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Integrated Net-Zero Energy Design for Hot-Dry Institutional Buildings: A Scenario-Based Energy, Carbon and Cost Assessment for Jaipur, India

高温乾燥地域の機関ビル向け統合ネットゼロエネルギーデザイン:インド・ジャイプールにおけるシナリオベースのエネルギー・炭素・コスト評価 (AI 翻訳)

Hemant Kumar Agrawal, Anshika Yadav, Ashutosh Luhania

International Journal of Creative and Open Research in Engineering and Management📚 査読済 / ジャーナル2026-07-25#省エネOrigin: Global経営インパクト: コスト削減対象セクター: construction回収年数ヒント: 5.8
DOI: 10.55041/ijcope.v2i7.224
原典: https://doi.org/10.55041/ijcope.v2i7.224

🤖 gxceed AI 要約

日本語

インド・ジャイプールの機関ビルを対象に、高温乾燥地域におけるネットゼロエネルギービル設計の統合的評価手法を提案。設計段階でのエネルギー、炭素、コストのシナリオ分析と不確実性評価を実施。年間エネルギー消費量が約50%削減、初期投資の回収期間は5.8年と試算された。

English

This study develops an integrated design-stage assessment for a net-zero energy institutional building in hot-dry Jaipur, India. Through combined energy modelling, embodied and operational carbon accounting, and discounted cash-flow analysis with Monte Carlo uncertainty, it shows a 50% reduction in energy use and a 5.8-year simple payback period, demonstrating technical and economic feasibility.

Unofficial AI-generated summary based on the public title and abstract. Not an official translation.

📝 gxceed 編集解説 — Why this matters

日本のGX文脈において

インドの事例だが、設計段階での炭素・コスト統合評価の手法は、日本のGX政策下でのゼロエネルギービル設計やSSBJに基づく開示にも応用可能。特に、TCFD/ISSBに対応したライフサイクル炭素評価の実践例として参考になる。

In the global GX context

This paper provides a transparent, replicable methodology for net-zero energy building design in hot-dry climates, linking energy, carbon, and cost metrics. It contributes to global building decarbonization literature and offers practical insights for implementing TCFD/ISSB-aligned lifecycle carbon assessments.

👥 読者別の含意

🔬研究者:Study demonstrates an integrated design-stage assessment framework combining energy, carbon, and economic analyses with uncertainty quantification.

🏢実務担当者:Use the methodology to evaluate net-zero energy building designs and quantify investment payback, embodied carbon, and operational savings.

🏛政策担当者:Evidence that net-zero energy buildings in hot-dry climates are technically and economically feasible under current codes and grid decarbonization trajectories.

📄 Abstract(原文)

Net-zero-energy buildings in hot-dry regions must reconcile high cooling demand, limited roof area, grid interaction, embodied carbon and investment constraints. This study develops an integrated design-stage assessment for a four-storey, 6,000 m² institutional building in Jaipur, India. The baseline is aligned with the Energy Conservation and Sustainable Building Code 2024, while the proposed case combines east–west massing, solar control, improved opaque-envelope performance, high-performance glazing, daylight-linked LED lighting, efficient variable-refrigerant-flow cooling, demand-controlled ventilation, plug-load management and a 235 kWp rooftop photovoltaic system. A transparent monthly/end-use energy model is linked to annual and representative hourly energy-balance checks, an A1–A5 embodied-carbon inventory, a 60-year operational carbon model, a 25-year discounted cash-flow analysis and a 5,000-run Monte Carlo uncertainty assessment. The modeled annual site energy decreases from 748.8 to 375.0 MWh, equivalent to an EUI reduction from 124.8 to 62.5 kWh/m²·year. PV generation is 385.4 MWh/year, producing an annual surplus of 10.4 MWh; however, only 68.2% of PV electricity is used directly, so the building still imports 112.3 MWh and exports 122.7 MWh. Upfront embodied carbon falls from 4,030 to 3,050 tCO₂e despite the PV addition, primarily through lower-carbon concrete and recycled-content steel. Under a 2.5% annual grid-decarbonization trajectory, whole-life carbon falls by 73–86%, depending on whether exported electricity is credited. The ₹31.9 million incremental investment has a 5.8-year simple payback, an 8-year discounted payback, a 20.1% internal rate of return and a ₹46.4 million NPV. The study shows that annual net zero is technically and economically plausible for the selected archetype, but robust delivery requires explicit PV margin, commissioning, plug-load governance and post-occupancy verification. Keywords: net-zero energy building; sustainable construction; hot-dry climate; ECSBC 2024; rooftop photovoltaics; embodied carbon; life-cycle cost; uncertainty analysis; Jaipur

🔗 Provenance — このレコードを発見したソース

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