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Effect of Plastic Deformation of the Initial Components and Particle Size Reduction on the Structure and Properties of the PN85YU15-Ni Composite Material Produced by Spark Plasma Sintering

机译:初始成分的塑性变形和粒度降低对火花等离子体烧结产生的PN85Yu15-Ni复合材料的结构和性能的影响

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Structure and mechanical properties of the PN85YU15 - Ni composite materials obtained by spark plasma sintering were investigated. Two types of powder mixtures, namely, nickel mixed with coarse-grained nickel aluminide and nickel mixed with fine-grained nickel aluminide were used to obtain the composites. Nickel aluminide and nickel powders were taken in the ratio 7:3 respectively. The effect of the initial nickel aluminide particle sizes and plastic deformation due to the ball milling on the structure and mechanical properties of materials sintered at 1100°C and pressure of 40 MPa was determined. Plastic deformation and refining the initial intermetallic powder particle sizes leads to increasing the sintered material relative density to 95%. The tensile strength of the PN85YU15-Ni composite material obtained by sintering of the milled PN85YU15 powder and nickel in the ratio 7:3 was 1060 MPa. This value is almost twice as high as the tensile strength of the composite containing a no significant plastic deformed coarse-grained intermetallic compound powder (590 MPa), and three times higher than the tensile strength of the sintered nickel aluminide powder (380 MPa).
机译:研究了通过火花等离子体烧结获得的PN85Yu15 - Ni复合材料的结构和力学性能。使用两种类型的粉末混合物,即与粗粒镍铝化物混合的镍和与细粒镍铝化物混合的镍获得复合材料。镍铝和镍粉分别以7:3的比例拍摄。确定初始镍铝颗粒尺寸和塑性变形引起的球铣削的效果和在1100℃下烧结的材料的结构和机械性能和40MPa的压力下降。塑性变形和精制初始金属间化合物粉末粒度导致将烧结材料的相对密度增加至95%。通过烧结研磨的PN85Yu15粉末和镍比值7:3的镍铬的PN85Yu15-Ni复合材料的拉伸强度为1060MPa。该值几乎是含有无明显塑性变形粗粒化金属间化合物(590MPa)的复合材料的拉伸强度的两倍,并且比烧结镍铝化粉末(380MPa)的拉伸强度高三倍。

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