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Sultan Almuaythir

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Open access Aug 2026

Mechanical Performance, Thermal Resistance, and Durability of Red Mud-Based Cement Mortar Incorporating Fly Ash, Basalt Fibers, and Nano Zinc Oxide

Red mud (RM), a highly alkaline by-product of the alumina refining process, poses significant environmental challenges due to its large-scale accumulation. This study systematically investigates the mechanical performance, thermal resistance, and durability of RM-based cement mortar, evaluating the individual effects of fly ash (FA), basalt fibers (BF), and nano zinc oxide (NZO) as separate modifying constituents introduced independently into the RM matrix. Fourteen mortar mixtures were prepared with RM replacement levels of 10–35%, a constant FA content of 15%, BF dosages of 0.5–1.5%, and NZO dosages of 0.5–2.0%. Workability, 28-day compressive and flexural strengths, residual mechanical properties after exposure to 600 °C and 800 °C, sulfate resistance, and microstructural characteristics were evaluated. Increasing RM content reduced workability and mechanical strength, with compressive and flexural reductions reaching 35.5% and 29.0% at 30% RM, respectively. FA partially compensated through its ball-bearing effect and pozzolanic reactivity. The optimal 1.5% BF dosage increased the compressive and flexural strengths by 14.7% and 37.5%, respectively, and significantly enhanced the residual performance at elevated temperatures. The optimal 0.5% NZO improved the compressive and flexural strengths by 13.2% and 18.3%, respectively; however, 2.0% NZO caused complete strength loss, which may be associated with severe nanoparticle agglomeration and possible zinc-containing reaction products reported in previous studies. The formation of specific crystalline phases was not experimentally verified in the present study. Sulfate resistance deteriorated with increasing RM, whereas 1.5% BF and 1.0% NZO reduced mass loss by 58.9% and 59.7%, respectively. SEM confirmed that RM15 + FA15 exhibited the densest microstructure with minimal voids. The results demonstrate that RM can be effectively utilized as a sustainable cement replacement, with FA, BF, and NZO each independently identified as effective performance-enhancing constituents at their respective optimal dosages; their combined quaternary application remains untested and is proposed as a direction for future validation.

Sultan Almuaythir, Mousa Shhabat, Ahmed M. Ashteyat et al. · 0 citations
Review Open access Aug 2026

Performance of Recycled Concrete Aggregate and Reclaimed Asphalt Pavement in Concrete: A Systematic Review of Mechanical, Physical, and Durability Characteristics

The increasing generation of construction and demolition waste, along with the depletion of natural aggregates, has driven growing interest in recycled concrete aggregate (RCA) and reclaimed asphalt pavement (RAP) as sustainable alternatives in concrete production. However, a direct and systematic comparison between the two materials remains limited. This review addresses this gap by applying PRISMA guidelines to analyze 82 peer-reviewed studies published between 2010 and 2026. Both materials are evaluated across three key domains: physical properties, mechanical performance, and microstructural characteristics. The findings indicate that RCA can reduce compressive strength by up to 26%, mainly due to the presence of porous adhered mortar and a complex interfacial transition zone (ITZ). In contrast, RAP weakens bonding with cement paste because of its hydrophobic bituminous coating, leading to adhesive failure at the mortar asphalt interface. Despite these limitations, RCA and RAP exhibit distinct behaviors in terms of shear capacity, ductility, energy absorption, and durability. Enhancement techniques such as surface treatment, carbonation, supplementary cementitious materials, and fiber reinforcement show potential in improving performance. Additionally, life cycle and economic analyses reveal that RAP can reduce total costs and carbon emissions when efficiently processed. This study provides a unified comparative framework to support sustainable material selection and design optimization.

Ahmed M. Ashteyat, Aye Alkhalaileh, Mousa Shhabat et al. · 0 citations

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