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Enhancement of uniform plastic deformation for pure titanium foils by applying pre-strain combining with resistance heating method for microforming

机译:通过施加与微铸件的预株组合施加预株组合来提高纯钛箔均匀塑性变形

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Pure titanium (Ti) is usually deformed at elevated temperatures due to its poor formability at room temperature (RT), resulting in its strength reduction after deformation. Applying pre-strain combining with resistance heating (RH) method, which can be conducted at one procedure, was proposed to enhance its plasticity in this work. The influence of the proposed process on tensile deformation of pure Ti foils with 50μm thick was investigated using a RH assisted tensile testing system. Full strain field was measured by a digital image correlation (DIC) system with laser speckles. Uniaxial tensile pre-strain ranging from 1% to 2% was applied at a low temperature of 160°C with relatively high nominal strain rates of 10?2and 10?1s?1. Then tensile tests were conducted at RT with a nominal strain rate of 10?3s?1. As results, although the ultimate tensile strength (UTS) slightly decreased with increasing pre-strain, the maximum decreasing rate was within 4%, indicating that the effect of pre-strain on UTS is negligible. The strain distribution analyzed from DIC was relatively uniform at UTS. Uniform elongation increased with increasing pre-strain. The maximum increasing rate achieved 36%. It is confirmed that the heating rate using RH for heating Ti foils with 50μm thick is about 340 times larger than that for heating Ti sheets with 1mm thick. The quick response of RH makes it possible for the application of the proposed process to mass production for manufacturing microparts.
机译:纯钛(Ti)通常在升高的温度下变形,由于其在室温(RT)的差,因此变形后的强度降低。提出施加与电阻加热(RH)方法的预株组合,该方法可以在一种过程中进行,以增强其在这项工作中的可塑性。采用RH辅助拉伸试验系统研究了所提出的方法对50μm厚的纯Ti箔的拉伸变形的影响。通过具有激光斑点的数字图像相关(DIC)系统测量全应变场。在低温为160℃的低温下施加1%至2%的单轴拉伸预菌以相对高的标称菌株为10?2和10?1S?1。然后在室温下进行拉伸试验,标称应变速率为10?3?1。结果结果,尽管随着菌株的增加略微降低了最终拉伸强度(UTS),但最大降低率在4%范围内,表明,菌株对UT的效果可忽略不计。从DIC分析的应变分布在UTS中相对均匀。随着菌株的增加而增加,均匀伸长率增加。最大增加的速度取得了36%。确认使用RH加热Ti箔的加热速率比为50μm厚度的加热约340倍,用于加热1mm厚的Ti板。 RH的快速响应使得可以将所提出的方法应用于制造微粉的批量生产。

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