试点规模的氧气平衡混合营养培养Galdieria sulphuraria
Pedro Moñino Fernández1, Marina López Morales1, Aniek de Winter1
1Bioprocess Engineering, AlgaePARC, Wageningen University and Research, P.O. Box 16, 6700 AA Wageningen, The Netherlands.
概括
在一个1700L管状光生物反应器中,氧平衡混合变异 (OBM) 增强了微藻种植. 这种可扩展的方法通过消除通风需求和优化葡萄糖供应,提高了生物质生产率.
科学领域:
- 生物技术是生物技术.
- 微藻种植 微藻种植
- 可持续工程 可持续工程
背景情况:
- 氧气平衡混合营养 (OBM) 通过平衡有机碳供应与氧气消耗,消除白天通风,使微藻种植成为可能.
- 之前的实验室规模的成功促使人们对OBM在更大系统中的可扩展性进行了调查.
研究的目的:
- 为了评估在阳光下1700L管状光生物反应器 (TPBR) 中氧平衡混合变异 (OBM) 的可扩展性.
- 使用硫菌和葡萄糖优化微藻种植的OBM参数.
主要方法:
- 在两相TPBR系统 (1700L) 中实施OBM,并进行连续的气体循环.
- 使用比例整数控制器来管理基于监控氧气度的葡萄糖供应.
- 通过调整控制器设置和夜间通风率来解决二氧化碳限制问题.
主要成果:
- 实现了0.81g·L-1·day-1的平均生物质生产率,超过了同一个系统中的自营养培养.
- 观察到基质上的生物质产量为0.68C-mol·C-mols-1,这表明碳回收很大.
- 成功优化了过程,以克服二氧化碳限制的挑战.
结论:
- 氧气平衡的混合营养可扩展到试点规模的管状光生物反应器.
- 优化的OBM工艺为工业规模的微藻生产提供了可行的基础.
- 进一步的研究可能将重点放在更大规模提高碳回收效率上.
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