| Literature DB >> 11009036 |
Abstract
Electrophoretic separations at typical experimental electric field strengths have been simulated by applying the flux-corrected transport (FCT) finite difference method to the transient, one-dimensional electrophoresis model. The performance of FCT on simulations of zone electrophoresis (ZE), isotachophoresis (ITP), and isoelectric focusing (IEF) has been evaluated. An FCT algorithm, with a three-point, central spatial discretization, yields numerical solutions without numerical oscillations or spurious peaks, which have plagued previously-published second-order solutions to benchmark ZE and ITP problems. Moreover, the FCT technique captures sharp zone boundaries and IEF peaks more accurately than previously-published, first-order upwind schemes.Mesh:
Year: 2000 PMID: 11009036 DOI: 10.1016/s0021-9673(00)00500-8
Source DB: PubMed Journal: J Chromatogr A ISSN: 0021-9673 Impact factor: 4.759