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◆ Physics of Fluids2026-03-01· Polishing

Particle size effects on polishing quality and abrasive flow mechanism in quartz glass

Zhaoxiang Chen, Lin Sun, Ruiqing Xie, Zhaoyuan Jiang, Zhuangde Jiang

原始摘要(英文原文)· Original abstract
Abrasive flow polishing media consist of micrometer-sized rigid abrasives dispersed in a viscoelastic polymer matrix. In this work, we investigate how abrasive particle size and the particle size-gap ratio (D/H) govern rheological behavior and polishing performance for quartz glass. Steady shear and normal-stress measurements (0.1–100 s−1) show that the first normal stress difference N1 increases as particle size decreases; at 100 s−1, N1 rises from 4672.9 (D: 28 μm) to 17 098 Pa (D: 1.5 μm). To link rheology with material removal, it couples a particle-size-dependent viscosity model with a White–Metzner viscoelastic formulation and introduces an N1-based correction to the effective normal load in the removal function. The model identifies two distinct flow regimes governed by D/H: a free-flow regime (D/H < 0.046) and a strongly confined regime (D/H > 0.058), in which jamming/quasi-rigid behavior alters the stress field. In the free-flow regime, the predicted removal agrees with experiments within ∼9.3% error. Based on the combined requirements of low roughness and adequate removal rate, an optimal parameter window of approximately D ∼ 5 um with H ∼ 150 um is recommended, yielding Ra ∼ 3–6 nm on quartz glass surfaces.
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