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Collective phenomena in granular and atmospheric electrification

2015/09/14 by Freja Nordsiek, Nordsiek, Freja, Daniel P. Lathrop +1
Agricultural and Biological Sciences · Physics and Astronomy · #Atmospheric and Oceanic Physics (physics.ao-ph) #FOS: Physical sciences #Plant and Biological Electrophysiology Studies #Soft Condensed Matter (cond-mat.soft) #cond-mat.soft #physics.ao-ph

paper · pdf · doi:10.48550/arxiv.1509.04214

12 pages, 7 figures, 1 table, submitted to Phys. Rev. Fluids

openalex publication_date 2015/09/14 · arxiv created 2017/07/26 · arxiv updated 2017/07/28 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28

Abstract

In clouds of suspended particles (grains, droplets, spheres, crystals, etc.), collisions electrify the particles and the clouds, producing large electric potential differences over large scales. This is seen most spectacularly in the atmosphere as lighting in thunderstorms, thundersnow, dust storms, and volcanic ash plumes where multi-million-volt potential differences over scales of kilometers can be produced, but it is a general phenomenon in granular systems as a whole. The electrification process is not well understood, especially for electrification of insulating particles of the same material. To investigate the relative importances of particle properties (material, size, etc.) and collective phenomena (behaviors of systems at large scales not easily predicted from local dynamics) in granular and atmospheric electrification, we used a table-top experiment that mechanically shakes particles inside a cell where we measure the macroscopic electric field between the electrically conducting end plates. The measured electric fields are a result of capacitive coupling and direct charge transfer between the particles and the plates. Using a diverse range of mono-material particle sets (plastics, ceramic, glass, and metals), we found that all our particle materials electrify and show similar dynamics with long time-scale temporal variation and an electric field amplitude that depends on the particle quantity in a complex way. These results suggest that while particle properties do matter like previous investigations have shown, macroscopic electrification of solids is relatively material agnostic and large scale collective phenomena play a major role.

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