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利用预处理的高强新鲜干酪乳清废水从微藻生产生物燃料的新工艺的开发和成本效益分析。

Development and cost-benefit analysis of a novel process for biofuel production from microalgae using pre-treated high-strength fresh cheese whey wastewater.

机构信息

Department of Biotechnology, Motilal Nehru National Institute of Technology Allahabad, Prayagraj, Uttar Pradesh, 211004, India.

School of Biochemical Engineering, Indian Institute of Technology (BHU) Varanasi, Varanasi, Uttar Pradesh, 221005, India.

出版信息

Environ Sci Pollut Res Int. 2020 Jul;27(19):23963-23980. doi: 10.1007/s11356-020-08535-4. Epub 2020 Apr 17.

DOI:10.1007/s11356-020-08535-4
PMID:32304062
Abstract

In this study, a novel two-step integrated process is proposed to facilitate the microalgae biofuel production as well as fresh cheese whey wastewater (FCWW) treatment simultaneously. The pre- and post-treatment of high-strength FCWW were performed by means of coagulation and algal cultivation, respectively. The pre-treatment of FCWW for maximum removal of chemical oxygen demand (COD), turbidity (TUR) and total solids (TS) as responses was obtained by statistical optimization of coagulation parameters. The maximum removal of COD, TUR and TS at the optimum level of variables was obtained as 68.09%, 47.80% and 73.63%, respectively. The pre-treated FCWW was further treated by Chlorella pyrenoidosa and observed a significant reduction in the above-mentioned responses (87-94%). The maximum algal biomass yield and lipid productivity were observed as 2.44 g L and 77.41 mg L day, respectively. Based on promising results of FCWW treatment and its use as a third-generation biodiesel feedstock, a cost-benefit analysis of the developed process was assessed for microalgal oil production. The total profit earned by the integrated process model was $9.59 million year. Accordingly, the estimated production cost of algal oil (TAG) from the developed system was estimated to be $79.03 per barrel.

摘要

在本研究中,提出了一种新颖的两步集成工艺,以同时促进微藻生物燃料生产和新鲜奶酪乳清废水(FCWW)处理。采用混凝和藻类培养的方法分别对高浓度 FCWW 进行预处理和后处理。通过对混凝参数进行统计优化,获得了 FCWW 预处理的最佳条件,以实现最大去除化学需氧量(COD)、浊度(TUR)和总固体(TS)。在最佳变量水平下,COD、TUR 和 TS 的最大去除率分别达到 68.09%、47.80%和 73.63%。然后,将预处理后的 FCWW 用栅藻进一步处理,观察到上述响应值显著降低(87-94%)。最大的藻生物质产量和产油率分别为 2.44 g/L 和 77.41 mg/L·天。基于 FCWW 处理及其作为第三代生物柴油原料的有前景的结果,对开发工艺的微藻油生产进行了成本效益分析。集成工艺模型的总利润为 959 万美元/年。因此,从开发系统中估算出的藻油(TAG)的估计生产成本为 79.03 美元/桶。

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