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首页> 外文期刊>Control Systems Technology, IEEE Transactions on >Puddle Dynamics and Air-to-Fuel Ratio Compensation for Gasoline-Ethanol Blends in Flex-Fuel Engines
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Puddle Dynamics and Air-to-Fuel Ratio Compensation for Gasoline-Ethanol Blends in Flex-Fuel Engines

机译:弹性燃料发动机中汽油-乙醇混合物的水坑动力学和空燃比补偿

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摘要

Ethanol is being increasingly used as an alternative fuel to petroleum-based gasoline and diesel derivatives. Currently available flexible fuel vehicles (FFVs) can operate on a blend of gasoline and ethanol in any concentration of up to 85% ethanol (93% in Brazil) with minimum hardware modifications. This flexibility is partly achieved through the closed-loop air-to-fuel ratio control which maintains automatically operation around the stoichiometric ratio. Precise transient air-to-fuel ratio (AFR) control depends however on a feedforward compensator that reduces the transient effects of fuel puddle dynamics. An accurate and tunable model of the fuel puddle dynamics for gasoline-ethanol blends is, thus, necessary for the purpose of AFR control. In this paper, we propose a physics-based fuel puddle model that may be used for control purposes in flex-fuel vehicles. In particular, the gasoline-ethanol blend is modeled using several chemical compounds and is parameterized by ethanol content. The model consists of a droplet evaporation model and a single-puddle vaporization model. The droplet evaporation model is simulated offline to generate port wall-impacting factors of injected fuel to be used in a single-puddle vaporization model. The single-puddle vaporization model is a cycle-based model that may be simulated online to characterize fuel puddle dynamics in port fuel injected engines. To verify the validity of the model, simulation results are compared with limited experimental data. A transient fuel compensator based on the proposed model is also formulated.
机译:乙醇正越来越多地用作石油基汽油和柴油衍生物的替代燃料。当前可用的柔性燃料汽车(FFV)可以在汽油和乙醇的混合物中运行,乙醇浓度最高可达到85%(巴西为93%),而硬件改动最少。这种灵活性部分是通过闭环空燃比控制实现的,该控制可在化学计量比附近保持自动运行。但是,精确的瞬态空燃比(AFR)控制取决于前馈补偿器,该前馈补偿器可减少燃料熔池动态变化的瞬态影响。因此,出于AFR控制的目的,对于汽油-乙醇混合物的燃料熔池动力学,需要精确而可调节的模型。在本文中,我们提出了一种基于物理的燃料水坑模型,该模型可用于弹性燃料汽车的控制目的。特别地,使用几种化合物对汽油-乙醇混合物进行建模,并通过乙醇含量对其参数化。该模型由液滴蒸发模型和单池蒸发模型组成。离线模拟液滴蒸发模型,以生成将在单池蒸发模型中使用的喷射燃料的端口壁影响因素。单坑汽化模型是基于周期的模型,可以在线对其进行仿真,以表征港口燃油喷射发动机中的燃料坑动态。为了验证模型的有效性,将模拟结果与有限的实验数据进行了比较。还提出了基于所提出模型的瞬态燃料补偿器。

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