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Experimental studies of vertical mixing patterns in open channel flow generated by two delta wings side-by-side.

机译:两个三角翼并排产生的明渠水流垂直混合模式的实验研究。

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摘要

Open channel raceway bioreactors are a low-cost system used to grow algae for biofuel production. Microalgae have many promises when it comes to renewable energy applications, but many economic hurdles must be overcome to achieve an economic fuel source that is competitive with petroleum-based fuels. One way to make algae more competitive is to improve vertical mixing in algae raceway bioreactors. Previous studies show that mixing may be increased by the addition of mechanisms such as airfoils. The circulation created helps move the algae from the bottom to top surface for necessary photosynthetic exchange. This improvement in light utilization allowed a certain study to achieve 2.2-2.4 times the amount of biomass relative to bioreactors without airfoils. This idea of increasing mixing in open channel raceways has been the focus of the Utah State University (USU) raceway hydraulics group.;Computational Fluid Dynamics (CFD), Acoustic Doppler Velocimetry (ADV), and Particle Image Velocimetry (PIV) are all methods used at USU to computationally and experimentally quantify mixing in an open channel raceway. They have also been used to observe the effects of using delta wings (DW) in increasing vertical mixing in the raceway. These efforts showed great potential in the DW in increasing vertical mixing in the open channel bioreactor. However, this research begged the question, does the DW help increase algae growth? Three algae growth experiments comparing growth in a raceway with and without DW were completed. These experiments were successful, yielding an average 27.1% increase in the biomass. The DW appears to be a promising method of increasing algae biomass production.;The next important step was to quantify vertical mixing and understand flow patterns due to two DWs side-by-side. Raceway channels are wider as they increase in size; and arrays of DWs will need to be installed to achieve quality mixing throughout the bioreactor. Quality mixing was attained for several paddle wheel (PW) speeds. Also, an optimal spacing between the DWs in an array was found to be the width of the DW. This optimal spacing allows for the best increase in vertical mixing along the width of the channel. Dimensional analysis was performed using experimental data to estimate vertical mixing index (VMI) results for data obtained by larger scale DW experiments. This rough analysis showed that the VMI may be estimated from small to large scale within 26.6% and 26.5% when equating Reynolds and Froude numbers, respectively. These results suggest that quality mixing would still be present at a larger DW scale.
机译:明渠跑道生物反应器是用于种植藻类以生产生物燃料的低成本系统。微藻在可再生能源应用方面有许多希望,但是要获得与石油基燃料竞争的经济燃料源,必须克服许多经济障碍。使藻类更具竞争力的一种方法是改善藻类跑道生物反应器中的垂直混合。先前的研究表明,可以通过增加机翼等机制来增加混合。产生的循环有助于藻类从底部移动到顶部,以进行必要的光合交换。光利用率的提高使得某些研究相对于没有机翼的生物反应器可以达到生物量的2.2-2.4倍。犹他州立大学(USU)滚道液压学小组一直关注增加明渠滚道混合的想法。计算流体力学(CFD),声学多普勒测速(ADV)和粒子图像测速(PIV)都是方法。在美国大学使用,以计算和实验方式量化明渠滚道中的混合。它们还被用来观察使用三角翼(DW)在增加滚道垂直混合方面的效果。这些努力显示出DW在增加明渠生物反应器中垂直混合方面的巨大潜力。但是,这项研究提出了一个问题,DW是否有助于增加藻类的生长?完成了三个比较有无DW的水道中藻类生长的实验。这些实验是成功的,生物量平均增加了27.1%。 DW似乎是增加藻类生物量产量的一种有前途的方法。下一个重要步骤是量化垂直混合并了解两个DW并排产生的流动模式。滚道的尺寸越大,通道越宽;并需要安装DW阵列以实现整个生物反应器的高质量混合。在几个桨轮(PW)速度下均达到了高质量混合。此外,发现阵列中DW之间的最佳间距是DW的宽度。此最佳间距可沿通道的宽度最大程度地增加垂直混合。使用实验数据进行尺寸分析,以估计通过大型DW实验获得的数据的垂直混合指数(VMI)结果。粗略的分析表明,当分别将雷诺数和弗洛德数相等时,VMI的估计范围可能从小到大,分别在26.6%和26.5%之内。这些结果表明,在较大的DW规模下仍将存在质量混合。

著录项

  • 作者

    Vaughan, Garrett.;

  • 作者单位

    Utah State University.;

  • 授予单位 Utah State University.;
  • 学科 Engineering Aerospace.;Engineering Mechanical.
  • 学位 M.S.
  • 年度 2013
  • 页码 107 p.
  • 总页数 107
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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