[1] Ge Xiangyu, Xia Yanqiu, Cao Zhengfeng. Tribological properties and insulation effect of nanometer TiO2 and nanometer SiO2 as additives in greases[J]. Tribology International, 2015(92):454-461.
[2] 陈力, 陈国儒, 李华峰, 等. 二氧化硅在锂基脂中的摩擦学性能[J]. 润滑与密封, 2014, 39(2):9-14. Chen Li, Chen Guoru, Li Huafeng, et al. The tribological properties of silicon dioxide power as additives in lithium base greases[J]. Lubrication Engineering, 2014, 39(2):9-14.
[3] 张锋. 含纳米二氧化硅润滑脂的制备及其性能研究[D]. 哈尔滨:哈尔滨工业大学, 2010.
[4] 史燕, 杨清香, 宋宝玉, 等. 锂基润滑脂流变性及摩擦学性能相关性研究[J]. 润滑与密封, 2015, 40(1):32-36. Shi Yan, Yang Qingxiang, Song Baoyu, et al. Rheology and tribological correlation of lithium base greases[J]. Lubrication Engineering, 2015, 40(1):32-36.
[5] 徐楠, 刘维民, 赵改青, 等. 纳米碳酸钙作为润滑脂添加剂的摩擦学性能及流变行为研究[J]. 摩擦学学报, 2014, 34(2):203-210. Xu Nan, Liu Weimin, Zhao Gaiqing, et al. Tribilogical properties and rheological behaviors of calcium carbonate nanoparticles as grease additive[J]. Tribology, 2014, 34(2):203-210.
[6] 张博, 许一, 王建华, 等. 非皂基凹凸棒石润滑脂磨损修复机理研究[J]. 摩擦学学报, 2014, 34(6):697-703. Zhang Bo, Xu Yi, Wang Jianhua, et al. Wear repairing mechanism of non-soap base attapulgite grease[J]. Tribilogy, 2014, 34(6):697-703.
[7] Radulescu A V, Radulescu I. Rheological models for lithium and calcium greases[J]. Mechanika, 2006, 3(59):67-70. |