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Research Article

Development of novel high-shear and low-pressure grinding tool with flexible composite

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Pages 479-487 | Received 02 Apr 2020, Accepted 12 Oct 2020, Published online: 09 Nov 2020
 

ABSTRACT

It is known that there are some grinding issues for difficult-to-machine materials, such as adhesion of the grinding wheel, grinding burns, and poor surface quality. In this work, a novel abrasive tool which was based on the principle of liquid body armor was developed with flexible composite to improve the grinding performance. During grinding, particles in the abrasive tool will produce a “hydro-cluster effects” to remove the micro convex of the workpiece surface in a high-shear and low-pressure manner. Rheological measurement of prepared shear thickening fluid (STF) and shear thickening abrasive fluid (STAF) showed that the prepared STF and STAF possessed superior shear thickening properties. In addition, the grinding experiments were carried out to investigate the performance of the novel abrasive tool. Surface roughness of the Inconel718 workpiece decreased from Ra 1.55 μm to Ra 0.38 μm within 90 min. The original pretreatment marks were completely eliminated and the better surface finish was achieved. The surface quality of Inconel718 was greatly improved after grinding. Experimental results verified the effectiveness of the novel high-shear and low-pressure abrasive tool. This work is quite potential to provide an alternative new abrasive tool for the grinding of difficult-to-machine materials in manufacturing industries.

Additional information

Funding

This work was financially supported by the National Natural Science Foundation of China [51875329,51905322]; Taishan Scholar Special Foundation of Shandong Province [tsqn201812064]; Shandong Provincial Natural Science Foundation [ZR2017MEE050]; Shandong Provincial Key Research and Development Project [2018GGX103008] ; Scientific Innovation Project for Young Scientists in Shandong Provincial Universities [2019KJB030]; Key Research and Development Project of Zibo City [2019ZBXC070].

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