Key Targets for Improving Algal Biofuel Production
Gareth Griffiths,Abul Kalam Hossain,Vikas Sharma,Ganesh Duraisamy +3 more
- 09 Oct 2021
- Vol. 3, Iss: 4, pp 711-742
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TL;DR: In this paper, the authors present a number of technological challenges that need to be overcome if algae are to be utilized for commercial fuel production, which are largely based on laboratory scale up or commercial systems geared to the production of high value products.
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Abstract: A number of technological challenges need to be overcome if algae are to be utilized for commercial fuel production. Current economic assessment is largely based on laboratory scale up or commercial systems geared to the production of high value products, since no industrial scale plant exits that are dedicated to algal biofuel. For macroalgae (‘seaweeds’), the most promising processes are anaerobic digestion for biomethane production and fermentation for bioethanol, the latter with levels exceeding those from sugar cane. Currently, both processes could be enhanced by increasing the rate of degradation of the complex polysaccharide cell walls to generate fermentable sugars using specifically tailored hydrolytic enzymes. For microalgal biofuel production, open raceway ponds are more cost-effective than photobioreactors, with CO2 and harvesting/dewatering costs estimated to be ~50% and up to 15% of total costs, respectively. These costs need to be reduced by an order of magnitude if algal biodiesel is to compete with petroleum. Improved economics could be achieved by using a low-cost water supply supplemented with high glucose and nutrients from food grade industrial wastewater and using more efficient flocculation methods and CO2 from power plants. Solar radiation of not <3000 h·yr−1 favours production sites 30° north or south of the equator and should use marginal land with flat topography near oceans. Possible geographical sites are discussed. In terms of biomass conversion, advances in wet technologies such as hydrothermal liquefaction, anaerobic digestion, and transesterification for algal biodiesel are presented and how these can be integrated into a biorefinery are discussed.
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Citations
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Humic Substances as Microalgal Biostimulants—Implications for Microalgal Biotechnology
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Outflow from a Biogas Plant as a Medium for Microalgae Biomass Cultivation—Pilot Scale Study and Technical Concept of a Large-Scale Installation
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References
Phlorotannins: A review on biosynthesis, chemistry and bioactivity
TL;DR: A library of reported phlorotannins has been generated to assist with further identification, and the majority of such findings have been generated via biochemical and cell-based assays, with only a limited number of in vivo animal experiments conducted.
100
Heterotrophy as a tool to overcome the long and costly autotrophic scale-up process for large scale production of microalgae.
TL;DR: A two-stage scale-up process was developed – heterotrophically Chlorella vulgaris cells grown in fermenters were used to directly inoculate an outdoor industrial autotrophic microalgal production unit (2nd stage).
Assessment of fuel properties, engine performance and emission characteristics of outdoor grown marine Chlorella vulgaris BDUG 91771 biodiesel
Thangavel Mathimani,Tamilkolundu Senthil Kumar,M. Chandrasekar,Lakshmanan Uma,Dharmar Prabaharan +4 more
TL;DR: In this paper, the suitability of marine microalga Chlorella vulgaris BDUG 91771 biodiesel to curb the fuel crisis, based on engine performance and emission profile was investigated.
99
Recent advances in carrageenan-based delivery systems for bioactive ingredients: A review
Yue Dong,Zihao Wei,Changhu Xue +2 more
TL;DR: In this article, a review of different types of carrageenan-based nutraceutical delivery systems is presented, and the factors affecting the performance of such delivery systems are analyzed.
98
Performance and emission analysis of a diesel engine using hydrogen enriched n-butanol, diethyl ester and Spirulina microalgae biodiesel
TL;DR: In this paper, the impact of hydrogen energy share (5, 10, 15 and 20%) on the performance and exhaust emissions of a diesel engine at low, medium and high engine loads with a constant injection timing, speed of 1500rpm and a higher fuel injection pressure of 220 bar was analyzed.
97