Analysis of Hydrogen Storage Methods for Decarbonizing Maritime Transport: A Multi-Criteria Decision Analysis Tool
Abstract
1. Introduction
| Parameter | CH2 (700 bar) | LH2 | MH |
|---|---|---|---|
| Quantitative Parameters | |||
| Density (kg H2/m3) | 40 | 70.85 | 100–150 |
| Energy Content (kJ/kg) | 7200 | 16,810 | 1080–3470 |
| Stored Energy (kJ/kg) | 14,883 | 42,600 | 6226–10,865 |
| Energy Losses (%) | 12–15 (compression) | >30 (liquefaction) | Heating losses |
| Spent Energy/Stored Energy | 0.12 | 0.36 | 0.06–0.15 |
| CO2 Emissions (kg CO2eq/kg H2) | 1.34 | 3.83 | 0.66–1.58 |
| Operating Pressure | 350–700 bar | 1 bar | 2–30 bar |
| Operating Temperature | Ambient | 20 K | 300–600 K |
| Qualitative Assessment | |||
| Storage Efficiency | Moderate | Low | High (if heat managed) |
| Safety | Low | Medium | High |
| Technological Maturity | High | Medium | Low to Medium |
2. Hydrogen Storage Alternatives for Maritime Applications
2.1. Compressed Hydrogen Gas
2.2. Metal Hydrides
2.3. Liquid Hydrogen
3. Hydrogen-Powered Vessels
| Year | Name | Country | H2 Energy Conversion | H2 Storage Method | Vessel Type | Length (m) | Status | Ref. |
|---|---|---|---|---|---|---|---|---|
| 2000 | Hydra | Germany | AFC | MH | Passenger ship | 12 | Withdrawn | [39] |
| 2007 | Ross Barlow | UK | PEMFC | MH | Research sailboat | 16 | Unknown | [48] |
| 2009 | Viking Lady | Norway | MCFC | CH2 | Offshore supply | 92.2 | In service | [41] |
| 2009 | Nemo H2 | Netherdlands | PEMFC | CH2 | Passenger ship | 21.95 | In service | [52] |
| 2010 | MF Vagen | Norway | PEMFC | MH | Passenger ship | 15 | Unknown | [39] |
| 2017 | Energy Observer | France | PEMFC | CH2 | Research catamaran | 30.5 | In service | [44] |
| 2021 | Xinhau 1 | China | PEMFC | CH2 | Small cruise ship | 12 | In service | [45] |
| 2022 | Zeus | Italy | PEMFC | MH | Research sailboat | 25.6 | In service | [47] |
| 2023 | Sanxia Qingzhou 1 | China | PEMFC | CH2 | Passenger catamaran | 49.9 | In service | [46] |
| 2023 | MF Hydra | Norway | PEMFC | LH2 | Ferry | 82.4 | In service | [42] |
| 2025 | Robert Gordon Sproul | USA | PEMFC | LH2 | Research sailboat | 38 | In construction | [49] |
| - | Ulstein SX190 | Norway | PEMFC | LH2 | Offshore installation | 93.4 | In development | [45] |
| - | Hydrogen Viking | Norway | PEMFC | CH2 | Cruise ship | 19.4 | In development | [50] |
| H2R-Evolution | France | PEMFC | CH2 | Research sailboat | 48 | In development | [45] |
4. Decision Criteria and Attributes for Hydrogen Storage Methods in Maritime Applications
4.1. Safety
4.2. Autonomy
4.3. Environmental Impact
4.4. Cost
4.5. Implementation
5. Results and Discussion of Multi-Criteria Decision-Making Approaches: AHP and TOPSIS
5.1. Analytic Hierarchy Process
5.1.1. Step 1: Define the Goal
5.1.2. Step 2: Develop the Hierarchy
5.1.3. Step 3: Perform Pairwise Comparisons
5.1.4. Step 4: Calculate the Eigenvector
- Sum the elements of each column in the pairwise matrix A = [aij]:where i refers to the alternative under evaluation and j refers to the criterion considered.
- Normalize the matrix by dividing each element by the sum of its corresponding column:
- Compute the priority vector by averaging the normalized values across each row:where aij is the element in row i, column j of the original matrix, nij is the normalized element, wi is the final weight (priority) of criterion i, n is the total number of criteria.
