16 results on '"Vladimir P. Zhukov"'
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2. How to optimize ultrashort pulse laser interaction with glass surfaces in cutting regimes?
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Tomas Mocek, Vladimir P. Zhukov, Thibault J.-Y. Derrien, Adam R. Collins, Danijela Rostohar, and Nadezhda M. Bulgakova
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Coupling ,Materials science ,business.industry ,Laser cutting ,Analytical chemistry ,Physics::Optics ,General Physics and Astronomy ,Surfaces and Interfaces ,General Chemistry ,Radiation ,Condensed Matter Physics ,Laser ,Surfaces, Coatings and Films ,law.invention ,law ,Ionization ,Optoelectronics ,Surface modification ,Physics::Atomic Physics ,Irradiation ,business ,Ultrashort pulse laser - Abstract
The interaction of short and ultrashort pulse laser radiation with glass materials is addressed. Particular attention is paid to regimes which are important in industrial applications such as laser cutting, drilling, functionalization of material surfaces, etc. Different factors influencing the ablation efficiency and quality are summarized and their importance is illustrated experimentally. The effects of ambient gas ionization in front of the irradiated target are also analyzed. A possibility to enhance laser coupling with transparent solids by bi-wavelength irradiation is discussed.
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- 2015
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3. Insights into Laser-Materials Interaction Through Modeling on Atomic and Macroscopic Scales
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Miao He, Leonid V. Zhigilei, Sergey A. Lizunov, Yoann Levy, Nadezhda M. Bulgakova, Maxim V. Shugaev, Thibault J.-Y. Derrien, and Vladimir P. Zhukov
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Materials science ,business.industry ,Physics::Optics ,Non-equilibrium thermodynamics ,02 engineering and technology ,Dielectric ,021001 nanoscience & nanotechnology ,Laser ,01 natural sciences ,Engineering physics ,Crystallographic defect ,law.invention ,Molecular dynamics ,Semiconductor ,law ,0103 physical sciences ,Redistribution (chemistry) ,010306 general physics ,0210 nano-technology ,business ,Excitation - Abstract
Computer simulations and theoretical analysis of laser-materials interactions are playing an increasingly important role in the advancement of modern laser technologies and broadening the range of laser applications. In this chapter, we first provide an overview of the current understanding of the laser coupling and transient variation of optical properties in metals, semiconductors and dielectrics, with the focus on the practical implications on the energy deposition and distribution in the irradiated targets. The continuum-level modeling of the dynamic evolution of laser-induced stresses, nonequilibrium phase transformations, and material redistribution within the laser spot are then discussed, and the need for the physical insights into the mechanisms and kinetics of highly nonequilibrium processes triggered by the laser excitation is highlighted. The physical insights can be provided by atomistic modeling, and several examples are discussed where large-scale molecular dynamics simulations are used for investigation of the mechanisms of the generation of crystal defects (vacancies, interstitials, dislocations, and twin boundaries) and the material redistribution responsible for the formation of laser-induced periodic surface structures in the single-pulse ablative regime. The need for the integrated computational approach fully accounting for the strong coupling between processes occurring at different time- and length-scales is highlighted.
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- 2018
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4. Impacts of Spatio-Temporal Coupling in Ultrashort Laser Pulses on Laser Energy Absorption by Transparent Dielectrics in Bulk Modification Regimes
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Nadezhda M. Bulgakova, Vladimir P. Zhukov, and Selcuk Akturk
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Coupling ,Materials science ,business.industry ,Temporal coupling ,media_common.quotation_subject ,Physics::Optics ,Dielectric ,Laser ,Asymmetry ,law.invention ,Ultrashort laser ,Energy absorption ,law ,Optoelectronics ,Physics::Atomic Physics ,business ,Laser beams ,media_common - Abstract
Sophisticated modeling of propagation of ultrashort laser pulses with spatio-temporal coupling through transparent medium has enabled reproducing the effect of directional asymmetry in direct laser writing and gaining a deep insight into the underlying physics.
