Agriculture and food sciences | Online ISSN: 3066-3407
REVIEWS   (Open Access)

Smart Renewable Energy Integration for Precision Agriculture in Off-Grid Areas

Ashok Kumar Chowdhury1*

+ Author Affiliations

Applied Agriculture Sciences 3 (1) 1-6 https://doi.org/10.25163/agriculture.3110286

Submitted: 20 March 2025 Revised: 13 May 2025  Published: 14 May 2025 


Abstract

The move to smart renewable energy systems in precision agriculture (PA) can and will potentially be a transformational solution to the interconnected global problems of food sovereignty, energy poverty, and environmental blight in mostly unserved and off-grid rural contexts. The global population is anticipated to increase substantially by 2050 (25%), and food production must increase more than 60% to provide for food. But agribusiness is a significant pressure on Earth's living natural systems as it uses approximately 70% of the global freshwater resources, and is responsible for about 24% of global GHG emissions. Data-based systems, sensors, and automation will have growth opportunities of 20-30% at least in alternative agricultural productivity, while reducing fertilizer application by -5 to15%, and water application -30 to -50%. RE systems, largely solar and wind, provide decentralized, cleaner sources of energy to assist PA. For example, solar irrigation systems can reduce energy use by as much as 60% over traditional fossil fuel, creating more efficient systems for farms. Research and policy around the integrated use of RE and PA indicate promise for resilience and sustainability of agricultural systems, particularly for smallholder producers who are operating off-grid. Smart integration of renewable energy with productive agriculture can help to increase efficiency and productivity, reduce input costs, and reduce emissions by as much as 25%. In this review we consider the state of RE-PA integration, the state of technology, use and deployment as well as perspectives, challenges, solutions, and future of RE-PA integration.

Keywords: Smart renewable energy, precision agriculture, off-grid areas, sustainable farming, renewable energy integration.

References


Abioye, E. A., Hensel, O., Esau, T. J., Elijah, O., Abidin, M. S. Z., Ayobami, A. S., Yerima, O., & Nasirahmadi, A. (2022). Precision irrigation management using machine learning and digital farming solutions. AgriEngineering, 4(1), 70–103. https://doi.org/10.3390/agriengineering4010006

Amede, T., Konde, A. A., Muhinda, J. J., & Bigirwa, G. (2023). Sustainable Farming in practice: Building resilient and profitable smallholder agricultural systems in Sub-Saharan Africa. Sustainability, 15(7), 5731. https://doi.org/10.3390/su15075731

Asiaban, S., Kayedpour, N., Samani, A. E., Bozalakov, D., De Kooning, J. D. M., Crevecoeur, G., & Vandevelde, L. (2021). Wind and Solar Intermittency and the Associated Integration Challenges: A Comprehensive review including the status in the Belgian power system. Energies, 14(9), 2630. https://doi.org/10.3390/en14092630

Balmer, R. E., Levin, S. L., & Schmidt, S. (2020). Artificial Intelligence Applications in Telecommunications and other network industries. Telecommunications Policy, 44(6), 101977. https://doi.org/10.1016/j.telpol.2020.101977

Boroomandnia, A., Rismanchi, B., & Wu, W. (2022). A review of micro hydro systems in urban areas: Opportunities and challenges. Renewable and Sustainable Energy Reviews, 169, 112866. https://doi.org/10.1016/j.rser.2022.112866

Bwambale, E., Abagale, F. K., & Anornu, G. K. (2021b). Smart irrigation monitoring and control strategies for improving water use efficiency in precision agriculture: A review. Agricultural Water Management, 260, 107324. https://doi.org/10.1016/j.agwat.2021.107324

Candelise, C., Winskel, M., & Gross, R. J. (2013). The dynamics of solar PV costs and prices as a challenge for technology forecasting. Renewable and Sustainable Energy Reviews, 26, 96–107. https://doi.org/10.1016/j.rser.2013.05.012

Chel, A., & Kaushik, G. (2010). Renewable energy for sustainable agriculture. Agronomy for Sustainable Development, 31(1), 91–118. https://doi.org/10.1051/agro/2010029

Dhillon, R., & Moncur, Q. (2023). Small-Scale Farming: A review of challenges and potential opportunities offered by technological advancements. Sustainability, 15(21), 15478. https://doi.org/10.3390/su152115478

Egeland-Eriksen, T., Hajizadeh, A., & Sartori, S. (2021). Hydrogen-based systems for integration of renewable energy in power systems: Achievements and perspectives. International Journal of Hydrogen Energy, 46(63), 31963–31983. https://doi.org/10.1016/j.ijhydene.2021.06.218

Falcone, P. M. (2023). Sustainable Energy Policies in Developing Countries: A Review of Challenges and opportunities. Energies, 16(18), 6682. https://doi.org/10.3390/en16186682

Fornarelli, R., Shahnia, F., Anda, M., Bahri, P. A., & Ho, G. (2017). Selecting an economically suitable and sustainable solution for a renewable energy-powered water desalination system: A rural Australian case study. Desalination, 435, 128–139. https://doi.org/10.1016/j.desal.2017.11.008

Jawad, H., Nordin, R., Gharghan, S., Jawad, A., & Ismail, M. (2017). Energy-Efficient Wireless Sensor Networks for Precision Agriculture: A review. Sensors, 17(8), 1781. https://doi.org/10.3390/s17081781

Karim, M. Z., Hasan, R., Abdullah, M. S., & Tasnim, K. (2023). AIs Exceptional Potential to Significantly Improve the Profitability of Social Media Influencer Marketing. Business & Social Sciences, 1(1), 1-8.

