Open Access

Integrating Solar Drying, Thermal Energy Storage, and Sodium Borohydride Hydrogen Pathways for Decentralized Sustainable Energy Systems: A Comparative and Conceptual Research Analysis

4 Department of Energy Science, Kyoto University, Japan
4 Department of Mechanical Engineering, Qatar University, Qatar

Abstract

Background: Decentralized energy transitions increasingly require technologies that are not only renewable, but also storage-capable, modular, and appropriate for agricultural, rural, and small-scale industrial contexts. The references provided converge around two major domains: solar drying systems, particularly those enhanced by sensible and latent thermal storage, and hydrogen generation and storage through sodium borohydride and related materials. Although these domains are often treated separately, both address a common systems-level challenge: how to capture intermittent renewable energy, preserve its utility over time, and deliver it in forms appropriate for productive use.

 

Objective: This article develops a conceptual and comparative research analysis that examines the theoretical, technological, and operational relationships between solar drying technologies and sodium borohydride-based hydrogen pathways. The study seeks to identify common design principles, performance determinants, storage logics, and integration opportunities for decentralized sustainable energy systems.

Methodology: A structured qualitative synthesis was undertaken using only the supplied references. The method involved thematic coding of the literature into four analytical layers: solar resource utilization, energy storage mechanisms, process intensification strategies, and system maturity constraints. Comparative interpretation was then used to generate an integrative framework connecting agricultural drying applications and hydrogen-based energy storage systems.

 

Results: The analysis shows that solar drying technologies have achieved significant maturity in collector design, airflow management, product-specific drying kinetics, greenhouse and tunnel configurations, and phase change material integration, while sodium borohydride-based hydrogen systems demonstrate strong promise in controllable hydrogen release, chemical storage density, catalytic tuning, and closed-loop regeneration concepts. Across both domains, storage is the decisive variable that transforms intermittent solar input into reliable service output. However, solar drying systems are comparatively closer to field-level deployment, whereas sodium borohydride systems remain constrained by regeneration cost, catalyst optimization, and full-cycle feasibility.

Conclusion: The study concludes that the strongest future pathway is not to treat solar drying and hydrogen technologies as unrelated sectors, but as complementary elements in a distributed energy architecture. Solar thermal systems can serve immediate low-temperature productive applications, while chemical hydrogen pathways may provide higher-value buffering, transport, and cross-sector energy services. The combined perspective advances a more nuanced model of sustainable energy development grounded in functionality, storage hierarchy, and context-sensitive deployment.

