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Infiltration Mechanism in SiCp/Aluminum-Matrix Composite Prepared by Nonpressure

机译:无压制备SiCp /铝基复合材料的渗透机理

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Infiltration of liquid aluminum alloy onto SiC particles requires them to be in wet contact at a high temperature, i.e., wetting angle θ 90°. The chemical reaction between these substances also promotes wetting. The calculation shows that the interfacial reaction reduces the contact angle θ to 66°from more than 120°.It is found that the infiltration process can be roughly divided into the following four steps: (1) gestation, (2) infiltration for high-temperature alloy liquid into the SiC particles, (3) infiltration for high-temperature alloy liquid in tiny pores, and (4) solidification to form composite materials.The time of the gestation period is related to the temperature and the alloy composition. The gestation period of this experiment is approximately 28 minutes. The relationship between the infiltration depth and time is as follows: . Other relations are known between infiltration depth and particle size of ceramics, infiltration depth and temperature, critical pressure, ceramic particle size, etc. The solidification contraction between SiC and aluminum alloy vary greatly; a solidification method of faster cooling followed by slower cooling is thus determined, resulting in a better composite microstructure.View full textDownload full textKeywordsAluminum, Composite, Infiltration, Mechanism, Nonpressure, SiCRelated var addthis_config = { ui_cobrand: "Taylor & Francis Online", services_compact: "citeulike,netvibes,twitter,technorati,delicious,linkedin,facebook,stumbleupon,digg,google,more", pubid: "ra-4dff56cd6bb1830b" }; Add to shortlist Link Permalink http://dx.doi.org/10.1080/10426914.2010.537420
机译:液态铝合金向SiC颗粒的渗透要求它们在高温即湿角≤90°时处于湿接触。这些物质之间的化学反应也促进润湿。计算表明,界面反应将接触角α从120°以上降低至66°。发现渗透过程大致可分为以下四个步骤:(1)妊娠,(2)高渗透高温合金液体进入SiC颗粒,(3)渗入高温合金液体中的小孔中,以及(4)凝固形成复合材料。孕育时间与温度和合金成分有关。该实验的妊娠期约为28分钟。入渗深度与时间的关系如下:。陶瓷的渗透深度和粒度,渗透深度和温度,临界压力,陶瓷粒度等之间的其他关系也是已知的。SiC和铝合金之间的凝固收缩率相差很大;因此,确定了一种较快冷却然后较慢冷却的固化方法,从而获得了更好的复合材料微观结构。查看全文下载全文关键字铝,复合材料,渗透,机理,无压力,SiC相关变量add add_config = {ui_cobrand:“ Taylor&Francis Online”,services_compact ::“ citeulike,netvibes,twitter,technorati,美味,linkedin,facebook,stumbleupon,digg,google,更多”,pubid:“ ra-4dff56cd6bb1830b”};添加到候选列表链接永久链接http://dx.doi.org/10.1080/10426914.2010.537420

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