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Comparison of Ultra Capacitors, Hydraulic Accumulators and Batteries Technologies to Optimize Hybrid Vehicle Ecoefficiency

机译:超级电容器,液压蓄能器和电池技术的比较,以优化混合动力汽车的能源效率

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摘要

The main objective of vehicle powertrain hybridization is to improve the fuel consumption and environment pollutants impact (Eco-score) without decreasing the vehicle performances and other user satisfaction criteria. The Eco efficiency is a global index which accounts for both environmental impacts and user satisfaction. The Hybrid vehicles ability to overcome these two requirements depends on the optimal choice of their key mechanical, electric or hydraulic components. Some energy storage systems like ultra capacitors and hydraulic system are environmentally friendly and meet some user satisfaction criteria like daily cost, security, short charge/discharge duration and long life service. On the contrary, others like batteries have some times a environmental impact mitigate. The objective of this study is to establish a comparison between HEV (hybrid electric vehicle) and HHV(hybrid hydraulic vehicle) configuration by highlighting the effect of different energy storage systems (batteries, ultra capacitors, hydraulic system), mechanical and electric components sizes (engine, motors) upon the optimized HEV design taking care of both Eco-score and User satisfaction for different driving scenarios. The approach is formulated as a multidisciplinary optimization problem. At first, the HEV and HHV are modeled and simulated using ADVISOR (advanced vehicle simulator) with respect to several driving situations. Then emissions can be determined and the Ecoscore indicator can be calculated. User Satisfaction can be evaluated based on performance criteria extracted from ADVISOR simulation and on simple evaluation tools relying on the state-of-the art of technological information for safety, reliability and daily cost. The design problem is stated as follows: select mechanical, electric or hydraulic components (e.g. engine, motor and energy storage system sizes) to minimize the Ecoscore indicator and to maximize user satisfaction criteria subject to catalogue constraints on the choice of the components. The approach is illustrated on applications dealing with mild parallel hybrid buses. Results show that the hybrid electric buses using ultra capacitors have almost the same performances as those using batteries. However, the preferred choice would go towards super capacities because they have other appreciable properties compared to the batteries: the very high lifetime, high efficiency of charge and discharge and no polluting recyclability. Despite a smaller fuel saving than a HEV, the HHV technology has a chance to compete with HEV because of the hydraulic components low cost (industrial maturity), no pollutants recyclability due to the possible using of water as motor/pump fluid. HHV technology is a possible alternative in niche markets such as urban buses; bin-lorries or heavy urban delivery vehicles.
机译:车辆动力总成混合动力系统的主要目标是在不降低车辆性能和其他用户满意度标准的情况下,改善燃油消耗和环境污染物的影响(生态得分)。生态效率是一项全球指标,同时考虑了环境影响和用户满意度。混合动力汽车克服这两个要求的能力取决于其关键机械,电气或液压组件的最佳选择。诸如超级电容器和液压系统之类的一些能量存储系统是环保的,并且满足一些用户满意度标准,例如日常成本,安全性,较短的充电/放电持续时间和较长的使用寿命。相反,电池等其他产品有时会减轻环境影响。这项研究的目的是通过重点介绍不同的储能系统(电池,超级电容器,液压系统),机械和电气组件尺寸(HEV)和HHV(混合液压车)配置之间的比较(优化的混合动力汽车设计,同时兼顾了生态分数和用户对不同驾驶场景的满意度。该方法被表述为多学科优化问题。首先,针对几种驾驶情况,使用ADVISOR(高级车辆模拟器)对HEV和HHV进行建模和仿真。然后可以确定排放并可以计算Ecoscore指标。用户满意度可基于从ADVISOR仿真中提取的性能标准以及基于安全性,可靠性和日常成本的最新技术信息的简单评估工具进行评估。设计问题陈述如下:选择机械,电气或液压组件(例如,发动机,电动机和能量存储系统的尺寸)以最小化Ecoscore指示器并最大化用户满意度标准,但要根据组件选择的目录限制。在处理轻度并行混合总线的应用中说明了该方法。结果表明,使用超级电容器的混合动力公交车的性能几乎与使用电池的混合动力车相同。但是,首选的选择将是超级容量,因为与电池相比,它们还有其他明显的特性:非常长的使用寿命,高效率的充电和放电以及无污染的可回收性。尽管比HEV节省的燃料少,但是HHV技术仍有机会与HEV竞争,因为其液压部件成本低(工业成熟度),并且由于可以将水用作电动机/泵油而没有污染物的可回收性。在诸如城市公交车之类的细分市场中,HHV技术是一种可能的替代方案。垃圾箱卡车或重型城市运载工具。

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