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- 2018
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5. Asymmetry of light absorption upon propagation of focused femtosecond laser pulses with spatiotemporal coupling through glass materials
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Vladimir P. Zhukov and Nadezhda M. Bulgakova
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Free electron model ,Physics ,business.industry ,Physics::Optics ,02 engineering and technology ,021001 nanoscience & nanotechnology ,Laser ,01 natural sciences ,law.invention ,010309 optics ,symbols.namesake ,Optics ,Tilt (optics) ,Maxwell's equations ,Multiphoton intrapulse interference phase scan ,law ,0103 physical sciences ,Femtosecond ,symbols ,Spatial dependence ,Photonics ,0210 nano-technology ,business - Abstract
Ultrashort laser pulses are usually described in terms of temporal and spatial dependences of their electric field, assuming that the spatial dependence is separable from time dependence. However, in most situations this assumption is incorrect as generation of ultrashort pulses and their manipulation lead to couplings between spatial and temporal coordinates resulting in various effects such as pulse front tilt and spatial chirp. One of the most intriguing spatiotemporal coupling effects is the so-called “lighthouse effect”, the phase front rotation with the beam propagation distance [Akturk et al., Opt. Express 13, 8642 (2005)]. The interaction of spatiotemporally coupled laser pulses with transparent materials have interesting peculiarities, such as the effect of nonreciprocal writing, which can be used to facilitate microfabrication of photonic structures inside optical glasses. In this work, we make an attempt to numerically investigate the influence of the pulse front tilt and the lighthouse effect on the absorption of laser energy inside fused silica glass. The model, which is based on nonlinear Maxwell’s equations supplemented by the hydrodynamic equations for free electron plasma, is applied. As three-dimensional solution of such a problem would require huge computational resources, a simplified two-dimensional model has been proposed. It has enabled to gain a qualitative insight into the features of propagation of ultrashort laser pulses with the tilted front in the regimes of volumetric laser modification of transparent materials, including directional asymmetry upon direct laser writing in glass materials.
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- 2017
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6. Nonlinear effects during interaction of femtosecond doughnut-shaped laser pulses with glasses: overcoming intensity clamping
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Mikhail P. Fedoruk, Vladimir P. Zhukov, Nadezhda M. Bulgakova, and Alexander M. Rubenchik
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Free electron model ,Materials science ,business.industry ,Implosion ,02 engineering and technology ,Plasma ,Electron ,021001 nanoscience & nanotechnology ,Laser ,01 natural sciences ,Numerical aperture ,law.invention ,010309 optics ,Optics ,law ,0103 physical sciences ,Femtosecond ,Atomic physics ,0210 nano-technology ,business ,Beam (structure) - Abstract
Interaction of femtosecond laser pulses with a bulk glass (fused silica as an example) has been studied numerically based on non-linear Maxwell’s equations supplemented by the hydrodynamics-type equations for free electron plasma for the cases of Gaussian linearly-polarized and doughnut-shaped radially-polarized laser beams. For Gaussian pulses focused inside glass (800 nm wavelength, 45 fs duration, numerical aperture of 0.25), the free electron density in the laser-excited region remains subcritical while the locally absorbed energy density does not exceed ~2000 J/cm3 in the range of pulse energies of 200 nJ – 2 μJ. For doughnut-shaped pulses, the initial high-intensity ring of light is shrinking upon focusing. Upon reaching a certain ionization level on its way, the light ring splits into two branches, one of which shrinks swiftly toward the beam axis well before the geometrical focus, leading to generation of supercritical free electron density. The second branch represents the laser light scattered by the electron plasma away from the beam axis. The final laserexcited volume represents a tube of 0.5–1 μm in radius and 10-15 μm long. The local maximum of absorbed energy can be more than 10 times higher compared to the case of Gaussian beams of the same energy. The corresponding pressure levels have been evaluated. It is anticipated that, in the case of doughnut-shaped pulses, the tube-like shape of the deposited energy should lead to implosion of material that can be used for improving the direct writing of high-refractive index optical structures inside glass or for achieving extreme thermodynamic states of matter.
