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Composition Study for Obtaining Medium-Light Mortars by Using Spent Mushroom Substrate

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09 nov 2024

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Muthusamy, K., et al., Coal bottom ash as sand replacement in concrete: A review. Construction and Building Materials, 2020. 236: p. 117507. Search in Google Scholar

Assaad, J.J. and M. Vachon, Valorizing the use of recycled fine aggregates in masonry cement production. Construction and Building Materials, 2021. 310: p. 125263. Search in Google Scholar

Ion, R.M., et al., Multi-Analytical Characterization of Corvins’ Castle—Deserted Tower. Construction Materials and Conservation Tests. Heritage, 2020. 3(3): p. 941-964. Search in Google Scholar

Sanchez-Calvillo, A., et al., Characterization of adobe blocks: Point-load assessment as a complementary study of damaged buildings and samples. Heritage, 2021. 4(2): p. 864-888. Search in Google Scholar

Ion, R.-M., et al., Diagnosis, photogrammetry and conservation treatment with nanomaterials of Sacidava fortress. Chemistry Proceedings, 2023. 13(1): p. 25. Search in Google Scholar

Loganathan, L., et al., Mechanical, durability, and microstructural properties of mortars containing spent mushroom substrate as partial fine aggregate replacement. Environmental Science and Pollution Research, 2023. 30(26): p. 69176-69191. Search in Google Scholar

Udoeyo, F.F. and P.U. Dashibil, Sawdust ash as concrete material. Journal of materials in civil engineering, 2002. 14(2): p. 173-176. Search in Google Scholar

Cui, H.Z., et al., Analytical model for compressive strength, elastic modulus and peak strain of structural lightweight aggregate concrete. Construction and Building Materials, 2012. 36: p. 1036-1043. Search in Google Scholar

Oyedepo, O.J., S.D. Oluwajana, and S.P. Akande, Investigation of properties of concrete using sawdust as partial replacement for sand. Civil and Environmental Research, 2014. 6(2): p. 35-42. Search in Google Scholar

Osei, D.Y. and E.N. Jackson, Compressive strength of concrete using sawdust as aggregate. International Journal of Scientific & Engineering Research, 2016. 7(4): p. 1349-1353. Search in Google Scholar

Siddique, R., et al., Utilization of treated saw dust in concrete as partial replacement of natural sand. Journal of cleaner production, 2020. 261: p. 121226. Search in Google Scholar

Batool, F., et al., Effectiveness of wood waste sawdust to produce medium- to low-strength concrete materials. Journal of Building Engineering, 2021. 44: p. 103237. Search in Google Scholar

Mo, K.H., et al., Viability of agricultural wastes as substitute of natural aggregate in concrete: A review on the durability-related properties. Journal of Cleaner Production, 2020. 275: p. 123062. Search in Google Scholar

Grigorescu, R.M., et al., Solar-Driven Photobleaching of Lignocellulosic Biomass. Scientific Bulletin of Valahia University-Materials and Mechanics. 20(22): p. 35-41. Search in Google Scholar

Pérez-Chávez, A.M., L. Mayer, and E. Albertó, Mushroom cultivation and biogas production: A sustainable reuse of organic resources. Energy for Sustainable Development, 2019. 50: p. 50-60. Search in Google Scholar

Verma, D., V. Didwana, and B. Maurya, Spent mushroom substrate: a potential sustainable substrate for agriculture. International Journal of Grid and Distributed Computing, 2020. 13(2): p. 104-109. Search in Google Scholar

Velasco, P.M., et al., Development of better insulation bricks by adding mushroom compost wastes. Energy and Buildings, 2014. 80: p. 17-22. Search in Google Scholar

Rajavat, A.S., et al., Sustainable use of the spent mushroom substrate of Pleurotus florida for production of lignocellulolytic enzymes. Journal of Basic Microbiology, 2020. 60(2): p. 173-184. Search in Google Scholar

BS EN 1015-10:1999: Methods of test for mortar for masonry. Determination of dry bulk density of hardened mortar. British Standard Institution: London. 1999. Search in Google Scholar

Saman, H., Compressive Strength of Lightweight Concrete, in Compressive Strength of Concrete, K. Pavlo, Editor. 2019, IntechOpen: Rijeka. p. Ch. 3. Search in Google Scholar

Clarke, J.L., Structural lightweight aggregate concrete. 1993: CRC Press. Search in Google Scholar

Chandra, S. and L. Berntsson, Lightweight aggregate concrete. 2002: Elsevier. Search in Google Scholar

Corinaldesi, V., A. Mazzoli, and R. Siddique, Characterization of lightweight mortars containing wood processing by-products waste. Construction and Building Materials, 2016. 123: p. 281-289. Search in Google Scholar

Vaickelionis, G. and R. Vaickelioniene, Cement hydration in the presence of wood extractives and pozzolan mineral additives. Ceramics Silikaty, 2006. 50(2): p. 115. Search in Google Scholar

Bajpai, P., Chapter 2-wood and fiber fundamentals. Biermann’s handbook of pulp and paper, 2018. 1: p. 19-74. Search in Google Scholar

Drdácký, M. and Z. Slížková, In situ peeling tests for assessing the cohesion and consolidation characteristics of historic plaster and render surfaces. Studies in Conservation, 2015. 60(2): p. 121-130. Search in Google Scholar