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    • 8. 发明授权
    • Method of operating a compression ignition engine
    • 操作压燃式发动机的方法
    • US08706380B2
    • 2014-04-22
    • US12727411
    • 2010-03-19
    • Robert Womersley
    • Robert Womersley
    • B60T7/12G06D1/00G06F7/00G06F17/00F02M7/00
    • F02D41/401F02D29/06F02D35/023F02D41/064F02D41/1448F02D2200/0406Y02T10/44
    • A method of operating a compression ignition engine, which includes at least one combustion chamber containing a piston, and a mechanically operated fuel injection pump apparatus. The method includes sensing the engine operating temperature with a first sensor, and providing input to a controller. The controller operates the fuel injection pump apparatus to deliver fuel to each of the combustion chambers according to a first timing regime when the engine operating temperature is above a threshold temperature, and according to a second, advanced timing, regime when the engine operating temperature is below the threshold temperature. The method further includes sensing the pressure in the combustion chambers with a second sensor. When the controller is operating the fuel injection pump apparatus according to the second timing regime and the combustion chamber pressure exceeds a desired pressure, the method includes changing operation from the second timing regime to the first timing regime.
    • 一种操作压缩点火式发动机的方法,其包括至少一个包含活塞的燃烧室,以及机械操作的燃料喷射泵装置。 该方法包括用第一传感器检测发动机工作温度,并向控制器提供输入。 当发动机工作温度高于阈值温度时,控制器操作燃料喷射泵装置以根据第一定时方式将燃料输送到每个燃烧室,并且当发动机工作温度为 低于阈值温度。 该方法还包括用第二传感器感测燃烧室中的压力。 当控制器根据第二定时方式操作燃料喷射泵装置并且燃烧室压力超过期望的压力时,该方法包括将操作从第二定时状态改变到第一定时状态。
    • 9. 发明授权
    • Control apparatus for internal combustion engine
    • 内燃机控制装置
    • US08651088B2
    • 2014-02-18
    • US13576828
    • 2010-11-12
    • Shigeyuki Urano
    • Shigeyuki Urano
    • F02M7/00F02P5/00
    • F02D41/00F02D41/0002F02D41/1498F02D2200/0402F02D2200/0406F02D2200/0408F02P5/1455Y02T10/42Y02T10/46
    • In an internal combustion engine having an in-cylinder pressure sensor provided on each cylinder, an in-cylinder pressure detection value is corrected into an absolute pressure using an absolute pressure correction value Pr by calculating the absolute pressure correction value Pr (=(P2V2κ−P1V1κ)/(V1κ−V2κ)) from in-cylinder pressure detection values P1 and P2, in-cylinder volumes V1 and V2, and a specific heat ratio K at predetermined crank angles θ1 and θ2 during the adiabatic compression stroke from IVC to the ignition timing. When the adiabatic compression stroke (ignition timing−IVC) is shorter than a predetermined crank angle period CAth, the ignition timing is delayed. When the adiabatic compression stroke is longer than or equal to CAth, IVC is advanced. Preferably, a torque variation is suppressed by controlling the ignition timing of each cylinder before IVC is advanced.
    • 在具有设置在各气缸上的缸内压力传感器的内燃机中,通过计算绝对压力校正值Pr(=(P2V2kappa)),使用绝对压力校正值Pr将缸内压力检测值校正为绝对压力, 来自缸内压力检测值P1和P2,缸内体积V1和V2以及在IVC到绝热压缩冲程期间在预定曲柄角θ1和θ2处的比热比K的P1V1kappa)/(V1kappa-V2kappa)) 点火正时 当绝热压缩冲程(点火正时IVC)比预定的曲柄角周期CAth短时,点火正时被延迟。 当绝热压缩冲程大于或等于CAth时,IVC先进。 优选地,在IVC前进之前通过控制每个气缸的点火正时来抑制转矩变化。