Energy-efficient thermal performance of walls and windows for four building orientations in four Indian climatic zones: A verified dynamic analysis of insulation, glazing type and glazing area

Facade design rules for Indian dwellings are still drawn largely from mid-latitude studies. This article presents a verified dynamic analysis of the thermal performance and energy requirements of external walls and windows for four orientations in New Delhi, Mumbai, Jaipur and Shimla, representing the composite, warm-humid, hot-dry and cold climatic zones of India. For design days on 15 December and 15 June, with boundary conditions built from climatological temperatures and a clear-sky irradiance model, transient conduction through uninsulated and externally insulated concrete walls was solved with an implicit finite-difference scheme verified against the exact harmonic solution (maximum deviation 0.12 W/m 2 ), and heat transmission through single and double clear glazing was computed with an angle-dependent optical model that reproduces reference glass properties. At Indian latitudes the summer facade problem is an east–west problem: in June the east and west walls receive 3.5 to 4.7 kWh/m 2 ·day against 1.3 to 1.8 kWh/m 2 ·day for the south wall, and west-wall sol-air temperatures reach 67.5 °C in New Delhi and 68.2 °C in Jaipur. A 6 cm external rock-wool layer reduces the daily transmission load by 81% and the swing of the inside heat flux by 92%, extends the time lag by 1 to 3 h and lowers the decrement factor to about 0.01; outer placement gives the smallest peak flux. Double glazing halves the night-time conductive loss and reduces the June solar gain of east and west windows by 24% to 27%. For an insulated facade with 40% glazing, double glazing reduces the December heating requirement by 49% to 55% (New Delhi, Jaipur, Shimla) and the June cooling requirement by 23% to 34% (New Delhi, Mumbai, Jaipur), saving up to 51 ₹/m 2 per month at current tariffs. The set-point, glass type and system efficiency dominate the uncertainty; absorptivity and wind speed contribute less than 8%. Orientation-specific glazing recommendations are derived for each zone and related to the Eco-Niwas Samhita.

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Publication Details

Journal
Energy Exploration & Exploitation
Published
2026-10-07
DOI
https://doi.org/10.1177/01445987261492429
Primary Topic
Building Energy and Comfort Optimization
Type
article
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article

Energy-efficient thermal performance of walls and windows for four building orientations in four Indian climatic zones: A verified dynamic analysis of insulation, glazing type and glazing area

Shubham Kumar Sharma, Shivasheesh Kaushik, Krishnaraj Ramaswamy, Dinesh Kumar Rao et al.
Energy Exploration & Exploitation
Building Energy and Comfort Optimization
article

Energy-efficient thermal performance of walls and windows for four building orientations in four Indian climatic zones: A verified dynamic analysis of insulation, glazing type and glazing area

Shubham Kumar Sharma, Shivasheesh Kaushik, Krishnaraj Ramaswamy, Dinesh Kumar Rao, Medhat M. Helal, Ajay Kumar Kanaujiya, Prabhakar Bhandari, Aseel Smerat, Bhupendra Kumar, Navdeep Singh
article en

Abstract

Facade design rules for Indian dwellings are still drawn largely from mid-latitude studies. This article presents a verified dynamic analysis of the thermal performance and energy requirements of external walls and windows for four orientations in New Delhi, Mumbai, Jaipur and Shimla, representing the composite, warm-humid, hot-dry and cold climatic zones of India. For design days on 15 December and 15 June, with boundary conditions built from climatological temperatures and a clear-sky irradiance model, transient conduction through uninsulated and externally insulated concrete walls was solved with an implicit finite-difference scheme verified against the exact harmonic solution (maximum deviation 0.12 W/m 2 ), and heat transmission through single and double clear glazing was computed with an angle-dependent optical model that reproduces reference glass properties. At Indian latitudes the summer facade problem is an east–west problem: in June the east and west walls receive 3.5 to 4.7 kWh/m 2 ·day against 1.3 to 1.8 kWh/m 2 ·day for the south wall, and west-wall sol-air temperatures reach 67.5 °C in New Delhi and 68.2 °C in Jaipur. A 6 cm external rock-wool layer reduces the daily transmission load by 81% and the swing of the inside heat flux by 92%, extends the time lag by 1 to 3 h and lowers the decrement factor to about 0.01; outer placement gives the smallest peak flux. Double glazing halves the night-time conductive loss and reduces the June solar gain of east and west windows by 24% to 27%. For an insulated facade with 40% glazing, double glazing reduces the December heating requirement by 49% to 55% (New Delhi, Jaipur, Shimla) and the June cooling requirement by 23% to 34% (New Delhi, Mumbai, Jaipur), saving up to 51 ₹/m 2 per month at current tariffs. The set-point, glass type and system efficiency dominate the uncertainty; absorptivity and wind speed contribute less than 8%. Orientation-specific glazing recommendations are derived for each zone and related to the Eco-Niwas Samhita.

Energy Exploration & Exploitation
Chandigarh University (IN), Al-Ahliyya Amman University (JO), Dr. Ram Manohar Lohia Avadh University (IN), Umm al-Qura University (SA), APJ Abdul Kalam Technological University (IN), KR Mangalam University (IN), Shridhar University (IN), Dambi Dollo University, Birla Institute of Technology and Science, Pilani (IN), Saveetha University (IN)
Openalex Percentile: Top 15%
Building Energy and Comfort Optimization
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