Keywords

References

📄 Abdelhamid, H. N. (2021). A review on hydrogen generation from the hydrolysis of sodium borohydride. International Journal of Hydrogen Energy, 46(1), 726–765. https://doi.org/10.1016/j.ijhydene.2020.09.186
📄 Abueluor, A. A. A., Amin, M. T., Abuelnour, M. A., & Younis, O. (2023). A comprehensive review of solar dryers incorporated with phase change materials for enhanced drying efficiency. Journal of Energy Storage, 72, 108425. https://doi.org/10.1016/j.est.2023.108425
📄 Ampratwum, D. B., & Dorvlo, A. S. S. (1998). Evaluation of a solar cabinet dryer as an air-heating system. Applied Energy, 59, 63–71. https://doi.org/10.1016/S0306-2619(97)00043-3
📄 Aydin, K., Kulakli, B. N., Coşkuner Filiz, B., Alligier, D., Demirci, U. B., & Figen, A. K. (2020). Closing the hydrogen cycle with sodium borohydride–methanol system. International Journal of Energy Research, 44, 11405–11416. https://doi.org/10.1002/er.5761
📄 Bhardwaj, A. K., Kumar, R., Chauhan, R., & Kumar, S. (2020). Performance evaluation of a solar dryer integrated with SHS and PCM. Thermal Science and Engineering Progress, 20, 100713. https://doi.org/10.1016/j.tsep.2020.100713
📄 Brack, P., Dann, S. E., & Wijayantha, K. G. U. (2015). Catalysts for hydrogen generation via NaBH4 hydrolysis. Energy Science & Engineering, 3(3), 174–188. https://doi.org/10.1002/ese3.67
📄 Chen, W., Ouyang, L. Z., Liu, J. W., Yao, X. D., Wang, H., Liu, Z. W., & Zhu, M. (2017). Hydrolysis and regeneration of sodium borohydride. Journal of Power Sources, 359, 400–407. https://doi.org/10.1016/j.jpowsour.2017.05.075
📄 Çerçi, K. N., Saydam, D. B., & Hürdoğan, E. (2022). Drying of mushroom slices in a solar drying system. European Mechanical Science, 6, 221–232. https://doi.org/10.26701/ems.1144456
📄 Demirci, U. B. (2015). Hydrogen cycle via sodium borohydride hydrolysis. International Journal of Hydrogen Energy, 40(6), 2673–2691. https://doi.org/10.1016/j.ijhydene.2014.12.067
📄 Demirci, U. B. (2023). Technological maturity of hydrogen production by NaBH4 hydrolysis. International Journal of Hydrogen Energy, 48(76), 29682–29698. https://doi.org/10.1016/j.ijhydene.2023.04.176
📄 Desa, G., Shunki, G., & Tesfamichael, A. (2024). Advancements in thermal energy storage and solar dryers. Results in Engineering, 24, 102877. https://doi.org/10.1016/j.rineng.2024.102877
📄 Devabhaktuni, V., Alam, M., Depuru, S. S. S. R., Green, R. C., & Nims, D. (2013). Solar energy: Trends and technologies. Renewable and Sustainable Energy Reviews, 19, 555–564. https://doi.org/10.1016/j.rser.2012.11.024
📄 Devahastin, S., & Pitaksuriyarat, S. (2006). Latent heat storage in drying processes. Applied Thermal Engineering, 26(14–15), 1705–1713. https://doi.org/10.1016/j.applthermaleng.2005.11.007
📄 Dragan, M. (2022). Hydrogen storage in NaBH4. Catalysts, 12(4), 356. https://doi.org/10.3390/catal12040356
📄 El-sebaii, A. A., & Shalaby, S. M. (2012). Solar drying of agricultural products. Renewable and Sustainable Energy Reviews, 16(1), 37–43. https://doi.org/10.1016/j.rser.2011.07.134
📄 Fadhel, A., Kooli, S., Farhat, A., & Bellghith, A. (2005). Solar drying of grapes. Desalination, 185(1–3), 535–541. https://doi.org/10.1016/j.desal.2005.05.012
📄 Farid, M. M., Khudhair, A. M., Ali, S., & Razack, K. (2004). A review on phase change energy storage: Materials and applications. Energy Conversion and Management, 45, 1597–1615. https://doi.org/10.1016/j.enconman.2003.09.015
📄 Fudholi, A., Sopian, K., Bakhtyar, B., Gabbasa, M., & Othman, M. Y. (2015). Solar drying systems in Malaysia. Renewable and Sustainable Energy Reviews, 51, 1191–1204. https://doi.org/10.1016/j.rser.2015.07.026
📄 Goud, M., Reddy, M. V. V., Chandramohan, V. P., & Suresh, S. (2019). Indirect solar dryer with PV-powered fans. Solar Energy, 194, 871–885. https://doi.org/10.1016/j.solener.2019.11.031
📄 Goyal, R. K., Kingsly, A. R. P., Manikantan, M. R., & Ilyas, S. M. (2006). Drying kinetics of mango slices. Biosystems Engineering, 95, 43–49. https://doi.org/10.1016/j.biosystemseng.2006.05.001
