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Physics-Based Energy - Carrier Analysis - Methanol, LPG, and Methane in the Energy and Maritime Context

物理ベースのエネルギーキャリア分析:エネルギーおよび海事の文脈におけるメタノール、LPG、メタン (AI 翻訳)

Dzikowski, Ryszard

Zenodoプレプリント2026-05-24#エネルギー転換Origin: EU
DOI: 10.5281/zenodo.20369938
原典: https://zenodo.org/records/20369938
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🤖 gxceed AI 要約

日本語

本研究は、メタノール、LPG、LNGなどのエネルギーキャリアを物理的・システム的に評価し、メタノールが物理的に優れたキャリアではなく、物流・規制上の妥協であることを示す。季節的な再生可能エネルギー制約を考慮すると、特に北ヨーロッパの冬季において、e-メタノールの連続生産は構造的に困難であり、直接的な炭化水素経路(LNG、LPG、メタン)の方が多くの用途で効率的であると結論づける。

English

This study provides a physics-based assessment of methanol, LPG, LNG, and methane in maritime and energy contexts, arguing that methanol is a logistical compromise rather than a superior energy carrier. Incorporating seasonal renewable constraints from Northern European data, it finds that direct hydrocarbon pathways (LNG, LPG, methane) are often more efficient than e-methanol due to conversion losses and intermittent renewable availability.

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

本論文は、メタノールとLNGなどのエネルギーキャリアを物理的観点から比較し、日本のGX政策(特に水素・アンモニア戦略)に示唆を与える。ただし、日本の文脈ではLNG輸入依存やe-fuelの位置づけを考慮する必要がある。

In the global GX context

This paper offers a physics-based critique of methanol as a maritime fuel, relevant to global debates on e-fuels and Power-to-X. It challenges the efficiency of green methanol and highlights the importance of system-level analysis for transition fuels, which is critical for ISSB and TCFD-aligned scenario planning.

👥 読者別の含意

🔬研究者:Provides a rigorous thermodynamic comparison of energy carriers, useful for modeling maritime decarbonization pathways.

🏢実務担当者:Shipowners and fuel suppliers can use this to evaluate methanol vs. LNG/LPG based on energy density and conversion efficiency.

🏛政策担当者:Highlights the need to consider seasonal renewable availability and system efficiency when subsidizing e-methanol or green hydrogen.

📄 Abstract(原文)

Physics-Based Energy Carrier Analysis: Methanol, LPG, and Methane in the Energy and Maritime Context This study provides a physics-based and system-level assessment of methanol, LPG, LNG, methane, and related hydrocarbon pathways within the context of maritime decarbonization, Power-to-X (PtX), and future energy infrastructure. The analysis distinguishes explicitly between logistical convenience and physical superiority — a distinction often blurred in public and policy debates. Using thermodynamic data, combustion enthalpies, energy-density comparisons, and complete energy-chain assessments, the study demonstrates that methanol is not a physically superior energy carrier, but primarily a logistical and regulatory compromise. While methanol benefits from liquid handling, existing port infrastructure, and increasing regulatory support in shipping, its production via electrolysis and synthesis pathways introduces substantial conversion losses compared to direct hydrocarbon utilization. The report compares complete system pathways including: LNG, LPG, methane, compressed natural gas (CNG), fossil methanol, and e-methanol. Special focus is placed on: volumetric and gravimetric energy density, conversion efficiency, infrastructure complexity, maritime applicability, hydrogen carrier concepts, methane pyrolysis, and seasonal renewable electricity availability. A central contribution of the study is the integration of seasonal renewable energy constraints into PtX evaluation. Using Ember Climate electricity data, the analysis argues that Northern European winter conditions create a structural challenge for continuous “green” hydrogen and e-methanol production, due to prolonged low solar output and recurring wind deficits. The study concludes that methanol is rational in specific transitional and import-oriented applications, particularly where liquid-fuel handling and regulatory compatibility dominate. However, from a thermodynamic and system-efficiency perspective, direct hydrocarbon pathways — especially methane, LNG, and LPG — remain significantly more efficient in many applications. The report ultimately argues that future energy systems should be evaluated not primarily through political narratives or fuel branding, but through physical system architecture, conversion efficiency, infrastructure realism, and seasonal energy availability.

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