Detail publikace

Thermal behaviour of inorganic aluminosilicate polymer based on cement kiln dust

KUBÁTOVÁ, D. RYBOVÁ, A. ZEZULOVÁ, A. ŠVEC, J.

Originální název

Thermal behaviour of inorganic aluminosilicate polymer based on cement kiln dust

Typ

článek ve sborníku ve WoS nebo Scopus

Jazyk

angličtina

Originální abstrakt

Alkali activated materials have shown potential for use in high temperature applications. This paper deals with thermal behaviour of various inorganic polymer formulations, which were prepared by mixing metakaolin, blast furnace slag, fly ash and cement kiln dust as alkaline activator. The cement kiln dust was added in the amount of 10 wt.%. The influence of thermal treatment ranging from 30 to 1000 degrees C on the following characteristics was evaluated: compressive strength, thermal expansion, weight loss, melting point, morphology changes and dehydration. The thermal behaviour was studied by TG-DTA analysis, dilatometry and heating microscope, XRD analysis was used to examine phase changes. All measurements were conducted on samples after 28 days of curing time.

Klíčová slova

FLY-ASH; PART 1; GEOPOLYMER; HYDRATION; SLAG; TEMPERATURE; CKD

Autoři

KUBÁTOVÁ, D.; RYBOVÁ, A.; ZEZULOVÁ, A.; ŠVEC, J.

Vydáno

29. 5. 2018

Nakladatel

IOP PUBLISHING LTD

Místo

BRISTOL

ISSN

1757-8981

Periodikum

IOP Conference Series: Materials Science and Engineering

Ročník

379

Stát

Spojené království Velké Británie a Severního Irska

Strany od

012008

Strany do

012008

Strany počet

9

BibTex

@inproceedings{BUT170312,
  author="Dana {Kubátová} and Alexandra {Rybová} and Anežka {Zezulová} and Jiří {Švec}",
  title="Thermal behaviour of inorganic aluminosilicate polymer based on cement kiln dust",
  booktitle="IOP Conf. Series: Materials Science and Engineering",
  year="2018",
  journal="IOP Conference Series: Materials Science and Engineering",
  volume="379",
  pages="012008 --012008",
  publisher="IOP PUBLISHING LTD",
  address="BRISTOL",
  doi="10.1088/1757-899X/379/1/012008",
  issn="1757-8981"
}