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- 2017
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7. Conserving heat consumption by modeling and optimizing efficiency of complex heat exchanger systems
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Vladimir P. Zhukov, Dariusz Urbaniak, N. R. Leznova, A. E. Barochkin, and T. Wyleciał
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lcsh:GE1-350 ,0209 industrial biotechnology ,business.industry ,Human life ,020208 electrical & electronic engineering ,Heat carrier ,Complex system ,Heat losses ,02 engineering and technology ,020901 industrial engineering & automation ,Heat consumption ,Linear differential equation ,Heat exchanger ,0202 electrical engineering, electronic engineering, information engineering ,Environmental science ,Minification ,Process engineering ,business ,lcsh:Environmental sciences - Abstract
Many needs have to be met in human life. One of the key needs is to provide living comfort, which is clearly associated with heat. Analyzing the amount of produced heat, it should be emphasized that the higher the development of a country, the greater the demand for heat. In the era of the debate on the impact of human activities on the climate, it is impossible not to emphasize the importance of conserving energy and heat, and thus the rational management of these goods. The paper proposes a mathematical description of the complex systems of heat exchangers in the form of linear differential equations. Their analytical solution is presented in the form of temperature change of the heat carrier along the heating surface of a four-thread heat exchanger. Analysis of the possible heat exchange cases for eight possible flow systems is presented. In addition, the most effective minimization of heat losses was found.
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- 2020
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8. Impacts of Ambient and Ablation Plasmas on Short- and Ultrashort-Pulse Laser Processing of Surfaces
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Wladimir Marine, Alexander V. Bulgakov, Tomas Mocek, Antonio Pereira, Alexei N. Panchenko, Vladimir P. Zhukov, Sergey I. Kudryashov, Nadezhda M. Bulgakova, Kutateladze Institute of Thermophysics, Institute of Physics of the Czech Academy of Sciences (FZU / CAS), Czech Academy of Sciences [Prague] (CAS), National Research Tomsk State University, Novosibirsk State Technical University, P. N. Lebedev Physical Institute of the Russian Academy of Sciences [Moscow] (LPI RAS), Russian Academy of Sciences [Moscow] (RAS), Institut Lumière Matière [Villeurbanne] (ILM), Université Claude Bernard Lyon 1 (UCBL), Université de Lyon-Université de Lyon-Centre National de la Recherche Scientifique (CNRS), Centre Interdisciplinaire de Nanoscience de Marseille (CINaM), Aix Marseille Université (AMU)-Centre National de la Recherche Scientifique (CNRS), School of Chemistry, University of Edinburgh, University of Edinburgh, and Centre National de la Recherche Scientifique (CNRS)-Aix Marseille Université (AMU)
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Materials science ,lcsh:Mechanical engineering and machinery ,medicine.medical_treatment ,Analytical chemistry ,Photoionization ,material redeposition ,law.invention ,Optics ,law ,Ionization ,laser material processing ,medicine ,lcsh:TJ1-1570 ,Electrical and Electronic Engineering ,Plasma processing ,Ultrashort pulse laser ,[PHYS.PHYS.PHYS-OPTICS]Physics [physics]/Physics [physics]/Optics [physics.optics] ,plasma pipe formation ,business.industry ,Mechanical Engineering ,microstructures on liquid metals ,pulsed laser ablation ,Plasma ,ambient gas breakdown ,Laser ,Ablation ,13. Climate action ,Control and Systems Engineering ,Thermal radiation ,laser plasma ,[PHYS.COND.CM-MS]Physics [physics]/Condensed Matter [cond-mat]/Materials Science [cond-mat.mtrl-sci] ,business - Abstract
In spite of the fact that more than five decades have passed since the invention of laser, some topics of laser-matter interaction still remain incompletely studied. One of such topics is plasma impact on the overall phenomenon of the interaction and its particular features, including influence of the laser-excited plasma re-radiation, back flux of energetic plasma species, and massive material redeposition, on the surface quality and processing efficiency. In this paper, we analyze different plasma aspects, which go beyond a simple consideration of the well-known effect of plasma shielding of laser radiation. The following effects are considered: ambient gas ionization above the target on material processing with formation of a “plasma pipe”, back heating of the target by both laser-driven ambient and ablation plasmas through conductive and radiative heat transfer, plasma chemical effects on surface processing including microstructure growth on liquid metals, complicated dynamics of the ablation plasma flow interacting with an ambient gas that can result in substantial redeposition of material around the ablation spot. Together with a review summarizing our main to-date achievements and outlining research directions, we present new results underlining importance of laser plasma dynamics and photoionization of the gas environment upon laser processing of materials.
