利用未使用的低品位油生产生物柴油的经济和环境分析

IF 3.1 3区 工程技术 Q3 ENERGY & FUELS
Semie Kim, Pyeong-Gon Jung, Young-Il Lim, Youn Kim, Youngdo Yang, Sang Tae Park
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引用次数: 0

摘要

介绍了以300吨/天未使用的低品位油(LGO)和24.5%的游离脂肪酸(FFA)为原料生产生物柴油(BD)的两步酯交换工艺。酸催化(病例1)和酶催化(病例2)酯化反应用于FFA还原。LGO中的FFA通过h2so4催化酯化反应转化为脂肪酸甲酯(FAME)(案例1)或通过NaOH中和反应转化为钠盐(肥皂)(案例2)。案例2从肥皂中分离FFA,通过酶促酯化反应转化为单酯。两种脱酸工艺将LGO的FFA含量降低至0.5 wt%,通过随后的碱催化酯交换反应,使产量达到294 t-BD/d。案例2采用一种酶来降低H2SO4的浓度,从而减少对下游设备的腐蚀。案例2的总生产成本(6200万美元/年)比案例1(4700万美元/年)高32%,因为在FFA还原过程中CH3OH、H2SO4、NaOH和酶的消耗更多。个案2的总资本投资(4,100万元)超过个案1的总资本投资(3,100万元)。因此,情况2的最低燃料销售价格(0.58美元/公斤- bd)高于情况1的最低燃料销售价格(0.42美元/公斤- bd)。在情况1和情况2中,生产的BD的二氧化碳净减排量分别为2.47 kg-CO2/kg-BD和2.34 kg-CO2/kg-BD。鉴于原料的酸度和组成的可变性,未来的研究应包括各种原料的比较经济和环境分析。图形抽象
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Economic and Environmental Analyses of Biodiesel Production Processes From Unused Low-grade Oil

Economic and Environmental Analyses of Biodiesel Production Processes From Unused Low-grade Oil

Two two-step transesterification processes are presented for biodiesel (BD) production from 300 t/d unused low-grade oil (LGO) with 24.5 wt% of free fatty acid (FFA). Acid-catalyzed (case 1) and enzymatic (case 2) esterifications were used for FFA reduction. The FFA in LGO was converted into fatty acid methyl esters (FAME) by H2SO4-catalyzed esterification (case 1) or transformed into sodium salts (soap) via a neutralization reaction with NaOH (case 2). In case 2, FFA was separated from soap and transformed into monoesters via enzymatic esterification. The two de-acidification processes decreased the FFA content of LGO to 0.5 wt%, enabling the production of 294 t-BD/d through subsequent alkali-catalyzed transesterification. Case 2, using an enzyme, was proposed to reduce the concentration of H2SO4, resulting in less corrosion to downstream equipment. The total production cost of case 2 ($62 million/y) was 32% higher than that of case 1 ($47 million/y) because of the greater consumption of CH3OH, H2SO4, NaOH, and enzyme during FFA reduction. The total capital investment for case 2 ($41 million) exceeded that of case 1 ($31 million). Consequently, the minimum fuel selling price of case 2 (0.58 $/kg-BD) is higher than that of case 1 (0.42 $/kg-BD). The net CO2 emissions reduction of the produced BD is 2.47 kg-CO2/kg-BD for case 1 and 2.34 kg-CO2/kg-BD for case 2. Given the variability in the acidity and composition of the feedstocks, future studies should include comparative economic and environmental analyses of various raw materials.

Graphical Abstract

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来源期刊
BioEnergy Research
BioEnergy Research ENERGY & FUELS-ENVIRONMENTAL SCIENCES
CiteScore
6.70
自引率
8.30%
发文量
174
审稿时长
3 months
期刊介绍: BioEnergy Research fills a void in the rapidly growing area of feedstock biology research related to biomass, biofuels, and bioenergy. The journal publishes a wide range of articles, including peer-reviewed scientific research, reviews, perspectives and commentary, industry news, and government policy updates. Its coverage brings together a uniquely broad combination of disciplines with a common focus on feedstock biology and science, related to biomass, biofeedstock, and bioenergy production.
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