TY - JOUR
T1 - Geopolymer reinforced with E-glass leno weaves
AU - Sankar, Kaushik
AU - Kriven, Waltraud M.
N1 - The authors thank Mr. Lee Berry of B&W Fiberglass Shelby, NC for providing the E-glass leno weaves used in this study, Gregory P. Kutyla and Daniel Ribero for insightful discussions and help with instruments. Tensile and flexure testing was done at the Advanced Materials Testing and Evaluation Laboratory at UIUC. SEM, XRD and TGA were carried out at the Frederick Seitz Materials Research Laboratory at UIUC. This work was funded by the Air Force Office of Science and Research grant number 919AF FA8650-11-1-5900 administered through the Tyndall Air Force Base.
PY - 2017/6/1
Y1 - 2017/6/1
N2 - This study explores the viability of fiberglass-geopolymer composites as an intermediate temperature structural ceramic composite. E-glass fibers are cheap, readily available, resistant to heat, electricity and chemical attack. Geopolymers are refractory and can be processed at room temperature. However, pure geopolymers have low tensile strength and fracture toughness, as is typical of ceramics. In this work, tensile and flexure properties of metakaolin-based sodium and potassium geopolymers reinforced with E-glass leno weaves were measured and the data was analyzed by Weibull statistics. The average tensile and flexural strengths for sodium geopolymer reinforced with E-glass leno weaves were 39.3 ± 7.2 MPa and 25.6 ± 4.8 MPa, respectively. For potassium geopolymer reinforced with E-glass leno weaves, the average tensile and flexural strengths were 40.7 ± 9.9 MPa and 15.9 ± 4.0 MPa, respectively. The composites were heat treated for one hour at two temperatures, 300°C and 550°C and their flexure properties were studied at room temperatures. The average flexural strengths for sodium geopolymer reinforced with E-glass leno weaves were reduced to 6.6 ± 1.0 MPa after heat treatment at 300°C, and 1.2 ± 0.3 MPa after heat treatment at 550°C, respectively. For potassium geopolymer reinforced with E-glass leno weaves, the average flexural strengths were 6.1 ± 1.5 MPa and 1.3 ± 0.3 MPa after heat treatment at 300°C and 550°C, respectively. SEM and EDS were performed to observe the fiber-matrix interface. XRD was done to check if the geopolymer was amorphous as expected.
AB - This study explores the viability of fiberglass-geopolymer composites as an intermediate temperature structural ceramic composite. E-glass fibers are cheap, readily available, resistant to heat, electricity and chemical attack. Geopolymers are refractory and can be processed at room temperature. However, pure geopolymers have low tensile strength and fracture toughness, as is typical of ceramics. In this work, tensile and flexure properties of metakaolin-based sodium and potassium geopolymers reinforced with E-glass leno weaves were measured and the data was analyzed by Weibull statistics. The average tensile and flexural strengths for sodium geopolymer reinforced with E-glass leno weaves were 39.3 ± 7.2 MPa and 25.6 ± 4.8 MPa, respectively. For potassium geopolymer reinforced with E-glass leno weaves, the average tensile and flexural strengths were 40.7 ± 9.9 MPa and 15.9 ± 4.0 MPa, respectively. The composites were heat treated for one hour at two temperatures, 300°C and 550°C and their flexure properties were studied at room temperatures. The average flexural strengths for sodium geopolymer reinforced with E-glass leno weaves were reduced to 6.6 ± 1.0 MPa after heat treatment at 300°C, and 1.2 ± 0.3 MPa after heat treatment at 550°C, respectively. For potassium geopolymer reinforced with E-glass leno weaves, the average flexural strengths were 6.1 ± 1.5 MPa and 1.3 ± 0.3 MPa after heat treatment at 300°C and 550°C, respectively. SEM and EDS were performed to observe the fiber-matrix interface. XRD was done to check if the geopolymer was amorphous as expected.
KW - Weibull statistics
KW - composites
KW - fibers
KW - geopolymers
KW - kaolin
UR - https://www.scopus.com/pages/publications/85020050934
UR - https://www.scopus.com/pages/publications/85020050934#tab=citedBy
U2 - 10.1111/jace.14783
DO - 10.1111/jace.14783
M3 - Article
AN - SCOPUS:85020050934
SN - 0002-7820
VL - 100
SP - 2492
EP - 2501
JO - Journal of the American Ceramic Society
JF - Journal of the American Ceramic Society
IS - 6
ER -