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首页> 外文期刊>Journal of Materials Science >Master sintering curves of nickel-titanium and nickel-titanium open-cell foams fabricated by spark plasma sintering
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Master sintering curves of nickel-titanium and nickel-titanium open-cell foams fabricated by spark plasma sintering

机译:镍钛和镍钛开放式电池泡沫的主烧结曲线,由火花等离子烧结制造

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Master sintering curves (MSCs) were developed for monolithic nickel-titanium (NiTi) and composite NiTi-copper specimens densified by spark plasma sintering (SPS) to efficiently establish the density-process parameter relationship. NiTi-copper specimens simulated the porogen (a.k.a. space holder) replication technique used to fabricate NiTi open-cell foams. The effect of copper porogens on the densification behavior of NiTi powder was examined through the comparison of the generated MSCs. Several additional monolithic NiTi specimens and a NiTi open-cell foam specimen were sintered isothermally to verify the accuracy of the generated MSCs. The experimental data indicated the copper porogens had little-to-no effect on the densification behavior of NiTi powder. Using an apparent activation energy of 201 kJ mol(-1), both MSCs were able to predict the final density of the validation specimens within 1.2%. The current study demonstrated the successful application of the MSC concept to the SPS of monolithic NiTi and composite NiTi-copper specimens enabling accurate predictions of final specimen density based on any arbitrary time-temperature sintering profile. This efficient mapping of the density-process parameter space has eliminated the trial-and-error methodology typically used and has resulted in significant savings of time, energy, and raw materials.
机译:掌握烧结曲线(MSCs)是为单片镍 - 钛(NITI)和通过火花等离子体烧结(SPS)而致密化的复合NITI-铜样品,以有效地建立密度处理参数关系。 NITI-COPPER标本模拟了用于制造NITI开孔泡沫的孔子(A.K.A.空间夹持器)复制技术。通过对产生的MSCs的比较,检查了铜散孔对NITI粉末致密化行为的影响。若干额外的单片NITI标本和NITI开孔泡沫样品被烧结等温,以验证产生的MSC的精度。实验数据表明,铜弥孔对NITI粉末的致密化行为几乎没有影响。使用201 kJ mol(-1)的表观激活能量,两种MSC都能够预测验证标本的最终密度在1.2%之内。目前的研究证明了MSC概念的成功应用于单片NITI和复合NITI-铜样本的SP,从而能够基于任何任意时间温度烧结型材的最终样本密度的精确预测。这种有效的密度 - 过程参数空间映射已经消除了通常使用的试验和误差方法,并导致了时间,能量和原料的显着节省。

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