Luis A. Pugnaloni
National Scientific and Technical Research Council
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Featured researches published by Luis A. Pugnaloni.
Physical Review E | 2005
Iker Zuriguel; A. Garcimartín; Diego Maza; Luis A. Pugnaloni; J. M. Pastor
In this work, we present an experimental study of the jamming that stops the free flow of grains from a silo discharging by gravity. When the outlet size is not much bigger than the beads, granular material jams the outlet of the container due to the formation of an arch. Statistical data from the number of grains fallen between consecutive jams are presented. The information that they provide can help one to understand the jamming phenomenon. As the ratio between the size of the orifice and the size of the beads is increased, the probability that an arch blocks the outlet decreases. We show here that there is a power-law divergence of the mean avalanche size for a finite critical radius. Beyond this critical radius, no jamming can occur and the flow is never stopped. The dependence of the arch formation on the shape and the material of the grains has been explored. It has been found that the material properties of the grains do not affect the arch formation probability. On the contrary, the shape of the grains deeply influences it. A simple model to interpret the results is also discussed.
Scientific Reports | 2015
Iker Zuriguel; Daniel R. Parisi; R. C. Hidalgo; Celia Lozano; Alvaro Janda; Paula A. Gago; Juan Pablo Peralta; Luis M. Ferrer; Luis A. Pugnaloni; Eric Clément; Diego Maza; Ignacio Pagonabarraga; A. Garcimartín
When a large set of discrete bodies passes through a bottleneck, the flow may become intermittent due to the development of clogs that obstruct the constriction. Clogging is observed, for instance, in colloidal suspensions, granular materials and crowd swarming, where consequences may be dramatic. Despite its ubiquity, a general framework embracing research in such a wide variety of scenarios is still lacking. We show that in systems of very different nature and scale -including sheep herds, pedestrian crowds, assemblies of grains, and colloids- the probability distribution of time lapses between the passages of consecutive bodies exhibits a power-law tail with an exponent that depends on the system condition. Consequently, we identify the transition to clogging in terms of the divergence of the average time lapse. Such a unified description allows us to put forward a qualitative clogging state diagram whose most conspicuous feature is the presence of a length scale qualitatively related to the presence of a finite size orifice. This approach helps to understand paradoxical phenomena, such as the faster-is-slower effect predicted for pedestrians evacuating a room and might become a starting point for researchers working in a wide variety of situations where clogging represents a hindrance.
EPL | 2008
Alvaro Janda; Iker Zuriguel; A. Garcimartín; Luis A. Pugnaloni; Diego Maza
We present an experimental study of jamming in the discharge of grains through an opening in a two-dimensional silo. For a wide range of outlet sizes, we obtain the size distribution of avalanche defined as the number of grains that fall between two consecutive jams. From these distributions, we obtain the probability that the silo jams before N particles pass through the orifice. Then a simple model of arch formation is proposed that predicts the shape of the jamming probability function and reveals that it does not exist a critical size of the orifice above which there is not jamming.
Physical Review E | 2010
A. Garcimartín; Iker Zuriguel; Luis A. Pugnaloni; Alvaro Janda
We present experimental results on the shape of arches that block the outlet of a two-dimensional silo. For a range of outlet sizes, we measure some properties of the arches such as the number of particles involved, the span, the aspect ratio, and the angles between mutually stabilizing particles. These measurements shed light on the role of frictional tangential forces in arching. In addition, we find that arches tend to adopt an aspect ratio (the quotient between height and half the span) close to 1, suggesting an isotropic load. The comparison of the experimental results with data from numerical models of the arches formed in the bulk of a granular column reveals the similarities of both, as well as some limitations in the few existing models.
Physical Review E | 2006
Roberto Arévalo; Diego Maza; Luis A. Pugnaloni
We identify arches in a bed of granular disks generated by a molecular dynamic-type simulation. We use the history of the deposition of the particles to identify the supporting contacts of each particle. Then, arches are defined as sets of mutually stable disks. Different packings generated through tapping are analyzed. The possibility of identifying arches from the static structure of a deposited bed, without any information on the history of the deposition, is discussed.
