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A METHODOLOGY FOR THE DETERMINATION OF THE LIGHT DISTRIBUTION PROFILE OF A MICRO-ALGAL PHOTOBIOREACTOR

机译:确定微藻类光生物反应器的配光曲线的方法

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The following work presents an in depth analysis of the distribution of the light absorbance profile. The proper identification of conditions that maximize the growth efficiency of photosynthetic algae is necessary to optimize the productivity as a whole of the photobioreactor. In an effort to understand light as it interacts with an absorbing species such as algae, various tests were completed to extrapolate extinction coefficient e or a calibration curves based on Beer-Lamberts Law. To characterize the absorbance conditions in a photobioreactor, a light distribution model was developed. From the basis of an external radiated light system, a single-source system was developed. Mathematical expressions for the local light intensity and the average light intensity were derived for a cylindrical photobioreactor with external sources, single internal sources, and multiple internal sources. The proposed model was used to predict the light absorbance values inside an externally and internally radiated photobioreactor using Nannochloropsis Oculata. The effects of cell density and light path length were interpreted through experimental and model simulation studies. The predicted light intensity values were found to be within +/- 7% to those obtained experimentally. This level of accuracy could be better improved with more testing and more precise instrumentation. Due to the simplicity and flexibility of the proposed model, it was also possible to predict the light conditions in other complex multiple light source photobioreactors.
机译:以下工作对吸光度分布的分布进行了深入分析。为了使整个光生物反应器的生产率最优化,正确识别使光合藻类的生长效率最大化的条件是必要的。为了理解光与藻类等吸收物质的相互作用,完成了各种测试以推断消光系数e或基于比尔-朗伯定律的校准曲线。为了表征光生物反应器中的吸收条件,开发了光分布模型。在外部辐射光系统的基础上,开发了单光源系统。推导了具有外部光源,单个内部光源和多个内部光源的圆柱形光生物反应器的局部光强度和平均光强度的数学表达式。拟议的模型用于预测使用Nannochloropsis Oculata进行内部和外部辐射的光生物反应器内部的吸光度值。通过实验和模型仿真研究来解释细胞密度和光程长度的影响。发现预测的光强度值在实验获得的值的+/- 7%之内。可以通过更多的测试和更精确的仪器更好地提高这一精度水平。由于所提出模型的简单性和灵活性,还可以预测其他复杂的多光源光生物反应器中的光照条件。

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