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         "author": [ 
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            	{"first" : "Christian",	"last" : "Kunert"},
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         "author": [ 
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            	{"first" : "Jens",	"last" : "Harting"}
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         "author": [ 
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            	{"first" : "Olga I.",	"last" : "Vinogradova"}
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         "volume": "105","number": "1","pages": "016001","abstract": "We report results of lattice Boltzmann simulations of a high-speed drainage of liquid films squeezed between a smooth sphere and a randomly rough plane. A significant decrease in the hydrodynamic resistance force as compared with that predicted for two smooth surfaces is observed. However, this force reduction does not represent slippage. The computed force is exactly the same as that between equivalent smooth surfaces obeying no-slip boundary conditions, but located at an intermediate position between peaks and valleys of asperities. The shift in hydrodynamic thickness is shown to depend on the height and density of roughness elements. Our results do not support some previous experimental conclusions on a very large and shear-dependent boundary slip for similar systems.",
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         "author": [ 
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            	{"first" : "Christian",	"last" : "Kunert"},
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         "volume": "8","number": "1","pages": "1--10","abstract": "In this contribution, we review recent efforts on investigations of the effect of (apparent) boundary slip by utilizing lattice Boltzmann simulations. We demonstrate the applicability of the method to treat fundamental questions in microfluidics by investigating fluid flow in hydrophobic and rough microchannels as well as over surfaces covered by nano- or microscale gas bubbles.",
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         "label" : "From bijels to Pickering emulsions: A lattice Boltzmann study",
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         "author": [ 
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         "volume": "83","number": "4","pages": "046707","abstract": "Particle stabilized emulsions are ubiquitous in the food and cosmetics industry, but our understanding of the influence of microscopic fluid-particle and particle-particle interactions on the macroscopic rheology is still limited. In this paper we present a simulation algorithm based on a multicomponent lattice Boltzmann model to describe the solvents combined with a molecular dynamics solver for the description of the solved particles. It is shown that the model allows a wide variation of fluid properties and arbitrary contact angles on the particle surfaces. We demonstrate its applicability by studying the transition from a ``bicontinuous interfacially jammed emulsion gel&#39;&#39; (bijel) to a ``Pickering emulsion&#39;&#39; in dependence on the contact angle, the particle concentration, and the ratio of the solvents.",
         "numpages" : "11",
         
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         "author": [ 
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         "author": [ 
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         "author": [ 
            "J Hyväluoma","C Kunert","J Harting"
         ],
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            	{"first" : "C",	"last" : "Kunert"},
            	{"first" : "J",	"last" : "Harting"}
         ],
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