Journal of Sound and Vibration | 2012
Martín Sánchez; Gustavo Rosenthal; Luis A. Pugnaloni
Abstract Granular damping devices constitute an emerging technology for the attenuation of vibrations based on the dissipative nature of particle collisions. We show that the performance of such devices is independent of the material properties of the particles for working conditions where damping is optimal. Even the suppression of a dissipation mode (collisional or frictional) is unable to alter the response. We explain this phenomenon in terms of the inelastic collapse of granular materials. These findings provide a crucial standpoint for the design of such devices in order to achieve the desired low maintenance feature that makes particle dampers particularly suitable to harsh environments.
Physical Review E | 2009
Cristian Mankoc; A. Garcimartín; Iker Zuriguel; Diego Maza; Luis A. Pugnaloni
We present experimental results of the jamming of noncohesive particles discharged from a flat bottomed silo subjected to vertical vibration. When the exit orifice is only a few grain diameters wide, the flow can be arrested due to the formation of blocking arches. Hence, an external excitation is needed to resume the flow. The use of a continuous gentle vibration is a usual technique to ease the flow in such situations. Even though jamming is less frequent, it is still an issue in vibrated silos. There are, in principle, two possible mechanisms through which vibrations may facilitate the flow: (i) a decrease in the probability of the formation of blocking arches and (ii) the breakage of blocking arches once they have been formed. By measuring the time intervals inside an avalanche during which no particles flow through the outlet, we are able to estimate the probability of breaking a blocking arch by vibrations. The result agrees with the prediction of a bivariate probabilistic model in which the formation of blocking arches is equally probable in vibrated and nonvibrated silos. This indicates that the second aforementioned mechanism is mainly responsible for improving the flowability in gently vibrated silos.
Physical Review E | 2010
Luis A. Pugnaloni; Iván Sánchez; Paula A. Gago; José Damas; Iker Zuriguel; Diego Maza
We analyze, experimentally and numerically, the steady states, obtained by tapping, of a two-dimensional granular layer. Contrary to the usual assumption, we show that the reversible (steady state branch) of the density-acceleration curve is nonmonotonous. Accordingly, steady states with the same mean volume can be reached by tapping the system with very different intensities. Simulations of dissipative frictional disks show that equal volume steady states have different values of the force moment tensor. Additionally, we find that steady states of equal stress can be obtained by changing the duration of the taps; however, these states present distinct mean volumes. These results confirm previous speculations that the volume and the force moment tensor are both needed to describe univocally equilibrium states in static granular assemblies.
Journal of Chemical Physics | 2002
Luis A. Pugnaloni; Fernando Vericat
Two new criteria, that involve the microscopic dynamics of the system, are proposed for the identification of clusters in continuum systems. The first one considers a residence time in the definition of the bond between pairs of particles, whereas the second one uses a life time in the definition of an aggregate. Because of the qualitative features of the clusters yielded by the criteria we call them chemical and physical clusters, respectively. Molecular dynamics results for a Lennard-Jones system and general connectivity theories are presented.
Colloids and Surfaces B: Biointerfaces | 2003
Luis A. Pugnaloni; Rammile Ettelaie; Eric Dickinson
We present Brownian dynamics simulations of the displacement of a protein monolayer by competitive adsorption. The protein film is modelled as a network of spherical bonded particles adsorbed at a fluid interface. Spherical displacer particles, which have a stronger affinity for the interface than the protein film particles, are introduced into the system through the sub-phase. At early stages, these particles diffuse to the interface and are adsorbed in the gaps in the network. Soon thereafter, however, further adsorption initiates displacement of the film particles, ultimately leading to the complete removal of the protein layer from the surface. We study the evolution of the number and size of the displacer islands formed at the interface. The introduction of a direct long-range repulsion between film and displacer particles is shown to lead to a phase-separation-type behaviour at intermediate time scales. Further comparisons with the displacement of a non-bonded monolayer are also presented.