在,和合金的塑性变形过程中对弹性性能测量技术的比较研究:应用于弹模拟
J A Nietsch1, A C Ott1, G Watzl2
1LKR Light Metals Technologies, Austrian Institute of Technology, Lamprechtshausenerstr. 61, 5282 Ranshofen, Austria.
概括
由于应变依赖性,确定金属弹性模块具有挑战性. 这项研究比较了方法,发现激光超声波为初始弹性模块提供了更高的精度,和弦模块最适合模拟.
科学领域:
- 材料科学 材料科学 材料科学
- 机械工程 机械工程
- 固体力学 固体力学是什么
背景情况:
- 金属的弹性模量随着塑料的应变而降低,使准确的测量变得复杂.
- 对于弹性模块的现有拉力测试方法显示了差异.
- 了解这种应变依赖性对于材料表征和模拟至关重要.
研究的目的:
- 为了比较各种方法来确定在拉力变形过程中轻金属合金的弹性模块.
- 评估用于初始模量测量的不同技术的准确性和可重复性.
- 评估弹性模量减小对有限元弹性回弹模拟的影响.
主要方法:
- 在AZ31B,EN AW-6082和Ti-6Al-4V合金上进行了加载-卸载拉伸试验.
- 测量初始模是使用拉力测试,三点曲,激光超声波和压电超声波进行的.
- 在不同的测量技术中分析了依赖应变的弹性模块.
主要成果:
- 在测试方法中,在弹性模块的应变依赖性方面观察到显著差异.
- 激光超声波测量显示,轻金属板的初始弹性模块的精度和可重复性提高.
- 整合了弹性模块的减少,改进了有限元弹模拟.
结论:
- 方法的选择显著影响测量的弹性模块及其应变依赖性.
- 激光超声波是一种高度准确和可重复的技术,用于在轻金属板中确定初始弹性模量.
- 对于精确的有限元弹模拟,一般建议使用和弦模量.
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