混合等离子喷涂沉积热敏材料的新方法

T. Tesar, R. Mušálek, F. Lukáč, J. Dudik
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引用次数: 0

摘要

混合等离子喷涂技术通过向等离子射流中同时注入干燥的粗粉和液体原料,得到了一种新型的涂层微观结构。这种微观结构既包含来自常规干粉的大片状物,也包含来自液体的精细分散的微型片状物。这种方法可以从几乎所有传统上使用等离子喷涂处理的材料中制备涂层。然而,即使使用这种概念,由于提供给所有要沉积的原料的高热能量,在高温下易分解的材料的掺入仍然具有挑战性。因此,我们提出了一种创新的方法,将热敏材料结合到使用高焓等离子炬喷涂的涂层中。作为一个案例研究,Al2O3从干燥的粗粉中喷射出来,MoS2从悬浮液中喷射出来,直接沉积在衬底上,即绕过热等离子体射流。利用扫描电子显微镜和x射线衍射分析了涂层中添加物质的保留情况。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Novel Approach to Deposit Thermally Sensitive Materials Using Hybrid Plasma Spraying
Hybrid plasma spraying has been proved to provide novel coating microstructures as a result of the simultaneous injection of a dry coarse powder and a liquid feedstock into the plasma jet. Such microstructure contains both large splats originating from the conventional dry powder and finely dispersed miniature splats deposited from the liquid. This approach enables preparation of coatings from virtually all materials which are conventionally processed using plasma spraying. However, incorporation of materials susceptible to decomposition at high temperatures is still challenging even using this concept due to the high thermal energy provided to all feedstocks to be deposited. Hereby, we propose an innovative approach of incorporation of thermally-sensitive materials into a coating sprayed using a high-enthalpy plasma torch. As a case study, Al2O3 was sprayed from dry coarse powder and MoS2 was sprayed from the suspension which was deposited directly onto the substrates, i.e., by-passing the hot plasma jet. The retention of the added material in the coating was evaluated using scanning electron microscopy and X-ray diffraction.
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