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April 23, 2026Buildings0 citationsOpen Access

Integrating Smart Materials into Building Facade Design to Achieve Thermal Sustainability: A Case Study in Karbala, Iraq

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SSSaba Salih ShalalHAHaider I AlyasariZAZahraa Nasser Azzam

Key Points

  • To assess and enhance building envelope performance for thermal sustainability in hot climates using a new evaluation framework.
  • Proposed the Thermal Adaptation Rating (TAC) system with interrelated indices.
  • Modeled a residential building in DesignBuilder and calibrated against real consumption data according to ASHRAE standards.
  • Examined various advanced envelope systems including thermochromic glass, phase-change materials, and aerogel materials.
  • Advanced envelope systems showed varied impacts on energy savings and cooling load performance.
  • Phase-change materials effectively mitigated peak loads and enhanced thermal comfort ratings.
  • Hybrid systems, especially TG-PCM, optimized both cooling load reduction and peak delay, indicating superior performance.

Abstract

This study addresses a critical methodological gap in evaluating building envelope performance in hot, arid climates, the overreliance on annual energy indicators, which fail to capture transient thermal behavior during peak-load periods. In such environments, instantaneous heat gains, their intensity, and temporal distribution are decisive factors for cooling demand, occupant comfort, and grid stability. To overcome this limitation, a dynamic evaluation framework—the Thermal Adaptation Rating (TAC) system—is proposed. TAC integrates three interrelated indices—peak temperature reduction (ΔTₚeak), relative peak cooling load reduction (ΔPₚeak, %), and peak thermal delay (Δtdelay), representing thermal damping, load intensity mitigation, and temporal redistribution, respectively. A typical residential building in Karbala was modeled in DesignBuilder using the EnergyPlus engine, with inputs documented and calibration performed against real consumption data following ASHRAE standards (MBE and CV (RMSE) ) to ensure reliability. The study examined advanced envelope systems, including thermochromic glass (TG), phase-change materials (PCMs), aerogel materials (AMs), and hybrid combinations. Results revealed that while AM achieved the greatest annual energy savings, its impact on instantaneous cooling load was limited. PCM, by contrast, effectively mitigated and delayed peak loads, enhancing thermal comfort (PMV/PPD). Hybrid systems, particularly TG-PCM, delivered the most balanced performance, simultaneously reducing peak cooling load and shifting its occurrence to reshape the cooling demand curve during critical periods. These findings demonstrate that annual indices alone are insufficient for evaluating envelope performance in extreme climates. Peak-condition analysis, expressed in terms of instantaneous cooling load, as operationalized through TAC, provides a more accurate representation of thermal behavior and offers a practical tool to guide envelope design decisions in hot, dry regions.

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Cite This Study

Shalal et al. (2026) studied this question.

synapsesocial.com/papers/69e9bb6285696592c86ed19chttps://doi.org/10.3390/buildings16081634
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