EMPOWERING AGRICULTURE: A GREEN REVOLUTION WITH INTERNET OF ENERGY-DRIVEN FARM ENERGY MANAGEMENT FOR SUSTAINABLE AND ECO-FRIENDLY PRACTICES

Main Article Content

Saif Ullah
Nadeem Iqbal
Ali Haider Khan
Muhammad Sajid
Zohaib Ahmad
Haroon Ahmad
Muzammil Hussain

Keywords

Internet of energy (IoE), Farm energy management system, nearly or net zero energy building

Abstract

This research provides an acute analysis of the possibilities of an IoE-based FEMS to improve the efficiency and efficacy of future Farms buildings’ energy use. According to the problematic evaluation, modern controllers combined with IoE-based tools for using renewable building energy for Farms are needed. The research emphasized information and sources could more work on creating future applications for FEMS. The primary objective of this research is to draw attention to a few problems and duties associated with traditional controllers and IoE applications for poultry Farms building energy management systems and almost net ZEB. Developing a poultry farm building management system requires a systematic approach to ensure its effectiveness and alignment with the Farm’s specific needs. Implementing IoE-based farm energy management systems can create a more sustainable and environmentally friendly poultry production industry. It combines the benefits of energy optimization, renewable energy integration, waste management, environmental monitoring, and data-driven decision-making, contributing to a greener and more efficient farming operation. Automated poultry farms can provide higher efficacy and efficiency due to the implementation of advanced technologies and systems. These include automated feeding, watering, environmental control, and monitoring systems. With proper implementation, efficacy can be significantly increased, reaching 90 per. As a result, investigating and creating an advanced optimized controller and IoE for future FEMS. Implementing a poultry farm building management system can yield beneficial results for the farm and its operations, like Enhanced Production Efficiency, Improved Animal Welfare, Enhanced Feeding Management Energy Efficiency, and Cost Savings.

