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LASER POWDER DEPOSITION OF WC PARTICLE REINFORCED METAL MATRIX COMPOSITES

机译:WC颗粒增强金属基复合材料的激光粉末沉积

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Laser Powder Deposition (LPD) is an additive layered manufacturing process that can deposit nearnet shape parts directly from metal powder. Metal Matrix Composites (MMCs) combine the merits of ductile metal matrix and hard ceramic reinforcement, providing enhanced properties including hardness and wear resistance. MMCs can be easily implemented in LPD proces s via blending the powders during deposition of coatings and 3-D parts. However, cracks induced by thermal stress and material embrittlement limit the application of MMCs in direct LPD processes. This study experimentally investigated the mechanical properties of MMCs depos ited via LPD. Hardfacing alloy Stellite 6 and ductile alloy Inconel 718 were chosen as the matrix material, respectively, with spherical Tungsten carbide (WC) particles as the reinforcement. According to the experiment results, Inconel 718 was found to be a better choice for matrix material as it presented better compatibility with WC part icles with acceptable wear resistance. Influence of direct age heat treatment of Inconel 718 matrix on mechanical properties was also investigated. Tensile tests showed that addition of WC particles in the mat rix reduces both the ultimate strength and elongation. Microstructural observation of the tensile specimens indicated that WC particles are the preferable crack initiat ion sites, which significantly reduces the load-carrying capacity and ductility of the composite. Dissolution of WC into the matrix, which embrittles the matrix and further reduces the ductility of the composite, was proven by micro-hardness test and elemental analysis. Last, drying sliding test is conducted to evaluate the wear resistance of the MMCs. It was found that a small addition of WC part icles can significantly increase the wear resistance.
机译:激光粉末沉积(LPD)是一种添加剂分层制造的过程,可以直接从金属粉末沉积NEARNET形状的部件。金属基复合材料(MMC)的结合可延展的金属基体和硬质陶瓷加固的优点,提供了增强的性能,包括硬度和耐磨损性。金属基复合材料可以在LPD PROCES s可通过包衣和3-d部分的沉积过程中混合粉末容易地实现。然而,由热应力和材料脆化引起的裂缝限制直接LPD工艺的MMCs的应用。这项研究实验研究的MMC depos通过LPD资讯科技教育的机械性能。硬化面合金钨铬钴合金6和延性合金铬镍铁合金718被选择作为基质材料,分别与球形碳化钨(WC)颗粒作为加固。根据实验结果,因科镍合金718被发现是对基质材料是更好的选择,因为它呈现具有可接受的耐磨损性WC部分icles更好的兼容性。对机械性能的Inconel 718基体的直接时效热处理的影响也进行了研究。拉伸试验表明在垫RIX,添加WC颗粒的降低了的极限强度和伸长率。拉伸试样的显微组织观察结果表明WC颗粒是优选的裂纹in​​itiat离子位点,其显著降低了复合材料的承载能力和延展性。 WC溶解到基体中,其中所述脆化基质,并进一步降低了复合材料的延展性,通过微硬度测试和元素分析证实。最后,干燥滑动测试以评估该金属基复合材料的耐磨损性。结果发现,加入少量的WC部分icles能显著增加耐磨性。

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