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- 2014
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9. Optimal Positioning of the Circulating Load Input along the Tube Mill Length
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Vladimir P. Zhukov, Victor Zaitsev, and Mizonov Vadim E
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Engineering ,Control theory ,business.industry ,General Chemical Engineering ,Mechanical engineering ,Mill ,Tube (fluid conveyance) ,General Chemistry ,business ,Industrial and Manufacturing Engineering ,Grinding - Published
- 2014
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10. Asymmetric interactions induced by spatio-temporal couplings of femtosecond laser pulses in transparent media
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Selcuk Akturk, Vladimir P. Zhukov, and Nadezhda M. Bulgakova
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Physics ,Free electron model ,Laser scanning ,business.industry ,Statistical and Nonlinear Physics ,Rate equation ,Plasma ,Laser ,Polarization (waves) ,01 natural sciences ,Atomic and Molecular Physics, and Optics ,law.invention ,010309 optics ,Ultrashort laser ,Optics ,law ,0103 physical sciences ,Femtosecond ,business - Abstract
Numerous experimental studies in recent years have revealed intriguing symmetry breakings during non-linear interaction of ultrashort laser pulses with materials. Dependence of the formed structures on the direction of laser scanning and polarization, an effect known as non-reciprocal writing, is one of the most commonly observed asymmetries. These observations are generally attributed to spatio-temporal couplings (primarily pulse-front tilt) in the laser pulses. Even though such couplings indeed break the spatial symmetry of the light–matter interactions, a detailed understanding of ongoing phenomena in the microscopic level is still lacking. In this work, we present our theoretical results, which, to the best of our knowledge, constitute the first demonstration of the physical mechanisms behind non-reciprocal writing and related effects in transparent media. Our model is based on non-linear Maxwell’s equations supplemented by the hydrodynamic equations for free electron plasma, and rate equations for the evolution of defects inside the material. It has enabled us to gain a qualitative insight into the features of propagation of ultrashort laser pulses with tilted pulse fronts, in the regimes of volumetric laser modification of transparent materials.
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- 2019
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11. Modeling of residual thermal effect in femtosecond laser ablation of metals: role of a gas environment
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Nadezhda M. Bulgakova, Vladimir P. Zhukov, Chunlei Guo, and Anatoliy Y. Vorobyev
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business.industry ,Chemistry ,General Chemistry ,Plasma ,Thermal conduction ,Laser ,Molecular physics ,law.invention ,Thermal conductivity ,Optics ,law ,Thermal ,General Materials Science ,Thermal blooming ,Absorption (electromagnetic radiation) ,business ,Thermal energy - Abstract
To describe the effect of significant enhancement in thermal energy retained in metal targets following femtosecond laser ablation in a gas environment, we develop a combined model based on both 2D thermal modeling of laser-induced target heating and dynamics of the ambient gas perturbed by multiphoton absorption of laser energy in close proximity to the target. Using our model, we find that thermal energy coupling to the sample is significantly enhanced due to laser-induced gas-dynamic motion in plasma. Another finding is that total thermal energy coupled to the sample due to gas-dynamic energy transfer and thermal energy conduction is close to that measured in our experiment.
