The multi-disciplinary team including researchers from James Cook University, University of Sydney and Israel's Ben Gurion University has developed a proof-of-concept process to create high quality renewable biofuel from the macroalgae, Oedogonium, ready for blending with regular gasoline, jet fuel and diesel.
Production needed to be integrated into a chain that addressed the issues of waste nutrient, water and carbon recycling
Results for their collaborative work have been published online in the prestigious international journal Energy & Environmental Science.
Professor Rocky de Nys from the Centre for Macroalgal Resources & Biotechnology
at James Cook University led the group responsible for providing the project with the fresh water algae. He said the algae was grown under special conditions and tailor-made to fit the needs of the project.
鈥Oedogonium is a robust, non-invasive species that is highly productive and easily cultivated on a large scale. This makes the macroalgae an attractive source of biomass for further processing to create renewable fuels and chemicals.
鈥淚ts cultivation is highly efficient relative to harvesting of land-based plants and also avoids conflict for agricultural resources that might be diverted from food production.鈥
Joint leaders at the University of Sydney, and from the University鈥檚 worked with their teams to understand how to control the conversion of freshwater algae into a crude oil equivalent.
鈥淎 key problem associated with processing algae into liquid transportation fuel is the presence of nitrogen from algal proteins in the intermediate bio crude oil, as the nitrogen poisons downstream catalysts required for further upgrading,鈥 said Professor Maschmeyer.
鈥淗owever the nitrogen content can, in fact, be controlled at multiple points in the production chain from biomass to high-grade fuel product,鈥 said Professor Maschmeyer, who is also the Director of the A
Explaining the process Professor Brian Haynes said:
鈥淚n order to utilise a macroalgal species effectively, its production needed to be integrated into a chain that addressed the issues of waste nutrient, water and carbon recycling.
鈥淭he low nitrogen macroalgae are converted to bio-crude oil, which is combined with a synthetic fuel stream produced by catalytic conversion of waste CO2, resulting, after further processing, in a finished fuel blend.
鈥淭he process makes use of water at very high temperature and pressure to liquefy the algae and convert it into an energy-dense bio-crude oil.鈥
鈥湼咔甯@ colleagues at Ben Gurion University used their expertise to take the bio-crude oil and refine it into a finished fuel product,鈥 said Professor Haynes.
The work was supported in Australia by the Science and Industry Endowment Fund, the Australian Renewable Energy Agency (ARENA); the Advanced Manufacturing CRC (AMCRC), and MBD Energy Ltd. 聽
For a week this October, we鈥檒l be bringing together some of our brightest minds with industry and community partners to collaborate on how research and innovation can help us overcome some of the greatest health challenges facing our planet.
Working with Professor Yasuyuki Todo (Waseda University) and Dr Hiroyasu Inoue (Hyogo University), Dr Petr Matous from the University of Sydney鈥檚 Faculty of Engineering and IT found that supply chains can work as important channels for the flow of information, innovation, and productivity between individual firms.
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