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Microstructure and physical performance of laser-induction nanocrystals modified high-entropy alloy composites on titanium alloy

机译:钛合金上激光诱导纳米晶改性高熵合金复合材料的组织和物理性能

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Ultrafine nanocrystals (UNs) modified high-entropy alloy composites (HEACs) were fabricated by laser-melted deposition (LMD) of the yttria partially stabilized ZrO2 (YPSZ) and the FeCoCrAlCu mixed powders on the aviation turbine blade made of the additive manufacturing (AM) TC17 titanium alloy. Such HEACs exhibited the finer microstructure free of micro-crack under an action of YPSZ, also relative stable atomic group of UNs owned the short-range order was produced attached to such HEACs matrix. Formation mechanisms of the AiCu(2)Zr UNs, amorphous and the nanoscale icosahedral quasicrystals (I-phase) with five-fold symmetry in HEACs were explored extensively by mean of the high resolution transmission electron microscope (HRTEM); also, under the actions of these various phases, such laser-induction HEACs exhibited the better wear performance than that of the FeCoCrAlCu LMD high-entropy alloy. With SiB2 addition, lots of the one-dimensional nanostructure materials (nanorods) were produced, retained UNs can be easily reunited due to a surface effect, retarding growth of nanorods in a certain extent. This research may provide the essential theoretical and experimental basis to improve the quality of the laser 3D print composites. (C) 2016 Elsevier Ltd. All rights reserved.
机译:通过将氧化钇部分稳定的ZrO2(YPSZ)和FeCoCrAlCu混合粉末在增材制造(AM)制成的航空涡轮叶片上进行激光熔融沉积(LMD),制备了超细纳米晶体(UNs)改性的高熵合金复合材料(HEAC)。 )TC17钛合金。此类HEAC在YPSZ的作用下表现出更精细的无微裂纹的微观结构,并且在此类HEAC基质上还附着了具有短程有序的联合国相对稳定的原子团。通过高分辨率透射电子显微镜(HRTEM)广泛研究了五重对称的AiCu(2)Zr UNs,非晶态和纳米级二十面体准二十面体准晶体(I相)的形成机理;同样,在这些不同相的作用下,这种激光感应HEAC的磨损性能比FeCoCrAlCu LMD高熵合金的磨损性能更好。通过添加SiB2,可以生产出许多一维纳米结构材料(纳米棒),保留的UNs可以很容易地由于表面效应而重新结合,从而在一定程度上延迟了纳米棒的生长。该研究可为提高激光3D打印复合材料的质量提供重要的理论和实验基础。 (C)2016 Elsevier Ltd.保留所有权利。

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