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Updated: Jan 8, 2026

Fragmenting Bulk Hydrogels and Processing into Granular Hydrogels for Biomedical Applications
Published on: May 17, 2022
Fragmentation: Principles versus Mechanisms
1Institut Universitaire de France, IRPHE, Centrale Marseille, CNRS, Aix Marseille Université, UMR 7342, 13384 Marseille, France and , 75005 Paris, France.
None:
When it comes to understanding how a cohesive object breaks up, there are two types of temptations: either seek detailed mechanisms (capillary instabilities for liquids, cracks, propagation in brittle solids...), or rely on a general principle to infer the multiplicity of the fragments' sizes. Here we show that an original conservation law coupled with a maximal randomness principle provides new, unifying predictions. We explain when this principle is likely to apply, and why the fragment's size distribution is a power law p(d)∼d^{-β}, in that case, with exponent β=D+1-{π^{D/2}/[2^{D}(D/2)!]}, a function of the dimensionality of the breaking object D. Examples including crushed and grinned brittle materials like solid bars, plates, and shells; or cubes and spheroids; but also liquid drops and bubbles; exploding liquid shells; plastic debris in the ocean; and remnants from the cavemen industry are considered. The discussion is supplemented by an original experiment.
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