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January 17, 2026Buildings4 citationsOpen Access

Assessment and Numerical Modeling of the Thermophysical Efficiency of Newly Developed Adaptive Building Envelopes Under Variable Climatic Impacts

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NZNurlan ZhangabayAOArukhan ONERUIUlzhan Ibraimova

Key Points

  • This investigation aims to assess the thermal performance of newly developed adaptive building envelopes under varying climatic conditions.
  • Conducted steady-state and transient simulations on different envelope configurations
  • Analyzed a baseline design, vertical air channels, and adaptive systems with adjustable openings
  • Performed quantitative evaluation of heat flux and temperature variations
  • Adaptive configuration raised interior surface temperature by 1.5–2.3 °C during winter, reducing heat flux by 12–18%
  • Exterior cladding temperature decreased by 3–5 °C in summer, lowering heat gains by 8–14%
  • Vertical air channels showed limited impact on temperature differences during winter and summer

Abstract

The relevance of this study is driven by the increasing requirements for the energy efficiency and indoor comfort of residential and public buildings, particularly in regions with extreme climatic conditions characterized by substantial daily and seasonal temperature fluctuations. Effective management of heat transfer through building envelopes has become a key factor in reducing energy consumption and improving indoor comfort. This paper presents the results of an experimental–numerical investigation of the thermal behavior of an adaptive exterior wall system with a controllable air cavity. Steady-state and transient simulations were performed for three envelope configurations: a baseline design, a design with vertical air channels, and an adaptive configuration equipped with adjustable openings. Quantitative analysis showed that during the winter period, the adaptive configuration increases the interior surface temperature by 1.5–2.3 °C compared to the baseline design, resulting in a 12–18% reduction in the specific heat flux through the wall. In the summer period, the temperature of the exterior cladding decreases by 3–5 °C relative to the baseline, which reduces heat gains by 8–14% and lowers the cooling load. Additional analysis of temperature fields demonstrated that the presence of vertical air channels has a limited effect during winter: temperature differences at the surfaces do not exceed 1 °C. A similar pattern is observed in warm periods; however, due to controlled air circulation, the adaptive configuration provides an improved thermal regime. The results confirm the effectiveness of the adaptive wall system under the climatic conditions of southern Kazakhstan, characterized by high solar radiation and large diurnal temperature variations. The practical significance of the study lies in the potential application of adaptive façades to enhance the energy efficiency of buildings during both winter and summer seasons.

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Cite This Study

Zhangabay et al. (2026) studied this question.

synapsesocial.com/papers/696b25cfd2a12237a9349224https://doi.org/10.3390/buildings16020366
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