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000050613 0247_ $$2DOI$$a10.1103/PhysRevE.73.021903
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000050613 084__ $$2WoS$$aPhysics, Fluids & Plasmas
000050613 084__ $$2WoS$$aPhysics, Mathematical
000050613 1001_ $$0P:(DE-Juel1)VDB37578$$aNoguchi, H.$$b0$$uFZJ
000050613 245__ $$aMeshless membrane model based on the moving least-squares method
000050613 260__ $$aCollege Park, Md.$$bAPS$$c2006
000050613 264_1 $$2Crossref$$3online$$bAmerican Physical Society (APS)$$c2006-02-10
000050613 264_1 $$2Crossref$$3print$$bAmerican Physical Society (APS)$$c2006-02-01
000050613 300__ $$a021903-1 - 021903-12
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000050613 440_0 $$04924$$aPhysical Review E$$v73$$x1539-3755
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000050613 520__ $$aA meshless particle-based membrane model is proposed. The particles possess no internal degree of freedom and interact via a potential, which has three different contributions: a short-range repulsive pair potential, an attractive multibody potential, and a curvature potential based on the moving least-squares method. Brownian dynamics simulations are employed to demonstrate that the particles self-assemble into a membrane and to study equilibrium properties, such as bending rigidity, surface tension, line tension, and diffusion constant. The bending rigidity and line tension are shown to depend on different potential parameters and can therefore be varied independently. The finite-size effects of nearly planar membranes are investigated. This model is well suited to study the membrane dynamics with topological changes.
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000050613 7001_ $$0P:(DE-Juel1)130665$$aGompper, G.$$b1$$uFZJ
000050613 77318 $$2Crossref$$3journal-article$$a10.1103/physreve.73.021903$$bAmerican Physical Society (APS)$$d2006-02-10$$n2$$p021903$$tPhysical Review E$$v73$$x1539-3755$$y2006
000050613 773__ $$0PERI:(DE-600)2844562-4$$a10.1103/PhysRevE.73.021903$$gVol. 73, p. 021903-1 - 021903-12$$n2$$p021903$$q73<021903-1 - 021903-12$$tPhysical review / E$$v73$$x1539-3755$$y2006
000050613 8567_ $$uhttp://hdl.handle.net/2128/1528$$uhttp://dx.doi.org/10.1103/PhysRevE.73.021903
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