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A Novel Bioreactor for High Density Cultivation of Diverse Microbial Communities
Published on: December 25, 2015
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Self-flocculation of enriched mixed microalgae culture in a sequencing batch reactor
Shanthini Gobi1, Kanadasan Gobi2, Keat Teong Lee1
1School of Chemical Engineering, Universiti Sains Malaysia, 14300, Nibong Tebal, Pulau Pinang, Malaysia.
Environmental Science and Pollution Research International
|January 23, 2021
Summary
Optimizing microalgae cultivation for biodiesel involves enhancing self-flocculation. A higher reactor height-to-diameter ratio and an adaptation period significantly improve microalgae growth and biomass settling efficiency.
Area of Science:
- Biotechnology
- Renewable Energy
- Environmental Science
Background:
- Microalgae are a promising source for sustainable biodiesel production.
- Economically viable biodiesel requires efficient and low-cost microalgae harvesting technologies.
- Self-flocculation is a key harvesting method that avoids chemical additives.
Purpose of the Study:
- To investigate the impact of reactor geometry (height-to-diameter ratio) and adaptation period on microalgae growth and self-flocculation.
- To evaluate these factors in sequential batch reactor (SBR) operations without bacterial addition.
- To determine optimal conditions for enhanced microalgae harvesting.
Main Methods:
- Six 8-L reactors were used, varying in height-to-diameter (H/D) ratios (5 and 8).
- Experiments included batch and sequential batch reactor (SBR) operations over 30 days.
- An adaptation period was introduced for specific SBR experiments, with consistent volume exchange ratio (25%) and settling time (30 min).
Main Results:
- A higher H/D ratio (H8c) significantly improved biomass productivity by threefold.
- The H8c reactor achieved 95% settling efficiency in 5 days, compared to 30 days for the H5c reactor.
- Microalgae biomass loss was reduced under optimized conditions.
Conclusions:
- A higher H/D ratio positively influences microalgae growth and self-flocculation.
- Implementing an adaptation period in SBR operation enhances microalgae harvesting efficiency.
- These findings contribute to cost-effective microalgae-based biodiesel production.
Keywords:
Adaptation periodDenser microalgaeExtracellular polymeric substancesHeight to diameter ratioHydraulic attritionMicroalgae harvestingSettleabilityMore Related Videos
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