📄 Hamdi, I., Kooli, S., Elkhadraoui, A., Azaizia, Z., Abdelhamid, F., et al. (2018). Drying grapes in solar greenhouse. Renewable Energy, 127, 936–946. https://doi.org/10.1016/j.renene.2018.05.027
📄 Hegde, V. N., Hosur, V. S., Rathod, S. K., Harsoor, P. A., & Narayana, K. B. (2015). Solar dryer for banana. Energy, Sustainability and Society, 5(1), 23. https://doi.org/10.1186/s13705-015-0052-x
📄 Hirscher, M., Yartys, V. A., Baricco, M., et al. (2020). Materials for hydrogen-based energy storage–past, recent progress and future outlook. Journal of Alloys and Compounds, 827, 153548. https://doi.org/10.1016/j.jallcom.2019.153548
📄 Ibrahim, A., Paskevicius, M., & Buckley, C. E. (2023). Chemical compression and transport of hydrogen using sodium borohydride. Sustainable Energy & Fuels, 7, 1196. https://doi.org/10.1039/D2SE01334G
📄 Jiang, H. L., Singh, S. K., Yan, J. M., Zhang, X. B., & Xu, Q. (2010). Liquid-phase chemical hydrogen storage: Catalytic hydrogen generation under ambient conditions. ChemSusChem, 3(5), 541–549. https://doi.org/10.1002/cssc.201000023
📄 Kaewkiew, J., Nabnean, S., & Janjai, S. (2012). Experimental investigation of the performance of a large-scale greenhouse type solar dryer for drying chilli in Thailand. Procedia Engineering, 32, 433–439. https://doi.org/10.1016/j.proeng.2012.01.1290
📄 Kalogirou, S. A. (2014). Solar dryers and industrial applications. In Solar Energy Engineering (pp. 397–429). Elsevier.
📄 Kamarulzaman, A., Hasanuzzaman, M., & Rahim, N. A. (2021). Global advancement of solar drying technologies and its future prospects: A review. Solar Energy, 221, 559–582. https://doi.org/10.1016/j.solener.2021.04.056
📄 Kherrafi, M. A., et al. (2024). Advancements in solar drying technologies: Design variations, hybrid systems, storage materials and numerical analysis: A review. Solar Energy, 270, 112383. https://doi.org/10.1016/j.solener.2024.112383
📄 Klopčič, N., Grimmer, I., Winkler, F., Sartory, M., & Trattner, A. (2023). A review on metal hydride materials for hydrogen storage. Journal of Energy Storage, 72, 108456. https://doi.org/10.1016/j.est.2023.108456
📄 Kumar, N., & Gupta, S. K. (2021). Progress and application of phase change material in solar thermal energy: An overview. Materials Today: Proceedings, 44, 271–281. https://doi.org/10.1016/j.matpr.2020.09.465
📄 Kumar, N., Lee, S.-Y., & Park, S.-J. (2024). Advancements in hydrogen storage technologies: A comprehensive review of materials, methods, and economic policy. Nano Today, 56, 102302. https://doi.org/10.1016/j.nantod.2024.102302
📄 Liu, B. H., & Li, Z. P. (2009). Hydrogen generation from borohydride hydrolysis reaction. Journal of Power Sources, 187(2), 527–534. https://doi.org/10.1016/j.jpowsour.2008.11.032
📄 Liu, Y., Zheng, X., Xu, B., Xia, Z., & Wang, Y. (2024). A novel hydrogen storage material: The hydrolysis products of sodium borohydride. Journal of Physics and Chemistry of Solids, 188, 111923. https://doi.org/10.1016/j.jpcs.2024.111923
📄 Lu, Z. C., & Zhang, L. T. (2023). Recent advances in sodium borohydride for hydrogen storage. E3S Web of Conferences, 385, 04025. https://doi.org/10.1051/e3sconf/202338504025
📄 Malakar, S., Arora, V. K., & Nema, P. K. (2021). Design and performance evaluation of an evacuated tube solar dryer for drying garlic clove. Renewable Energy, 168, 568–580. https://doi.org/10.1016/j.renene.2020.12.068
📄 Maka, A. O. M., & Alabid, J. M. (2022). Solar energy technology and its roles in sustainable development. Clean Energy, 6(3), 476–483. https://doi.org/10.1093/ce/zkac023
📄 Mustayen, A. G. M. B., Mekhilef, S., & Saidur, R. (2014). Performance study of different solar dryers: A review. Renewable and Sustainable Energy Reviews, 34, 463–470. https://doi.org/10.1016/j.rser.2014.03.020
📄 Nukulwar, M. R., & Tungikar, V. B. (2021). A review on performance evaluation of solar dryer and its material for drying agricultural products. Materials Today: Proceedings, 46, 345–349. https://doi.org/10.1016/j.matpr.2020.08.354
