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Impression Creep Behavior of Zn-Sn High-Temperature Lead-Free Solders

机译:Zn-Sn高温无铅焊料的蠕变蠕变行为

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This study examines the microstructure and impression creep behavior of the high-temperature Zn-20 wt.%Sn, Zn-30 wt.%Sn, and Zn-40 wt.%Sn solders under constant punch stress in the range of 25 MPa to 300 MPa and at temperatures in the range of 298 K to 425 K. Analysis of the data showed that, for all loads and temperatures, the Zn-20Sn alloy had the lowest creep rates, and thus the highest creep resistance, among all materials tested. This is attributed to the lower volume fraction of the soft Sn-rich phase with a continuous morphology which acts as the matrix encompassing the harder Zn phase. The stress exponents and activation energies were in the range of 4.0 to 6.1 and 40.0 kJ mol−1 to 45.3 kJ mol−1, respectively. Based on the obtained stress exponents and activation energy data, it is proposed that dislocation climb is the controlling creep mechanism. However, the observed decreasing trend of creep activation energy with stress suggests that two parallel mechanisms of lattice-diffusion-controlled and pipe-diffusion-controlled dislocation climb are competing. Dislocation climb controlled by dislocation pipe diffusion is the controlling mechanism at high stresses, whereas climb of edge dislocations is the controlling mechanism at low stresses.
机译:这项研究研究了在25 MPa至25 MPa的恒定冲压应力下,高温Zn-20 wt。%Sn,Zn-30 wt。%Sn和Zn-40 wt。%Sn焊料的微观结构和压痕蠕变行为。 300 MPa,温度在298 K至425 K范围内。数据分析表明,在所有负载和温度下,Zn-20Sn合金在所有测试的材料中蠕变速率最低,因此其抗蠕变性最高。 。这归因于具有连续形态的软富锡相的较低体积分数,该形态充当包含较硬Zn相的基质。应力指数和活化能分别在4.0至6.1和40.0 kJ mol -1 至45.3 kJ mol -1 的范围内。根据获得的应力指数和活化能数据,提出位错爬升是控制蠕变的机制。然而,观察到的蠕变活化能随应力的下降趋势表明,晶格扩散控制和管扩散控制的位错爬升的两个平行机制是相互竞争的。由位错管扩散控制的位错爬升是高应力下的控制机制,而边缘位错的爬升是低应力下的控制机制。

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