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Control Strategy Development of Natural Gas/Diesel Dual Fuel Engine for Heavy Duty Vehicle

机译:重型车辆天然气/柴油双燃料发动机的控制策略开发

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An applicable and comprehensive control strategy of a natural gas/diesel dual fuel engine is presented in this paper. The dual fuel engine is converted from a conventional mechanical pump, turbo charged, heavy duty diesel engine. In the dual fuel mode, the pedal position is explained as demanded total fuel quantity, the quantity of pilot diesel and natural gas are calculated in order to provide the equal energy with the original diesel engine at the same operation condition, the proportion of the natural gas is primarily determined by the load rate and the speed of the engine. When the engine is working under light or moderate load, the intake air is throttled in order to improve the brake mean effective pressure and reduce the hydrocarbon emissions of the dual fuel engine, according to target excess air ratio and the quantities of the two fuels, the desired air mass per cycle can be obtained. After that a mean value model based feedforward control is adopted to calculate the electronic throttle position, with a universal exhaust gas oxygen sensor, a proportional-integral controller is designed, therefore feedback control is introduced to the air/fuel ratio control system to enhance its accuracy and robustness. Verification test results show that: the engine which employs the control strategy in this paper can work stably and reliably with less calibration data; the air/fuel ratio is regulated accurately and quickly; dual fuel engine has better fuel economy even though its brake thermal efficiency is lower due to the comparatively low price of natural gas; intake throttling has significant effect on improving the economy and hydrocarbon emission of the dual fuel engine under light and moderate load.
机译:本文介绍了天然气/柴油双燃料发动机的适用和综合控制策略。双燃料发动机由传统的机械泵,涡轮增压,重型柴油发动机转换。在双燃料模式下,踏板位置被要求总燃料量,计算先导柴油和天然气的数量,以便在相同的操作条件下向原始柴油发动机提供相同的能量,自然的比例气体主要由负载率和发动机的速度决定。当发动机在光线或中等负载下工作时,进气量被节流,以改善制动器平均有效压力并减少双燃料发动机的碳氢化合物排放,根据目标过剩的空气比和两个燃料的数量,可以获得每循环所需的空气质量。之后,采用基于平均值模型的前馈控制来计算电子节气门位置,设计了一种比例整体控制器,因此将反馈控制引入空气/燃料比控制系统以增强其准确性和鲁棒性。验证测试结果表明:采用本文控制策略的发动机可以稳定可靠地使用较少的校准数据来工作;空气/燃料比准确且快速调节;双燃料发动机具有更好的燃油经济性,即使由于其制动热效率较低,由于天然气的相对低;进气节流对在光和中等负荷下改善双燃料发动机的经济和烃排放具有显着影响。

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