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Tensile and stress-rupture behavior of hafnium carbide dispersed molybdenum and tungsten base alloy wires

机译:碳化ha分散钼和钨基合金丝的拉伸和应力断裂行为

摘要

The tensile strain rate sensitivity and the stress-rupture strength of Mo-base and W-base alloy wires, 380 microns in diameter, were determined over the temperature range from 1200 K to 1600 K. Three molybdenum alloy wires; Mo + 1.1w/o hafnium carbide (MoHfC), Mo + 25w/o W + 1.1w/o hafnium carbide (MoHfC+25W) and Mo + 45w/o W + 1.1w/o hafnium carbide (MoHfC+45W), and a W + 0.4w/o hafnium carbide (WHfC) tungsten alloy wire were evaluated. The tensile strength of all wires studied was found to have a positive strain rate sensitivity. The strain rate dependency increased with increasing temperature and is associated with grain broadening of the initial fibrous structures. The hafnium carbide dispersed W-base and Mo-base alloys have superior tensile and stress-rupture properties than those without HfC. On a density compensated basis the MoHfC wires exhibit superior tensile and stress-rupture strengths to the WHfC wires up to approximately 1400 K. Addition of tungsten in the Mo-alloy wires was found to increase the long-term stress rupture strength at temperatures above 1400 K. Theoretical calculations indicate that the strength and ductility advantage of the HfC dispersed alloy wires is due to the resistance to recrystallization imparted by the dispersoid.
机译:在1200 K至1600 K的温度范围内,测定了直径为380微米的Mo基和W基合金丝的拉伸应变率敏感性和应力断裂强度。 Mo + 1.1w / o碳化f(MoHfC),Mo + 25w / o W + 1.1w / o碳化f(MoHfC + 25W)和Mo + 45w / o W + 1.1w / o碳化f(MoHfC + 45W),并评估了W + 0.4w / o碳化ha(WHfC)钨合金丝。发现所有研究的线材的拉伸强度具有正应变率敏感性。应变率依赖性随温度的升高而增加,并与初始纤维结构的晶粒扩展有关。碳化carbide分散的W基和Mo基合金比没有HfC的合金具有更好的拉伸和应力断裂性能。在高达1400 K的密度补偿基础上,MoHfC线材比WHfC线材具有更好的拉伸强度和应力断裂强度。在1400℃以上的温度下,在Mo合金线材中添加钨可提高长期应力断裂强度。 K.理论计算表明,HfC分散的合金丝的强度和延展性优势是由于分散质赋予的抗再结晶性。

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