温度和二氧化碳浓度对利用微藻类 Chlorella prototheocoides 从三级城市污水中去除生物营养物的影响。

S.A. Razzak
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引用次数: 0

摘要

本研究探讨了光养微藻,特别是原coides小球藻在污水生物处理中的潜力,重点研究了气温和CO2浓度对三级城市污水中营养物去除的影响。利用Monod和Arrhenius动力学模型,研究了温度和养分有效性如何影响微藻生长和养分去除。该研究发现,最佳生物量生产力发生在25°C,在更高温度(30°C、40°C和45°C)下生长放缓。Monod和Arrhenius模型与实验数据一致,表明温度对生长动力学有显著影响,Arrhenius模型准确地预测了较低温度下的生长速率。生长活化能和细胞死亡活化能分别为5.4 kJ mol - 1和88.4 kJ mol - 1。研究还表明,在25°C-30°C的条件下,氮和磷的去除率最高,在30°C条件下,总氮(TN)去除率达到100%,总磷(TP)去除率达到85%。此外,CO2浓度影响生物量生产力,在CO2浓度为6%时,生物量生产力和营养物去除达到峰值,这突出了CO2水平在优化生长和营养物消除方面的重要性。这些发现为优化微藻废水处理条件,特别是季节性培养策略提供了有价值的见解,并有助于提高生物柴油的产量和营养物去除效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of temperature and CO2 concentration on biological nutrient removal from tertiary municipal wastewater using microalgae Chlorella prototheocoides
This study investigates the potential of phototrophic microalgae, specifically Chlorella protothecoides, for biological wastewater treatment, with a focus on the effects of air temperature and CO2 concentration on nutrient removal from tertiary municipal wastewater. Utilizing both the Monod and Arrhenius kinetic models, the research examines how temperature and nutrient availability influence microalgal growth and nutrient removal. The study finds that optimal biomass productivity occurs at 25 °C, with growth slowing at higher temperatures (30 °C, 40 °C, and 45 °C). The Monod and Arrhenius models, which showed strong agreement with experimental data, revealed that temperature significantly impacted growth kinetics, with the Arrhenius model accurately predicting growth rates at lower temperatures. Activation energies for growth and cell death were determined as 5.4 kJ mol⁻1 and 88.4 kJ mol⁻1, respectively. The study also demonstrated that optimal nitrogen and phosphorus removal occurred at 25°C-30 °C, with 100 % total nitrogen (TN) removal and 85 % total phosphorus (TP) removal achieved at 30 °C. Additionally, CO2 concentration influenced biomass productivity, with peak productivity and nutrient removal at 6 % CO2, highlighting the importance of CO2 levels in optimizing growth and nutrient elimination. These findings provide valuable insights into optimizing conditions for microalgae-based wastewater treatment, particularly in seasonal cultivation strategies, and contribute to improving biodiesel production and nutrient removal efficiency.
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