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- 2008
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12. Nonlinear Maxwell’s and Schrödinger equations for describing the volumetric interaction of femtosecond laser pulses with transparent solid dielectrics: effect of the boundary conditions
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Mikhail P. Fedoruk, Nadezhda M. Bulgakova, and Vladimir P. Zhukov
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Physics ,Theoretical and experimental justification for the Schrödinger equation ,business.industry ,Applied Mathematics ,General Engineering ,Laser ,Atomic and Molecular Physics, and Optics ,Action (physics) ,law.invention ,Schrödinger equation ,Computational Mathematics ,symbols.namesake ,Nonlinear system ,Optics ,law ,Electric field ,Quantum electrodynamics ,Femtosecond ,symbols ,Boundary value problem ,business - Abstract
This paper compares models based on nonlinear Maxwell’s and Schrodinger equations developed for modeling typical experiments involving the three-dimensional modification of glasses (using fused quartz as an example) under the action of femtosecond laser pulses. It is shown that the results can be appreciably different when the Maxwell’s and Schrodinger equations are used. A substantial role in this case is played not only by the equations themselves, but also by the form of the boundary condition that describes the focused laser pulse at the input to the region of calculation.
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- 2017
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13. Interaction of doughnut-shaped laser pulses with glasses
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Alexander M. Rubenchik, Mikhail P. Fedoruk, Vladimir P. Zhukov, and Nadezhda M. Bulgakova
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Distributed feedback laser ,Materials science ,business.industry ,Far-infrared laser ,Physics::Optics ,Statistical and Nonlinear Physics ,02 engineering and technology ,021001 nanoscience & nanotechnology ,Laser ,01 natural sciences ,Atomic and Molecular Physics, and Optics ,law.invention ,010309 optics ,Laser linewidth ,Optics ,law ,0103 physical sciences ,Ultrafast laser spectroscopy ,Physics::Accelerator Physics ,Physics::Atomic Physics ,Laser beam quality ,Thermal blooming ,Laser power scaling ,0210 nano-technology ,business - Abstract
Non-Gaussian laser beams can open new opportunities for microfabrication, including ultrashort laser direct writing. Using a model based on Maxwell’s equations, we have investigated the dynamics of doughnut-shaped laser beams focused inside fused silica glass, in comparison with Gaussian pulses of the same energy. The laser propagation dynamics reveals intriguing features of beam splitting and sudden collapse toward the beam axis, overcoming the intensity clamping effect. The resulting structure of light absorption represents a very hot, hollow nanocylinder, which can lead to an implosion process that brings matter to extreme thermodynamic states. Monitoring the simulations of the laser beam scattering has shown a considerable difference in both the blueshift and the angular distribution of scattered light for different laser energies, suggesting that investigations of the spectra of scattered radiation can be used as a diagnostic of laser-produced electron plasmas in transparent materials.
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- 2017
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14. Modification of transparent materials with ultrashort laser pulses: What is energetically and mechanically meaningful?
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Svetlana V. Sonina, Vladimir P. Zhukov, Yuri P. Meshcheryakov, and Nadezhda M. Bulgakova
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Electron density ,Materials science ,business.industry ,Physics::Optics ,General Physics and Astronomy ,Laser ,01 natural sciences ,Molecular physics ,law.invention ,010309 optics ,symbols.namesake ,Microsecond ,Matrix (mathematics) ,Ultrashort laser ,Optics ,Maxwell's equations ,law ,Free electron density ,Flow birefringence ,0103 physical sciences ,symbols ,Physics::Atomic Physics ,010306 general physics ,business - Abstract
A comprehensive analysis of laser-induced modification of bulk glass by single ultrashort laser pulses is presented which is based on combination of optical Maxwell-based modeling with thermoelastoplastic simulations of post-irradiation behavior of matter. A controversial question on free electron density generated inside bulk glass by ultrashort laser pulses in modification regimes is addressed on energy balance grounds. Spatiotemporal dynamics of laser beam propagation in fused silica have been elucidated for the regimes used for direct laser writing in bulk glass. 3D thermoelastoplastic modeling of material relocation dynamics under laser-induced stresses has been performed up to the microsecond timescale when all motions in the material decay. The final modification structure is found to be imprinted into material matrix already at sub-nanosecond timescale. Modeling results agree well with available experimental data on laser light transmission through the sample and the final modification structure.
