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Integrating Renewable Energy Systems in Civil Infrastructure

土木インフラへの再生可能エネルギーシステムの統合 (AI 翻訳)

Shalom Akhai, Mahapara Abbass

ジャーナル2026-07-16#再生可能エネルギー経営インパクト: コスト削減対象セクター: construction
DOI: 10.4018/979-8-3373-6167-3.ch012
原典: https://doi.org/10.4018/979-8-3373-6167-3.ch012

🤖 gxceed AI 要約

日本語

本稿は、再生可能エネルギーと熱力学的最適化を統合し、ネットゼロエネルギービル(NZEB)と地区スケールでのネットゼロ性能を実現する方法を探る。PV、PV-T、エネルギーパイル、アンビエントループなどのオンサイト再生可能エネルギーと、エンベロープ設計、HVAC戦略、エネルギー回収、蓄熱を組み合わせる。エネルギー使用強度、ピーク需要、炭素強度などの指標を評価し、複合気候、高温多湿気候、寒冷気候での実践的経路を示す。デジタルツイン、低GWPヒートポンプ、高度な蓄熱などの新技術も議論する。

English

This chapter explores integrating renewable energy systems and thermo-mechanical innovations to achieve Net-Zero Energy Buildings (NZEBs) and district-scale net-zero performance. It links envelope design, HVAC strategies, energy recovery, and storage with onsite renewables like PV, PV-T, energy piles, and ambient loops. Key metrics such as energy use intensity, peak demand, and carbon intensity are addressed, with practical pathways for composite, hot-humid, and cold climates. Emerging technologies like digital twins, low-GWP heat pumps, and advanced thermal storage are also discussed.

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

日本の建築・土木分野では、2050年カーボンニュートラル目標に向けてZEB・ZEHの普及が進む。本稿のNZEB設計手法や技術統合の知見は、日本の気候条件や建築基準に応用可能であり、省エネ法や建築物省エネ基準への適合に有用。また、デジタルツインやLCAの活用は、今後の不動産評価や投資家対応にも寄与する。

In the global GX context

Globally, the building sector accounts for a significant share of emissions, and net-zero building design is a key strategy for climate goals. This chapter provides a comprehensive framework for integrating renewables and efficiency measures, aligning with international standards like ISO 50001 and green building certifications (LEED, BREEAM). It offers practical guidance for engineers and policymakers aiming to scale net-zero infrastructure, contributing to global efforts under the Paris Agreement and sustainable development goals.

👥 読者別の含意

🔬研究者:Provides a holistic framework for integrating renewable systems in buildings, useful for advancing research on NZEB design and performance metrics.

🏢実務担当者:Offers practical pathways and technology options for achieving net-zero in building projects, aiding sustainability teams in design and retrofitting decisions.

🏛政策担当者:Highlights the importance of integrated design and renewable integration for net-zero targets, informing building codes and incentive programs.

📄 Abstract(原文)

Modern infrastructure is undergoing a major transformation to meet sustainability and climate goals. This chapter explores how renewable energy systems and thermo-mechanical innovations enable Net-Zero Energy Buildings (NZEBs) and net-zero performance at district scale. It links envelope design, HVAC strategies, energy recovery, and storage with onsite renewables such as PV, PV-T, energy piles, and ambient loops. Key performance metrics—including energy use intensity, peak demand, and carbon intensity—are addressed alongside durability, safety, and techno-economic evaluation. Practical pathways are illustrated for composite, hot-humid, and cold climates, highlighting innovations like radiant systems, desiccant dehumidification, model predictive control, and life-cycle assessment. The discussion emphasizes integrated workflows, barrier-solution maps, and emerging technologies such as digital twins, low-GWP heat pumps, and advanced thermal storage. By combining efficiency, renewables, and resilience, the chapter outlines how civil infrastructure can achieve scalable net-zero design.

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gxceed は公開メタデータに基づく研究支援データセットです。要約・翻訳・解説は AI 支援で生成されています。 最終的な解釈・検証は利用者が原典資料に基づいて行うことを前提とします。