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高温砂漠気候下のホテル建物への冷房・暖房・電力供給を目的としたハイブリッド再生可能エネルギーシステムの技術・経済・環境比較調査

Comparative techno-economic-environmental investigation of hybrid renewable energy systems for combined cooling, heating and power provision to hotel buildings in hot desert climates (原題)

Jian Song, Yi He, Roberto Cipollone, Fabio Fatigati, Christos N. Markides

Energy📚 査読済 / ジャーナル2026-09-23#再生可能エネルギーOrigin: Global経営インパクト: コスト削減対象セクター: real_estate回収年数ヒント: 6.3年
DOI: 10.1016/j.energy.2026.142468
原典: https://doi.org/10.1016/j.energy.2026.142468
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🤖 gxceed AI 要約

日本語

エジプト・ファイユームのホテルを対象に、PV・太陽熱集熱器・PV-T・風力・バイオマスボイラを組み合わせたハイブリッド再生可能エネルギーシステム(HRES)を技術・経済・環境の三面で比較評価した。PVベースが最も経済性に優れ、NPC 195.7千ドル、LCOE 0.060 $/kWh、回収期間6.3年、年間CO2排出22.1トン。熱供給を給湯と暖房に分離する改良構成ではNPCが10%減、LCOE 0.054 $/kWh、回収期間3.4年に短縮し、排出量も50%以上削減できる。

English

This study compares hybrid renewable energy system (HRES) configurations—PV, solar thermal, PV-T, wind, and biomass—for combined cooling, heating, and power at a hotel in Fayoum, Egypt. PV-based systems deliver the best economics (NPC $195.7k, LCOE 0.060 $/kWh, payback 6.3 years, 22.1 tCO2/yr), while a modified layout splitting hot water and space heating cuts NPC by 10%, LCOE to 0.054 $/kWh, and payback to 3.4 years, with >50% emission reductions.

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

日本企業のGX実務では、ホテル・観光施設等の分散型再エネ導入やPPA検討の参考になる。ただしエジプト事例のため、SSBJ・有報・統合報告書への直接的な示唆は限定的。

In the global GX context

Adds empirical evidence on HRES techno-economics in hot desert climates, relevant to global decarbonization pathways and corporate renewable procurement, though it does not directly engage TCFD/ISSB/CSRD disclosure frameworks.

👥 読者別の含意

🔬研究者:再生可能エネルギー併用システムの最適化と技術経済評価に関する比較データを提供する。

🏢実務担当者:ホテル等の施設における再エネ導入・PPA検討時のコスト・回収期間の参考値として活用できる。

🏛政策担当者:高温砂漠地域における分散型再エネ普及の政策設計に資する技術経済的根拠を提供する。

📄 Abstract(原文)

Hybrid renewable energy systems (HRESs) are suitable for addressing the intermittency of separate, individual renewable resources, and for more reliable and flexible energy provision. They are thus expected to play a vital role in promoting the wider use of renewable energy technologies, which are a core element of energy transition pathways. In this study, various combinations of renewable energy technologies and product options are investigated within selected HRES configurations. These include photovoltaic (PV) panels, solar thermal collectors (STCs), PV-thermal (PV-T) collectors, wind turbines (WTs) and biomass boilers (BBs), representing a range of technical performance and cost levels. Detailed techno-economic-environmental assessments of these HRESs are performed for a case study of a hotel in Fayoum, Egypt, given the growing importance of the local tourism sector. Sensitivity analysis of solar field area and number of WTs are performed, along with optimisation based on net present cost (NPC) to determine optimal systems for power, heating and cooling provision to the selected hotel. The results show that PV panels, especially the low-cost product options, enable the HRESs to deliver favourable economic performance, with a lowest NPC of $195.7k, along with a corresponding levelised cost of energy (LCOE) of 0.060 $/kWh, a payback period (PBP) of 6.3 years and annual carbon emissions (ACE) of 22.1 ton/year. The PV-T-based systems are also promising, as they achieve the highest levels of self-sufficiency ratio (up to ∼40%), while having a significant potential for further technical improvements as well as cost reductions are expected in the future. From an environmental perspective, the PV- and PV-T-based systems are similar, delivering significant emissions reductions (>50%). A modified HRES layout that splits the heat provision into hot water and space heating satisfied by renewables (solar and biomass) and the hotel’s existing air-conditioning system is also proposed. A decrease of 10% in NPC relative to the original PV-based HRES is achieved, while the LCOE decreases from 0.060 to 0.054 $/kWh and the PBP from 6.3 to 3.4 years. The modified HRES layout benefits from a smaller boiler, lower biomass consumption and less electricity fed/sold to the grid. The results and conclusions from this study can provide valuable guidance for the design and establishment of HRESs in practical applications, especially for the selection of available renewable energy technologies and product options, thus facilitating the wider deployment of such promising systems.

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