Wang Jianmei, Zuo Zhengping, Zhao Yaqi, Hou Dingbang, Li Zhixiong
Engineering Research Center of Heavy Machinery Ministry of Education, Taiyuan University of Science and Technology, Taiyuan 030024, China.
School of Mechatronic Engineering, China University of Mining Technology, Xuzhou, 221116, China.
J Nanosci Nanotechnol. 2019 May 1;19(5):2688-2694. doi: 10.1166/jnn.2019.15897.
As an alternative way to lubricating oil of oil-film bearing, a new type of nano-scale magnetic fluid oil for oil-film bearing was developed, which could be targeted to improve the lubrication performance of oil-film bearing and improve the load-carrying capacity. A new type of nano-scale magnetic fluid oil-film bearing oil was prepared by the co-precipitation technique based on industrial S-220 lubricating oil as the base carrier. The characterization of the prepared oxide was performed on powder X-ray diffraction (XRD), transmission electron microscopy (TEM) and vibrating sample magnetometry (VSM). The stability of nano-scale magnetic fluid oil was checked by magnetic sedimentation and centrifugation. Based on the modified Einstein formula, the viscosity of the magnetic fluid is analyzed from the temperature and magnetic field strength using an unifactor experiment method. The results show that the smaller the magnetic particle size in the magnetic fluid, the better the magnetic energy, dispersion and stability. The viscosity-temperature characteristic of nanoscale magnetic fluid is consistent with the theoretical analysis. Compared with the basic liquid, the viscosity-temperature characteristic of the magnetic fluid is obviously improved, which helps improve the lubrication performance of oil-film bearing and provides the basis for continuous lubrication.
作为油膜轴承润滑油的一种替代方式,开发了一种新型的用于油膜轴承的纳米级磁性流体油,其目标是提高油膜轴承的润滑性能并提高承载能力。以工业S - 220润滑油为基础载体,采用共沉淀技术制备了一种新型的纳米级磁性流体油膜轴承油。利用粉末X射线衍射(XRD)、透射电子显微镜(TEM)和振动样品磁强计(VSM)对制备的氧化物进行了表征。通过磁沉降和离心法检查了纳米级磁性流体油的稳定性。基于修正的爱因斯坦公式,采用单因素实验方法从温度和磁场强度方面分析了磁性流体的粘度。结果表明,磁性流体中磁性颗粒尺寸越小,磁性能、分散性和稳定性越好。纳米级磁性流体的粘温特性与理论分析一致。与基础液体相比,磁性流体的粘温特性明显改善,这有助于提高油膜轴承的润滑性能,并为持续润滑提供了依据。