Multi-objective optimization of chromatographic rare earth element separation

J Chromatogr A. 2015 Oct 16:1416:57-63. doi: 10.1016/j.chroma.2015.09.010. Epub 2015 Sep 7.

Abstract

The importance of rare earth elements in modern technological industry grows, and as a result the interest for developing separation processes increases. This work is a part of developing chromatography as a rare earth element processing method. Process optimization is an important step in process development, and there are several competing objectives that need to be considered in a chromatographic separation process. Most studies are limited to evaluating the two competing objectives productivity and yield, and studies of scenarios with tri-objective optimizations are scarce. Tri-objective optimizations are much needed when evaluating the chromatographic separation of rare earth elements due to the importance of product pool concentration along with productivity and yield as process objectives. In this work, a multi-objective optimization strategy considering productivity, yield and pool concentration is proposed. This was carried out in the frame of a model based optimization study on a batch chromatography separation of the rare earth elements samarium, europium and gadolinium. The findings from the multi-objective optimization were used to provide with a general strategy for achieving desirable operation points, resulting in a productivity ranging between 0.61 and 0.75 kgEu/mcolumn(3), h(-1) and a pool concentration between 0.52 and 0.79 kgEu/m(3), while maintaining a purity above 99% and never falling below an 80% yield for the main target component europium.

Keywords: Chromatography; Multi-objective optimization; Parameter estimation; Pareto optimal surface; Rare earth elements.

MeSH terms

  • Chromatography, High Pressure Liquid / standards*
  • Europium / isolation & purification*
  • Gadolinium / isolation & purification*
  • Mass Spectrometry
  • Samarium / isolation & purification*

Substances

  • Samarium
  • Europium
  • Gadolinium