Technical Papers
Sep 25, 2017

Comparative Study of the Use of Different Biomass Bottom Ash in the Manufacture of Ceramic Bricks

Publication: Journal of Materials in Civil Engineering
Volume 29, Issue 12

Abstract

The present study evaluates the suitability of several types of biomass bottom ashes [wood bottom ash (WBA), pine-olive pruning bottom ash (POPBA), olive stone bottom ash (OSBA), and olive pomace bottom ash (OPBA)] as an alternative source to replace ceramic raw material in the production of clay bricks. The clay and biomass bottom ash were characterized by means of X-ray diffraction (XRD) (crystallinity), X-ray fluorescence spectroscopy (XRF) (chemical composition), carbon, nitrogen, hydrogen, and sulphur (CNHS) (elemental chemical analysis), and particle-size distribution. The specimens were manufactured by mixing clay and 20 by weight (wt%) of biomass bottom ash, subsequently compacted and fired at 1,000°C. The fired samples were characterized to determine their technological properties. The results indicate that brick formulations containing biomass bottom ash decreased the bulk density of the control bricks. At the same time, they have suitable mechanical behavior. In addition, thermal properties of clay-biomass bottom ash are manifestly better than those of the clay control bricks. The heavy-metal concentration in the leaching test of the bottom ash-clay bricks establishes that the bricks do not present environmental problems.

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Acknowledgments

This work has been funded by the Project “Valuation of various types of ash for the obtaining of new sustainable ceramic materials” (UJA2014/06/13), Own Plan University of Jaen, sponsored by Caja Rural of Jaen. The authors thank Tradema S.L, Aldebarán Energia del Guadalquivir S.L., Valoriza Energía, and Energía de La Loma S.A. companies for supplying the wastes. Technical and human support provided by CICT of Universidad de Jaén (UJA, MINECO, Junta de Andalucía, and FEDER) is gratefully acknowledged.

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Go to Journal of Materials in Civil Engineering
Journal of Materials in Civil Engineering
Volume 29Issue 12December 2017

History

Received: Dec 8, 2016
Accepted: May 21, 2017
Published online: Sep 25, 2017
Published in print: Dec 1, 2017
Discussion open until: Feb 25, 2018

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D. Eliche-Quesada, Ph.D. [email protected]
Professor, Dept. of Chemical, Environmental, and Materials Engineering, Higher Polytechnic School of Jaén, Univ. of Jaen, Campus Las Lagunillas s/n, 23071 Jaén, Spain (corresponding author). E-mail: [email protected]
M. A. Felipe-Sesé, Ph.D.
Professor, Dept. of Chemical, Environmental, and Materials Engineering, Higher Polytechnic School of Jaén, Univ. of Jaen, Campus Las Lagunillas s/n, 23071 Jaén, Spain; International Univ. of La Rioja, Avenida La Paz, 137, 26002 Logroño, La Rioja, Spain.
S. Martínez-Martínez
Graduate, Dept. of Chemical, Environmental, and Materials Engineering, Higher Polytechnic School of Linares, Univ. of Jaen, Campus Científico-Tecnológico Cinturón Sur s/n, 23700 Jaén, Linares, Spain.
L. Pérez-Villarejo, Ph.D.
Professor, Dept. of Chemical, Environmental, and Materials Engineering, Higher Polytechnic School of Linares, Univ. of Jaen, Campus Científico-Tecnológico Cinturón Sur s/n, 23700 Jaén, Linares, Spain.

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