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000152169 0247_ $$2doi$$a10.1007/s10237-013-0497-9
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000152169 1001_ $$0P:(DE-Juel1)140336$$aFedosov, Dmitry$$b0$$eCorresponding Author$$ufzj
000152169 245__ $$aMultiscale modeling of blood flow: from single cells to blood rheology
000152169 260__ $$aBerlin$$bSpringer$$c2014
000152169 3367_ $$0PUB:(DE-HGF)16$$2PUB:(DE-HGF)$$aJournal Article$$bjournal$$mjournal$$s1396880546_22146
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000152169 520__ $$aMesoscale simulations of blood flow, where the red blood cells are described as deformable closed shells with a membrane characterized by bending rigidity and stretching elasticity, have made much progress in recent years to predict the flow behavior of blood cells and other components in various flows. To numerically investigate blood flow and blood-related processes in complex geometries, a highly efficient simulation technique for the plasma and solutes is essential. In this review, we focus on the behavior of single and several cells in shear and microcapillary flows, the shear-thinning behavior of blood and its relation to the blood cell structure and interactions, margination of white blood cells and platelets, and modeling hematologic diseases and disorders. Comparisons of the simulation predictions with existing experimental results are made whenever possible, and generally very satisfactory agreement is obtained
000152169 536__ $$0G:(DE-HGF)POF2-451$$a451 - Soft Matter Composites (POF2-451)$$cPOF2-451$$fPOF II$$x0
000152169 7001_ $$0P:(DE-Juel1)130868$$aNoguchi, Hiroshi$$b1$$ufzj
000152169 7001_ $$0P:(DE-Juel1)130665$$aGompper, Gerhard$$b2$$ufzj
000152169 773__ $$0PERI:(DE-600)2064972-1$$a10.1007/s10237-013-0497-9$$n2$$p239-258$$tBiomechanics and modeling in mechanobiology$$v13$$x1617-7940$$y2014
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000152169 9132_ $$0G:(DE-HGF)POF3-553$$1G:(DE-HGF)POF3-550$$2G:(DE-HGF)POF3-500$$aDE-HGF$$bKey Technologies$$lBioSoft  Fundamentals for future Technologies in the fields of Soft Matter and Life Sciences$$vPhysical Basis of Diseases$$x0
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000152169 9141_ $$y2014
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000152169 9201_ $$0I:(DE-Juel1)IAS-2-20090406$$kIAS-2$$lTheorie der Weichen Materie und Biophysik $$x0
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