首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Utilization of acetic acid-rich pyrolytic bio-oil by microalga Chlamydomonas reinhardtii: Reducing bio-oil toxicity and enhancing algal toxicity tolerance
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Utilization of acetic acid-rich pyrolytic bio-oil by microalga Chlamydomonas reinhardtii: Reducing bio-oil toxicity and enhancing algal toxicity tolerance

机译:微藻莱茵衣藻利用富含乙酸的热解生物油:降低生物油毒性并增强藻类毒性耐受性

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This work was to utilize acetic acid contained in bio-oil for growth and lipid production of the microalga Chlamydomonas reinhardtii. The acetic acid-rich bio-oil fraction derived from fast pyrolysis of softwood contained 26% (w/w) acetic acid, formic acid, methanol, furfural, acetol, and phenolics as identified compounds, and 13% (w/w) unidentified compounds. Among those identified compounds, phenolics were most inhibitory to algal growth, followed by furfural and acetol. To enhance the fermentability of the bio-oil fraction, activated carbon was used to reduce the toxicity of the bio-oil, while metabolic evolution was used to enhance the toxicity tolerance of the microalgae. Combining activated carbon treatment and using evolved algal strain resulted in significant algal growth improvement. The results collectively showed that fast pyrolysis-fermentation process was a viable approach for converting biomass into fuels and chemicals.
机译:这项工作是利用生物油中所含的乙酸来生长和繁殖微藻衣藻。来自软木快速热解的富含乙酸的生物油馏分,包含26%(w / w)的乙酸,甲酸,甲醇,糠醛,丙酮醇和酚类作为已鉴定化合物,而13%(w / w)尚未鉴定化合物。在这些鉴定出的化合物中,酚类化合物对藻类生长的抑制作用最大,其次是糠醛和丙酮醇。为了增强生物油馏分的可发酵性,活性炭用于降低生物油的毒性,而代谢过程则用于增强微藻的毒性耐受性。结合活性炭处理和使用进化的藻类菌株,可显着改善藻类的生长。结果共同表明,快速热解发酵过程是将生物质转化为燃料和化学品的可行方法。

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