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多形態連携のための再生可能エネルギーシステム:設計戦略とエネルギー貯蔵ソリューション

Renewable Energy Systems for Multi-Form Coupling: Design Strategies and Energy Storage Solutions (原題)

Shanshan Sun

Energy Storage and Conversion📚 査読済 / ジャーナル2026-08-25#再生可能エネルギーOrigin: CN経営インパクト: コスト削減対象セクター: power
DOI: 10.59400/esc4414
原典: https://doi.org/10.59400/esc4414

🤖 gxceed AI 要約

日本語

本レビューは、電力・熱・水素・ガス・輸送を統合する多形態連携再生可能エネルギーシステムの設計と貯蔵戦略を体系的に整理。システム構成、設計手法、各種貯蔵技術の役割を比較し、技術経済性や環境影響を考慮した最適化手法を議論。将来のAI活用や長期間貯蔵など発展動向も提示し、脱炭素化に向けた統合的視点を提供する。

English

This review systematically organizes design and storage strategies for multi-form coupled renewable energy systems integrating electricity, heat, hydrogen, gas, and transport. It compares system architectures, design methods, and storage technologies, discussing optimization techniques considering techno-economic and environmental factors. Future trends such as AI-based management and long-duration storage are highlighted, offering a unified perspective for decarbonization.

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

日本では、再生可能エネルギーの導入拡大とともに、セクターカップリングや水素社会の実現が政策課題となっている。本レビューは、系統安定化やエネルギー貯蔵の設計指針を提供し、日本のエネルギー政策やインフラ計画に示唆を与える。

In the global GX context

Globally, this review contributes to the discourse on sector coupling and energy storage, which are critical for integrating variable renewables and achieving deep decarbonization. It provides a comprehensive framework that can inform system design and policy for energy transition.

👥 読者別の含意

🔬研究者:Provides a comprehensive overview of coupled renewable systems and storage, useful for identifying research gaps.

🏢実務担当者:Offers design strategies and storage options for renewable energy projects, aiding in system planning and investment decisions.

🏛政策担当者:Highlights the importance of sector coupling and storage in energy policy, supporting long-term decarbonization strategies.

📄 Abstract(原文)

To transition to carbon-neutral energy systems, it is necessary to transform traditional single-energy infrastructure into integrated renewable systems capable of combining electricity, heating, cooling, hydrogen, gas fuels, and transport. This survey explores the renewable energy systems to be coupled with multi-form systems with special emphasis on design and energy storage strategies. First, the architectural properties of coupled systems are discussed in terms of integration of renewable resources, inter-energy conversion pathways, and building, microgrid, industrial, and regional structural configurations. Second, the major design strategies are discussed, including system planning, capacity configuration, operational scheduling, control architecture, and resilience design. Third, the review assesses the contributions of electrical, thermal, hydrogen-based, chemical, and hybrid storage technologies to allow short-term regulation, long-duration balancing, and cross-sector flexibility. The comparison, modeling, and optimization techniques are also discussed to elucidate the role of techno-economic performance, environmental impact, and constraints on operational capabilities in system design choices. The review also specifies the key challenges associated with multi-timescale coordination, uncertainty propagation, interoperability, investment incentives, safety, and standardization. Based on this, trends in future development are emphasized, such as sector-coupling architecture hybrids, long-term storage, AI-based energy management, and modular deployment channels. This review provides a unified view that connects architecture and design, storage, and system analysis, and argues that coordinated multi-form coupling will be fundamental to creating flexible, resilient, and profoundly decarbonized renewable energy systems. To transition to carbon-neutral energy systems, it is necessary to transform traditional single-energy infrastructure into integrated renewable systems capable of combining electricity, heating, cooling, hydrogen, gas fuels, and transport. This survey explores the renewable energy systems to be coupled with multi-form systems with special emphasis on design and energy storage strategies. First, the architectural properties of coupled systems are discussed in terms of integration of renewable resources, inter-energy conversion pathways, and building, microgrid, industrial, and regional structural configurations. Second, the major design strategies are discussed, including system planning, capacity configuration, operational scheduling, control architecture, and resilience design. Third, the review assesses the contributions of electrical, thermal, hydrogen-based, chemical, and hybrid storage technologies to allow short-term regulation, long-duration balancing, and cross-sector flexibility. The comparison, modeling, and optimization techniques are also discussed to elucidate the role of techno-economic performance, environmental impact, and constraints on operational capabilities in system design choices. The review also specifies the key challenges associated with multi-timescale coordination, uncertainty propagation, interoperability, investment incentives, safety, and standardization. Based on this, trends in future development are emphasized, such as sector-coupling architecture hybrids, long-term storage, AI-based energy management, and modular deployment channels. This review provides a unified view that connects architecture and design, storage, and system analysis, and argues that coordinated multi-form coupling will be fundamental to creating flexible, resilient, and profoundly decarbonized renewable energy systems.

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