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Effect of Gasoline-Ethanol Blends on GDI Engine to Reduce Cost of Vehicle Ownership

机译:汽油 - 乙醇混合对GDI发动机的影响降低车辆所有权成本

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A major challenge for combustion engine development is to optimize the engine for improved fuel economy, reduce greenhouse gases. Stringent CAFé and emission norms require the customer to pay higher capital on vehicles. To offset the cost of ownership- cheaper and alternative energy sources are being explored. Ethanol blend with regular Gasoline, and CNG are such alternative fuels. Reducing the consumption of Gasoline also helps India’s dependence on import of crude oil. The study was carried on turbo-charged gasoline direct injection engine. The effect of ethanol on engine and vehicle performance is estimated and simulated numerically. The work is split into three stages: first the base 1D engine performance model was calibrated to match the experimental data. In parallel, vehicle level Simulink model was built and calibrated to match the NEDC cycle performance. Second, the thermal efficiency of the ethanol blend is calculated as a linear function of theoretical Otto cycle efficiency. The engine performance for varying compression ratio & ethanol gasoline blend is studied for vehicle level using a MATLAB code. Third, 1D code was run to simulate the high-speed exhaust temperature & low speed knock intensity, this is used a tool to select the compression ratio and ethanol blend. NEDC results of benchmark GDI engine has been used as baseline for vehicle model to determine cost of ownership of various blends with various Compression Ratios. Engine level performance simulation was done in commercial 1D code to study the effect of ethanol blend and compression ratio on knock, exhaust temperature and specific fuel consumption. Combustion characteristics, friction losses have been taken to be same as the baseline engine. Cold start ability of various ethanol blends is not studied. Mechanical modifications required at engine and vehicle level to accommodate ethanol injectors are not considered. The effect of ethanol on aldehyde emission, cold start enrichment HC emissions, corrosion of engine components has not been considered. The optimal combination of CR and blend is restricted due to re-fuelling frequency constraint, knock limit of engine and max exhaust temperature. Fuel blend of 30% and a CR of 12 gives 10% ownership benefit, while a fuel blend of 20% with a CR of 11 gives a 7% ownership benefit. This paper provides a novel system level approach using a 1D commercial code & 0D model to select engine and vehicle characteristics according to the user requirement
机译:燃烧发动机开发的一项重大挑战是优化发动机,以改善燃油经济性,减少温室气体。严格的咖啡馆和排放规范要求客户在车辆上支付更高的资金。抵消所有权的成本 - 正在探索更便宜的和替代能源。乙醇与常规汽油混合,CNG是这种替代燃料。减少汽油消耗也有助于印度对原油进口的依赖。该研究进行了涡轮带电汽油直喷发动机。估计和模拟乙醇对发动机和车辆性能的影响。该工作分为三个阶段:首先,校准基地1D发动机性能模型以匹配实验数据。并行地,建立和校准了车级Simulink模型以匹配NEDC循环性能。其次,计算乙醇混合物的热效率作为理论奥托循环效率的线性函数。使用MATLAB代码研究了用于不同压缩比和乙醇汽油混合物的发动机性能。第三,运行1D代码以模拟高速排气温度和低速爆震强度,使用工具来选择压缩比和乙醇混合物。基准GDI发动机的NEDC结果已被用作车型的基线,以确定各种压缩比的各种共混物的成本。发动机级性能模拟是在商业1D代码中进行的,以研究乙醇混合物和压缩比对爆震,排气温度和特定燃料消耗的影响。燃烧特性,摩擦损失被采用与基线发动机相同。没有研究各种乙醇混合物的冷启动能力。发动机和车辆水平所需的机械修改不考虑容纳乙醇喷射器。乙醇对醛排放,冷启动富集HC排放的影响,尚未考虑发动机部件的腐蚀。由于重新燃料频率约束,发动机爆震限制和最大排气温度,Cr和混合物的最佳组合受到限制。燃料混合为30%,CR为12个给出10%的所有权效益,而燃油混合物的燃料混合为20%,11人的燃料混合为7%的所有权效益。本文提供了一种新颖的系统级方法,使用1D商业代码和0D模型根据用户要求选择发动机和车辆特性

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