- Calculate the consistency index (CI) as follows:where λmax is the maximum eigenvalue of the matrix A and n is the number of alternatives.
- Calculate the consistency ratio (CR) as followswhere RI is the random consistency index, whose value depends on the number of elements in the matrix (0.58 for 3 × 3 matrix) [65]. A consistency ratio below 0.10 is typically considered acceptable. Higher values suggest the need to re-evaluate the pairwise judgments to improve reliability.
5.1.5. Step 5: Final Decision
5.2. Technique for Order Preference by Similarity to Ideal Solution
5.2.1. Step 1: Construct the Decision Matrix
5.2.2. Step 2: Normalize the Decision Matrix
5.2.3. Step 3: Weight the Normalized Decision Matrix
5.2.4. Step 4: Determine the Ideal and Negative-Ideal Solutions
5.2.5. Step 5: Calculate the Distances to Ideal and Negative-Ideal Solutions
5.2.6. Step 6: Compute the Relative Closeness to the Ideal Solution
5.3. Sensitivity Analysis
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
| FC | Fuel cell |
| PEMFC | Polymeric electrolyte membrane fuel cell |
| AFC | Alkaline fuel cell |
| MCFC | Molten carbonate fuel cell |
References
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| Storage Type | Advantages | Disadvantages |
|---|---|---|
| CH2 | Technologically mature Simple infrastructure | Limited energy density and capacity Safety concerns due to high pressure |
| LH2 | Higher volumetric energy density | Requires extremely low temperatures High energy losses from liquefaction Safety and boil-off management challenges |
| MH | High volumetric density Increased safety at low pressure | Low gravimetric efficiency Thermal management required for hydrogen release |
| Criterion | Main Technical Basis | Scoring Rationale |
|---|---|---|
| Safety | Operating pressure, temperature, risk of leakage/explosion, storage state | Higher pressure and cryogenic conditions reduce scores; solid-state storage increases scores |
| Autonomy | Gravimetric and volumetric energy density, system weight, storage efficiency | Higher energy density and lower system weight increase scores |
| Environmental impact | Energy consumption, energy losses, CO2 emissions, recyclability | Lower energy use and higher recyclability increase scores |
| Cost | CAPEX, OPEX, infrastructure availability | Lower costs and simpler systems increase scores |
| Implementation | Technological maturity, infrastructure, integration complexity | More mature technologies and easier integration increase scores |
| Level | Element | Description |
|---|---|---|
| 1 | Overall Goal | Selection of the best hydrogen storage method |
| 2 | Criteria | Safety Autonomy Environmental Impact Cost Implementation |
| 3 | Alternatives | Compressed Hydrogen (CH2) Liquid Hydrogen (LH2), Metal Hydrides (MHs) |
| Criterion | Compressed Hydrogen | Liquid Hydrogen | Metal Hydrides |
|---|---|---|---|
| Safety | 6 | 5 | 7 |
| Autonomy | 5 | 7 | 3 |
| Environmental Impact | 7 | 4 | 6 |
| Cost | 7 | 4 | 5 |
| Implementation | 7 | 6 | 2 |
| Criteria | S | A | EI | C | I | Priority Vector |
|---|---|---|---|---|---|---|
| Safety (S) | 1 | 5/4 | 5/3 | 5/2 | 5 | 0.3333 |
