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Column experimental design requirements for estimating model parameters from temporal moments under nonequilibrium conditions

✍ Scribed by Dirk F Young; William P Ball


Book ID
104326993
Publisher
Elsevier Science
Year
2000
Tongue
English
Weight
327 KB
Volume
23
Category
Article
ISSN
0309-1708

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✦ Synopsis


Data truncation is a practical necessity of laboratory column experiments because of both time and detection-limit constraints. In this paper, we study the extent to which data truncation can aect estimates of transport modeling parameters, as derived from temporal moment calculations and in the context of solute transport experiments that are in¯uenced by sorption and nonequilibrium partitioning among mobile and immobile phases. Our results show that, for a given amount of solute used, step changes in input conditions can give more accurate moment-derived parameters than Dirac or square-wave pulses, whereas Dirac and squarewave pulses are essentially identical in terms of accuracy of parameter estimates. By simulating data truncation for a wide range of column input and transport conditions, we provide guidance toward the experimental designs that are needed to keep parameter estimation error within speci®ed bounds, assuming nonequilibrium conditions of transport that result from either ®rst-order or diusion-based rate processes. More speci®cally, we investigate the relationships between mass of solute added to the system, minimum solute quanti®cation limits, experiment duration times, and accuracy of parameter estimation, all as a function of experimental conditions.