Intermolecular Interactions in the Membrane Filtration of Highly Alkaline Steeping Lye
The reuse of steeping lye is crucial for the sustainable production of viscose fibers. Steeping lye contains hemicellulose and many alkaline degradation products, such as organic acids, so that its purification can be evaluated in terms of total organic carbon removal. When considering purification...
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2021-01-01
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doaj-ee8435ff0d2f4b7283be184288d722f32021-01-28T00:04:56ZengMDPI AGMembranes2077-03752021-01-0111888810.3390/membranes11020088Intermolecular Interactions in the Membrane Filtration of Highly Alkaline Steeping LyeKlaus Schlackl0Richard Herchl1Lukas Almhofer2Robert H. Bischof3Karin Fackler4Wolfgang Samhaber5Kompetenzzentrum Holz GmbH, 4040 Linz, AustriaLenzing AG, 4860 Lenzing, AustriaKompetenzzentrum Holz GmbH, 4040 Linz, AustriaLenzing AG, 4860 Lenzing, AustriaLenzing AG, 4860 Lenzing, AustriaDepartment of Process Engineering, Johannes Kepler University, 4040 Linz, AustriaThe reuse of steeping lye is crucial for the sustainable production of viscose fibers. Steeping lye contains hemicellulose and many alkaline degradation products, such as organic acids, so that its purification can be evaluated in terms of total organic carbon removal. When considering purification by membrane filtration, intermolecular interactions between hemicellulose and organic acids can strongly affect their retention efficiency. Herein, we give more insights into the ultrafiltration and nanofiltration of steeping lye and corresponding model solutions. Furthermore, we studied the impact of total organic carbon concentration, hemicellulose concentration and sodium hydroxide concentration on the membrane performance. Hydrogen bonds between hemicellulose and certain types of hydroxy acids increased the retention of the latter. In contrast, charge based repulsion forces led to a decreased retention of a certain type of hydroxy acids. It can be clearly shown that taking intermolecular interactions into account is highly important for the description of complex multicomponent mixtures. In addition, the results can be extended to other, highly alkaline process streams with organic content, such as Kraft pulping liquors.https://www.mdpi.com/2077-0375/11/2/88nanofiltrationultrafiltrationsteeping lyehemicellulosehydrogen bondsintermolecular interactions |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Klaus Schlackl Richard Herchl Lukas Almhofer Robert H. Bischof Karin Fackler Wolfgang Samhaber |
spellingShingle |
Klaus Schlackl Richard Herchl Lukas Almhofer Robert H. Bischof Karin Fackler Wolfgang Samhaber Intermolecular Interactions in the Membrane Filtration of Highly Alkaline Steeping Lye Membranes nanofiltration ultrafiltration steeping lye hemicellulose hydrogen bonds intermolecular interactions |
author_facet |
Klaus Schlackl Richard Herchl Lukas Almhofer Robert H. Bischof Karin Fackler Wolfgang Samhaber |
author_sort |
Klaus Schlackl |
title |
Intermolecular Interactions in the Membrane Filtration of Highly Alkaline Steeping Lye |
title_short |
Intermolecular Interactions in the Membrane Filtration of Highly Alkaline Steeping Lye |
title_full |
Intermolecular Interactions in the Membrane Filtration of Highly Alkaline Steeping Lye |
title_fullStr |
Intermolecular Interactions in the Membrane Filtration of Highly Alkaline Steeping Lye |
title_full_unstemmed |
Intermolecular Interactions in the Membrane Filtration of Highly Alkaline Steeping Lye |
title_sort |
intermolecular interactions in the membrane filtration of highly alkaline steeping lye |
publisher |
MDPI AG |
series |
Membranes |
issn |
2077-0375 |
publishDate |
2021-01-01 |
description |
The reuse of steeping lye is crucial for the sustainable production of viscose fibers. Steeping lye contains hemicellulose and many alkaline degradation products, such as organic acids, so that its purification can be evaluated in terms of total organic carbon removal. When considering purification by membrane filtration, intermolecular interactions between hemicellulose and organic acids can strongly affect their retention efficiency. Herein, we give more insights into the ultrafiltration and nanofiltration of steeping lye and corresponding model solutions. Furthermore, we studied the impact of total organic carbon concentration, hemicellulose concentration and sodium hydroxide concentration on the membrane performance. Hydrogen bonds between hemicellulose and certain types of hydroxy acids increased the retention of the latter. In contrast, charge based repulsion forces led to a decreased retention of a certain type of hydroxy acids. It can be clearly shown that taking intermolecular interactions into account is highly important for the description of complex multicomponent mixtures. In addition, the results can be extended to other, highly alkaline process streams with organic content, such as Kraft pulping liquors. |
topic |
nanofiltration ultrafiltration steeping lye hemicellulose hydrogen bonds intermolecular interactions |
url |
https://www.mdpi.com/2077-0375/11/2/88 |
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