Amorphous silica and alumina of metakaolin are used to adjust the bulk composition of black (BSS) and white (WSS) steel slag to prepare alkali-activated (AAS) mortars consolidated at room temperature. The mix-design also includes also the addition of semi-crystalline matrix of river sand to the metakaolin/steel powders. The results showed that high strength of the steel slag/metakaolin mortars can be achieved with the geopolymerization process which was particularly affected by the metallic iron present into the steel slag. The corrosion of the Fe particles was found to be responsible for porosity in the range between 0.1 and 10 μm. This class of porosity dominated (~31 vol %) the pore network of B compared to W samples (~16 vol %). However, W series remained with the higher cumulative pore volume (0.18 mL/g) compared to B series, with 0.12 mL/g. The maximum flexural strength was 6.89 and 8.51 MPa for the W and B series, respectively. The fracture surface ESEM observations of AAS showed large grains covered with the matrix assuming the good adhesion bonds between the gel-like geopolymer structure mixed with alkali activated steel slag and the residual unreacted portion. The correlation between the metallic iron/Fe oxides content, the pore network development, the strength and microstructure suggested the steel slag's significant action into the strengthening mechanism of consolidated products. These products also showed an interesting adsorption/desorption behavior that suggested their use as coating material to maintain the stability of the indoor relative humidity.

Design of inorganic polymer mortar from ferricalsialic and calsialic slags for indoor humidity control / Kamseu, Elie; Lancellotti, Isabella; Sglavo, Vincenzo M.; Modolo, Luca; Leonelli, Cristina. - In: MATERIALS. - ISSN 1996-1944. - ELETTRONICO. - 9:6(2016), pp. 410-421. [10.3390/ma9060410]

Design of inorganic polymer mortar from ferricalsialic and calsialic slags for indoor humidity control

KAMSEU, Elie;LANCELLOTTI, Isabella;LEONELLI, Cristina
2016

Abstract

Amorphous silica and alumina of metakaolin are used to adjust the bulk composition of black (BSS) and white (WSS) steel slag to prepare alkali-activated (AAS) mortars consolidated at room temperature. The mix-design also includes also the addition of semi-crystalline matrix of river sand to the metakaolin/steel powders. The results showed that high strength of the steel slag/metakaolin mortars can be achieved with the geopolymerization process which was particularly affected by the metallic iron present into the steel slag. The corrosion of the Fe particles was found to be responsible for porosity in the range between 0.1 and 10 μm. This class of porosity dominated (~31 vol %) the pore network of B compared to W samples (~16 vol %). However, W series remained with the higher cumulative pore volume (0.18 mL/g) compared to B series, with 0.12 mL/g. The maximum flexural strength was 6.89 and 8.51 MPa for the W and B series, respectively. The fracture surface ESEM observations of AAS showed large grains covered with the matrix assuming the good adhesion bonds between the gel-like geopolymer structure mixed with alkali activated steel slag and the residual unreacted portion. The correlation between the metallic iron/Fe oxides content, the pore network development, the strength and microstructure suggested the steel slag's significant action into the strengthening mechanism of consolidated products. These products also showed an interesting adsorption/desorption behavior that suggested their use as coating material to maintain the stability of the indoor relative humidity.
2016
Inglese
9
6
410
421
http://www.mdpi.com/1996-1944/9/6/410
Alkali-activated slag (AAS) cements; Microstructure; Mix-design; Moisture control capacity; Pore size distribution; Steel slag; Materials Science.
This paper represents a fruitful collaboration with the Department of Industrial Engineering, University of Trento (in the person of Prof. Sglavo with whom Leonelli has been collaborating for the past 25-30 years), Acciaierie Bertoli Safau S.p.A., Pozzuolo del Friuli (UD), Italy (informal collaboration for exploiting the industrial by-products), and Local Materials Promotion Authority (MIPROMALO), Cameroon (with whom UNIMORE has signed a collaboration agreement).
open
info:eu-repo/semantics/article
Contributo su RIVISTA::Articolo su rivista
262
Design of inorganic polymer mortar from ferricalsialic and calsialic slags for indoor humidity control / Kamseu, Elie; Lancellotti, Isabella; Sglavo, Vincenzo M.; Modolo, Luca; Leonelli, Cristina. - In: MATERIALS. - ISSN 1996-1944. - ELETTRONICO. - 9:6(2016), pp. 410-421. [10.3390/ma9060410]
Kamseu, Elie; Lancellotti, Isabella; Sglavo, Vincenzo M.; Modolo, Luca; Leonelli, Cristina
5
   Reaserch Agreement signed between Local Material Promotion Authority (MIPROMALO), Yaoundé, Cameroon, and the Department of Engineering “Enzo Ferrari”, University of Modena and Reggio Emilia, Modena, Italy. Informal collaboration with Acciaierie Bertoli Safau S.p.A., Via Buttrio 28–fraz. Cargnacco, Pozzuolo del Friuli (UD) 33050, Italy, to exploit their by-products.
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