An Analysis of Coal Fly Ashes from Different Combustion Processes for The Agricultural Utilization

##plugins.themes.academic_pro.article.main##

Farrah Fadhillah Hanum
Yudhi Pramudya
Firda Mahira Alfiata Chusna
Erda Rahmilaila Desfitri
Iqbal Hapsauqi
Nafira Alfi Zaini Amrillah

Abstract

The residue of thermal power plants is known as coal fly ash and has been considered solid waste pollution worldwide. The characteristic of coal fly ashes showed that it contains several components that could be utilized in several fields. One of the potential utilization is in the agricultural application. This study analyzed the characteristic of two different types of coal fly ashes and their effect on the soil. The x-ray fluorescence (XRF) analysis resulted that SiO2, Al2O3, Fe2O3, CaO dan MgO are the five major components in the soil, and both coal fly ash, CFA A and CFA B. This XRF analysis result concluded that coal fly ashes have great potential to be a substitute for silica fertilizer. Then, the effect of the coal fly ash addition also was studied by the moisture content and nutrient (N, P, and K) content characteristics in the soil and the soil-ash mixture. The findings indicated that the addition of 125 grams of coal fly ash A had a greater impact on the soil compared to fly ash B when 250 grams of soil was used.

##plugins.themes.academic_pro.article.details##

Author Biographies

Farrah Fadhillah Hanum, Universitas Ahmad Dahlan

Faculty of Industrial Engineering

Yudhi Pramudya, Polytechnic of Plantation Education Institute

Department of Plantation Management

Firda Mahira Alfiata Chusna, Universitas Ahmad Dahlan

Faculty of Industrial Engineering

Erda Rahmilaila Desfitri, Bung Hatta University

Faculty of Engineering

Iqbal Hapsauqi, Universitas Ahmad Dahlan

Faculty of Industrial Engineering

Nafira Alfi Zaini Amrillah, Universitas Ahmad Dahlan

Faculty of Industrial Engineering

How to Cite
Hanum, F. F., Pramudya, Y., Chusna, F. M. A. ., Desfitri, E. R., Hapsauqi, I., & Amrillah, N. A. Z. (2023). An Analysis of Coal Fly Ashes from Different Combustion Processes for The Agricultural Utilization. Journal of Applied Agricultural Science and Technology, 7(2), 73-81. https://doi.org/10.55043/jaast.v7i2.79

