## Abstract **BACKGROUND:** The conversion of lipidโextracted microalgal biomass residues (LMBRs) into hydrogen serves the dual role in renewable energy production and sustainable development of microalgal biodiesel industry. In this work, batch experiments were performed to convert LMBRs pretreate
Enhanced hydrogen production from lipid-extracted microalgal biomass residues through pretreatment
โ Scribed by Zhiman Yang; Rongbo Guo; Xiaohui Xu; Xiaolei Fan; Xiaoping Li
- Publisher
- Elsevier Science
- Year
- 2010
- Tongue
- English
- Weight
- 278 KB
- Volume
- 35
- Category
- Article
- ISSN
- 0360-3199
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โฆ Synopsis
Energy recovery from lipid-extracted microalgal biomass residues (LMBRs) plays a significant role in the sustainable development of the microalgal biodiesel industry. Different methods were used to pretreat LMBRs to improve their solubilization and anaerobic hydrogen production abilities. The pretreatment methods studied included thermal (100 C and 121 C), alkaline and thermo-alkaline pretreatments (combinations of alkaline and thermal pretreatments). The results showed that thermo-alkaline pretreatments resulted in remarkable improvements of LMBR solubilization, which led to an increase in hydrogen yield. The highest hydrogen yield of 45.54 mL/g-volatile solid (VS) was achieved from LMBRs pretreated by the thermo-alkaline pretreatment at 100 C, which was approximately three-fold higher than the yield from untreated LMBRs. The results of this study proved that thermo-alkaline pretreatment at 100 C is an effective method to improve LMBR solubilization and increase the hydrogen production from LMBRs.
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A two-stage process to produce hydrogen and methane from lipid-extracted microalgal biomass residues (LMBRs) was developed. The biogas production and energy efficiency were compared between one-and two-stage processes. The two-stage process generated 46 AE 2.4 mL H 2 /g-volatile solid (VS), and 393.
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