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Algae biorefinery: A promising approach to promote microalgae industry and waste utilization.藻生物炼制厂:促进微藻产业和废物利用的有前途的方法。
J Biotechnol. 2022 Feb 10;345:1-16. doi: 10.1016/j.jbiotec.2021.12.008. Epub 2021 Dec 24.
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Bioresour Technol. 2021 Dec;342:125966. doi: 10.1016/j.biortech.2021.125966. Epub 2021 Sep 20.
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Marine microalgae for outdoor biomass production-A laboratory study simulating seasonal light and temperature for the west coast of Sweden.海洋微藻的室外生物量生产——以瑞典西海岸为例的季节性光照和温度的实验室模拟研究。
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A close-loop integrated approach for microalgae cultivation and efficient utilization of agar-free seaweed residues for enhanced biofuel recovery.一种闭环集成方法,用于微藻培养和高效利用无琼脂海藻残渣,以提高生物燃料的回收效率。
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通过闭环路线充分利用海洋微藻水热液化液体产物:实现生物油产量提高和零废物方法。

Full utilization of marine microalgal hydrothermal liquefaction liquid products through a closed-loop route: towards enhanced bio-oil production and zero-waste approach.

作者信息

Almutairi Adel W

机构信息

Biological Sciences Department, Faculty of Science and Arts, King Abdulaziz University, Rabigh, Saudi Arabia.

出版信息

3 Biotech. 2022 Sep;12(9):209. doi: 10.1007/s13205-022-03262-8. Epub 2022 Aug 5.

DOI:10.1007/s13205-022-03262-8
PMID:35935543
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9352824/
Abstract

The present study aimed to evaluate the potential of aqueous phase after hydrothermal liquefaction of microalgae (Aq-P), enriched with seawater, as a growth medium coupled with crude bio-oil production by the halophyte . Results showed that Aq-P showed higher content of total organic carbon (TOC) and total nitrogen (10.24, and 5.11 g L, respectively), while seawater showed higher anions and cations content. At the 12th day of microalgae incubation, the Aq-P growth medium showed 15.9% higher dry weight than the control (f/2 medium), with enhanced lipid content by 21.2% over the control, and 5.7% significant reduction in carbohydrates. The bio-oil yields of microalgal biomass cultivated in f/2 and Aq-P were 28.74% and 29.54%, respectively. Using Aq-P enhanced the fatty acids/esters and hydrocarbons in the crude bio-oil by 12.6% and 1.7 times, respectively, comparing to f/2-derived bio-oil. However, nitrogen-containing compounds in the Aq-P-derived bio-oil reduced by 60.7% comparing to f/2 medium. Interestingly, diesel carbon-range represented the majority of the products in both f/2- and Aq-P-derived bio-oil (69.1% and 78.3%, respectively). The findings of the present study provide a new approach for development of sustainable microalgal cultivation system for crude bio-oil production through a closed-loop route using Aq-P and seawater.

摘要

本研究旨在评估富含海水的微藻水热液化后水相(Aq-P)作为生长培养基的潜力,并结合盐生植物生产粗生物油。结果表明,Aq-P的总有机碳(TOC)和总氮含量较高(分别为10.24和5.11 g/L),而海水的阴离子和阳离子含量较高。在微藻培养的第12天,Aq-P生长培养基的干重比对照(f/2培养基)高15.9%,脂质含量比对照提高21.2%,碳水化合物含量显著降低5.7%。在f/2和Aq-P中培养的微藻生物质的生物油产率分别为28.74%和29.54%。与f/2衍生的生物油相比,使用Aq-P可使粗生物油中的脂肪酸/酯和烃分别提高12.6%和1.7倍。然而,与f/2培养基相比,Aq-P衍生生物油中的含氮化合物减少了60.7%。有趣的是,柴油碳范围在f/2和Aq-P衍生的生物油中均占大多数产品(分别为69.1%和78.3%)。本研究结果为通过使用Aq-P和海水的闭环路线开发用于生产粗生物油的可持续微藻培养系统提供了一种新方法。