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使用镍纳米浆料对连接镍基高温合金的剪切强度和微观结构形成的研究。

Investigation of Shear Strength and Microstructure Formation of Joined Ni Superalloys Using Ni Nanopastes.

作者信息

Sattler Benjamin, Hausner Susann, Wagner Guntram

机构信息

Group of Composites and Material Compounds, Chemnitz University of Technology, 09125 Chemnitz, Germany.

出版信息

Nanomaterials (Basel). 2022 Sep 15;12(18):3204. doi: 10.3390/nano12183204.

Abstract

By using Ni nanoparticles, the bonding of Ni base superalloys can be achieved with shear strengths well above 200 MPa in a joining process at comparatively low temperatures between 675 °C and 975 °C. This is enabled due to the high surface-to-volume ratio of nanoparticles, which leads to distinctly lower melting and sintering temperatures than those of the corresponding bulk material. The nanoparticles in this study are employed in high-metal nanopastes, whereby different chemical compositions of the pastes and different sizes of Ni nanoparticles were investigated. The results for the joining of Ni base superalloys showed that both size and composition had a significant influence on the achievable strengths. In addition, an extensive examination was conducted to reveal the influence of the process parameters joining temperature, holding time and joining pressure on the shear strengths as well as microstructure. It was shown that the temperature exerted the most influence on the strengths and the microstructure. The joining pressure also had a significant influence. The holding time, on the other hand, did not have a major influence on the strengths and in some cases even showed an unexpected behavior, as the values decreased for some combinations with longer holding time.

摘要

通过使用镍纳米颗粒,在675℃至975℃的相对低温连接过程中,镍基高温合金的连接能够实现,其剪切强度远高于200MPa。这是由于纳米颗粒的高比表面积,与相应的块状材料相比,这导致明显更低的熔化和烧结温度。本研究中的纳米颗粒用于高金属纳米浆料,从而研究了浆料的不同化学成分和不同尺寸的镍纳米颗粒。镍基高温合金连接的结果表明,尺寸和成分对可实现的强度都有显著影响。此外,还进行了广泛的研究,以揭示连接温度、保温时间和连接压力等工艺参数对剪切强度以及微观结构的影响。结果表明,温度对强度和微观结构的影响最大。连接压力也有显著影响。另一方面,保温时间对强度没有重大影响,在某些情况下甚至表现出意想不到的行为,因为对于一些保温时间较长的组合,强度值会降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fc19/9504630/c67cf7a49768/nanomaterials-12-03204-g001.jpg

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