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A PC-based fuel and ignition control system used to map the 3-D surfaces of torque and emissions versus air-fuel ratio and ignition timing

机译:用于映射扭矩和排放的3-D表面与空燃比和点火正时的PC基燃料和点火控制系统

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A system was designed for controlling fuel injection and ignition timing for use on a port fuel injected, gas-fueled engine. Inputs required for the system include manifold absolute pressure, manifold air temperature, a once per revolution crankshaft pulse, a once per cycle camshaft pulse, and a relative encoder pulse train to determine crank angle. A prototype card installed in the computer contains counters and discrete logic which control the timing of ignition and injection events. High current drivers used to control the fuel injector solenoids and coil primary current are optically isolated from the computer by the use of fiber optic cables. The programming is done in QuickBASIC running in real time on a 25 MHz 80486 personal computer. The system was used to control a gas-fueled spark ignition engine at various conditions to map the torque versus air-fuel ratio and ignition timing. Each surface was mapped for a given fuel flow and speed. At constant fuel flow, fuel composition, and engine speed, thermal efficiency is proportional to torque. Therefore, the air-fuel ratio and ignition timing for best torque is also that for best thermal efficiency. NO_x and HC maps were also measured to determine the tradeoffs between efficiency and emissions. Natural gas, propane, and propylene were used to determine the effect of different fuels. The results show that changing composition could have an effect on optimum air-fuel ratio and ignition timing. The engine used for the experiments was an in-line four cylinder Volkswagen 1.7 liter spark ignition engine with gaseous sequential port fuel injection.
机译:设计用于控制燃料喷射和点火正时用于注入的气体燃料发动机的燃料喷射和点火正时。系统所需的输入包括歧管绝对压力,歧管空气温度,每条旋转曲轴脉冲,一次每循环凸轮轴脉冲,以及一个相对编码器脉冲列车以确定曲柄角。计算机中安装的原型卡包含控制器和离散逻辑,该逻辑控制点火和注射事件的定时。通过使用光纤电缆,用于控制燃料喷射器螺线管和线圈初级电流的高电流驱动器通过使用光纤电缆光学隔离。编程在QuickBasic上实时完成,在25 MHz 80486个人计算机上实时运行。该系统用于在各种条件下控制气体燃料火花点火发动机,以映射扭矩与空燃比和点火正时。每个表面被映射到给定的燃料流量和速度。在恒定的燃料流动,燃料组合物和发动机速度下,热效率与扭矩成比例。因此,最佳扭矩的空燃比和点火正时也是最佳热效率。还测量了NO_X和HC地图以确定效率和排放之间的权衡。天然气,丙烷和丙烯用于确定不同燃料的作用。结果表明,改变的组合物可以对最佳空燃比和点火正时产生影响。用于实验的发动机是一个线上的四缸大众1.7升火花点火发动机,具有气态顺序端口燃料喷射。

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