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Thermodynamic analysis of electrokinetic energy conversion

机译:电动能量转换的热力学分析

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A thermodynamic analysis is carried out for electrokinetic energy conversion. We demonstrate that the efficiencies depend solely on the figure of merit Z and are independent of the working mode (generator or pump) at the conditions of maximum power output and maximum efficiency. Between these two extreme points, the ratio of output powers and the ratio of operating conditions (generation voltage or pumping pressure) are also functions of only Z and independent of the working mode. The figure of merit Z associated with phenomenological coefficients is less than one due to the intrinsic entropy production in electrokinetic flows. We establish the phenomenological coefficients through electro-hydrodynamics, and find that Z is dependent on the non-dimensional electrokinetic radius, normalized zeta potential and non-dimensional parameter beta characterizing the liquid property. The narrow range of realistic beta limits the magnitude of Z to between 0.168 and 0 465 for aqueous solutions. The corresponding maximum efficiency thus varies between 4.59 and 15.51 percent. Within this range the electrokinetic devices' performance at maximum efficiency is, however, close to that at maximum power output. This feature is identified in a characteristic performance curve of efficiency against output power.
机译:对动能进行热力学分析。我们证明了效率仅取决于品质因数Z,并且在最大功率输出和最大效率的条件下与工作模式(发电机或泵)无关。在这两个极端之间,输出功率的比率和工作条件的比率(发电电压或泵送压力)也是Z的函数,并且与工作模式无关。与现象学系数相关的品质因数Z小于1,这归因于电动流动中的内在熵产生。我们通过电-流体动力学建立了现象学系数,发现Z取决于无量纲的电动半径,归一化的ζ电势和表征液体性质的无量纲参数β。实际β的狭窄范围将水溶液的Z值限制在0.168到0 465之间。因此,相应的最大效率在4.59%和15.51%之间变化。在此范围内,电动设备在最大效率下的性能接近在最大功率输出下的性能。在效率相对于输出功率的特性性能曲线中可以识别出此功能。

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