论文标题
耗散电化学电容器的非替代阻抗和放松模型
Non-Debye impedance and relaxation models for dissipative electrochemical capacitors
论文作者
论文摘要
电化学电容器是一类能量设备,当连接到充电或排放电源系统时,会发生复杂的积累和电耗散机制。可靠地对其频域和时间域行为进行建模对于它们在工程应用中的适当设计和集成至关重要,知道一般而言的电化学电容器表现出异常趋势,这些趋势无法通过传统的基于整数的模型来充分捕获。在这项研究中,我们首先回顾了一些广泛使用的分数模型,用于描述耗散性电阻型容量系统的阻抗和放松功能,即Cole-Cole,Davidson-Cole和Havriliak-negami模型。然后,当将设备排放到平行电阻载荷中时,我们建议并基于电荷或电压的修改演化方程来提出并得出新的Q呈现模型。我们验证了从商业超级电容器获得的电压和电荷的异常频谱阻抗响应和时间域松弛数据的结果。
Electrochemical capacitors are a class of energy devices in which complex mechanisms of accumulation and dissipation of electric energy take place when connected to a charging or discharging power system. Reliably modeling their frequency-domain and time-domain behaviors is crucial for their proper design and integration in engineering applications, knowing that electrochemical capacitors in general exhibit anomalous tendency that cannot be adequately captured with traditional integer-order-based models. In this study we first review some of the widely used fractional-oder models for the description of impedance and relaxation functions of dissipative resistive-capacitive system, namely the Cole-Cole, Davidson-Cole, and Havriliak-Negami models. We then propose and derive new q-deformed models based on modified evolution equations for the charge or voltage when the device is discharged into a parallel resistive load. We verify our results on anomalous spectral impedance response and time-domain relaxation data for voltage and charge obtained from a commercial supercapacitor.