Jiwon KimHee-Sub ParkJin-Hyeon ChoKee‐Ahn Lee
【This study investigates the microstructure and thermal shock properties of polycrystalline diamond compact (PDC) produced by the high-temperature, high-pressure (HPHT) process. The diamond used for the investigation features a $12{\sim}22{\mu}m$ - and $8{\sim}16{\mu}m$ -sized main particles, and $1{\sim}2{\mu}m$ -sized filler particles. The filler particle ratio is adjusted up to 5~31% to produce a mixed particle, and then the tap density is measured. The measurement finds that as the filler particle ratio increases, the tap density value continuously increases, but at 23% or greater, it reduces by a small margin. The mixed particle described above undergoes an HPHT sintering process. Observation of PDC microstructures reveals that the filler particle ratio with high tap density value increases direct bonding among diamond particles, Co distribution becomes even, and the Co and W fraction also decreases. The produced PDC undergoes thermal shock tests with two temperature conditions of 820 and 830, and the results reveals that PDC with smaller filler particle ratio and low tap density value easily produces cracks, while PDC with high tap density value that contributes in increased direct bonding along with the higher diamond content results in improved thermal shock properties.】
Min-Seok BaekHee-Sub ParkJaeil LeeKee‐Ahn Lee
Jiwon KimMin-Seok BaekHee-Sub ParkJin-Hyeon ChoKee‐Ahn Lee
Alex FangElena Castell PerezAlex GomezSong ZhouJason Sowers
Xiaohua ShaWen YueHaichao ZhangWenbo QinDingshun SheChengbiao Wang
Quézia Manuela Gonçalves LaurindoJoice Medeiros Borges RosaRenan da Silva GuimarãesSílvio Rainho TeixeiraLudiane Silva LimaYutao XingMarcello Filgueira