利用计算化学、机器学习和政策见解优化利用废物生产生物柴油:综述

IF 15 2区 环境科学与生态学 Q1 CHEMISTRY, MULTIDISCIPLINARY Environmental Chemistry Letters Pub Date : 2024-02-13 DOI:10.1007/s10311-024-01700-y
Ahmed I. Osman, Mahmoud Nasr, Mohamed Farghali, Ahmed K. Rashwan, Adel Abdelkader, Ala’a H. Al-Muhtaseb, Ikko Ihara, David W. Rooney
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引用次数: 0

摘要

对化石燃料的过度依赖导致了能源危机、环境污染和健康问题,因此需要生物柴油等替代燃料。在此,我们回顾了利用计算化学和机器学习优化废物生产生物柴油的过程。本文介绍了计算和机器学习技术、生物柴油特性、酯交换反应、废物材料以及鼓励利用废物生产生物柴油的政策。计算技术被应用于催化剂设计和失活、反应和反应器优化、稳定性评估、废物原料分析、工艺放大、反应机制和分子动力学模拟。废弃原料包括食用油、动物脂肪、植物油、藻类、鱼类废弃物、城市固体废弃物和污水污泥。废弃食用油约占全球生物柴油产量的 10%,仅餐馆每年就会产生超过 1,000,000 立方米的废弃植物油。微藻每英亩产油量是大豆的 250 倍,是棕榈油的 7-31 倍。食物残渣脂类的酯交换反应可以生产生物柴油,产量高达 100%。污水污泥是一种重要的生物质废物,可促进可再生能源的生产。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Optimizing biodiesel production from waste with computational chemistry, machine learning and policy insights: a review

The excessive reliance on fossil fuels has resulted in an energy crisis, environmental pollution, and health problems, calling for alternative fuels such as biodiesel. Here, we review computational chemistry and machine learning for optimizing biodiesel production from waste. This article presents computational and machine learning techniques, biodiesel characteristics, transesterification, waste materials, and policies encouraging biodiesel production from waste. Computational techniques are applied to catalyst design and deactivation, reaction and reactor optimization, stability assessment, waste feedstock analysis, process scale-up, reaction mechanims, and molecular dynamics simulation. Waste feedstock comprise cooking oil, animal fat, vegetable oil, algae, fish waste, municipal solid waste and sewage sludge. Waste cooking oil represents about 10% of global biodiesel production, and restaurants alone produce over 1,000,000 m3 of waste vegetable oil annual. Microalgae produces 250 times more oil per acre than soybeans and 7–31 times more oil than palm oil. Transesterification of food waste lipids can produce biodiesel with a 100% yield. Sewage sludge represents a significant biomass waste that can contribute to renewable energy production.

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来源期刊
Environmental Chemistry Letters
Environmental Chemistry Letters 环境科学-工程:环境
CiteScore
32.00
自引率
7.00%
发文量
175
审稿时长
2 months
期刊介绍: Environmental Chemistry Letters explores the intersections of geology, chemistry, physics, and biology. Published articles are of paramount importance to the examination of both natural and engineered environments. The journal features original and review articles of exceptional significance, encompassing topics such as the characterization of natural and impacted environments, the behavior, prevention, treatment, and control of mineral, organic, and radioactive pollutants. It also delves into interfacial studies involving diverse media like soil, sediment, water, air, organisms, and food. Additionally, the journal covers green chemistry, environmentally friendly synthetic pathways, alternative fuels, ecotoxicology, risk assessment, environmental processes and modeling, environmental technologies, remediation and control, and environmental analytical chemistry using biomolecular tools and tracers.
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