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Thermochemical Conversion of Rubber Wood Pellets via Downdraft Gasification: Syngas Composition, Heating Value Trends, and By-Product Characterization Wana Putri Anastasya Hutasoit; Bugae Park; Bainah Sari Dewi; Wahyu Hidayat
Forest and Nature Vol. 1 No. 4 (2025): October
Publisher : Green Insight Solutions

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.63357/fornature.v1i4.30

Abstract

The increasing global energy demand, coupled with declining fossil fuel reserves, is driving the development of biomass-based renewable energy. Rubber wood (Hevea brasiliensis) is a potential biomass source due to its abundant availability from the rejuvenation of community gardens. This study aims to analyze the energy characteristics of rubber wood pellets as biomass fuel, analyze the composition of synthesis gas (syngas) and lower heating value (LHV), and the characteristics of ash (residue from the gasification process) using a downdraft gasifier. The study was conducted at the Forest Products Technology Laboratory, Faculty of Agriculture, University of Lampung, using 20 kg of rubber wood pellets as the raw material. The gasification procedure progresses through four fundamental stages, including drying, pyrolysis, combustion, and reduction, which are conducted within a downdraft gasifier system. Syngas analysis was performed using a portable infrared syngas analyzer (Gasboard G3100-P) to determine the concentrations of CO, CO2, CH4, H2, and O2. The results showed that the average composition of the syngas produced was 17.98% CO, 8.58% CO2, 1.57% CH4, 10.04% H2, and 1.78% O2. The average calorific value (LHV) was 725.81 kcal/m3 with a range of 690–775 kcal/m3. The proximate analysis results showed a moisture content of 10.93%, volatile matter 74.37%, ash content 8.60%, and fixed carbon of 6.20% in the pellet biomass, while the ash (by-product) had a moisture content of 9.58%, volatile matter 14.42%, ash content 71.61%, and fixed carbon 4.37%. The composition of the syngas produced was within the ideal range for a downdraft, indicating that rubber wood pellets have high potential as a biomass-based renewable energy fuel.
Syngas Characteristics and Energy Performance of Betung Bamboo (Dendrocalamus asper) Pellets in a Downdraft Gasifier Chrisyan Fito Simamora; Bugae Park; Bainah Sari Dewi; Wahyu Hidayat
Forest and Nature Vol. 2 No. 3 (2026): July
Publisher : Green Insight Solutions

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.63357/fornature.v2i3.47

Abstract

Indonesia currently faces a significant energy challenge, with 85% of national needs met by declining fossil fuel reserves. While biomass is a sustainable alternative, empirical data on the performance of betung bamboo (Dendrocalamus asper) pellets in downdraft gasifiers remains limited. This study aims to analyze the evolution of syngas composition, determine the lower heating value (LHV), and characterize the proximate properties of both the feedstock and the resulting residue. The research utilized a sample size of 20 kg of betung bamboo pellets in a 15-kWh downdraft gasifier operated for 60 minutes. Syngas components were monitored in real time using a portable infrared syngas analyzer, while proximate analysis determined moisture content (MC), volatile matter (VM), ash content (AC), and fixed carbon (FC). The results revealed an average syngas composition of 13.62% carbon monoxide (CO), 8.65% hydrogen (H₂), 2.55% methane (CH₄), 13.28% carbon dioxide (CO₂), and 1.64% oxygen (O₂), yielding a total combustible gas fraction of 24.82%. The average LHV was 887.57 kcal/m³, with a peak value of 981.45 kcal/m³ recorded as the reactor reached steady-state conditions. Proximate analysis indicated effective thermochemical conversion, as VM decreased from 74.11% in the pellets to 17.61% in the ash by-product, while AC increased from 12.02% to 73.09%. Furthermore, FC declined from 6.76% in the pellets to 4.63% in the residue. This study concludes that betung bamboo pellets are a highly suitable and promising renewable energy feedstock for small-scale applications in Indonesia, offering a scientific basis for decentralized biomass energy systems.