Advanced Biofuels Process Demonstration Unit (AB-PDU), Lawrence Berkeley National Laboratory, Berkeley, CA, United States; Biological Systems and Engineering Division, Lawrence Berkeley National Laboratory, Berkeley, CA, United States.
Advanced Biofuels Process Demonstration Unit (AB-PDU), Lawrence Berkeley National Laboratory, Berkeley, CA, United States; Energy and Environmental Science and Technology, Idaho National Laboratory, Idaho Falls, ID, United States.
Bioresour Technol. 2017 Nov;243:676-685. doi: 10.1016/j.biortech.2017.06.156. Epub 2017 Jun 30.
Commercial-scale bio-refineries are designed to process 2000tons/day of single lignocellulosic biomass. Several geographical areas in the United States generate diverse feedstocks that, when combined, can be substantial for bio-based manufacturing. Blending multiple feedstocks is a strategy being investigated to expand bio-based manufacturing outside Corn Belt. In this study, we developed a model to predict continuous envelopes of biomass blends that are optimal for a given pretreatment condition to achieve a predetermined sugar yield or vice versa. For example, our model predicted more than 60% glucose yield can be achieved by treating an equal part blend of energy cane, corn stover, and switchgrass with alkali pretreatment at 120°C for 14.8h. By using ionic liquid to pretreat an equal part blend of the biomass feedstocks at 160°C for 2.2h, we achieved 87.6% glucose yield. Such a predictive model can potentially overcome dependence on a single feedstock.
商业规模的生物精炼厂旨在每天处理 2000 吨单一木质纤维素生物质。美国的几个地理区域产生不同的原料,如果将它们混合在一起,将可以为基于生物的制造提供大量原料。混合多种原料是一种正在研究的策略,旨在将生物制造扩展到玉米带之外。在这项研究中,我们开发了一种模型,以预测在给定预处理条件下最佳的生物质混合物连续范围,以达到预定的糖产量或相反。例如,我们的模型预测,通过用碱预处理在 120°C 下处理 14.8 小时的等量能源甘蔗、玉米秸秆和柳枝稷混合物,可以实现超过 60%的葡萄糖产量。通过在 160°C 下用离子液体预处理生物质原料的等份混合物 2.2 小时,我们实现了 87.6%的葡萄糖产量。这种预测模型可以潜在地克服对单一原料的依赖。