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Hybrid Electric Vehicles: Application of Fuzzy Clustering for Designing a TSK-based Fuzzy Energy Flow Management Unit

机译:混合电动车:模糊聚类设计设计基于TSK的模糊能量流量管理单元

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Today, the satisfaction of the desire for personal transportation requires developing vehicles that minimize the consequences on the environment and maximize highway and fuel resources. Hybrid electric vehicles (HEVs) could be an answer to this demand. Their use can contribute significantly to reduce their environmental impact, achieving at the same time a rational energy employment. Controlling an HEV requires a lot of experimentations. Experts and training engineers can ensure the good working of the powertrains, but the research of optimality for some criteria combining fuel needs and power requirements is mainly empirical due to the nonlinearity of the driving conditions and vehicle loads. Consequently, in the paper a fuzzy modeling identification approach is applied for modeling the power flow management process. Amongst the various methods for the identification of fuzzy model structure, fuzzy clustering is selected to induce fuzzy rules. With such an approach the fuzzy inference system (FIS) structure is generated from data using fuzzy C-Means (FCM) clustering technique. As model type for the FIS structure a first order Takagi-Sugeno-Kang (TSK) model is considered. From this architecture a fuzzy energy flow management unit based on a TSK-type fuzzy inference is derived. Further, some interesting comparisons and simulations are discussed to prove the validity of the methodology.
机译:如今,对个人运输欲望的满意需要开发车辆,尽量减少对环境的后果,最大化公路和燃料资源。混合动力电动汽车(HEV)可能是对此需求的答案。他们的使用可以显着贡献以减少环境影响,同时实现合理的能源就业。控制HEV需要大量的实验。专家和培训工程师可以确保发动机的良好工作,但是对于一些标准的最优性的研究主要是燃料需求和功率要求的主要原因是由于驾驶条件和车辆载荷的非线性而是经验性的。因此,在纸质中,应用模糊建模识别方法来建模电流管理过程。在识别模糊模型结构的各种方法中,选择模糊聚类以诱导模糊规则。利用这种方法,模糊推理系统(FIS)结构是根据使用模糊C型型群集技术的数据生成的。作为FIS结构的模型类型,考虑了一阶Takagi-Sugeno-kang(TSK)模型。从该体系结构中,推导了一种基于TSK型模糊推理的模糊能量流量管理单元。此外,讨论了一些有趣的比较和模拟以证明方法的有效性。

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