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使用非线性频率响应方法预测强制周期性操作下的电解槽性能
Predicting electrolyzer performance under forced periodic operation using nonlinear frequency response method
| 作者 | Tamara Miličić · Simon Puteanus · Xenia Becker · Steffen Bernet · Tanja Vidaković-Koch |
| 期刊 | Applied Energy |
| 出版日期 | 2025年1月 |
| 卷/期 | 第 396 卷 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 工商业光伏 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | The NFR method is proposed for the evaluation of the forced periodic operation. |
语言:
中文摘要
工业级电解槽由电力变换器供电,其电流为直流电流与叠加的电流纹波的混合。因此,电解槽不可避免地处于强制周期性运行状态。另一方面,脉冲电解作为一种强制周期性操作,已成为一种有吸引力的过程强化策略。尽管已有研究报道了电流纹波对电解槽性能的负面影响,但也有研究声称脉冲电解具有正面作用。然而,由于这两种运行模式均属于强制周期性操作,理论上应产生类似的影响。为了澄清这一矛盾,本文提出采用非线性频率响应(NFR)方法来评估质子交换膜水电解槽(PEMWE)在强制周期性操作下的性能。NFR方法表明,在强制周期性操作下,PEMWE的电压降低,而功耗增加,该结果与实验数据和数值模拟结果高度一致。此外,NFR方法揭示,电压降低是系统非线性动力学特性的结果,而功率需求则同时受到线性和非线性现象的影响。其中,线性贡献倾向于增加功率需求,而非线性贡献则降低功率需求。然而,无论运行条件如何,线性贡献始终占主导地位,导致在强制周期性操作下总功耗增加。在常规工作电流密度下,欧姆损耗是导致PEMWE功率增加的主要因素。总体而言,NFR方法在分析强制周期性操作方面展现出显著优势,提供了一种解析工具,可用于计算此类条件下电解槽的能量损失,并指导系统设计,特别是供电电源变换器的设计。
English Abstract
Abstract Industrial-scale electrolyzers are supplied by power converters with a mixture of DC current and superimposed current ripple. Therefore, electrolyzers are inevitably operated in a forced periodic regime. On the other hand, pulsed electrolysis, as a type of forced periodic operation, emerged as an attractive process intensification strategy. While the negative impact of the current ripple on the electrolyzer performance was reported, the positive impact of pulsed electrolysis was claimed. However, since both regimes are types of forced periodic operation, a similar effect is expected. To clarify this, we suggest the nonlinear frequency response (NFR) method for evaluation of the performance of a proton exchange membrane water electrolyzer (PEMWE) in forced periodic operation. The NFR method demonstrates a voltage decrease and power consumption increase during forced periodic operation of PEMWE in comparison to the steady-state operation, agreeing remarkably well with experiments and numerical simulations. Furthermore, the NFR method reveals that the voltage decrease is a consequence of the system’s nonlinear kinetics, and the power requirements are influenced by both linear and nonlinear phenomena. Linear contributions tend to increase power requirements, while nonlinear contributions decrease them. However, regardless of the operating conditions, linear contributions prevail, leading to increased power consumption during forced periodic operation. At the usual operating current densities, ohmic contributions dominate the PEMWE power increase. Overall, the NFR method proves advantageous for analyzing forced periodic operations, providing an analytical tool to calculate the electrolyzer’s losses during such conditions and guide system design, especially of the supplying power converter.
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SunView 深度解读
该研究揭示电解槽在纹波电流下性能劣化机理,对阳光电源制氢系统集成具有重要指导意义。ST系列PCS为电解槽供电时,需优化变流器拓扑设计以抑制电流纹波,降低非线性损耗。建议在三电平拓扑中引入主动滤波算法,结合非线性频率响应分析方法优化PWM策略,减少欧姆损耗主导的功耗增加。可应用于光伏制氢一体化方案,通过iSolarCloud平台实时监测电解槽周期性工况,实现预测性维护,提升绿氢生产系统整体效率。