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Effect of Light Intensity and Thickness of Culture Solution on Oxygen Production by Algae

机译:培养液的光强度和厚度对藻类产氧的影响

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Data from a small cylindrical culture unit with variable annular culture chambers indicate that (i) the rate of oxygen evolution by an algal culture in the linear phase of growth is a logarithmic function of light intensity, and (ii) the rate of oxygen evolution per unit volume of suspension is linearly related to the reciprocal of culture thickness. These two relationships have been combined in an empirical equation which gives the expected variation of the oxygen production rate with light intensity, culture thickness, and suspension volume. The applicability of this equation has been tested on a larger, multilight culture unit in this laboratory. The agreement between the experimental and calculated oxygen production rates was very satisfactory, suggesting that the equation is not limited to a particular culture unit but may have wide applicability. The efficiency of the culture unit from the standpoint of oxygen output (chemical energy) relative to electrical energy to supply the light source has been calculated, and the maximum value of 0.51% was obtained. The energy to run auxiliary equipment was not a factor in these calculations. The maximum efficiency in converting light energy to chemical energy was approximately 12%. An extrapolation of the experimental results suggests that approximately 2 ft3 and 30 kw would be required to provide the oxygen needs of one man.
机译:来自具有可变环形培养室的小型圆柱形培养单元的数据表明,(i)藻类培养在线性生长阶段的氧气释放速率是光强度的对数函数,以及(ii)每单位氧气释放速率悬浮液的单位体积与培养物厚度的倒数线性相关。这两个关系已结合到一个经验公式中,该公式给出了氧气产生速率随光强度,培养物厚度和悬浮液量的预期变化。该方程的适用性已在该实验室中的大型多光培养装置上进行了测试。实验和计算的氧气产生速率之间的一致性非常令人满意,这表明该方程式不仅限于特定的培养单位,而且可能具有广泛的适用性。从氧气输出(化学能)相对于提供光源的电能的角度计算了培养单元的效率,得出的最大值为0.51%。运行辅助设备的能量不是这些计算中的因素。将光能转换为化学能的最大效率约为12%。实验结果的推断表明,大约需要2 ft3和30 kw的能量才能满足一个人的氧气需求。

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