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Influence of spraying conditions on microstructures of Al-SiC p composites by plasma spraying

机译:喷涂条件对等离子喷涂Al-SiC p 复合材料微观结构的影响

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摘要

Air plasma spraying was used to produce Al-SiC p composites as electronic packaging material. Ballmilled Al with 55 and 75 vol. pct SiC powders was repeatedly deposited onto a graphite substrate, and then mechanically removed to get free-standing 100 × 100 mm composite plates of about 2-mm thickness. Different input electrical powers were employed at two spray distances of 100 and 120 mm. The SiC volume fraction and porosity in the sprayed composites were found to be dependent on spray conditions, especially input electrical power. Maximal SiC volume fraction can be obtained at a low input electrical power for the composite sprayed from the Al-55SiC powder and a high input electrical power for Al-75SiC powder. The variation of the SiC level in the composites with spray conditions and SiC size is discussed based on the characteristic of feedstock, the characteristic of deposited surface, and the heat and momentum transfer between particle and plasma flame. Pores in the sprayed composites were found inside one sprayed layer (inner-layer pore) and at the boundary between two sprayed layers (interlayer pore). The formation mechanisms of two types of pores are also explained. X-ray diffraction (XRD) and transmission electron microscopy (TEM) analyses indicate that Si phase is formed in the sprayed composites for most spray conditions. The Si resulted from the decomposition of SiC particles in high-temperature plasma flame.
机译:空气等离子喷涂用于生产Al-SiC p 复合材料作为电子包装材料。 55和75 vol。的球磨铝将pct SiC粉末重复沉积到石墨基板上,然后机械去除,以得到厚度约2 mm的独立式100×100 mm复合板。在100和120 mm的两个喷涂距离处采用了不同的输入电功率。发现喷涂复合材料中的SiC体积分数和孔隙率取决于喷涂条件,尤其是输入电功率。对于从Al-55SiC粉末喷涂的复合材料,在低输入电功率下,对于Al-75SiC粉末在高输入电功率下,可以获得最大的SiC体积分数。根据原料的特性,沉积表面的特性以及颗粒与等离子火焰之间的热和动量传递,讨论了复合材料中SiC含量随喷涂条件和SiC尺寸的变化。在喷涂复合材料中的毛孔位于一个喷涂层内部(内层孔)和两个喷涂层之间的边界(层间孔)。还解释了两种类型的孔的形成机理。 X射线衍射(XRD)和透射电子显微镜(TEM)分析表明,在大多数喷涂条件下,喷涂复合材料中会形成Si相。 Si是由SiC颗粒在高温等离子火焰中分解产生的。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2005年第9期|2471-2480|共10页
  • 作者单位

    National Laboratory of Advanced Composites Institute of Aeronautical Materials 100095 Beijing China;

    the Korea Institute of Machinery and Materials 641-010 Changwon Kyungnam Korea;

    the Korea Institute of Machinery and Materials 641-010 Changwon Kyungnam Korea;

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