1,193 research outputs found

    Dynamic mesh refinement for discrete models of jet electro-hydrodynamics

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    Nowadays, several models of unidimensional fluid jets exploit discrete element methods. In some cases, as for models aiming at describing the electrospinning nanofabrication process of polymer fibers, discrete element methods suffer a non constant resolution of the jet representation. We develop a dynamic mesh-refinement method for the numerical study of the electro-hydrodynamic behavior of charged jets using discrete element methods. To this purpose, we import ideas and techniques from the string method originally developed in the framework of free-energy landscape simulations. The mesh-refined discrete element method is demonstrated for the case of electrospinning applications.Comment: 16 pages, 7 figures in Journal of Computational Science, 201

    Effects of Nanoparticles on the Dynamic Morphology of Electrified Jets

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    We investigate the effects of nanoparticles on the onset of varicose and whipping instabilities in the dynamics of electrified jets. In particular, we show that the non-linear interplay between the mass of the nanoparticles and electrostatic instabilities, gives rise to qualitative changes of the dynamic morphology of the jet, which in turn, drastically affect the final deposition pattern in electrospinning experiments. It is also shown that even a tiny amount of excess mass, of the order of a few percent, may more than double the radius of the electrospun fiber, with substantial implications for the design of experiments involving electrified jets as well as spun organic fibers.Comment: 8 pages, 7 figures, 1 tabl

    Non-linear Langevin model for the early-stage dynamics of electrospinning jets

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    We present a non-linear Langevin model to investigate the early-stage dynamics of electrified polymer jets in electrospinning experiments. In particular, we study the effects of air drag force on the uniaxial elongation of the charged jet, right after ejection from the nozzle. Numerical simulations show that the elongation of the jet filament close to the injection point is significantly affected by the non-linear drag exerted by the surrounding air. These result provide useful insights for the optimal design of current and future electrospinning experiments.Comment: 11 pages, 6 figures, 1 table. arXiv admin note: text overlap with arXiv:1503.0469

    Junior Recital: Stephanie Lauricella, mezzo-soprano

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    The Practice of Nonviolence: Teaching an Undergraduate Course in Nonviolent Communication

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    This Best Practices article outlines 10 tips relative to teaching a course in Nonviolent Communication (NVC). It outlines suggestions for readings, activities, and projects throughout a semester-long undergraduate course. The article addresses how students can learn both the theory and practice of nonviolence by means of readings and activities that address social problems such as sexism, racism, bias, and violence against oneself and the earth. Specific suggestions are provided for creative ways in which students can be engaged with readings so that they have ownership of their in-class experience. Details regarding an independent long-term project providing freedom of creativity in out-of-class work are included, as well as suggestions for interactive, face-to-face activities in class

    Different regimes of the uniaxial elongation of electrically charged viscoelastic jets due to dissipative air drag

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    We investigate the effects of dissipative air drag on the dynamics of electrified jets in the initial stage of the electrospinning process. The main idea is to use a Brownian noise to model air drag effects on the uniaxial elongation of the jets. The developed numerical model is used to probe the dynamics of electrified polymer jets at different conditions of air drag force, showing that the dynamics of the charged jet is strongly biased by the presence of air drag forces. This study provides prospective beneficial implications for improving forthcoming electrospinning experiments.Comment: 12 pages, 6 figure

    JETSPIN: a specific-purpose open-source software for simulations of nanofiber electrospinning

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    We present the open-source computer program JETSPIN, specifically designed to simulate the electrospinning process of nanofibers. Its capabilities are shown with proper reference to the underlying model, as well as a description of the relevant input variables and associated test-case simulations. The various interactions included in the electrospinning model implemented in JETSPIN are discussed in detail. The code is designed to exploit different computational architectures, from single to parallel processor workstations. This paper provides an overview of JETSPIN, focusing primarily on its structure, parallel implementations, functionality, performance, and availability.Comment: 22 pages, 11 figures. arXiv admin note: substantial text overlap with arXiv:1507.0701
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