Karbonisasi Limbah Biomassa Ampas Sagu Sebagai Bahan Baku Bioenergi
DOI:
https://doi.org/10.31849/81x7c184Keywords:
bio energy, hydrocarbon, sagu wasteAbstract
One source of biomass raw material is the sago plant (Metroroxylon sp). Sago (Metroroxylon sp) is vegetation that can produce starch to be used as a food source. Unt il now, sago tree processing waste, especially sago dregs, has not been utilized optimally and only a small portion is used as feed, especially for ruminants. Apart from that, sago dregs are dumped in shelters or along river flows at sago processing locations which results in environmental pollution. Because sago bark waste is biomass waste, it can potentially be used as raw material for bioenergy such as biopellets, biobriquettes, charcoal. The aim of the research is to look at the physical and chemical characteristics of raw materials. The method used refers to the Indonesian National Standard 01-6235 of 2000. The results obtained from this research are the physical properties, namely water content 11.3%, ash content 4.3%, volatile matter content 2.4% and calorific value 6,430 cal. /gram. Meanwhile, the chemical properties analyzed by GCMS contained 18.93% hydrocarbon compounds. Phenol compounds 57.4 %, Benzene compounds 11.41 %
References
Adeni, D.S.A., Aziz, S.A., Bujang, K., Hassan, M.A. 2010. Bioconversion of Sago Residue into Value Added Product. African journal of Biotechnology. 9 (14). 2016-2021
Awg-Adeni, D. S., Bujang, K. B., Hassan, M. A., & Abd-Aziz, S. (2013). Recovery of glucose from residual starch of sago hampas for bioethanol production. BioMed Research International, 2013, 935852.
Bintoro, H. M. H., Purwanto, H. M. Y. J., & Amarillis, S. (2010). Sagu di Lahan Gambut. Bogor: IPB Press.
Bintoro MH, Ahmad F, Nurulhaq MI, Fathnoer V, Alamoko RP, Mulyanto MR, Pratama AJ. 2016. Pengembangan sagu di indonesia. Bogor (ID): IPB Press. 59 hlm.
[BPS] Badan Pusat Statistik. 2022. Kabupaten Kepulauan Meranti Dalam Angka 2022. Selat Panjang (ID). Badan Pusat Statistik Kabupaten Kepulauan Meranti.
Carrier M, Loppinet-Serani A, Denux D, Lasnier JM, Ham-Pichavant F, Cansell F, Aymonier C. 2011. Thermogravimetric analysis as a new method to determine the lignocellulosic composition of biomass. Biomass Bioener 35 (1): 298-307. DOI: 10.1016/j.biombioe.2010.08.067.
Chiaramonti, D., Matteo, P., Buffi., Rizzo, M., & Maria, A. (2017). Review and experimental study on pyrolysis and hydrothermal liquefaction of microalgae for Biofuel Production. Applied En-ergy. 185: 963-972. Doi 10.1016/j.apenergy.2015.12.001.
Kiat LJ. 2006. Preparation and Characterization of Carboxymethyl Sago Waste and Hydrogel.[tesis]. Malaysia : Uni versiti Putra Malaysia
Konuma, H. (2018). Status and Outlook of Global Food Security and the Role of Underutilized Food Resources: Sago Palm. In H. Ehara, Y. Toyoda, & D. V.Johnson (Eds), Sago Palm: Multiple Contributions to Food Security andSustainable Livelihoods (pp. 3–16). Singapore: Springer Singapore.
Limbongan J, Hanafiah A, M Ngobe. 2005. Pengembangan Sagu Papua. Papua: Balai Pengkajian Teknologi Pertanian Papua.
Nascimento MS, Santana ALBD, Maranhão CA, Oliveira LS, Bieber L. 2013. Phenolic Extractives and Natural Resistance of Wood. In: Chamy R, Rosenkranz F (eds.). Biodegradation-Life of Science. IntechOpen, London. DOI: 10.5772/56358.
Pei-Lang, A. T., Mohamed, A. M. D., & Karim, A. A. (2006). Sago starch and composition of associated components in palms of different growth stages.Carbohydrate Polymers, 63, 283–286.
Park SY, Kim JC, Kim JH, Yang SY, Kwon O, Yeo H, Cho KC, Choi IG. 2017. Possibility of wood classification in Korean softwood species using near-infrared spectroscopy based on their chemical compositions. J Korean Wood Sci Technol. 45 (2): 202-212. DOI: 10.5658/WOOD.2017.45.2.202
Relta, K. B., & Anggraini, S. P. A. (2016). Making liqulid smokel from coconult shelll, corn cob, and bamboo ulsing slow pyrolysis procelss. Julrnal Relka Bulana, 1(1), 57– 64.
Sari K, Anisyah, Lumban P, Poruan, Arif A. 2024. Variasi Tempurung Kelapa, Sekam Padi, dan Ampas Tebu Sebagai Bahan Pembuat Briket. Jurnal ILMU DASAR, Vol. 25(1): 1-6.
[SNI] Standar Nasional Indonesia. 2021. SNI 1683-2021: Arang Aktif Teknis. Jakarta: Dewan Standardisasi Nasional
Sharma RK, Wooten JB, Vicki L, Baliga VL, Lin X, Chan WG, Hajaligol MR. 2004. Characterization of chars from pyrolysis of lignin. Fuel 83: 1469-1482. DOI: 10.1016/j.fuel.2003.11.015. Shmulsky R, Jones PD, Lilley K. 2011. Forest Products and Wood Science An Introduction Sixth Edition A John Wiley & Sons, Inc., Oxford, UK.
Singhal, R. S., Kennedy, J. F., Gopalakrishnan, S. M., Kaczmarek, A., Knill, C. J., & Akmar, P. F. (2008). Industrial production, processing, and utilization of sago palm-derived products. Carbohydrate Polymers, 72, 1–20.
Wibowo, S. (2012). Charactelristic of smokel liqulid from Nyamplulng shelll. Julrnal Pelnellitian Hasil Hultan, 30(3), 218–227.
Yanti, RN, Hambali E, Pari G, Suryani A. 2019. Konversi Limbah Padat Kelapa Sawit Menjadi Bio Oil Menggunakan Proses Hidrotermal Pirolisis Dan Catalytic Cracking Hydrodeoxygenation. Disertasi. IPB University.



