食物垃圾水热液化生物原油的优化与表征

IF 5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL
Kshanaprava Dhalsamant and Ajay K. Dalai
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引用次数: 0

摘要

本研究探讨了利用水热液化(HTL)将餐馆产生的食物垃圾转化为生物原油。所选择的原料,包括胡萝卜、防风草和其他蔬菜,其物理化学性质进行了评估,显示出低灰分(9.1-22.0 wt%)和固定碳含量(5.3-18.4 wt%),高水分水平(79-95%湿基),适合HTL而无需额外干燥。胡萝卜因其高碳(44.9 wt%)、高氢(7.8 wt%)、高纤维素(15.3 wt%)和高半纤维素(4.1 wt%)含量而成为最佳原料。通过响应面法优化反应参数(280°C, 1500 psi, 42分钟),得到18.8% wt%的生物原油,碳回收率为55.9-72.8%。气相色谱-质谱和傅里叶变换红外光谱等质量分析强调了生物原油的复杂组成,包括酯类、碳氢化合物和含氧化合物,证实了生物燃料应用的潜力。溶剂优化实验表明,甲醇是最有效的,产率为19.6 wt%。此外,气相色谱-质谱分析表明,甲醇积极参与提取过程,促进酯化反应,生成甲酯。这些反应通过形成甲酯等生物活性化合物,提高生物油的稳定性和热值,从而提高产品的产量和质量。尽管含氧量很高(20.7 wt%),但生物原油的性能可以通过脱氧技术得到提升,为其作为可持续运输燃料铺平了道路。这项研究强调了水热液化作为一种有效的方法来管理食物浪费,同时通过可再生生物能源生产解决全球能源挑战。通过整合统计优化和综合表征,本研究有助于推进生物燃料技术和可持续能源解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Optimization and characterization of biocrude produced from hydrothermal liquefaction of food waste

Optimization and characterization of biocrude produced from hydrothermal liquefaction of food waste

This study investigates the valorization of restaurant-derived food waste into biocrude using hydrothermal liquefaction (HTL). The selected feedstocks, including carrot, parsnip, and other vegetables, were evaluated for their physicochemical properties, showing low ash (9.1–22.0 wt%) and fixed carbon content (5.3–18.4 wt%) with high moisture levels (79–95% wet basis), suitable for HTL without additional drying. Carrot emerged as the optimal feedstock due to its elevated carbon (44.9 wt%), hydrogen (7.8 wt%), cellulose (15.3 wt%), and hemicellulose (4.1 wt%) content. Reaction parameters optimized via response surface methodology (280 °C, 1500 psi, 42 minutes) yielded 18.8 wt% biocrude with a carbon recovery of 55.9–72.8%. Quality analyses such as gas chromatography-mass spectrometry and Fourier-transform infrared spectroscopy highlighted the complex composition of biocrude, including esters, hydrocarbons, and oxygenated compounds, confirming its potential for biofuel applications. Solvent optimization experiments demonstrated that methanol was the most effective, yielding 19.6 wt% biocrude. Additionally, methanol actively participated in the extraction process by promoting esterification, generating methyl esters, as evidenced in gas chromatography-mass spectrometry analysis. These reactions enhance product yield and quality by forming bioactive compounds like methyl esters, which improve the bio-oil stability and calorific value. Despite high oxygen content (20.7 wt%), the biocrude properties can be upgraded via deoxygenation techniques, paving the way for its use as a sustainable transportation fuel. This research underscores hydrothermal liquefaction as an effective approach to manage food waste while addressing global energy challenges through renewable bioenergy production. By integrating statistical optimization and comprehensive characterization, this study contributes to advancing biofuel technology and sustainable energy solutions.

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来源期刊
Sustainable Energy & Fuels
Sustainable Energy & Fuels Energy-Energy Engineering and Power Technology
CiteScore
10.00
自引率
3.60%
发文量
394
期刊介绍: Sustainable Energy & Fuels will publish research that contributes to the development of sustainable energy technologies with a particular emphasis on new and next-generation technologies.
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