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- 2015
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15. Application of the theory of Markov chains to model different processes in particle technology
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Henri Berthiaux, Vladimir P. Zhukov, Mizonov Vadim E, Poudres et procédés - Ecole des Mines Albi-Carmaux, IMT École nationale supérieure des Mines d'Albi-Carmaux (IMT Mines Albi), Institut Mines-Télécom [Paris] (IMT)-Institut Mines-Télécom [Paris] (IMT), Centre de recherche d'Albi en génie des procédés des solides divisés, de l'énergie et de l'environnement (RAPSODEE), Centre National de la Recherche Scientifique (CNRS)-IMT École nationale supérieure des Mines d'Albi-Carmaux (IMT Mines Albi), Department of Applied Mathematics (Ivanovo, Russie), and Ivanovo State Power Engineering University (RUSSIA)
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Engineering ,Particle technology ,Property (philosophy) ,Markov chain ,Process (engineering) ,business.industry ,General Chemical Engineering ,Stochastic matrix ,02 engineering and technology ,021001 nanoscience & nanotechnology ,Grinding ,[SPI]Engineering Sciences [physics] ,Transformation (function) ,020401 chemical engineering ,Statistical physics ,0204 chemical engineering ,0210 nano-technology ,business ,Simulation ,Mixing (physics) ,ComputingMilieux_MISCELLANEOUS - Abstract
The essence of almost all processes with participation of particulate solids is similar: it is a transformation of a particle property, or properties. This suggests that a unified basis for examining the changes of this property with (for example) time, may be derived. In this paper, the general strategy of building the Markov chain models and computational analysis of characteristics of a process is described, and some examples of application of the approach to model grinding, classification, grinding with internal classification, mixing, agglomeration, etc, are shown. The use of multidimensional models to consider simultaneously different properties is emphasised. The approach also allows taking into account non-linear phenomena, which are very typical of particulate processes but are very seldom considered in usual models.
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- 2004
16. Pulsed laser modification of transparent dielectrics: what can be foreseen and predicted by numerical simulations?
- Author
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Tomas Mocek, Jan Brajer, Yuri P. Meshcheryakov, Vladimir P. Zhukov, Laura Gemini, Nadezhda M. Bulgakova, and Danijela Rostohar
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Materials science ,Active laser medium ,business.industry ,Far-infrared laser ,Physics::Optics ,Statistical and Nonlinear Physics ,Laser ,Atomic and Molecular Physics, and Optics ,law.invention ,Numerical aperture ,Optics ,law ,Femtosecond ,Ultrafast laser spectroscopy ,Laser power scaling ,business ,Absorption (electromagnetic radiation) - Abstract
Numerical simulations based on Maxwell’s equations have been performed for gaining deep insight into the processes governing laser light absorption in transparent dielectrics in the regimes typical for laser direct writing of various optical structures inside bulk glasses such as waveguides, nanoplanes, and voids. Numerical simulations have been performed for fused silica glass irradiated by femtosecond laser pulses at 800 nm wavelength. The geometry of laser energy absorption is compared for two pulse durations and energies from 0.1 to 1 μJ. The effect of the numerical aperture of the laser energy deposition is studied. Double-pulse irradiation has been modeled to gain insight into “exciton-seeded multiphoton ionization” [Phys. Rev. B81, 212301 (2010).PRBMDO1098-0121]. Furthermore, several consecutive laser pulses have been modeled to gain a better understanding of the qualitative tendency of memory effects related to defect accumulation. Features of laser energy coupling into bulk glass such as asymmetry of absorption for the cylindrically symmetric linearly polarized beam and formation of a defect shield developing in multipulse irradiation regimes have been revealed.
- Published
- 2014
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