📄 Ouyang, L., Zhong, H., Li, H. W., & Zhu, M. (2018). A recycling hydrogen supply system of NaBH4 based on a facile regeneration process: A review. Inorganics, 6(1), 10. https://doi.org/10.3390/inorganics6010010
📄 Pasman, H. J., & Rogers, W. J. (2012). Risk assessment by means of Bayesian networks: A comparative study of compressed and liquefied H2 transportation and tank station risks. International Journal of Hydrogen Energy, 37(22), 17415–17425. https://doi.org/10.1016/j.ijhydene.2012.04.051
📄 Patel, N., & Miotello, A. (2015). Progress in Co-B related catalyst for hydrogen production by hydrolysis of boron-hydrides: A review and the perspectives to substitute noble metals. International Journal of Hydrogen Energy, 40(3), 1429–1464. https://doi.org/10.1016/j.ijhydene.2014.11.052
📄 Rathore, N. S., & Panwar, N. L. (2010). Experimental studies on hemi cylindrical walk-in type solar tunnel dryer for grape drying. Applied Energy, 87(8), 2764–2767. https://doi.org/10.1016/j.apenergy.2010.03.014
📄 Santos, D. M. F., & Sequeira, C. A. C. (2011). Sodium borohydride as a fuel for the future. Renewable and Sustainable Energy Reviews, 15(8), 3980–4001. https://doi.org/10.1016/j.rser.2011.07.018
📄 Shanmugam, V., & Natarajan, E. (2006). Experimental investigation of forced convection and desiccant integrated solar dryer. Renewable Energy, 31(8), 1239–1251. https://doi.org/10.1016/j.renene.2005.05.019
📄 Sharma, A., Chen, C. R., & Vu Lan, N. (2009). Solar-energy drying systems: A review. Renewable and Sustainable Energy Reviews, 13(6–7), 1185–1210. https://doi.org/10.1016/j.rser.2008.08.015
📄 Singh, D., & Mall, P. (2020). Experimental investigation of thermal performance of indirect mode solar dryer with phase change material for banana slices. Energy Sources, Part A, 46, 1–18. https://doi.org/10.1080/15567036.2020.1810825
📄 Tripathy, P. P., & Kumar, S. (2009). Modeling of heat transfer and energy analysis of potato slices and cylinders during solar drying. Applied Thermal Engineering, 29(5–6), 884–891. https://doi.org/10.1016/j.applthermaleng.2008.04.018
📄 Tyagi, V. V., et al. (2024). Sustainable growth of solar drying technologies: Advancing the use of thermal energy storage for domestic and industrial applications. Journal of Energy Storage, 99, 113320. https://doi.org/10.1016/j.est.2024.113320
📄 Udomkun, P., et al. (2020). Review of solar dryers for agricultural products in Asia and Africa: An innovation landscape approach. Journal of Environmental Management, 268, 110730. https://doi.org/10.1016/j.jenvman.2020.110730
📄 Xu, D., Zhang, Y., & Guo, Q. (2022). Research progress on catalysts for hydrogen generation through sodium borohydride alcoholysis. International Journal of Hydrogen Energy, 47(9), 5929–5946. https://doi.org/10.1016/j.ijhydene.2021.11.232
📄 Xu, F., Ren, J., Ma, J., et al. (2024). A review of hydrogen production kinetics from the hydrolysis of NaBH4 solution catalyzed by Co-based catalysts. International Journal of Hydrogen Energy, 50, 827–844. https://doi.org/10.1016/j.ijhydene.2023.08.142
📄 Yematawu, S., Tamrat, B., Tarekegn, D., & Mulugeta, H. (2024). Experimental testing on the performance of solar dryer equipped with evacuated tube collector, rock bed heat storage and reflectors. Energy Reports, 12, 453–471. https://doi.org/10.1016/j.egyr.2024.06.027
📄 Ying, S., Zhang, X., Wu, Y., & Pan, Z. (2024). Solar photovoltaic/thermal (PV/T) systems with/without phase change materials (PCMs): A review. Journal of Energy Storage, 89, 111582. https://doi.org/10.1016/j.est.2024.111582
📄 Zhu, Y., Li, J., Yang, L., et al. (2023). Closed loops for hydrogen storage: Hydrolysis and regeneration of metal borohydrides. Journal of Power Sources, 563, 232833. https://doi.org/10.1016/j.jpowsour.2023.232833

Similar Articles

11-20 of 20

You may also start an advanced similarity search for this article.