Analisa Konsentrasi Reaktan Terhadap Produk Gas Hidrogen Pada Reaksi Hidrolisis Kompor Berbahan Bakar Limbah Kaleng Bekas

Authors

  • Sukadi Politeknik Jambi
  • Novarini Politeknik Jambi

DOI:

https://doi.org/10.37338/inovator.v4i2.141

Keywords:

Hidrolisis , Aluminium , NaOH

Abstract

Inorganic waste is rubbish that cannot be broken down by nature such as metals, plastics and glass. Garbage for the city of Jambi is a problem that has not been resolved to date. One example of the type of metal waste that can be managed is Aluminum such as used beverage cans. One way that technology can be developed to treat aluminum waste packaging for used beverage cans (soft drinks) is by way of recycling. The method that can be used is the hydrolysis process to produce hydrogen gas as stove fuel. The hydrolysis process is carried out by mixing Sodium Hydroxide, Aluminum, and Water. An analysis of the composition of Aluminum, Water and Sodium Hydroxide (NaOH) is carried out to produce maximum hydrogen gas with a fixed reactor volume. the results of research conducted obtained the volume of H volume gas formed, the highest pressure and temperature (130 l, 200 psi and 100 ° C) with the use of maximum reactants, namely aluminum from 400 g canned waste and 4N NaOH. NaOH acts as a catalyst in the aluminum reaction and water forms NaAl (OH) ₄ which releases hydrogen gas in the exothermic reaction..

References

Nurlailis, “1,” Tribun Jambi, Jambi, 04-Nov-2017.

H. Wang, Z. Wang, Z. Shi, X. Gong, J. Cao, and M. Wang, “Facile hydrogen production from Al-water reaction promoted by choline hydroxide,” Energy, vol. 131, pp. 98–105, 2017.

F. Suleman, I. Dincer, and M. Agelin-Chaab, “Environmental impact assessment and comparison of some hydrogen production options,” Int. J. Hydrogen Energy, vol. 40, no. 21, pp. 6976–6987, 2015.

B. Coskuner Filiz and A. Kanturk Figen, “Insight into the role of solvents in enhancing hydrogen production: Ru-Co nanoparticles catalyzed sodium borohydride dehydrogenation,” Int. J. Hydrogen Energy, no. xxxx, pp. 1–12, 2019.

N. Onishi, G. Laurenczy, M. Beller, and Y. Himeda, “Recent progress for reversible homogeneous catalytic hydrogen storage in formic acid and in methanol,” Coord. Chem. Rev., vol. 373, pp. 317–332, 2018.

Y. Siregar and D. Inayati, “Produksi Gas Hidrogen Dari Limbah Alumunium,” Valensi, vol. 2, no. 1, pp. 362–367, 2010.

S. Wahyuni, L. Hakim, and F. Hasfita, “Pemanfaatan Limbah Kaleng Minuman Aluminium Seabagai Penghasil Gas Hidrogen Menggunakan Katalis Natrium Hidroksida (NaOH),” Teknol. Unimal, vol. 5, no. 1, pp. 92–104, 2016.

G. Voitic et al., “Hydrogen Production,” in Comprehensive Energy Systems, vol. 3–5, Elsevier Inc., 2018, pp. 1–40.

Y. Wulandari and Syamsuri, “Studi Performansi Dari Kompor Gas Berbahan Bakar Air dengan Reaksi Dari Aluminium dan Sodium Hidroksida,” in Seminar Nasional Sains dan Teknologi Terapan II 2014, 2014.

J. Lianda, E. Cahyo, P. Hakiki, and Rodiah, “Desain Elektrolisa Air Sebagai Bahan Bakar Kompor Gas,” no. November, pp. 323–327, 2015.

J. Andersson and S. Gronkvist, “Large-scale storage of hydrogen,” Int. J. Hydrogen Energy, no. xxxx, 2019

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Published

2021-11-30

How to Cite

Analisa Konsentrasi Reaktan Terhadap Produk Gas Hidrogen Pada Reaksi Hidrolisis Kompor Berbahan Bakar Limbah Kaleng Bekas. (2021). Jurnal INOVATOR, 4(2), 40-43. https://doi.org/10.37338/inovator.v4i2.141