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3D printing of Fe-based bulk metallic glass composites with combined high strength and fracture toughness

机译:具有高强度和断裂韧性的Fe基块状金属玻璃复合材料的3D打印

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摘要

Additive manufacturing is a promising technique for the production of bulk metallic glass (BMG) components without size limitations. However, the current additive manufacturing technique encounters the challenge of micro-cracking induced by huge thermal stress during the process, which significantly degrades the mechanical performance of the components. Based on systematic experiments combined with finite element simulation, we revealed that micro-cracks in inherently brittle Fe-based metallic glass during selective laser melting (SLM) are triggered by highly concentrated thermal stress around micro-pores, which is difficult to avoid during SLM even by careful process optimization. To suppress these micro-cracks, Cu and Cu-Ni alloys with high toughness as second phases were introduced to form BMG composites. The results revealed that the generation of high density dislocations in second phases during SLM drastically reduce thermal stress by releasing strain energy and thus suppress micro-crack formation. Further investigation has shown that the introduction the second phase improves the fracture toughness of Fe-based BMGs to 47 MPa m(1/2), which is approximately 20 times higher than that of the Fe-based BMG (2.2 MPa m(1/2)). Our findings provide general guidelines for the SLM fabrication of bulk metallic glass composites with tunable mechanical performances, as well as large sizes and freeform geometries. (C) 2018 Elsevier Ltd. All rights reserved.
机译:增材制造是一种生产无尺寸限制的块状金属玻璃(BMG)组件的有前途的技术。然而,当前的增材制造技术遇到了在过程中巨大的热应力引起的微裂纹的挑战,这大大降低了部件的机械性能。通过系统实验和有限元模拟相结合,我们发现选择性激光熔化(SLM)期间固有脆性的铁基金属玻璃中的微裂纹是由微孔周围高度集中的热应力触发的,这在SLM期间很难避免甚至通过精心的过程优化。为了抑制这些微裂纹,引入具有高韧性的Cu和Cu-Ni合金作为第二相以形成BMG复合材料。结果表明,SLM过程中第二相中高密度位错的产生通过释放应变能而大大降低了热应力,从而抑制了微裂纹的形成。进一步的研究表明,第二相的引入将铁基BMG的断裂韧性提高到47 MPa m(1/2),比铁基BMG(2.2 MPa m(1 / 2))。我们的发现为具有可调节机械性能以及大尺寸和自由形状的大块金属玻璃复合材料的SLM制造提供了一般指导。 (C)2018 Elsevier Ltd.保留所有权利。

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