Abstract 380 | pdf Downloads 155

References

1. Harkouss, F., Fardoun, F., Biwole, P.H.: Multi-objective optimization method- ology for net zero energy buildings. Journal of Building Engineering 16, 57–71 (2018)
2. Hayashi, M., Hughes, L.: The fukushima nuclear accident and its effect on global energy security. Energy policy 59, 102–111 (2013)
3. Fidrikova, A.S., Grishina, O.S., Marichev, A.P., Rakova, X.M.: Energy-efficient technologies in the construction of school in hot climates. Applied Mechanics and Materials 587, 287–293 (2014)
4. Gayevskaya, Z., Rakova, X.M.: Modern building materials and the concept of” sustainability project”. Advanced Materials Research 941, 825–830 (2014)
5. Bolshakov, N.S., Krivoy, S.A., Rakova, X.M.: The” comfort in all respects” princi- ple implementation by the example of an elementary school. Advanced Materials Research 941, 895–900 (2014)
6. Agyeman, E.A., Bilson, A.: Research focus and trends in nuclear science and technology in ghana: a bibliometric study based on the inis database. Library Philosophy and Practice, 0–1 (2015)
7. Crippa, M., Guizzardi, D., Muntean, M., Schaaf, E., Solazzo, E., Monforti- Ferrario, F., Olivier, J., Vignati, E.: Fossil co2 emissions of all world countries. Luxembourg: European Commission, 1–244 (2020)
8. Kafle, Y., Mahmud, K., Morsalin, S., Town, G.: Towards an internet of energy. In: 2016 IEEE International Conference on Power System Technology (POWER-CON), pp. 1–6 (2016). IEEE
9. Han, J., Solanki, S.K., Solanki, J.: Coordinated predictive control of a wind/bat- tery microgrid system. IEEE Journal of emerging and selected topics in power electronics 1(4), 296–305 (2013)
10. Tan, X., Li, Q., Wang, H.: Advances and trends of energy storage technology in microgrid. International Journal of Electrical Power & Energy Systems 44(1), 179–191 (2013)
11. Sezgin, S.: The third industrial revolution: How lateral power is transforming energy, the economy, and the world. Turkish Journal of Business Ethics (2018)
12. Ding, Z., Ota, K., Liu, Y., Zhang, N., Zhao, M., Song, H., Liu, A., Zhiping, C.: Orchestrating data as a services-based computing and communication model for information-centric internet of things. IEEE Access 6, 38900–38920 (2018).
13. Hannan, M.A., Faisal, M., Ker, P.J., Mun, L.H., Parvin, K., Mahlia, T.M.I., 24 Blaabjerg, F.: A review of internet of energy based building energy management systems: Issues and recommendations. Ieee Access 6, 38997–39014 (2018)
14. Loukaidou, K., Michopoulos, A., Zachariadis, T.: Nearly-zero energy buildings: Cost-optimal analysis of building envelope characteristics. Procedia Environmen- tal Sciences 38, 20–27 (2017)
15. Lizana, J., Chacartegui, R., Barrios-Padura, A., Valverde, J.M.: Advances in ther- mal energy storage materials and their applications towards zero energy buildings: A critical review. Applied Energy 203, 219–239 (2017)
16. Li, D.H., Yang, L., Lam, J.C.: Zero energy buildings and sustainable development implications–a review. Energy 54, 1–10 (2013)
17. Huang, Z., Lu, Y., Wei, M., Liu, J.: Performance analysis of optimal designed hybrid energy systems for grid-connected nearly/net zero energy buildings. Energy 141, 1795–1809 (2017)
18. Kolokotsa, D., Rovas, D., Kosmatopoulos, E., , Kalaitzakis, K.: A roadmap towards intelligent net zero-and positive-energy buildings. Solar energy 85(12), 3067–3084 (2011)
19. Robert, A., Kummert, M.: Designing net-zero energy buildings for the future climate, not for the past. Building and environment 55, 150–158 (2012)
20. Mytafides, C.K., Dimoudi, A., Zoras, S.: Transformation of a university building into a zero energy building in mediterranean climate. Energy and Buildings 155, 98–114 (2017)
21. Santamouris, M.: Innovating to zero the building sector in europe: Minimising the energy consumption, eradication of the energy poverty and mitigating the local climate change. Solar Energy 128, 61–94 (2016)
22. Sun, Y., Huang, G., Xu, X., Lai, A.C.-K.: Building-group-level performance eval- uations of net zero energy buildings with non-collaborative controls. Applied Energy 212, 565–576 (2018)
23. Cao, X., Dai, X., Liu, J.: Building energy-consumption status worldwide and the state-of-the-art technologies for zero-energy buildings during the past decade. Energy and buildings 128, 198–213 (2016)
24. O¨ zkan, H.A.: A new real time home power management system. Energy and Buildings 97, 56–64 (2015)
25. Astill, J., Dara, R.A., Fraser, E.D., Roberts, B., Sharif, S.: Smart poultry man- agement: Smart sensors, big data, and the internet of things. Computers and Electronics in Agriculture 170, 105291 (2020)
