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Design and Evaluation of a Dissolved OxygenController for Solar Powered Fish Tanks

机译:太阳能鱼缸溶解氧控制器的设计与评估

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Aims: A dissolved oxygen controller was designed to optimize photovoltaic energy and maintain minimum DO variations in the fish tanks, independent on environmental conditions.Study Design: Software critical parameters have to be tuned including discontinuous routine (DR) interval, use throughout the night and cloud sensing.Place and Duration of Study: Department of Irrigation at Tlapeaxco, Texcoco, Mexico at the Universidad Autonoma Chapingo, between April and July 2011.Methodology: The controller was assembled and its software tested to maintain the desired water dissolved oxygen concentration in the tanks. Solar radiation and clouds presented during May and June of 2011 were monitored correlating an infrared sensor with a sunshine indicator. Energy produced by the solar panels was acquired with a data logger together with the energy stored in the batteries; overvoltage and deep discharges were avoided by the battery. A discontinuous routine was turned on when clouds were present, evaluating whether it should operate during all the night.Results: May presented 26 cloudy days and 45% of these days presented less than 2 hours of more than 1000 W/m2 of irradiation. Cloud cover sensing correlation between the infrared and sunshine sensor has a R2=0.97. Cloud cover peaks can last from minutes to hours and using the one-hour discontinuous routine (DR) instantaneous peaks were avoided. Optimal DR period was ten minutes as it saves the same quantity of energy but maintains dissolved oxygen (DO) concentration over 4.1 ppm; hourly DR intervals, decreases DO to 2.4 ppm stressing the carps. Battery charge should be at least 39 Ah@19:00 to supply the energy required by the aerators during the night.Conclusion: A sunshine sensor was selected to detect cloud cover and its sampling period was decreased from ten to one minute. DO concentration on tanks became more stable when the ten minute discontinuous period was employed.
机译:目的:溶解氧控制器的设计旨在优化光伏能源并保持鱼缸中DO的最小变化,而不受环境条件的影响研究设计:必须调整软件关键参数,包括不连续例行(DR)间隔,整夜使用和研究的地点和持续时间:2011年4月至2011年7月在墨西哥特平斯科大学的墨西哥Tlapeaxco灌溉系。坦克。监测了2011年5月和6月出现的太阳辐射和云,将红外传感器与阳光指示器关联起来。太阳能电池板产生的能量是通过数据记录仪以及存储在电池中的能量采集的;电池避免了过电压和深度放电。当出现云层时,将启动一个不连续的例程,以评估其是否应整夜运行。结果:可能出现26天阴天,其中45%的天数表示少于2小时的1000 W / m2以上的辐射。红外和日照传感器之间的云层传感相关性为R2 = 0.97。云量峰值可能会持续几分钟到几小时,并且避免使用一小时的不连续例行(DR)瞬时峰值。最佳DR周期为10分钟,因为它可以节省相同数量的能量,但可将溶解氧(DO)的浓度保持在4.1 ppm以上;每小时进行一次DR间隔,可将DO降低至2.4 ppm,使鲤鱼承受压力。电池充电应至少为39 Ah @ 19:00,以提供通气设备在夜间所需的能量。结论:选择了一个阳光传感器来检测云层,其采样时间从十分钟缩短到一分钟。当使用十分钟的不连续时间时,水箱中的溶解氧浓度变得更稳定。

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