Majeed, Y., Khan, M. U., Waseem, M., Zahid, U., Mahmood, F., Majeed, F., Sultan, M., & Raza, A. (2023b). Renewable energy as an alternative source for energy management in agriculture. Energy Reports, 10, 344–359. https://doi.org/10.1016/j.egyr.2023.06.032

Meng, J., Wu, B., & Zhang, M. (2013). Estimating Regional Winter Wheat Leaf N Concentration with MERIS by Integrating a Field Observation-Based Model and Histogram Matching. Transactions of the ASABE, 1589–1598. https://doi.org/10.13031/trans.56.9523

Murshed, M. (2020). An empirical analysis of the non-linear impacts of ICT-trade openness on renewable energy transition, energy efficiency, clean cooking fuel access and environmental sustainability in South Asia. Environmental Science and Pollution Research, 27(29), 36254–36281. https://doi.org/10.1007/s11356-020-09497-3

Muscettola, N., Nayak, P., Pell, B., & Williams, B. C. (1998). Remote Agent: to boldly go where no AI system has gone before. Artificial Intelligence, 103(1–2), 5–47. https://doi.org/10.1016/s0004-3702(98)00068-x

Nandi, R., & Nedumaran, S. (2021). Understanding the aspirations of farming communities in Developing Countries: A Systematic Review of the literature. European Journal of Development Research, 33(4), 809–832. https://doi.org/10.1057/s41287-021-00413-0

Pardo, M., & Navarro-González, F. (2023). Sizing and scheduling optimisation method for off-grid battery photovoltaic irrigation networks. Renewable Energy, 221, 119822. https://doi.org/10.1016/j.renene.2023.119822

Rahman, M. M., Khan, I., Field, D. L., Techato, K., & Alameh, K. (2022). Powering agriculture: Present status, future potential, and challenges of renewable energy applications. Renewable Energy, 188, 731–749. https://doi.org/10.1016/j.renene.2022.02.065

Rutibabara, J. B. (2018, September 1). Environmental and Economic Cost Analysis of a Solar PV, Diesel and  hybrid PV-Diesel water Pumping Systems for Agricultural Irrigation in  Rwanda: Case study of Bugesera district. https://repository.pauwes-cop.net/handle/1/241

Shaheb, M. R., Sarker, A., & Shearer, S. A. (2022). Precision Agriculture for sustainable soil and crop management. In IntechOpen eBooks. https://doi.org/10.5772/intechopen.101759

Shannon, M. (2013). Can velocity management be introduced to the repair chain of a utilities monopoly? https://mro.massey.ac.nz/handle/10179/5112

Shirkhani, M., Tavoosi, J., Danyali, S., Sarvenoee, A. K., Abdali, A., Mohammadzadeh, A., & Zhang, C. (2023). A review on microgrid decentralized energy/voltage control structures and methods. Energy Reports, 10, 368–380. https://doi.org/10.1016/j.egyr.2023.06.022

Stavi, I., & Lal, R. (2012). Agriculture and greenhouse gases, a common tragedy. A review. Agronomy for Sustainable Development, 33(2), 275–289. https://doi.org/10.1007/s13593-012-0110-0

Tang, S., Shelden, D. R., Eastman, C. M., Pishdad-Bozorgi, P., & Gao, X. (2019). A review of building information modeling (BIM) and the internet of things (IoT) devices integration: Present status and future trends. Automation in Construction, 101, 127–139. https://doi.org/10.1016/j.autcon.2019.01.020

Wijerathna-Yapa, A., & Pathirana, R. (2022). Sustainable Agro-Food systems for addressing climate change and food security. Agriculture, 12(10), 1554. https://doi.org/10.3390/agriculture12101554

Yoshida, T., Tsuruoka, N., Haga, Y., Kinoshita, H., Lee, S., & Matsunaga, T. (2023). Automatic irrigation system with a fiber-optic pressure sensor regulating intrapelvic pressure for flexible ureteroscopy. Scientific Reports, 13(1). https://doi.org/10.1038/s41598-023-47373-5

Yost, M. A., Kitchen, N. R., Sudduth, K. A., Sadler, E. J., Drummond, S. T., & Volkmann, M. R. (2016). Long-term impact of a precision agriculture system on grain crop production. Precision Agriculture, 18(5), 823–842. https://doi.org/10.1007/s11119-016-9490-5

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