微藻生物脱碳:光生物反应器中CO2运输的综合分析

Peirong Li , Yun Huang , Ao Xia , Xianqing Zhu , Xun Zhu , Qiang Liao
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引用次数: 1

摘要

微藻生物膜是一种典型的多孔结构,其中CO2被微藻转化为有机物。因此,CO2在多孔生物膜中的传输及其分布对微藻脱碳及其能源利用至关重要。为了获得CO2传输及其生物转化的详细过程信息,建立了考虑微藻生长及其材料消耗的微藻生物膜反应器中物质流动和传输过程的数学模型。模拟结果表明,沿流动方向,生物膜表面的CO2浓度降低了约26.57%。入口CO2浓度增加(0.2–5.2​mM)显著促进了生物膜的平均比生长速率,在低流速下更显著,提高了约7.38倍。其根本原因是生物膜中CO2的总转移通量(通过ξ_CO2为8.25倍)和平均CO2消耗率(通过ACR_CO2为7.48倍)同步增加。然而,随着初始碳供应集中度的提高,这种促进作用逐渐减弱。增加培养基流速(1-6​mL​min−1)并不总是导致生物膜生长的同步改善。在充足的碳供应下,增加流速并不能进一步有效地改善生物膜的生长,但会大大降低CO2的去除率。无论是增加碳供应浓度还是流速,除非生物膜中的ξ_CO2和ACR_CO2增加几乎相同的水平,否则都不能显著促进生物膜的生长。这项工作从CO2在生物膜中的传输角度对生物膜的宏观生长特性提供了新的、更深入的机制见解,并为培养用于生物脱碳的浸没微藻生物膜提供了一些理论指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bio-decarbonization by microalgae: a comprehensive analysis of CO2 transport in photo-bioreactor

Bio-decarbonization by microalgae: a comprehensive analysis of CO2 transport in photo-bioreactor

Microalgae biofilm is a typical porous structure where CO2 is converted by microalgae into organic matter. Therefore, CO2 transport and its distribution in porous biofilm are crucial for microalgae decarbonization and its energy utilization. In order to get detailed process information of CO2 transport and its bioconversion, a mathematical model considering the microalgae growth and its material consumptions was established for substances' flow and transport processes in an immersed microalgae biofilm reactor. Modeling results showed that CO2 concentration on the surface of biofilm reduced about 26.57% along the flow direction. Increased inlet CO2 concentration (0.2–5.2 ​mM) significantly promoted the average specific growth rate of biofilm, which was more dramatical at a low flow rate with an enhancement about 7.38 times. Essential reason for it is a synchronous increase on total transfer flux of CO2 (8.25 times by ϕ_CO2) and average CO2 consumption rate (7.48 times by ACR_CO2) in biofilm. However, such promotion gradually waned with a growing initial carbon supply concentration. Enhanced CO2 transport in biofilm caused by increasing culture medium's flow rate (1–6 ​mL ​min−1) doesn't always result in synchronous improvements on biofilm growth. At sufficient carbon supply, increased flow rate doesn't further effectively improve biofilm growth but greatly reduced CO2 removal. Whether increasing carbon supply concentration or flow rate, biofilm growth can't be significantly promoted unless the ϕ_CO2 and ACR_CO2 in biofilm were increased by almost the same level. This work provides a new and deeper mechanistic insight into macroscopic growth characteristics of biofilms from the perspective of CO2 transport in it, as well as providing some theoretical guidance towards the cultivation of immersed microalgae biofilm for bio-decarbonization.

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