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一种通过使用导光板(LGP)和太阳能电池的PBR-LGP-PBR阵列(PLPA)混合系统,以具有成本效益的方式最大化雨生红球藻虾青素产量的策略。

A strategy to maximize astaxanthin production from Haematococcus pluvialis in a cost-effective process by utilizing a PBR-LGP-PBR array (PLPA) hybrid system using light guide panel (LGP) and solar cells.

作者信息

Lee Ju Yeon, Yu Byung Sun, Chang Won Seok, Sim Sang Jun

机构信息

Department of Chemical and Biological Engineering, Korea University, 145 Anam-ro, Seongbuk-gu, Seoul 02841, South Korea.

Research Institute, Korea District Heating Corp., 92, Gigok-ro, Giheung-gu, Yongin-si, Gyeonggi-do 17099, South Korea.

出版信息

Bioresour Technol. 2023 May;376:128902. doi: 10.1016/j.biortech.2023.128902. Epub 2023 Mar 16.

Abstract

This study evaluated economic feasibility through production efficiency, return on investment (ROI) and payout time of a hybrid system using a photobioreactor (PBR)-light guide panel (LGP)-PBR array (PLPA) and solar cells developed for astaxanthin and ω-3 FA simultaneous production of Haematococcus pluvialis. The economic feasibility of the PLPA hybrid system (8 PBRs) and the PBR-PBR-PBR array (PPPA) system (8 PBRs) was evaluated for producing high-value products while effectively reducing CO. Introducing a PLPA hybrid system has increased the amount of culture per area by 1.6 times. Also, the shading effect was effectively suppressed with an LGP placed between each PBR, increasing biomass and astaxanthin productivity by 3.39-fold and 4.79-fold, respectively compared to the untreated H. pluvialis cultures. In addition, ROI increased by 6.55 and 4.71 times, and the payout time was reduced by 1.34 and 1.37 times, respectively in 10 and 100-ton scale processes.

摘要

本研究通过生产效率、投资回报率(ROI)以及使用光生物反应器(PBR)-导光板(LGP)-PBR阵列(PLPA)的混合系统和为雨生红球藻同时生产虾青素和ω-3脂肪酸而开发的太阳能电池的投资回收期,评估了其经济可行性。评估了PLPA混合系统(8个PBR)和PBR-PBR-PBR阵列(PPPA)系统(8个PBR)在有效减少二氧化碳排放的同时生产高价值产品的经济可行性。引入PLPA混合系统使单位面积培养量增加了1.6倍。此外,通过在每个PBR之间放置LGP,有效地抑制了遮光效应,与未处理的雨生红球藻培养物相比,生物量和虾青素生产率分别提高了3.39倍和4.79倍。此外,在10吨和100吨规模的生产过程中,投资回报率分别提高了6.55倍和4.71倍,投资回收期分别缩短了1.34倍和1.37倍。

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