リビアにおけるアルカリ水電解によるグリーン水素製造の統合技術経済・プロセスシミュレーション評価
Integrated techno-economic and process simulation assessment of alkaline water electrolysis in Libya for green hydrogen production (原題)
N. Omar, Malak Alaswad
🤖 gxceed AI 要約
日本語
リビアのザウィヤ近郊アル・ハルシャで、太陽光発電によるアルカリ水電解でグリーン水素を製造する技術経済性を評価。Aspen HYSYSでプロセスをシミュレーションし、水供給量が水素生成の主要因であることを確認。LCOHは2.5〜3.5ドル/kgと試算され、欧州への輸出競争力が示唆された。パイプライン、アンモニア、液化水素の輸出経路も検討。
English
This study evaluates the technical and economic feasibility of solar-powered alkaline water electrolysis for green hydrogen production in Libya. Using Aspen HYSYS simulations, it identifies water feed flow as the key factor for hydrogen yield. The levelized cost of hydrogen is estimated at $2.5–3.5/kg, indicating export competitiveness. Pipeline, ammonia, and liquefied hydrogen export pathways are assessed for the Mediterranean corridor.
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
日本は水素サプライチェーン構築を進めており、海外での低コスト水素製造の知見は、日本の水素輸入戦略や国際協力に示唆を与える。特に、中東・北アフリカからの水素調達は、日本のエネルギー安全保障にも関連する。
In the global GX context
This study contributes to the global discourse on green hydrogen export corridors, particularly the Mediterranean region. It provides techno-economic data that can inform international hydrogen trade and infrastructure investment decisions, aligning with global decarbonization goals.
👥 読者別の含意
🔬研究者:Provides a detailed process simulation and techno-economic model for alkaline electrolysis in a high-solar region, useful for comparative studies.
🏢実務担当者:Offers cost benchmarks and sensitivity insights for green hydrogen project development in similar climates.
🏛政策担当者:Highlights the potential of North African hydrogen exports, relevant for energy diplomacy and infrastructure planning.
📄 Abstract(原文)
Background: The global energy transition requires robust green energy carriers, with green hydrogen produced by renewable-powered water electrolysis emerging as a key pathway for decarbonization. Libya, particularly the Al-Harsha site in Zawiya, offers significant potential for green hydrogen production due to its high solar irradiance (>2200 kWh/m²/year) and strategic proximity to European markets across the Mediterranean. Aim: This study aims to evaluate the technical performance and economic feasibility of alkaline water electrolysis (AWE) for large-scale green hydrogen production in Libya and to assess its potential for hydrogen export. Methods: High-fidelity steady-state simulations of AWE plants were developed using Aspen HYSYS V14.2 with the Electrolyte non-random two-liquid (NRTL) property package. Two production capacities (27.9 and 60.3 t/day) were investigated. Sensitivity analyses were performed to examine the effects of water feed flow (400–2000 kmol/h), KOH electrolyte flow (100–300 kmol/h), reactor conversion (40%–90%), and heater temperature (90°C–130°C). The process configuration included mixing units, conversion reactors arranged in series, gas–liquid separators, and electrolyte recycle streams. Results: The simulations showed that water feed flow is the primary factor governing hydrogen production, while increasing KOH electrolyte flow produced only modest improvements by reducing ohmic losses. Variations in reactor conversion and operating temperature had minimal influence on hydrogen yield, indicating that system performance is primarily constrained by mass and power availability. The techno-economic assessment estimated a levelized cost of hydrogen (LCOH) of $ 2.5–3.5/kg H₂, demonstrating the potential competitiveness of Libyan green hydrogen for export. An assessment of pipeline transport, ammonia synthesis, and liquefied hydrogen identified multiple viable export pathways for the emerging Mediterranean hydrogen corridor. Conclusion: Under the stated modeling assumptions, the proposed coastal Libyan AWE facility is technically feasible and economically competitive as a potential contributor to a future North African–European hydrogen export network. However, pilot-scale validation, dynamic renewable energy integration studies, and comprehensive logistical risk assessments are required before large-scale deployment can be recommended.
🔗 Provenance — このレコードを発見したソース
- semanticscholar https://doi.org/10.5455/jerr.2026.v3.i2.2first seen 2026-08-23 05:16:20 · last seen 2026-09-22 05:01:33
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