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Effect of Light/Dark Cycle on Bacterial Hydrogen Production by Rhodobacter sphaeroides RV From Hour to Second Range

机译:光/暗循环对球形红球菌RV从小时到秒范围内细菌产氢的影响

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Hydrogen production by photosynthetic bacteria provides an efficient energy conversion method under low light intensity. However, under strong illumination, such as midday sunlight, the efficiency drops. This prevents the method from being applied industrially. To overcome this problem, we examined a method to thin out the excessive illumination. Light was given intermittently to reduce the total energy flux. The on/off ratio was set at 1/1 throughout the study, so that the time average of the light energy flux became half the continuous illumination. By keeping the time-average light flux constant (0.6 kW*m~(-2)), the effects of the cycle period were examined in the range of hours to seconds. The hydrogen production rate was greatly affected by the cycle period, but cell growth and substrate consumption rates remained almost constant. The 30-min light/dark cycle (30 min on and 30 min off) provided the highest rate of hydrogen production (22 L*m~(-2)*24 h~(-1)). At the shorter cycles, the rate decreased except that there was a suboptimum at about 40 s. Under excessive light intensity (1.2 kW*m~(-2)), the light-to-hydrogen conversion efficiency was greatly enhanced. The hydrogen production rate during the 30-min cycle was twice as high as during a 12-h cycle under the same conditions.
机译:光合细菌产生的氢在低光强度下提供了一种有效的能量转换方法。但是,在强光下,例如中午的阳光,效率会下降。这阻止了该方法在工业上的应用。为了克服这个问题,我们研究了一种减少多余照明的方法。间歇地给光以减少总能量通量。在整个研究中,开/关比设置为1/1,因此光能通量的时间平均值变为连续照明的一半。通过保持时间平均光通量恒定(0.6 kW * m〜(-2)),在数小时至数秒的范围内检查了循环周期的影响。制氢速率受循环周期的影响很大,但是细胞生长和底物消耗速率几乎保持恒定。 30分钟的明暗循环(打开30分钟和关闭30分钟)提供了最高的氢气产生速率(22 L * m〜(-2)* 24 h〜(-1))。在较短的周期中,速率降低,除了在约40 s处存在次优值。在过高的光强度(1.2 kW * m〜(-2))下,光氢转化效率大大提高。在相同条件下,在30分钟循环中的氢气产生速率是12小时循环中氢气产生速率的两倍。

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