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Alkali-reduced Bauxite Residue as Novel SCM

Open Access
|Dec 2020

References

  1. 1. Yang J & Xiao B: “Development of unsintered construction materials from red mud wastes produced in the sintering alumina process”. Construction and Building Materials, Vol. 22, No. 12, 2008, pp. 2299-2307.10.1016/j.conbuildmat.2007.10.005
  2. 2. Evans K: “The History, Challenges, and New Developments in the Management and Use of Bauxite Residue”. Journal of Sustainable Metallurgy, Vol. 2, No. 4, 2016, pp. 316-331.10.1007/s40831-016-0060-x
  3. 3. Data published annually by World Aluminium. 2020, world-aluminium.org.
  4. 4. “International Aluminium Institute, Bauxite Residue Management: Best Practice”. London, United Kingdom, 2015.
  5. 5. Xue S-g, Wu Y-j, Li Y-w, Kong X-f, Zhu F, William H, Li X-f & Ye Y-z: “Industrial wastes applications for alkalinity regulation in bauxite residue: A comprehensive review”. Journal of Central South University, Vol. 26, No. 2, 2019, pp. 268-288.10.1007/s11771-019-4000-3
  6. 6. Hind A R, Bhargava S K & Grocott S C: “The surface chemistry of Bayer process solids: a review”. Colloids and Surfaces; A: Physiochemical and Engineering Aspects, No. 146, 1998, pp. 359-374.10.1016/S0927-7757(98)00798-5
  7. 7. Hertel T & Pontikes Y: “Geopolymers, inorganic polymers, alkali-activated materials and hybrid binders from bauxite residue (red mud) – Putting things in perspective”. Journal of Cleaner Production, Vol. 258, 2020, pp. 120610.10.1016/j.jclepro.2020.120610
  8. 8. Gräfe M, Power G & Klauber C: “Bauxite residue issues: III. Alkalinity and associated chemistry”. Hydrometallurgy, Vol. 108, No. 1, 2011, pp. 60-79.10.1016/j.hydromet.2011.02.004
  9. 9. CEMBUREAU: “Annual Activity Report - Built in concrete, made with cement”. The European Cement Association, 2018.
  10. 10. WBCSD: “Cement Industry Energy and CO2 Performace - Getting the Numbers Right (GNR)”. The Cement Sustainability Initiative, 2016,.
  11. 11. Scrivener K, Vanderley J & Gartner E: “Eco-efficient cements: Potential economically viable solutions for a low-CO2 cement-based materials industry”. The United Nations Environment Programme, Paris, FRance, 2016,.10.1016/j.cemconres.2018.03.015
  12. 12. Pontikes Y & Angelopoulos G N: “Bauxite residue in cement and cementitious applications: Current status and a possible way forward”. Resources, Conservation and Recycling, Vol. 73, 2013, pp. 53-63.10.1016/j.resconrec.2013.01.005
  13. 13. Venkatesh C, Chand M S R & Nerella R: “A State of the Art on Red Mud as a Substitutional Cementitious Material”. Annales de Chimie: Science des Materiaux, Vol. 43, No. 2, 2019, pp. 99-106.10.18280/acsm.430206
  14. 14. Montini M, Li X, Rodrigues J A, Pileggi R G & Scrivener K. “Cementitious Activity Evaluation of Bauxite Residue and Fly Ash combination on Portland Blended Cement “. Proceedings, TRAVAUX 48, Proceedings of the 37th International ICSOBA Conference and XXV Conference “Aluminium of Siberia”, Krasnoyarsk, Russia, 2019.
  15. 15. Danner T & Justnes H: “Bauxite Residue as Supplementary Cementitious Material – Efforts to Reduce the Amount of Soluble Sodium”. Nordic Concrete Research, Vol. 62, No. 1, 2020, pp. 1-20.10.2478/ncr-2020-0001
  16. 16. “Opportunities for using bauxite residue in Portland cement clinker production”. World Aluminium, 2016.
  17. 17. Kótai L, Sajó I, Gács I, Papp K, Bartha A & Bánvölgyi G: “An Environmentally Friendly Method for Removing Sodium in Red Mud”. Chemistry Letters - CHEM LETT, Vol. 35, 2006, pp. 1278-1279.10.1246/cl.2006.1278
  18. 18. Rai S, Wasewar K, Mukhopadhyay J, Yoo C & Uslu H: “Neutralization and Utilization of red mud for its better waste management”. Arch. Environ. Sci., Vol. 6, 2012.
  19. 19. Suss A, Damaskin A, Panov A, Fennell M & Foley S. “Specifics of Alkali Recovery from Bauxite Residue of Different Alumina Refineries”. Proceedings, TRAVAUX 48, Proceedings of the 37th International ICSOBA Conference and XXV Conference “Aluminium of Siberia”, Krasnoyarsk, Russia, 2019.
  20. 20. Wang S, Nguyen T, Peng H & Huang L: “On the Mechanism of Sodic Removal from Bauxite Residue and Bauxite Desilication Products (BDP) Using Acetic Acid”. JOM, Vol. 72, No. 1, 2020, pp. 309-318.10.1007/s11837-019-03884-z
  21. 21. Snellings R, Chwast J, Cizer Ö, De Belie N, Dhandapani Y, Durdzinski P, Elsen J, Haufe J, Hooton D, Patapy C, Santhanam M, Scrivener K, Snoeck D, Steger L, Tongbo S, Vollpracht A, Winnefeld F & Lothenbach B: “RILEM TC-238 SCM recommendation on hydration stoppage by solvent exchange for the study of hydrate assemblages”. Materials and Structures, Vol. 51, No. 6, 2018, pp. 172.10.1617/s11527-018-1298-5