26. Deng, S., Wang, R., , Dai, Y.: How to evaluate performance of net zero energy building–a literature research. Energy 71, 1–16 (2014)
27. Sartori, I., Napolitano, A., Marszal, A.J., Pless, S., Torcellini, P., Voss, K.: Criteria for definition of net zero energy buildings. In: International Conference on Solar Heating, Cooling and Buildings (EuroSun 2010) (2010). EuroSun 2010
28. Kosai, S., Tan, C.: Quantitative analysis on a zero energy building performance from energy trilemma perspective. Sustainable cities and society 32, 130–141 (2017)
29. Mun˜oz, P., Morales, P., Letelier, V., Mun˜oz, L., Mora, D.: Implications of life cycle energy assessment of a new school building, regarding the nearly zero energy buildings targets in eu: A case of study. Sustainable Cities and Society 32, 142–152 (2017)
30. Kylili, A., Fokaides, P.A.: European smart cities: The role of zero energy buildings. Sustainable cities and society 15, 86–95 (2015)
31. Lou, S., Tsang, E.K., Li, D.H., Lee, E.W., Lam, J.C.: Towards zero energy school building designs in hong kong. Energy Procedia 105, 182–187 (2017)
32. Wu, W., Guo, J., Li, J., Hou, H., Meng, Q., Wang, W.: A multi-objective optimiza- tion design method in zero energy building study: A case study concerning small mass buildings in cold district of china. Energy and Buildings 158, 1613–1624 (2018)
33. Hakansson, A., H¨ojer, M., Howlett, R.J., Jain, L.C.: Sustainability in Energy and Buildings: Proceedings of the 4th International Conference in Sustainability in Energy and Buildings (SEB 12) vol. 22. Springer, ??? (2013)
34. Clarke, J., Cockroft, J., Conner, S., Hand, J., Kelly, N., Moore, R., O’brien, T., Strachan, P.: Simulation-assisted control in building energy management systems. Energy and buildings 34(9), 933–940 (2002)
35. Nunes, P., Lerer, M.M., Gra¸ca, G.C.: Energy certification of existing office build- ings: Analysis of two case studies and qualitative reflection. Sustainable Cities and Society 9, 81–95 (2013)
36. Ascione, F., Bianco, N., De Masi, R.F., Mauro, G.M., Vanoli, G.P.: Energy retrofit of educational buildings: Transient energy simulations, model calibration and multi-objective optimization towards nearly zero-energy performance. Energy and Buildings 144, 303–319 (2017)
37. Plourde, J.: Making the case for energy metering. ASHRAE Journal 53(4), 20 (2011)
38. Hui, M., Wong, M.: Benchmarking the energy performance of hotel buildings in hong kong. In: Liaoning Hong Kong Joint Symposium. Dalian, China, pp. 2–3 (2010)
39. Katipamula, S., Brambley, M.R.: Methods for fault detection, diagnostics, and prognostics for building systems—a review, part i. Hvac&R Research 11(1), 3–25 (2005)
40. Norford, L.K., Wright, J.A., Buswell, R.A., Luo, D., Klaassen, C.J., Suby, A.: Demonstration of fault detection and diagnosis methods for air-handling units. HVAC&R Research 8(1), 41–71 (2002)
41. Agdas, D., Srinivasan, R.S., Frost, K., Masters, F.J.: Energy use assessment of educational buildings: Toward a campus-wide sustainable energy policy. Sustainable Cities and Society 17, 15–21 (2015)
42. Burman, E., Mumovic, D., Kimpian, J.: Towards measurement and verification of energy performance under the framework of the european directive for energy performance of buildings. Energy 77, 153–163 (2014)
43. Rubinstein, F., Jennings, J., Avery, D., Blanc, S.: Preliminary results from an advanced lighting controls testbed. Journal of the Illuminating Engineering Society 28(1), 130–141 (1999)
44. Moshinsky, M.: Transformation brackets for harmonic oscillator functions. Nuclear Physics 13(1), 104–116 (1959)
45. Wolfert, S., Ge, L., Verdouw, C., Bogaardt, M.-J.: Big data in smart farming–a review. Agricultural systems 153, 69–80 (2017)
46. Smith, D., Lyle, S., Berry, A., Manning, N., Zaki, M., Neely, A.: Internet of ani- mal health things (ioaht) opportunities and challenges. University of Cambridge: Cambridge, UK (2015)
47. Colles, F.M., Cain, R.J., Nickson, T., Smith, A.L., Roberts, S.J., Maiden, M.C., Lunn, D., Dawkins, M.S.: Monitoring chicken flock behaviour provides early warn- ing of infection by human pathogen campylobacter. Proceedings of the Royal Society B: Biological Sciences 283(1822), 20152323 (2016)
48. Keshav, S., Rosenberg, C.: How internet concepts and technologies can help green and smarten the electrical grid. In: Proceedings of the First ACM SIGCOMM Workshop on Green Networking, pp. 35–40 (2010)

Most read articles by the same author(s)