An Experimental Study on Slurry Erosion Resistance of Single and Multilayered Deposits of Ni-WC Produced by Laser-Based Powder Deposition Process

被引:11
作者
Balu, Prabu [1 ]
Hamid, Syed [2 ]
Kovacevic, Radovan [1 ]
机构
[1] So Methodist Univ, RCAM, Dallas, TX 75205 USA
[2] Halliburton, Carrollton, TX 75006 USA
关键词
laser-based powder deposition; single and multilayered Ni-WC deposits; slurry erosion; WEAR-RESISTANCE; CORROSION BEHAVIOR; CAVITATION EROSION; MICROSTRUCTURE; COMPOSITES; ABRASION; SIZE;
D O I
10.1007/s11665-013-0620-1
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Single and multilayered deposits containing different mass fractions of tungsten carbide (WC) in nickel (Ni)-matrix (NT-20, NT-60, NT-80) are deposited on a AISI 4140 steel substrate using a laser-based powder deposition process. The transverse cross section of the coupons reveals that the higher the mass fraction of WC in Ni-matrix leads to a more uniform distribution through Ni-matrix. The slurry erosion resistance of the fabricated coupons is tested at three different impingement angles using an abrasive water jet cutting machine, which is quantified based on the erosion rate. The top layer of a multilayered deposit (i.e., NT-60 in a two-layer NT-60 over NT-20 deposit) exhibits better erosion resistance at all three tested impingement angles when compared to a single-layer (NT-60) deposit. A definite increase in the erosion resistance is noted with an addition of nano-size WC particles. The relationship between the different mass fractions of reinforcement (WC) in the deposited composite material (Ni-WC) and their corresponding matrix (Ni) hardness on the erosion rate is studied. The eroded surface is analyzed in the light of a three-dimensional (3-D) profilometer and a scanning electron microscope (SEM). The results show that a volume fraction of approximately 62% of WC with a Ni-matrix hardness of 540 HV resulting in the gouging out of WC from the Ni-matrix by the action of slurry. It is concluded that the slurry erosion resistance of the AISI 4140 steel can be significantly enhanced by introducing single and multilayered deposits of Ni-WC composite material fabricated by the laser-based powder deposition process.
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页码:3398 / 3413
页数:16
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