利用 Ti O2 颗粒与铝合金液原位反应制备了 Al3Ti/ L Y12复合材料 ,采用透射电子显微镜对其微观组织特征进行了研究 ,测试了材料的室温拉伸强度、塑性与冲击韧度 ,并与 L Y12合金进行比较。发现 Ti O2 与 L Y12合金液反应后生成约 4 0 n...利用 Ti O2 颗粒与铝合金液原位反应制备了 Al3Ti/ L Y12复合材料 ,采用透射电子显微镜对其微观组织特征进行了研究 ,测试了材料的室温拉伸强度、塑性与冲击韧度 ,并与 L Y12合金进行比较。发现 Ti O2 与 L Y12合金液反应后生成约 4 0 nm的 Al3Ti颗粒 ,弥散分布在 L Y12基体合金中 ,Al3Ti/ L Y12界面良好结合 ,使复合材料的强度、塑性、冲击韧度均比 L展开更多
TiC nanoparticles reinforced 2219 aluminum matrix composites were successfully prepared by ultrasonic casting, followed by forging and T6 heat treatment. The friction and wear properties of the disc-to-column were stu...TiC nanoparticles reinforced 2219 aluminum matrix composites were successfully prepared by ultrasonic casting, followed by forging and T6 heat treatment. The friction and wear properties of the disc-to-column were studied under four separate normal values of 5, 10, 20 and 30 N. The increasing hardness value of the nanocomposite may be attributed to the large amount of TiC(i.e., 1.3 wt.% and 1.7 wt.%) introduced to the composites. The friction coefficient of the nanocomposite decreased with the increase of TiC nanoparticles(0-1.7 wt.%) under the same load. But the wear resistance of the TiC/AA2219 nanocomposite increased by 30%-90% as compared to the 2219 matrix alloy. And it decreased with the increasing load. The composite with 0.9 wt.% TiC produced the best results in terms of friction and wear because of its relatively higher hardness and perfect ability to retain a transfer layer of a comparatively larger thickness. On the wear surface, some Al2O3particles were found which aided in the development of protective shear regions and improved the wear resistance. The wear mechanism for the TiC/AA2219 nanocomposite was a combination of adhesive and oxidative wear, with the composites containing hard TiC nanoparticles being mainly abrasive.展开更多
文摘利用 Ti O2 颗粒与铝合金液原位反应制备了 Al3Ti/ L Y12复合材料 ,采用透射电子显微镜对其微观组织特征进行了研究 ,测试了材料的室温拉伸强度、塑性与冲击韧度 ,并与 L Y12合金进行比较。发现 Ti O2 与 L Y12合金液反应后生成约 4 0 nm的 Al3Ti颗粒 ,弥散分布在 L Y12基体合金中 ,Al3Ti/ L Y12界面良好结合 ,使复合材料的强度、塑性、冲击韧度均比 L
基金Project(2020RC2002) supported by Science and Technology Innovation Program of Hunan Province,ChinaProject(2021JJ40774) supported by Natural Science Foundation of Hunan Province,China+2 种基金Project(20A430007) supported by Key Scientific Research Projects of Colleges and Universities in Henan Province,ChinaProject(212102210032)supported by the Key Scientific and Technological Projects in Henan Province,ChinaProject(HEU10202117)supported by the Key Laboratory of Superlight Materials Surface Technology,Ministry of Education,China。
文摘TiC nanoparticles reinforced 2219 aluminum matrix composites were successfully prepared by ultrasonic casting, followed by forging and T6 heat treatment. The friction and wear properties of the disc-to-column were studied under four separate normal values of 5, 10, 20 and 30 N. The increasing hardness value of the nanocomposite may be attributed to the large amount of TiC(i.e., 1.3 wt.% and 1.7 wt.%) introduced to the composites. The friction coefficient of the nanocomposite decreased with the increase of TiC nanoparticles(0-1.7 wt.%) under the same load. But the wear resistance of the TiC/AA2219 nanocomposite increased by 30%-90% as compared to the 2219 matrix alloy. And it decreased with the increasing load. The composite with 0.9 wt.% TiC produced the best results in terms of friction and wear because of its relatively higher hardness and perfect ability to retain a transfer layer of a comparatively larger thickness. On the wear surface, some Al2O3particles were found which aided in the development of protective shear regions and improved the wear resistance. The wear mechanism for the TiC/AA2219 nanocomposite was a combination of adhesive and oxidative wear, with the composites containing hard TiC nanoparticles being mainly abrasive.