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通过高效节能的表面活性剂诱导的微波预处理大型海藻石莼来生产生物氢气。

Biohydrogen production through energy efficient surfactant induced microwave pretreatment of macroalgae Ulva reticulata.

机构信息

Department of Marine Biology, Faculty of Marine Sciences, King Abdulaziz University, Jeddah, Saudi Arabia; Center of Excellence in Environmental Studies, King Abdulaziz University, Jeddah, 21589, Saudi Arabia.

Department of Marine Biology, Faculty of Marine Sciences, King Abdulaziz University, Jeddah, Saudi Arabia.

出版信息

Environ Res. 2023 Nov 1;236(Pt 1):116709. doi: 10.1016/j.envres.2023.116709. Epub 2023 Jul 20.

Abstract

Macroalgal biomass being rich in carbohydrates, proteins and lipids in their cell wall has been considered as the most efficient organic rich sources for biofuel (biohydrogen) production. In this study, Pluronic P-123-induced microwave pretreatment was applied to disintegrate the marine macroalgae biomass, Ulva reticulata. Microwave disintegration was done by varying the treatment time and microwave power from 0 to 40 min and 0.09 KW to 0.63 KW. A maximum chemical oxygen demand (COD) solubilization of 22.33% was achieved at a microwave power and time duration of 0.36 kW and 15 min. Chemical (Pluronic P-123, a mild surfactant) was combined with optimum microwave disintegration conditions to increase the solubilization efficiency and this combined pretreatment achieved a maximum COD solubilization of 31.02% at 10 min pretreatment time and 0.06 g per g TS of Pluronic P-123 dosage. The present study indicated that combination of surfactant with microwave pretreatment substantially improves the COD solubilization with reduced pretreatment -time than mono microwave pretreatment. An optimal hydrogen yield of 98.37 mL was achieved through this combined pretreatment. The biohydrogen data was modelled with Gompertz model and the kinetic parameters derived through this model implies that the calculated adjusted R squared values for all the samples lies between 0.95 and 0.99. This shows that the model fitted biohydrogen experimental values accurately. In addition, Pluronic P-123-induced microwave pretreatment was regarded as energy efficient and cost effective than microwave pretreatment alone with net energy production and a greater energy ratio of 504.38 kWh/Ton macroalgae and 1.2 when compared to microwave pretreatment alone (-2975.6 kWh/Ton macroalgae and 0.5).

摘要

海藻生物质的细胞壁富含碳水化合物、蛋白质和脂质,被认为是生产生物燃料(生物氢)最有效的富有机物质源。在这项研究中,应用了 Pluronic P-123 诱导的微波预处理来分解海洋大型藻类生物质,Ulvaplatensis。通过改变处理时间和微波功率从 0 到 40 分钟和 0.09 千瓦到 0.63 千瓦来进行微波分解。在微波功率和时间为 0.36 千瓦和 15 分钟的条件下,实现了最大化学需氧量(COD)溶解率为 22.33%。将化学物质(温和的表面活性剂 Pluronic P-123)与最佳微波分解条件相结合,以提高溶解效率,这种联合预处理在预处理时间为 10 分钟和 Pluronic P-123 用量为每克 TS0.06 克的条件下,实现了最大 COD 溶解率 31.02%。本研究表明,与单独使用微波预处理相比,表面活性剂与微波预处理的结合可以大大提高 COD 溶解率,并缩短预处理时间。通过这种联合预处理,获得了最佳的氢气产率为 98.37ml。通过 Gompertz 模型对生物氢数据进行建模,通过该模型得出的动力学参数表明,所有样品的计算调整后的 R 平方值均在 0.95 到 0.99 之间。这表明该模型准确地拟合了生物氢实验值。此外,与单独使用微波预处理相比,Pluronic P-123 诱导的微波预处理被认为是节能且具有成本效益的,其净能源生产和更大的能源比分别为 504.38 kWh/吨大型藻类和 1.2,而单独使用微波预处理时分别为-2975.6 kWh/吨大型藻类和 0.5。

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