• Treffer 1 von 1
Zurück zur Trefferliste

Investigations on Stability of Polycarboxylate Superplasticizers in Alkaline Activators for Geopolymer Binders

  • Calcined clays are interesting starting materials to be used as SCMs (supplementary cementitious materials) in cements or to be converted to geopolymers by activation with a high alkaline activator. The adjustment of the properties in the fresh state, especially regarding the consistency of these binders, is almost exclusively achieved by the addition of water, since commercially availableCalcined clays are interesting starting materials to be used as SCMs (supplementary cementitious materials) in cements or to be converted to geopolymers by activation with a high alkaline activator. The adjustment of the properties in the fresh state, especially regarding the consistency of these binders, is almost exclusively achieved by the addition of water, since commercially available superplasticizers seem to be ineffective in low-calcium geopolymer systems. The aim of this study was a systematic investigation of various PCE (polycarboxylate ester/ether) superplasticizers (methacrylate ester PCE: MPEG, isoprenol ether PCE: IPEG, methallyl ether PCE: HPEG) with respect to their stability in different alkaline activators (NaOH, KOH, sodium and potassium silicate solutions). The effectiveness of superplasticizers (SPs) in low-calcium geopolymer binders was verified by rheological tests. Size exclusion chromatography was used to investigate if structural degradation of the superplasticizers occurs. The investigated PCE superplasticizers showed a thickening effect in the low-calcium geopolymer system. Depending on the alkalinity of the activator solution, a degradation process was detected for all the PCEs investigated. The side chains of the PCEs are cleaved off the backbone by basic ester and ether hydrolysis. The highest degree of degradation was found in sodium and potassium silicate solutions. In alkaline hydroxide solutions, the degradation process increases with increasing alkalinity.zeige mehrzeige weniger

Volltext Dateien herunterladen

  • Gefördert durch das Programm Open-Access-Publikationskosten der DFG und den Publikationsfonds der Bauhaus-Universität Weimar.

Metadaten exportieren

Weitere Dienste

Teilen auf Twitter Suche bei Google Scholar
Metadaten
Dokumentart:Artikel (Wissenschaftlicher)
Verfasserangaben:Dr.-Ing. Stephan PartschefeldORCiDGND, Adrian TutalORCiD, Thomas Halmanseder, Dr.-Ing. Jens SchneiderORCiD, Prof. Dr.-Ing. Andrea OsburgORCiDGND
DOI (Zitierlink):https://doi.org/10.3390/ma16155369Zitierlink
URN (Zitierlink):https://nbn-resolving.org/urn:nbn:de:gbv:wim2-20231026-64809Zitierlink
URL:https://www.mdpi.com/1996-1944/16/15/5369
Titel des übergeordneten Werkes (Englisch):Materials
Verlag:MDPI
Verlagsort:Basel
Sprache:Englisch
Datum der Veröffentlichung (online):23.10.2023
Datum der Erstveröffentlichung:31.07.2023
Datum der Freischaltung:26.10.2023
Veröffentlichende Institution:Bauhaus-Universität Weimar
Institute und Partnereinrichtugen:Fakultät Bauingenieurwesen / Professur Bauchemie und Polymere Werkstoffe
Jahrgang:2023
Ausgabe / Heft:Volume 16, issue 15, article 5369
Seitenzahl:14
Erste Seite:1
Letzte Seite:14
Freies Schlagwort / Tag:OA-Publikationsfonds2023
metakaoline; polycarboxylate ether; superplasticizer
GND-Schlagwort:Geopolymere; Verflüssigung
DDC-Klassifikation:500 Naturwissenschaften und Mathematik / 540 Chemie
BKL-Klassifikation:51 Werkstoffkunde / 51.60 Keramische Werkstoffe, Hartstoffe
Open Access Publikationsfonds:Open-Access-Publikationsfonds 2023
Lizenz (Deutsch):License Logo Creative Commons 4.0 - Namensnennung (CC BY 4.0)