯曲(CCB)的Al-Mg-Mn片材的高温变形和晶体取向分布和随后的退火。该薄片由粗粒表面和细粒度的中心层组成。失败的伸长率在5.6×10 {sup}( - 4)s {sup}( - 1)和5.6×10 {sup}( - 3)s {sup}( - 1)在具有含细粒的样品(OP)中,并且在诸多微观结构的情况下,用粗晶粒和粒子和粒子退火,并且粗晶粒在粗糙和细粒中退火。 M值降低20p_a,并随着温度的增加而增加。然而,M值的增加与伸长率的变化没有符。与激活能量有关讨论变形机制。拉伸试样的原始表面的SEM显微照片变形为衰竭显示,在相对高的温度下,在粗粒内形成许多裂缝。考虑到变形机制,在拉伸测试期间研究了晶体取向分布的变化。

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