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Wear Resistance of (Diamond-Ni)-Ti6Al4V Gradient Materials Prepared by Combined Selective Laser Melting and Spark Plasma Sintering Techniques

机译:通过组合选择性激光熔化和火花等离子体烧结技术制备(金刚石-NI)-Ti6A14V梯度材料的耐磨性和火花等离子体烧结技术

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An approach of sintering 3D metal printed lattices and diamond nickel-coated particles is proposed which can be used for the production of tunnel boring machine (TBM) cutters and mining equipment blades. Nickel-coated diamond particles are mixed with titanium powder and incorporated into a lightweight Ti6Al4V (3D printed) lattice with the help of spark plasma sintering (SPS) method. Effect of Ti6Al4V lattices size, diamond particles size, and nickel coating layer thickness on wear resistance of composites is discussed. Functionally graded lattice (FGL) structures were produced by selective laser melting (SLM) method, representing an increasingly growing additive manufacturing engineering area introduced in material engineering. Impact-abrasive tribo-device (IATD), scanning electron microscopy (SEM), X-ray diffraction (XRD), energy-dispersive spectroscopy (EDS), and optical surface profiler (OSP) were used to characterize samples. An ab initio design of diamond-metal composite is based on the improvement of impact and abrasive wear resistance of Ti6Al4V by adding diamond particles and by applying of gradient lattice structure. The specimen with larger size of the diamond particle and thicker Ni coating has better wear resistance. In addition, ANSYS software simulations were done to analyze the effect of the presence of 3D printed lattice via nonlinear finite element AUTODYN solver under impact test. Diamond-based gradient composite material produced by combined SLM-SPS methods can be applied in applications where resistance against impact-abrasive wear is important.
机译:提出了一种烧结3D金属印刷格子和金刚石镀镍颗粒的方法,可用于生产隧道镗床和采矿设备刀片。涂镍的金刚石颗粒与钛粉末混合,并借助于火花等离子体烧结(SPS)方法并入轻量级Ti6Al4V(3D印刷)格子。讨论了Ti6Al4V格子尺寸,金刚石颗粒尺寸和镍涂层厚度对复合材料的耐磨性的影响。通过选择性激光熔化(SLM)方法生产功能梯度晶格(FGL)结构,代表了材料工程中引入的越来越多的增长的添加剂制造工程领域。冲击磨料摩擦装置(IATD),扫描电子显微镜(SEM),X射线衍射(XRD),能量分散光谱(EDS)和光学表面分析器(OSP)用于表征样品。金刚石复合材料的AB初始设计基于加入金刚石颗粒的Ti6Al4V的抗冲击性和磨蚀性的改善,并通过施加梯度晶格结构来改进。具有较大尺寸的金刚石颗粒和较厚的Ni涂层的样品具有更好的耐磨性。此外,完成了ANSYS软件模拟,以通过冲击试验下通过非线性有限元AUTODYN求解器分析3D印刷格子的效果。通过组合的SLM-SPS方法生产的基于金刚石的梯度复合材料可以应用于抗冲击磨损耐磨性的抗性。

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