Most of the current ash transport and dispersion models neglect particle-fluid (two-way) and particle-fluid plus particle-particle (four-way) reciprocal interactions during particle fallout from volcanic plumes. These interactions, a function of particle concentration in the plume, could play an important role, explaining, for example, discrepancies between observed and modelled ash deposits. Aiming at a more accurate prediction of volcanic ash dispersal and sedimentation, the settling of ash particles at particle volume fractions (phi(p)) ranging 10(-7)-10(-3) was performed in laboratory experiments and reproduced by numerical simulations that take into account first the two-way and then the four-way coupling. Results show that the velocit...
The process of particle aggregation significantly affects ash settling dynamics associated with volc...
This study examines the sensitivity of atmospheric dispersion model forecasts of volcanic ash clouds...
The occurrence of particle aggregation has a dramatic effect on the transport and sedimentation of v...
Most of the current ash transport and dispersion models neglect particle-fluid (two-way) and particl...
A systematic analysis of the physical parameters that influence the aerodynamics of ash, i.e. the at...
Laboratory experiments and numerical simulations have shown that volcanic ash particles immersed in ...
Numerical modeling of ash plume dispersal is an important tool for forecasting and mitigating potent...
In this paper, a novel methodology to measure trajectory and terminal velocity of volcanic ash in la...
International audienceAsh particle terminal settling velocity is an important parameter to measure i...
The authors gratefully acknowledge the support from NERC, Grant No. NE/S005218/1, “Radar-supported N...
This Ph.D. thesis presents a quantitative description of the mechanisms that control the aggregation...
Settling-driven gravitational instabilities observed at the base of volcanic ash clouds have the pot...
The dispersal and sedimentation of particles (tephra) from volcanic plumes and clouds represents a s...
Numerical modeling of ash plume dispersal is an important tool for forecasting and mitigating potent...
The process of particle aggregation significantly affects ash settling dynamics associated with volc...
This study examines the sensitivity of atmospheric dispersion model forecasts of volcanic ash clouds...
The occurrence of particle aggregation has a dramatic effect on the transport and sedimentation of v...
Most of the current ash transport and dispersion models neglect particle-fluid (two-way) and particl...
A systematic analysis of the physical parameters that influence the aerodynamics of ash, i.e. the at...
Laboratory experiments and numerical simulations have shown that volcanic ash particles immersed in ...
Numerical modeling of ash plume dispersal is an important tool for forecasting and mitigating potent...
In this paper, a novel methodology to measure trajectory and terminal velocity of volcanic ash in la...
International audienceAsh particle terminal settling velocity is an important parameter to measure i...
The authors gratefully acknowledge the support from NERC, Grant No. NE/S005218/1, “Radar-supported N...
This Ph.D. thesis presents a quantitative description of the mechanisms that control the aggregation...
Settling-driven gravitational instabilities observed at the base of volcanic ash clouds have the pot...
The dispersal and sedimentation of particles (tephra) from volcanic plumes and clouds represents a s...
Numerical modeling of ash plume dispersal is an important tool for forecasting and mitigating potent...
The process of particle aggregation significantly affects ash settling dynamics associated with volc...
This study examines the sensitivity of atmospheric dispersion model forecasts of volcanic ash clouds...
The occurrence of particle aggregation has a dramatic effect on the transport and sedimentation of v...