  22. 22. Plusquellec G, Geiker M R, Lindgård J, Duchesne J, Fournier B & De Weerdt K: “Determination of the pH and the free alkali metal content in the pore solution of concrete: Review and experimental comparison”. Cement and Concrete Research, Vol. 96, 2017, pp. 13-26.10.1016/j.cemconres.2017.03.002
  23. 23. Kong X, Li M, Xue S, Hartley W, Chen C, Wu C, Li X & Li Y: “Acid transformation of bauxite residue: Conversion of its alkaline characteristics”. Journal of Hazardous Materials, Vol. 324, 2017, pp. 382-390.10.1016/j.jhazmat.2016.10.073
  24. 24. Zeng H, Lyu F, Hu G, Tang H, Wang L, Sun W, Hu Y, Liu R & Chen P. “Dealkalization of Bauxite Residue through Acid Neutralization and its Revegation Potential”. Proceedings, TRAVAUX 48, Proceedings of the 37th International ICSOBA Conference and XXV Conference “Aluminium of Siberia”, Krasnoyarsk, Russia., 2019.
  25. 25. Scrivener K L, Juilland P & Monteiro P J M: “Advances in understanding hydration of Portland cement”. Cement and Concrete Research, Vol. 78, 2015, pp. 38-56.10.1016/j.cemconres.2015.05.025
  26. 26. Berodier E & Scrivener K: “Understanding the Filler Effect on the Nucleation and Growth of C-S-H”. Journal of the American Ceramic Society, Vol. 97, No. 12, 2014, pp. 3764-3773.10.1111/jace.13177
  27. 27. Nguyen D D, Devlin L P, Koshy P & Sorrell C C: “Effects of acetic acid on early hydration of Portland cement”. Journal of Thermal Analysis and Calorimetry, Vol. 123, No. 1, 2016, pp. 489-499.10.1007/s10973-015-4942-0
  28. 28. Avet F, Snellings R, Alujas Diaz A, Ben Haha M & Scrivener K: “Development of a new rapid, relevant and reliable (R3) test method to evaluate the pozzolanic reactivity of calcined kaolinitic clays”. Cement and Concrete Research, Vol. 85, 2016, pp. 1-11.10.1016/j.cemconres.2016.02.015
  29. 29. Jawed I & Skalny J: “Alkalies in cement: A review: II. Effects of alkalies on hydration and performance of Portland cement”. Cement and Concrete Research, Vol. 8, No. 1, 1978, pp. 37-51.10.1016/0008-8846(78)90056-X
  30. 30. XRF analysis of fly ash, data from an unpublished report. 2019.
  31. 31. Thomas M, Supplementary Cementing Materials in Concrete. 2017: Taylor & Francis Group, CRC Press.
  32. 32. Shehata M H & Thomas M D A: “The effect of fly ash composition on the expansion of concrete due to alkali–silica reaction”. Cement and Concrete Research, Vol. 30, No. 7, 2000, pp. 1063-1072.10.1016/S0008-8846(00)00283-0
  33. 33. Rønning T F, Lindgård J, Karlsen J, Heimdal E, Rodum E, Hagby C, Pedersen B & Sæter Ø: “Publikasjon nr. 21 - Bestandig betong med alkalireaktivt tilslag”. Norsk Betongforening Oslo, Norway, 2017.
  34. 34. Bang S S & Johnston D: “Environmental Effects of Sodium Acetate/Formate Deicer, Ice Shear™”. Archives of Environmental Contamination and Toxicology, Vol. 35, No. 4, 1998, pp. 580-587.10.1007/s0024499004199776775
  35. 35. Al-Kheetan M J & Rahman M M: “Integration of anhydrous sodium acetate (ASAc) into concrete pavement for protection against harmful impact of deicing salt”. JOM, Vol. 71, No. 12, 2019, pp. 4899-4909.10.1007/s11837-019-03624-3
  36. 36. Al-Kheetan M J, Ghaffar S H, Madyan O A & Rahman M M: “Development of low absorption and high-resistant sodium acetate concrete for severe environmental conditions”. Construction and Building Materials, Vol. 230, 2020, pp. 117057.10.1016/j.conbuildmat.2019.117057
  37. 37. Justnes H: “Durable Aluminium Reinforced Environmentally-friendly Concrete Construction – DARE2C”. Nordic Concrete Research, Vol. 56, No. 1, 2017, pp. 71-81.
  38. 38. Duflou J R, Tekkaya A E, Haase M, Welo T, Vanmeensel K, Kellens K, Dewulf W & Paraskevas D: “Environmental assessment of solid state recycling routes for aluminium alloys: Can solid state processes significantly reduce the environmental impact of aluminium recycling?”. CIRP Annals, Vol. 64, No. 1, 2015, pp. 37-40.10.1016/j.cirp.2015.04.051
DOI: https://doi.org/10.2478/ncr-2020-0015 | Journal eISSN: 2545-2819 | Journal ISSN: 0800-6377
Language: English
Page range: 1 - 20
Submitted on: Sep 28, 2020
Accepted on: Nov 26, 2020
Published on: Dec 31, 2020
Published by: Nordic Concrete Federation
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2020 Tobias Danner, Malin Sletnes, Harald Justnes, published by Nordic Concrete Federation
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.