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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Wear characteristic of in situ synthetic TiB{sub}2 particulate-reinforced Al matrix composite formed by laser cladding
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Wear characteristic of in situ synthetic TiB{sub}2 particulate-reinforced Al matrix composite formed by laser cladding

机译:激光熔覆原位合成TiB {sub} 2颗粒增强Al基复合材料的磨损特性

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摘要

In order to improve the wear resistance of an aluminum alloy, an in situ synthesized TiB{sub}2 particulate-reinforced metal matrix composite coating was formed on a 2024 aluminum alloy by laser cladding with a powder mixture of Fe-coated boron, Ti and Al was successfully achieved using a 3-kW CW CO{sub}2 laser. The chemical composition, microstructure and phase structure of the composite clad coating were analyzed by energy dispersive X-ray spectroscopy (EDX), SEM, TEM and XRD. The nanohardness and the elastic modulus of the phases of the coating have been examined. The dry sliding wear behaviour of the coating was investigated using a pin-on-ring machine under four loads, namely 8.9, 17.8, 26.7, and 35.6 N. It has been found that the wear characteristics of cladding were completely dependent on the content and morphology of the TiB{sub}2 particulate and intermetallic in the microstructure and the applied load. At the lowest load (8.9 N), with increasing content of TiB{sub}2 particulate and intermetallic, the wear weight loss of the laser cladding was decreased. At higher loads (17.8, 26.7, and 35.5 N), the 2024 Al alloy exhibited superior wear resistance to the particle-reinforced metal matrix composite cladding.
机译:为了提高铝合金的耐磨性,在2024铝合金上用Fe包覆的硼,Ti和Ti的粉末混合物进行激光熔覆,形成原位合成的TiB {sub} 2颗粒增强金属基复合涂层。使用3 kW CW CO {sub} 2激光器成功实现了Al。通过能量色散X射线能谱(EDX),SEM,TEM和XRD对复合复合涂层的化学组成,微观结构和相结构进行了分析。已经检查了涂层相的纳米硬度和弹性模量。使用销钉环机在8.9、17.8、26.7和35.6 N的四个负载下研究了涂层的干滑动磨损行为。已发现,包层的磨损特性完全取决于含量和TiB {sub} 2颗粒和金属间化合物在微观结构和施加载荷中的形貌。在最低载荷(8.9 N)下,随着TiB {sub} 2颗粒和金属互化物含量的增加,激光熔覆层的磨损失重减少。在较高的载荷(17.8、26.7和35.5 N)下,2024铝合金表现出比颗粒增强金属基复合材料熔覆层更高的耐磨性。

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