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Design of an efficient harvester and dewater mechanism for microalgae.

机译:一种高效的微藻收获机和脱水机构的设计。

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摘要

Microalgae have now been widely considered as a promising bio-energy feedstock. The current microalgae harvesting methods used, such as centrifugation, sedimentation and flocculation, have been shown to be effective but are costly, representing between 35 % to 50 % of the total production cost. The aims of this study were: (1) to investigate the effectiveness of two electrocoagulation processes, electroflocculation and electroflotation, as algae pre-harvesting processes; and (2) to design, test and optimize a cost-effective and efficient filtration-based harvesting mechanism for micrioalgae. The principal results of the study showed that: (1) The mean final concentration for electroflocculation of 17.94 gL-1 significantly exceeded (p = 0.0416) that for electroflotation of 9.51 gL-1, indicating electroflocculation to be the more effective process; (2) Microscope images of the algae showed that, for the level of power applied (1 A, 40 V max), electrocoagulation did not appear to have produced any effect on the algae that was significantly different from that by centrifugation and that neither method appeared to have caused any significant cell wall damage or rupture; (3) The most effective configuration for the harvester prototype—resulting in higher throughput rate (0.303 gh-1), higher efficiency (233.33 gL-1), as well as a lower energy consumption (143.46 kWhm-3)—corresponded with higher concentration of the incoming biomass (21.5 gL-1), lower belt velocity (0.05 ms-1), higher inclination angle (25°) and lower pressure (0 Psi); and (4) The total energy consumption for the harvester prototype, when combined with a preceding pre-harvesting process, of 4.95 kWhm-3 was comparable to those reported by others for filtration-based harvesting. The new efficient harvesting mechanism proposed showed significant potential in successfully reducing algae production cost and make biofuels from microalgae economically feasible in the mid to long term in view of the prototype having achieved high output biomass concentration, low energy consumption per unit volume, high throughput rate, and facility of implementation.
机译:现在,微藻已被广泛认为是一种有前途的生物能源原料。目前使用的微藻收获方法,例如离心,沉淀和絮凝,已被证明是有效的,但成本很高,占总生产成本的35%至50%。这项研究的目的是:(1)研究两种电凝过程,即电絮凝和电絮凝作为藻类的预收获过程的有效性; (2)设计,测试和优化一种经济高效的基于过滤的微藻收获机制。该研究的主要结果表明:(1)电絮凝的平均最终浓度为17.94 gL-1,显着超过(p = 0.0416)电絮凝的9.51 gL-1,表明电絮凝是更有效的过程; (2)藻类的显微镜图像显示,在施加的功率水平(最大1 A,40 V)下,电凝似乎没有对藻类产生任何影响,这与离心分离产生了显着不同,并且两种方法都没有似乎已引起任何明显的细胞壁损伤或破裂; (3)收割机原型的最有效配置-导致更高的吞吐率(0.303 gh-1),更高的效率(233.33 gL-1)和更低的能耗(143.46 kWhm-3)-相应地更高传入生物质的浓度(21.5 gL-1),较低的皮带速度(0.05 ms-1),较大的倾斜角(25°)和较低的压力(0 Psi); (4)与先前的收获前过程相结合,收获机原型的总能耗为4.95 kWhm-3,与其他人基于过滤的收获所报告的能耗相当。鉴于原型已经实现了高输出生物量浓度,低单位体积能耗,高吞吐率,所提出的新型高效捕捞机制在成功降低藻类生产成本以及使微藻类生物燃料在中长期内经济可行方面显示出巨大潜力。 ,以及实施的便利性。

著录项

  • 作者

    Lefort, Patricio Valdivia.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Alternative Energy.;Engineering Agricultural.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 75 p.
  • 总页数 75
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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