Preparation and processing performance of high steady-state magnetorheological finishing fluid

磁流变液 抛光 材料科学 沉淀 复合材料 磁场 化学机械平面化 工程类 量子力学 环境工程 物理
作者
Zhuoshan Shen,Jisheng Pan,Jianwen Zhang,Qiusheng Yan
出处
期刊:Smart Materials and Structures [IOP Publishing]
卷期号:32 (3): 035032-035032 被引量:9
标识
DOI:10.1088/1361-665x/acb86e
摘要

Abstract Magnetorheological finishing fluid (MRFF), as the transfer medium of magnetorheological finishing, is mainly composed of magnetic particles, base carrier fluid, abrasives and additives, etc. The MRFF with stable performance and good polishing effect is an important factor to achieve magnetorheological deterministic finishing. The magnetic particles with low bulk density are stably suspended in the MRFF, while the micro-structure on the outer surface of the magnetic particles can enhance the holding strength of the magnetic chain bundles on the abrasives in magnetorheological finishing. Highly stable MRFF was prepared by combining solvothermal and calcination reactions to produce flower-like Fe 3 O 4 as magnetic particles, and its settling stability and polishing performance were tested. The stability test results showed that the settling ratio of 64.2% for the flower-like-Fe 3 O 4 MRFF was better than that of 14.2% for the spherical Fe 3 O 4 . Compared with the spherical-Fe 3 O 4 magnetic chain bundles, the COMSOL Multiphysics finite element simulation results showed that the magnetic chain bundles composed of flower-like Fe 3 O 4 had a stronger holding force under the magnetic field and a 10.37% increase in shear force during the polishing process. The processing results showed that the polishing depth of flower-like Fe 3 O 4 polishing increased with the gradual reduction of polishing gap, and the polishing with flower-like-Fe 3 O 4 MRFF could obtain deeper material removal depth compared with spherical-Fe 3 O 4 MRFF, and the maximum removal depth increased by 41.5% under the same conditions.
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