| Autonomy (A) | 4/5 | 1 | 4/3 | 2 | 4 | 0.2667 |
| Environmental Impact (EI) | 3/5 | 3/4 | 1 | 3/2 | 3 | 0.2000 |
| Cost (C) | 2/5 | 1/2 | 2/3 | 1 | 2 | 0.1333 |
| Implementation (I) | 1/5 | 1/4 | 1/3 | 1/2 | 1 | 0.0667 |
| Criteria | Alternatives | MH | CH2 | LH2 |
|---|---|---|---|---|
| Safety | MH | 1.0000 | 2.0000 | 3.0000 |
| CH2 | 0.5000 | 1.0000 | 2.0000 | |
| LH2 | 0.3333 | 0.5000 | 1.0000 | |
| Autonomy | MH | 1.0000 | 0.3333 | 0.2000 |
| CH2 | 3.0000 | 1.0000 | 0.3333 | |
| LH2 | 5.0000 | 3.0000 | 1.0000 | |
| Environmental Impact | MH | 1.0000 | 0.5000 | 3.0000 |
| CH2 | 2.0000 | 1.0000 | 4.0000 | |
| LH2 | 0.3333 | 0.2500 | 1.0000 | |
| Cost | MH | 1.0000 | 0.2500 | 0.5000 |
| CH2 | 4.0000 | 1.0000 | 3.0000 | |
| LH2 | 2.0000 | 0.3333 | 1.0000 | |
| Implementation | MH | 1.0000 | 0.1667 | 0.2000 |
| CH2 | 6.0000 | 1.0000 | 2.0000 | |
| LH2 | 5.0000 | 0.5000 | 1.0000 |
| Eigenvector | |||||
|---|---|---|---|---|---|
| S | A | EI | C | I | |
| MH | 0.5396 | 0.1047 | 0.3196 | 0.1365 | 0.0811 |
| CH2 | 0.2970 | 0.2970 | 0.5584 | 0.6250 | 0.5769 |
| LH2 | 0.1634 | 0.6369 | 0.1220 | 0.2385 | 0.3420 |
| Consistency test | |||||
| λmax | 3.0092 | 3.0385 | 3.0183 | 3.0183 | 3.0291 |
| CI | 0.0046 | 0.0193 | 0.0091 | 0.0091 | 0.0145 |
| CR | 0.0079 | 0.0332 | 0.0158 | 0.0158 | 0.0251 |
| Alternatives | Criteria | ||||
|---|---|---|---|---|---|
| S | A | EI | C | I | |
| MH | 7 | 3 | 6 | 4 | 2 |
| CH2 | 6 | 5 | 7 | 7 | 7 |
| LH2 | 5 | 7 | 4 | 5 | 6 |
| Alternatives | Criteria | ||||
|---|---|---|---|---|---|
| S | A | EI | C | I | |
| MH | 0.2225 | 0.0878 | 0.1194 | 0.0283 | 0.0281 |
| CH2 | 0.1907 | 0.1464 | 0.1393 | 0.0989 | 0.0492 |
| LH2 | 0.1589 | 0.2049 | 0.0796 | 0.0848 | 0.0351 |
| A+ | 0.2225 | 0.2049 | 0.1393 | 0.0989 | 0.0492 |
| A− | 0.1589 | 0.0878 | 0.0796 | 0.0283 | 0.0281 |
| Alternatives | D+ | D− | Ci | Ranking |
|---|---|---|---|---|
| MH | 0.1398 | 0.0750 | 0.3492 | 3rd |
| CH2 | 0.0666 | 0.1159 | 0.6351 | 1st |
| LH2 | 0.0895 | 0.1302 | 0.5928 | 2nd |
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Maceiras, R.; Alfonsin, V.; Alvarez-Feijoo, M.A.; Feijoo, J.; Lopez-Granados, A. Analysis of Hydrogen Storage Methods for Decarbonizing Maritime Transport: A Multi-Criteria Decision Analysis Tool. Hydrogen 2026, 7, 61. https://doi.org/10.3390/hydrogen7020061
Maceiras R, Alfonsin V, Alvarez-Feijoo MA, Feijoo J, Lopez-Granados A. Analysis of Hydrogen Storage Methods for Decarbonizing Maritime Transport: A Multi-Criteria Decision Analysis Tool. Hydrogen. 2026; 7(2):61. https://doi.org/10.3390/hydrogen7020061
Chicago/Turabian StyleMaceiras, Rocio, Victor Alfonsin, Miguel A. Alvarez-Feijoo, Jorge Feijoo, and Adrian Lopez-Granados. 2026. "Analysis of Hydrogen Storage Methods for Decarbonizing Maritime Transport: A Multi-Criteria Decision Analysis Tool" Hydrogen 7, no. 2: 61. https://doi.org/10.3390/hydrogen7020061
APA StyleMaceiras, R., Alfonsin, V., Alvarez-Feijoo, M. A., Feijoo, J., & Lopez-Granados, A. (2026). Analysis of Hydrogen Storage Methods for Decarbonizing Maritime Transport: A Multi-Criteria Decision Analysis Tool. Hydrogen, 7(2), 61. https://doi.org/10.3390/hydrogen7020061

