Microalgae bio-reactive façade: System thermal–biological optimization

IF 9 1区 工程技术 Q1 ENERGY & FUELS
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Abstract

This article explores numerically the biotechnological performances of microalgae biofaçade. The model computes the system’s thermal behavior using a radiative-convective approach accounting for location on Earth and actual weather data. In a coupled manner, it simulates the microalgae culture behavior, i.e. light-driven growth and cell pigment content acclimation. In addition, it features refinement such as wavelength-dependent biomass optical properties and thermal-modulated biological rates. Thanks to this model, operation strategies and design possibilities were evaluated using actual weather data for a biofaçade module deployed in Marseille in 2023. Investigations revealed that a semi-batch mode of operation, while simplistic, is the most efficient way to operate a biofaçade if sole biological production is considered (about 18.0 ± 0.9 kg per year, 2.44 ± 0.12 g/L output concentration). However, if intended as an office glazing, turbidostat mode of operation should be preferred for aesthetic and visual comfort reasons (about 19.1 ± 1.1 kg per year, 0.64 ± 0.07 g/L output concentration). System optimization also confirmed the experimental observation that the system could be prone to overheating. Nevertheless, while overheating can be mitigated by increasing the reservoir thickness, this strategy is detrimental to the average output concentration. Finally, location-specific optimization revealed that a standard biofaçade module could be deployed over France, and system performances are derived for the whole country thanks to the weather forecast agency data.

Abstract Image

微藻生物反应幕墙:系统热能-生物优化
本文通过数值方法探讨了微藻生物幕墙的生物技术性能。该模型采用辐射对流方法计算系统的热行为,并考虑到地球上的位置和实际天气数据。该模型以耦合方式模拟微藻培养行为,即光驱动生长和细胞色素含量适应。此外,该模型还具有细化功能,例如随波长变化的生物量光学特性和热调节生物速率。借助该模型,我们利用实际气象数据对 2023 年部署在马赛的生物幕墙模块的运行策略和设计可能性进行了评估。调查显示,如果只考虑生物生产(每年约 18.0 ± 0.9 千克,输出浓度 2.44 ± 0.12 克/升),半批量运行模式虽然简单,却是生物幕墙最有效的运行方式。然而,如果用作办公玻璃,则出于美观和视觉舒适的考虑,应首选浊流恒温器运行模式(每年约 19.1 ± 1.1 千克,输出浓度 0.64 ± 0.07 克/升)。系统优化也证实了实验观察结果,即系统容易过热。不过,虽然可以通过增加储层厚度来缓解过热现象,但这一策略不利于平均输出浓度。最后,针对具体地点的优化显示,标准生物幕墙模块可在法国各地部署,并通过天气预报机构的数据得出了全国的系统性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Renewable Energy
Renewable Energy 工程技术-能源与燃料
CiteScore
18.40
自引率
9.20%
发文量
1955
审稿时长
6.6 months
期刊介绍: Renewable Energy journal is dedicated to advancing knowledge and disseminating insights on various topics and technologies within renewable energy systems and components. Our mission is to support researchers, engineers, economists, manufacturers, NGOs, associations, and societies in staying updated on new developments in their respective fields and applying alternative energy solutions to current practices. As an international, multidisciplinary journal in renewable energy engineering and research, we strive to be a premier peer-reviewed platform and a trusted source of original research and reviews in the field of renewable energy. Join us in our endeavor to drive innovation and progress in sustainable energy solutions.
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