de Castilho Bruno César Noronha Marques, Rodrigues Alisson Mendes, Avila Pedro Renato Tavares, Apolinario Raíra Chefer, Nossa Tamires de Souza, Walczak Magdalena, Fernandes Jucielle Veras, Menezes Romualdo Rodrigues, de Araújo Neves Gelmires, Pinto Haroldo Cavalcanti
São Carlos School of Engineering (EESC), University of São Paulo (USP), São Carlos, SP, CEP: 13563-120, Brazil.
Laboratory of Materials Technology (LTM), Department of Materials Engineering, Federal University of Campina Grande (UFCG), Campina Grande, 58429-900, Brazil.
Sci Rep. 2022 Feb 11;12(1):2342. doi: 10.1038/s41598-022-06131-9.
A hybrid magnetron sputtering process (dcMS/HiPIMS) was developed to manufacture nanostructured CrN/CrAlN multilayers, motivated by improving the low-emission efficiency when applied on gas-nitrided diesel piston rings of a next-generation of combustion engines. In order to improve the mechanical, tribological, and corrosion behavior of the multilayers, the hybrid dcMS/HiPIMS process was designed by selecting the optimal sputtering procedure applied to AISI 440 base steel. The effect of substrate bias and carousel rotational speed on the phase composition, crystallographic texture, residual stresses, surface roughness, coating periodicity and densification, instrumented hardness, elastic modulus, as well as wear and corrosion resistance was determined. The results have demonstrated that hybrid magnetron sputtering produces multilayers with a superlattice structure, which outperforms commercial PVD coatings of CrN for diesel piston rings manufactured by cathodic arc evaporation. Also, multilayer periodicities in the range of 5 to 10 nm yield the best tribological performance under bench tests for the piston ring/cylinder liner system.
为提高应用于下一代内燃机气体氮化柴油活塞环时的低排放效率,开发了一种混合磁控溅射工艺(直流磁控溅射/高功率脉冲磁控溅射)来制造纳米结构的CrN/CrAlN多层膜。为改善多层膜的机械、摩擦学和腐蚀性能,通过选择应用于AISI 440基体钢的最佳溅射工艺来设计混合直流磁控溅射/高功率脉冲磁控溅射工艺。确定了基体偏压和转盘转速对相组成、晶体织构、残余应力、表面粗糙度、涂层周期性和致密化、仪器测量硬度、弹性模量以及耐磨性和耐腐蚀性的影响。结果表明,混合磁控溅射产生具有超晶格结构的多层膜,其性能优于通过阴极电弧蒸发制造的商用CrN柴油活塞环PVD涂层。此外,在活塞环/气缸套系统的台架试验中,5至10纳米范围内的多层膜周期性产生最佳的摩擦学性能。