DESIGN AND DEVELOPMENT OF A PORTABLE MINI WATER HEATER USING BATTERY POWER FOR MOUNTAIN CLIMBERS
Keywords:
Footstep energy harvesting, Faraday’s law, electromagnetic induction, renewable energy prototype, mechanical-to-electrical energy conversion.Abstract
Mountain climbing activities require adequate preparation, particularly in ensuring access to warm water for hydration and preventing hypothermia in cold environments. Conventional heating systems such as gas stoves present limitations, including safety risks, fuel dependency, and additional weight. This study aims to design and develop a portable mini water heater powered by a rechargeable lithium-ion battery as a safer and more practical alternative for mountain climbers. The research employed a Research and Development (R&D) approach using the ADDIE model, including analysis, design, development, implementation, and evaluation stages. The device utilizes a Positive Temperature Coefficient (PTC) heating element connected to a 14.8 V lithium-ion battery with a capacity of 9800 mAh. Experimental results show that the device can increase water temperature from 30°C to 45°C within 50 minutes, demonstrating stable heating performance. The system offers advantages in portability, safety, and environmental friendliness. However, heating efficiency remains moderate. This innovation has strong potential for further development to improve heating speed and energy efficiency.
References
Amala, S., Reskiana, R. O., Cahyani, F., & Ahli, G. A. (2025). Development of Optical Sensors Based on Surface Plasmon Resonance ( SPR ) for Health Applications. 3, 1–7
Andrea, D. (2010). Battery management systems for large lithium-ion battery packs. Artech House.
Apollo, M. (2017). The true accessibility of mountaineering: The case of the High Himalaya. Journal of Outdoor Recreation and Tourism, 17, 29–43. https://doi.org/10.1016/j.jort.2016.12.001
Baggish, A. L., et al. (2010). The impact of moderate-altitude staging. High Altitude Medicine & Biology, 11(2), 139–145.
Barry, R. G., & Chorley, R. J. (2009). Atmosphere, weather and climate. Routledge.
Bose, B. K. (2002). Power electronics and motor drives. IEEE International Symposium.
Chapman, S. J. (2012). Electric machinery fundamentals. McGraw-Hill.
Díaz Fernández, P., et al. (2022). Accident analysis and prevention. Accident Analysis & Prevention, 168, 106587.
Epstein, Y., & Moran, D. S. (2019). Extremes of temperature and hydration. Travel Medicine.
Febi, T., & Sianturi, A. (2025). Analysis of Electric Potential Distribution in a System without Charge Using Laplace ’ s Equation Approach ; Literature Review. 3, 20–25
Jiang, Y., & Song, W. (2023). Predicting lithium-ion battery life. Batteries, 9(8), 413.
Kosiński, S., et al. (2020). Defibrillation at low temperatures. Wilderness & Environmental Medicine, 31(2), 230–234.
Liyanty, H., Fauza, N., Kencana, T., & Deza, P. (2025). Laser Cutting Technology in the World of Medicine and Science. 3, 25–33
Sedra, A. S., et al. (2020). Microelectronic circuits. Oxford University Press.
Tarascon, J.-M., & Armand, M. (2001). Lithium battery challenges. Nature, 414, 359–367.
Wang, Q., et al. (2013). Thermal performance of lithium-ion batteries. Journal of Power Sources.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2026 Dion Nicky Brilian, Budi Supiawan, Azhar

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.










