Viscous Settling of Bravais Unit-Cells
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| Format: | Preprint |
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2026
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| author | Bürger, Sebastian Joshi, Harshit Prasath, S Ganga Chajwa, Rahul Govindarajan, Rama |
| author_facet | Bürger, Sebastian Joshi, Harshit Prasath, S Ganga Chajwa, Rahul Govindarajan, Rama |
| contents | We study experimentally and theoretically the Stokesian settling of a well-known class of porous shapes: Bravais lattice unit-cells, whose porosity we vary controllably by changing their lattice spacing. In our experiments, conducted in a square cuboidal container with its long-axis aligned along gravity, we find that the settling speed U and the solid fraction ϕ of these lattice units obey a power-law relationship U $\propto$ ϕ^γ , with an exponent γ = 0.43 independent of their shape. To understand the observed scaling exponent, we analytically and numerically investigate the settling of the simple cubic structure under different approximations. We find that the walls of the container, though far from the sinking object, have a defining effect. Our Stokesian boundary integral simulations show that the Faxen's boundary correction captures the wall-effects accurately and enables us to discount the wall-effect from the experimental data, yielding a power-law exponent γ = 0.30 for settling in an unbounded domain. The power-law relating sinking speed and porosity is a step towards predictively understanding the sedimentation fluxes of complex objects in the clouds and the oceans. However, the applicability of this universal scaling to irregular and biologically richer aggregates found in nature remains an open direction. |
| format | Preprint |
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arxiv_https___arxiv_org_abs_2604_26189 |
| institution | arXiv |
| publishDate | 2026 |
| record_format | arxiv |
| spellingShingle | Viscous Settling of Bravais Unit-Cells Bürger, Sebastian Joshi, Harshit Prasath, S Ganga Chajwa, Rahul Govindarajan, Rama Soft Condensed Matter Fluid Dynamics We study experimentally and theoretically the Stokesian settling of a well-known class of porous shapes: Bravais lattice unit-cells, whose porosity we vary controllably by changing their lattice spacing. In our experiments, conducted in a square cuboidal container with its long-axis aligned along gravity, we find that the settling speed U and the solid fraction ϕ of these lattice units obey a power-law relationship U $\propto$ ϕ^γ , with an exponent γ = 0.43 independent of their shape. To understand the observed scaling exponent, we analytically and numerically investigate the settling of the simple cubic structure under different approximations. We find that the walls of the container, though far from the sinking object, have a defining effect. Our Stokesian boundary integral simulations show that the Faxen's boundary correction captures the wall-effects accurately and enables us to discount the wall-effect from the experimental data, yielding a power-law exponent γ = 0.30 for settling in an unbounded domain. The power-law relating sinking speed and porosity is a step towards predictively understanding the sedimentation fluxes of complex objects in the clouds and the oceans. However, the applicability of this universal scaling to irregular and biologically richer aggregates found in nature remains an open direction. |
| title | Viscous Settling of Bravais Unit-Cells |
| topic | Soft Condensed Matter Fluid Dynamics |
| url | https://arxiv.org/abs/2604.26189 |