Department of Chemical and Biological Engineering, Gachon University, Seongnam, Gyeonggi-do 13120, Republic of Korea.
Department of Chemical and Biological Engineering, Gachon University, Seongnam, Gyeonggi-do 13120, Republic of Korea.
Bioresour Technol. 2022 Jun;354:127193. doi: 10.1016/j.biortech.2022.127193. Epub 2022 Apr 20.
A mathematical model of H and volatile fatty acids (VFAs) production via dark fermentation of particulate macroalgal substrates is presented. Carbohydrates, proteins, and lipids in the particulate substrate are convert to H, CO, and VFAs via disintegration/solubilization, hydrolysis, and acidogenesis. Hydrolysis is modeled using a combined surface-limiting model combined with a first-order reaction model to describe both microbial hydrolysis and physical solubilization. Experimental and published data obtained using Saccharina japonica as the substrate are used to calibrate and validate the model. The model prediction featured a good accuracy, with high R of 0.912 - 0.976 for all end products. The physical solubilisation accounts for 28.4% of the total hydrolysis. By the model simulation, a H production of 103.2 mL/g-VS and VFA production of 0.41 g/g-VS are found at optimum conditions of 20 g-TS/L (13.2 g-VS/L) of substrate concentration and 7.0 of initial pH.
提出了一种通过颗粒状大型藻类基质的暗发酵生产 H 和挥发性脂肪酸(VFAs)的数学模型。颗粒状基质中的碳水化合物、蛋白质和脂质通过崩解/溶解、水解和产酸作用转化为 H、CO 和 VFAs。水解采用结合表面限制模型和一级反应模型的组合模型进行模拟,以描述微生物水解和物理溶解。使用日本裙带菜作为基质获得的实验和已发表数据用于校准和验证模型。模型预测具有很好的准确性,所有终产物的 R 均为 0.912-0.976。物理溶解占总水解的 28.4%。通过模型模拟,在底物浓度为 20 g-TS/L(13.2 g-VS/L)和初始 pH 值为 7.0 的最佳条件下,发现 H 产量为 103.2 mL/g-VS,VFAs 产量为 0.41 g/g-VS。