References

  1. Ahmaruzzaman, M. (2010). A review on the utilization of fly ash. Progress in Energy and Combustion Science, 36(3), 327–363. https://doi.org/10.1016/j.pecs.2009.11.003
  2. Asof, M., Arita, S., Mukiat, Luthfia, Andalia, W., & Naswir, M. (2022). Analisis Karakteristik, Potensi dan Pemanfaatan Fly Ash dan Bottom Ash PLTU Industri Pupuk. Jurnal Teknik Kimia, 28(1), 2721–4885. http://ejournal.ft.unsri.ac.id/index.php/jtk
  3. Basu, M., Pande, M., Bhadoria, P. B. S., & Mahapatra, S. C. (2009). Potential fly-ash utilization in agriculture: A global review. Progress in Natural Science, 19(10), 1173–1186. https://doi.org/10.1016/j.pnsc.2008.12.006
  4. British Petroleum Company. (2018). 67 th edition Contents is one of the most widely respected. Statistical Review of World Energy, 1–56. https://www.bp.com/content/dam/bp/business-sites/en/global/corporate/pdfs/energy-economics/statistical-review/bp-stats-review-2018-full-report.pdf
  5. Dahiya, H. S., & Budania, Y. K. (2018). Prospects of Fly Ash Application in Agriculture: A Global Review. International Journal of Current Microbiology and Applied Sciences, 7(10), 397–409. https://doi.org/10.20546/ijcmas.2018.710.043
  6. Febriana, S., Priyadi, P., & Taisa, R. (2021). PENGARUH APLIKASI ABU TERBANG BATUBARA DAN PUPUK KANDANG SEBAGAI BAHAN AMELIORAN TERHADAP PERTUMBUHAN TANAMAN KANGKUNG (Ipomea reptans Poir.). Jurnal Agrotek Tropika, 9(1), 161. https://doi.org/10.23960/jat.v9i1.4478
  7. Fiore, V., Scalici, T., Nicoletti, F., Vitale, G., Prestipino, M., & Valenza, A. (2016). A new eco-friendly chemical treatment of natural fibres: Effect of sodium bicarbonate on properties of sisal fibre and its epoxy composites. Composites Part B: Engineering, 85, 150–160. https://doi.org/10.1016/j.compositesb.2015.09.028
  8. Gorai, S. (2018). Utilization of Fly ash for sustainable environment management. Journal of Materials and Environmental Sciences, 9(2), 385–393. https://doi.org/10.26872/jmes.2018.9.2.42
  9. Hanum, F. F. & Rahayu, A. (2022). Studi Pemanfaatan dan Metode Pemisahan Silika dari Coal Fly Ash A Study for Silika Utilization and Its Separation Method from. Open Science and Technology, 02(01), 26–32. https://doi.org/10.33292/ost.vol2no1.2022.44
  10. Hanum, F. F., Desfitri, E. R., Hayakawa, Y., & Kambara, S. (2019). The Role of Calcium Compound on Fluorine Leaching Concentration. IOP Conference Series: Materials Science and Engineering, 543(1). https://doi.org/10.1088/1757-899X/543/1/012091
  11. Haroun, A., Adam, M., Mohamed, I., Abdalla, F., Abdelkreim, M., & Ibrahim, A. (2015). Analysis Of Soil NPK Ph And Electrical Conductivity At Adham Area- Renk Upper Nile State. International Journal of Scientific & Technology Research, 4(8), 341–347. https://www.ijstr.org/final-print/dec2015/Analysis-Of-Soil-Npk-Ph-And-Electrical-Conductivity-At-Adham-Area-Renk-Upper-Nile-State.pdf
  12. Jamaludin, A., & Adiantoro, D. (2012). ANALISIS KERUSAKAN X-RAY FLUORESENCE (XRF) Agus Jamaludin, Darma Adiantoro. Pusat Teknologi Bahan Bakar Nuklir ± BATAN, 19–28. https://jurnal.batan.go.id/index.php/pin/article/view/1130/1082
  13. Kisku, G. C., Kumar, V., Sahu, P., Kumar, P., & Kumar, N. (2018). Characterization of coal fly ash and use of plants growing in ash pond for phytoremediation of metals from contaminated agricultural land. International Journal of Phytoremediation, 20(4), 330–337. https://doi.org/10.1080/15226514.2017.1381942
  14. Luo, Y., Wu, Y., Ma, S., Zheng, S., Zhang, Y., & Chu, P. K. (2021). Utilization of coal fly ash in China: a mini-review on challenges and future directions. Environmental Science and Pollution Research, 28(15), 18727–18740. https://doi.org/10.1007/s11356-020-08864-4
  15. Marsha, N. D., Aini, N., & Sumarni, T. (2014). Influence of frequency and volume of water supply on Crotalaria mucronata Desv. Growth. Jurnal Produksi Tanaman, 2(8), 673–678. https://doi.org/10.21176/protan.v2i8.159
  16. Prasetia, I., Ma’ruf, & Riswan. (2016). Potensi Pemanfaatan Limbah Abu Batubara Sebagai Bahan Konstruksi Di Daerah Rawa. Jurnal Teknologi Berkelanjutan (Sustainable Technology Journal), 5(2), 71–78. http://jtb.ulm.ac.id/index.php/JTB/article/view/72/60
  17. Putri, R. K., Sudarto, & Djajadi. (2018). Keterkaitan Status Hara N,P,K Tanah Dengan Produksidan Mutu Tembakau Varietas Kemloko di Kabupaten Temanggung, Jawa Tengah. Jurnal Tanah Dan Sumberdaya Lahan, 5(2), 921–931. https://jtsl.ub.ac.id/index.php/jtsl/article/view/217
  18. Hartuti, S., Kambara, S., Takeyama, A., & Hanum, F. F. (2017). Leaching Characteristic of Arsenic in Coal Fly Ash. Journal of Materials Science and Engineering B, 7(1), 19–26. https://doi.org/10.17265/2161-6221/2017.1-2.003
  19. Szponder, D. K., & Trybalski, K. (2011). Fly Ash in Agriculture - Modern Applications of Coal Combustion By-Products. 373–385.
  20. Triana, A., Hidayah, R. R., Ridlo, A., & Ambarsari, H. (2018). Pengaruh Kalsium terhadap pH Tanah dalam Proses Biosementasi. Prosiding Seminar Nasioonal Dan Konsultasi Teknologi Lingkungan, September, 189–193.
  21. Utami, S. W. (2018). Karakteristik Kimiawi Fly Ash Batu Bara Dan Potensi Pemanfaatannya Sebagai Bahan Pupuk Organik. Agrointek, 12(2), 108–112. https://doi.org/10.21107/agrointek.v12i2.4048
  22. Wardani, S. (2008). Pemanfaatan Limbah Batu Bara ( Fly Ash ) Untuk Stabilitas Tanah Maupun Keperluan Teknik Sipil Lainnya Dalam Manggurangi Pencemaran Lingkungan. Pengukuhan Guru Besar Fakultas Teknik Universitas Diponogoro, 1–71.
  23. Zainuri, M., Fisika, J., & Negeri, U. (2012). (BATUAN DAN PASIR) SEBAGAI SUMBER MATERIAL CERDAS (CaCO3 DAN SiO2). Jurnal Penelitian Fisika Dan Aplikasinya (JPFA) ISSN: 2087-9946, 2(1), 20–29. https://doi.org/10.26740/jpfa.v2n1.p20-29