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Fracture toughness modification by using a fibre laser surface treatment of a silicon nitride engineering ceramic

机译:通过对氮化硅工程陶瓷进行光纤激光表面处理来改善断裂韧性

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摘要

Surface treatment of a silicon nitride (Si3N4) engineering ceramic with fibre laser radiation was conducted\udto identify changes in the fracture toughness as measured by K1c. A Vickers macro-hardness indentation\udmethod was adopted to determine the K1c of the Si3N4 before and after fibre laser surface treatment. Optical and a\udscanning electron microscopy (SEM), a co-ordinate measuring machine and a focus variation technique were used\udto observe and measure the dimensions of the Vickers indentation, the resulting crack lengths, as well as the crack geometry within the as-received and fibre laser-treated Si3N4. Thereafter, computational and analytical methods\udwere employed to determine the K1c using various empirical equations. The equation K1c = 0.016 (E/Hv)1/2 (P/c3/2)\udproduced most accurate results in generating K1c values within the range from 4 to 6 MPa m1/2. From this it was\udfound that the indentation load, hardness, along with the resulting crack lengths in particular, were the most influential\udparameters within the K1c equation used. An increase in the near surface hardness of 4% was found with the Si3N4 in comparison with the as-received surface, which meant that the fibre laser-treated surface of the Si3N4 became harder and more brittle, indicating that the surface was more prone to cracking after the fibre laser treatment. Yet, the resulting crack lengths from the Vickers indentation tests were reduced by 37% for the Si3N4 which in turn led to increase in the K1c by 47% in comparison with the as-received surface. It is postulated that the fibre laser treatment induced a compressive stress layer by gaining an increase in the dislocation movement during elevated\udtemperatures from the fibre laser surface processing. This inherently increased the compressive stress within the\udSi3N4 and minimized the crack propagation during the Vickers indentation test, which led to the fibre laser radiated surface of the Si3N4 engineering ceramic to have more resistance to crack propagation.
机译:进行了用光纤激光辐射对氮化硅(Si3N4)工程陶瓷进行的表面处理,以鉴定通过K1c测量的断裂韧性的变化。采用维氏宏观硬度压痕\ udmethod来确定光纤激光表面处理前后Si3N4的K1c。使用光学和扫描电子显微镜(SEM),坐标测量机和焦点变化技术来观察和测量维氏压痕的尺寸,产生的裂纹长度以及内部的裂纹几何形状。接收和光纤激光处理的Si3N4。此后,采用计算和分析方法使用各种经验方程式确定K1c。等式K1c = 0.016(E / Hv)1/2(P / c3 / 2)\在生成4至6 MPa m1 / 2范围内的K1c值时得出最准确的结果。由此发现,压痕载荷,硬度以及特别是最终的裂纹长度是所使用的K1c方程中最有影响力的\ ud参数。与接收的表面相比,Si3N4的近表面硬度增加了4%,这意味着经过Si3N4的光纤激光处理的表面变得更硬,更脆,这表明该表面更容易被剥落。光纤激光处理后破裂。然而,维氏压痕测试得到的Si3N4裂纹长度减少了37%,与原来的表面相比,K1c增加了47%。据推测,通过在光纤激光器表面处理的升高的\高温下获得的位错运动的增加,光纤激光处理引起了压应力层。这固有地增加了\ udSi3N4内的压应力,并使维氏压痕测试期间的裂纹扩展最小化,从而使Si3N4工程陶瓷的光纤激光辐射表面对裂纹扩展具有更大的抵抗力。

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