Cheng Hai-Hsuan, Whang Liang-Ming, Wu Shu-Hsien
Department of Environmental Engineering, National Cheng Kung University, Tainan, Taiwan.
Sustainable Environment Research Laboratory (SERL), National Cheng Kung University, Tainan, Taiwan.
Biotechnol J. 2016 Mar;11(3):375-83. doi: 10.1002/biot.201500285. Epub 2016 Jan 14.
Algae-based biodiesel is considered a promising alternative energy; therefore, the treatment of microalgae residues would be necessary. Anaerobic processes can be used for treating oil-extracted microalgae residues (OMR) and at the same time for recovering bioenergy. In this study, anaerobic batch experiments were conducted to evaluate the potential of recovering bioenergy, in the forms of butanol, H2, or CH4, from pretreated OMR. Using pretreated OMR as the only substrate, a butanol yield of 0.086 g/g-carbohydrate was obtained at carbohydrate of 40 g/L. With supplemented butyrate, a highest butanol yield of 0.192 g/g-carbohydrate was achieved at pretreated OMR containing 25 g/L of carbohydrate with 15 g/L of butyrate addition, attaining the highest energy yield of 3.92 kJ/g-OMR and energy generation rate of 0.65 kJ/g-OMR/d. CH4 production from pretreated OMR attained an energy yield of 8.83 kJ/g-OMR, but energy generation rate required further improvement. H2 production alone from pretreated OMR might not be attractive regarding energy yield, but it attained a superb energy generation rate of 0.68 kJ/g-OMR/d by combining H2 production from pretreated OMR and butanol production from pretreated OMR with supplementary butyrate from H2 fermentation supernatant. This study demonstrated an integrated system as an option for treating OMR and recovering bioenergy.
基于藻类的生物柴油被认为是一种很有前景的替代能源;因此,处理微藻残渣将是必要的。厌氧工艺可用于处理脱油微藻残渣(OMR),同时回收生物能源。在本研究中,进行了厌氧批次实验,以评估从预处理的OMR中回收丁醇、H2或CH4形式生物能源的潜力。以预处理的OMR作为唯一底物,在碳水化合物浓度为40 g/L时,丁醇产量为0.086 g/g-碳水化合物。添加丁酸盐后,在含有25 g/L碳水化合物并添加15 g/L丁酸盐的预处理OMR中,丁醇最高产量达到0.192 g/g-碳水化合物,能量产率最高达到3.92 kJ/g-OMR,能量产生速率为0.65 kJ/g-OMR/d。预处理的OMR产生CH4的能量产率为8.83 kJ/g-OMR,但能量产生速率需要进一步提高。仅从预处理的OMR中产生H2在能量产率方面可能没有吸引力,但通过将预处理的OMR产生H2与预处理的OMR产生丁醇以及H2发酵上清液中的补充丁酸盐相结合,其能量产生速率达到了0.68 kJ/g-OMR/d的优异水平。本研究证明了一种综合系统可作为处理OMR和回收生物能源的一种选择。