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Dependence of phase composition on dry sliding behaviour in nanocomposite TiBxNy thin films

机译:纳米复合TiB x N y 薄膜中相组成对干滑行为的依赖性

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TiBxNy thin films with different N contents were deposited using unbalanced magnetron sputtering at room temperature. Their structure, phase composition, hardness and dry sliding behaviour were investigated by X-ray diffraction, X-ray photoelectric microscopy, microindentation, pin on disc and scanning electron microscopy. The results indicated that the phase composition in TiBxNy thin films strongly depended on N content. Nanocrystalline (nc-) TiN was preferentially formed with incorporation of N into TiB0·65 till its mole fraction reached a maximum at ∼37 at.-%N. BN was promoted to be formed with further increasing N content. Both friction coefficient and wear rate strongly depended on phase composition rather than hardness. The friction coefficient was increased with increasing N content till its maximum, accompanying with the least amount of deformed wear debris, was achieved at the mole fraction maximum of nc-TiN. A decrease in friction coefficient was followed after formation of BN, accompanying with increasing amount of deformed wear debris. The wear rate showed an inverse trend. During wear procedure, adhesive and abrasive wears coexisted and wear debris was oxidised to form the debris comprising of various types of Ti and B oxides.
机译:在室温下使用不平衡磁控溅射沉积具有不同N含量的TiB x N y 薄膜。通过X射线衍射,X射线光电显微镜,显微压痕,销钉在盘上和扫描电子显微镜对它们的结构,相组成,硬度和干滑动行为进行了研究。结果表明,TiB x N y 薄膜的相组成强烈依赖于氮含量。优先将N掺入TiB 0·65 中形成纳米晶(nc-)TiN,直至其摩尔分数在〜37 at。%N处达到最大值。随着N含量的进一步增加,促进了BN的形成。摩擦系数和磨损率都很大程度上取决于相组成而不是硬度。摩擦系数随着N含量的增加而增加,直到在nc-TiN的摩尔分数最大时达到最大值,同时伴随最小量的变形磨损碎屑。 BN形成后,摩擦系数随之降低,同时伴随着变形磨损碎片数量的增加。磨损率呈反趋势。在磨损过程中,粘合剂磨损和磨料磨损共存,磨损碎屑被氧化形成包含各种类型的Ti和B氧化物的碎屑。

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