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Review of Energy Dissipation Mechanisms in Concrete: Role of Advanced Materials, Mix Design, and Curing Conditions

Hadi Bahmani, Hasan Mostafaei () and Davood Mostofinejad ()
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Hadi Bahmani: Department of Civil Engineering, Isfahan University of Technology (IUT), Isfahan 84156-83111, Iran
Hasan Mostafaei: Department of Civil Engineering, Isfahan University of Technology (IUT), Isfahan 84156-83111, Iran
Davood Mostofinejad: Department of Civil Engineering, Isfahan University of Technology (IUT), Isfahan 84156-83111, Iran

Sustainability, 2025, vol. 17, issue 15, 1-26

Abstract: Concrete structures increasingly face dynamic loading conditions, such as seismic events, vehicular traffic, and environmental vibrations, necessitating enhanced energy dissipation capabilities. The damping ratio, a critical parameter quantifying a material’s ability to dissipate vibrational energy, is typically low in conventional concrete, prompting extensive research into strategies for improvement. This review comprehensively explores the impact of advanced concrete types—such as Engineered Cementitious Composites (ECCs), Ultra-High-Performance Concrete (UHPC), High-Performance Concrete (HPC), and polymer concrete—on enhancing the damping behavior. Additionally, key mix design innovations, including fiber reinforcement, rubber powder incorporation, and aggregate modification, are evaluated for their roles in increasing energy dissipation. External factors, particularly curing conditions, are also discussed for their influence on the damping performance. The findings consolidate experimental and theoretical insights into how material composition, mix design, and external treatments interact to optimize dynamic resilience. To guide future research, this paper identifies critical gaps including the need for multi-scale numerical simulation frameworks, standardized damping test protocols, and long-term performance evaluation under realistic service conditions. Advancing work in material innovation, optimized mix design, and controlled curing environments will be essential for developing next-generation concretes with superior vibration control, durability, and sustainability. These insights provide a strategic foundation for applications in seismic-prone and vibration-sensitive infrastructure.

Keywords: concrete damping; energy dissipation; engineered cementitious composites (ECCs); ultra-high-performance concrete (UHPC); fiber-reinforced concrete; rubberized concrete; aggregate effects; curing conditions (search for similar items in EconPapers)
JEL-codes: O13 Q Q0 Q2 Q3 Q5 Q56 (search for similar items in EconPapers)
Date: 2025
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