Optimizing biogas production through the co-digestion of tannery fleshing, cowdung, and sewage water using response surface methodology

IF 3.9
Shilpy Rani Basak, Ahmad Hasan Nury, Srijon Das Swarup, Md. Jahir Bin Alam, Md. Imran Kabir
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引用次数: 0

Abstract

Tannery waste management presents a significant environmental challenge, as improper disposal practices lead to the contamination of land and water bodies. Anaerobic co-digestion has the potential to convert protein-rich tannery fleshing into renewable energy. However, the selection of substrates and its dosing as well as physicochemical properties remain the prime factors for energy production and optimization. Therefore, this study aims to optimize biogas production through the anaerobic co-digestion of tannery fleshing, cowdung, and sewage water using Central Composite Design, inclusive Response Surface Methodology. The impact of temperature (35–45°C), volatile solid (VS) concentration (3500–7000 mg/L), and substrate-to-inoculum ratio (S/I; 1–1.5) in biogas production have been investigated and analyzed using 19 batch experiments. The optimal temperature of 45°C, VS of 6800 mg/L, and S/I of 1.33 have been evaluated producing nearly 6700 mL of biogas (71 % of CH4) after 35 days. The response surface model shows R2 > 99 % with no significant lack-of-fit in predicting the biogas production. These findings may lead to implementing circular bio-economy practices, promoting environmental sustainability, and producing efficient energy.
利用响应面法通过制革厂肉、牛粪和污水的共消化优化沼气生产
制革厂废物管理提出了一个重大的环境挑战,因为不当的处理做法导致土地和水体污染。厌氧共消化有潜力将富含蛋白质的制革肉转化为可再生能源。然而,底物的选择及其剂量以及物理化学性质仍然是能源生产和优化的主要因素。因此,本研究旨在利用中心复合设计,包括响应面法,通过厌氧共消化制革肉、牛粪和污水来优化沼气生产。温度(35 ~ 45℃)、挥发性固体(VS)浓度(3500 ~ 7000 mg/L)、底物与接种物比(S/I;通过19个批量试验,对1-1.5)在沼气生产中的应用进行了研究和分析。经评价,最佳温度为45°C, VS为6800 mg/L, S/I为1.33,35天后产生沼气近6700 mL (CH4的71 %)。响应面模型显示R2 >; 99 %,预测沼气产量无明显失拟。这些发现可能有助于实施循环生物经济实践,促进环境可持续性和生产高效能源。
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CiteScore
2.60
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0.00%
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