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首页> 外文期刊>Journal of Energy Storage >Time-varying model of self-discharge in a double layer supercapacitor with blocking layer
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Time-varying model of self-discharge in a double layer supercapacitor with blocking layer

机译:具有阻挡层的双层超级电容器中自放电的时变模型

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One of the main shortcomings of the supercapacitors is related to self-discharge phenomenon at open circuit conditions due to the existence of an internal leakage current. Using two thin insulating blocking layers on the contacts-electrolyte interface is a promising structural approach to tackle this problem. A single-branch equivalent circuit is presented to model the self-discharge behavior of a supercapacitor with 1.5 nm of PolyPhenylene Oxide as a blocking layer. A variable resistance in parallel with the equivalent capacitance is considered to model the leakage current and self-discharge procedure. It has been shown that considering a constant parallel resistance could not model the self-discharge appropriately. Hence, two different approaches are proposed to derive the time-varying parallel resistance in the model. The first approach results in an accurate continuous timevarying parallel resistance based on the equality of voltage from numerical solution to the first-order nonlinear dynamics of Tafel equation and natural response of the time-varying RC-circuit. In the second approach, an optimal number of different exponential functions are fitted to the experimental measurements from the self-discharge phenomenon based on the weighted linear regression analysis for some time intervals during one hour. In this method, optimal discrete parallel resistance values are obtained with a trade-off between model accuracy and its simplicity. It is shown that both the continuous and discrete models are accurate while the discrete model has better performance and more beneficial. Nevertheless, a relatively high sampling rate is needed for the initial time interval in which the self-discharge experiences a faster variation.
机译:由于内部漏电流的存在,超级电容器的主要缺点之一与开放电路条件下的自放电现象有关。在触点 - 电解质界面上使用两个薄的绝缘阻挡层是一种承诺的结构方法来解决这个问题。提出单分支等效电路以将超电容器的自放电行为与1.5nm的聚苯氧化物为模拟作为封闭层。认为与等效电容并联的可变电阻模拟漏电流和自放电过程。已经表明,考虑到恒定的并联电阻不能适当地建模自放电。因此,提出了两种不同的方法来导出模型中的时变的并联电阻。第一种方法基于从数值解的电压平均值到Tafel方程的一阶非线性动力学的电压平等和时变RC电路的自然响应的基于电压平等的准确连续时变度电阻。在第二种方法中,基于在一小时内的一段时间间隔的加权线性回归分析,从自放电现象的实验测量中安装了不同的指数函数的最佳数量。在该方法中,在模型精度与其简单之间的折衷获得了最佳的离散并联电阻值。结果表明,连续和离散的模型都是准确的,而离散模型具有更好的性能和更有益。然而,初始时间间隔需要相对高的采样率,其中自放电经历更快的变化。

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