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首页> 外文期刊>Journal of Materials Processing Technology >The effect of temperature on strain-rate sensitivity in high strength Al-Mg alloy sheet
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The effect of temperature on strain-rate sensitivity in high strength Al-Mg alloy sheet

机译:温度对高强度铝镁合金薄板应变速率敏感性的影响

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摘要

Comprehensive experimental work performed to assess the temperature and strain-rate affected deformation behaviour of commercial AlMg6 type, 1.0 mm thick annealed sheet. Elevated temperature tension test performed at temperatures ranged from 25 to 300 ℃, and three cross-head rates, giving initial strain rates of ε{sub}1 = 6.7 × 10{sup}(-4) s{sup}(-1), ε{sub}2 = 6.7 × 10{sup}(-3) s{sup}(-1) and ε{sub}3 = 6.7 × 10{sup}(-2) s{sup}(-1). Steady state strain-rate sensitivity (SRS) parameters were calculated (m = d ln σ/d ln ε) for the strain-rate ratios of ε{sub}1/ε{sub}2 (1:10), ε{sub}2/ε{sub}3 (10:100). It was shown that in the tested AlMg6 alloy sheet the SRS is negative and decreasing type around the room temperature due acting the dynamic strain ageing (DSA). It becomes positive at higher temperatures when the DSA weakening. This transition temperature increases by strain rate. The monotonic increase of the SRS brought by temperature is assumed to be due the enhancement of dynamic recovery and it appeared to be independent on strain rate, except at 300 ℃. At 300 ℃ decreasing the strain rate brings considerable increase of the SRS. The experienced increase of the terminal m values from ~0.15 to ~0.4 for the applied strain-rate ratios of ε{sub}1/ε{sub}2 (1:10) and ε{sub}2/ε{sub}3 (10:100), respectively, is assumed to be the result of changing the deformation mechanism from recovery to diffusion-controlled solute drag. However, the performed research has shown that the attained increase of the SRS was not followed with appropriate ductility improvement. Analysis of the strain localization (necking) has shown that increasing the strain rate from 6.7 × 10{sup}(-4) to 6.7 × 10{sup}(-2) s{sup}(-1), the temperature brought softening can be compensated, and the process of strain localization (necking) shifted to higher strains.
机译:进行了全面的实验工作,以评估温度和应变率对1.0 mm厚的商用AlMg6型退火板的变形行为的影响。在25至300℃的温度范围内进行高温拉伸试验,并采用三个十字头速率,初始应变速率为ε{sub} 1 = 6.7×10 {sup}(-4)s {sup}(-1) ,ε{sub} 2 = 6.7×10 {sup}(-1)s {sup}(-1)和ε{sub} 3 = 6.7×10 {sup}(-2)s {sup}(-1) 。对于ε{sub} 1 /ε{sub} 2(1:10),ε{sub的应变率比,计算了稳态应变率灵敏度(SRS)参数(m = d lnσ/ d lnε) } 2 /ε{sub} 3(10:100)。结果表明,在测试的AlMg6合金薄板中,SRS为负值,并且由于动态应变时效(DSA)而在室温附近呈递减型。当DSA减弱时,它在较高温度下变为正值。该转变温度以应变速率增加。假设温度引起的SRS的单调增加是由于动态恢复的增强,除了在300℃以外,它似乎与应变速率无关。在300℃时降低的应变速率会引起SRS的显着增加。对于ε{sub} 1 /ε{sub} 2(1:10)和ε{sub} 2 /ε{sub} 3的应变率比,终端m值从〜0.15增大到〜0.4。 (10:100)分别假定是将变形机制从恢复更改为扩散控制的溶质阻力的结果。但是,进行的研究表明,SRS的增加并未得到适当延展性的改善。对应变局部化(颈缩)的分析表明,将应变率从6.7×10 {sup}(-4)增加到6.7×10 {sup}(-2)s {sup}(-1),温度使软化可以补偿,并且应变局部化(颈缩)过程转移到更高的应变。

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