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    • 12. 发明授权
    • Electronic learning control apparatus for internal combustion engine
    • 内燃机电子学习控制装置
    • US4881505A
    • 1989-11-21
    • US260003
    • 1988-10-19
    • Naoki Tomisawa
    • Naoki Tomisawa
    • F02D41/14F02D41/26
    • F02D41/266F02D41/14F02D41/2454F02D41/248
    • Disclosed is an electronic learning control apparatus for an internal combustion engine, in which a basic control quantity corresponding to a target control value is corrected and computed by a feedback correction value to determine a control quantity and an objective parameter to be controlled is controlled by a static control quantity through control means. The entire deviation of the feedback correction value from a predetermined reference value is separated into deviations for respective error causes according to predetermined analysis rules, and a learning correction value for each error cause is computed according to the separated deviation for each error cause, and the basic control quantity is corrected based on the learing correction value for each error cause to obtain a final optimum control quantity. In this apparatus, the learning speed is increased and the learning correction precision can be improved.
    • 公开了一种用于内燃机的电子学习控制装置,其中对应于目标控制值的基本控制量通过反馈校正值进行校正和计算,以确定控制量,并且控制目标参数由 通过控制方式实现静态控制量。 根据预定的分析规则将反馈校正值与预定参考值的整体偏差分离成各个误差原因的偏差,并且根据每个误差原因的分离偏差计算每个误差原因的学习校正值,并且 基于每个误差的训练校正值来校正基本控制量,从而获得最终的最佳控制量。 在该装置中,增加学习速度,可以提高学习校正精度。
    • 14. 发明授权
    • Crank angle signal processing apparatus
    • 曲柄角度信号处理装置
    • US5815827A
    • 1998-09-29
    • US640384
    • 1996-04-30
    • Naoki TomisawaSatoru Watanabe
    • Naoki TomisawaSatoru Watanabe
    • F02D41/24F02D41/34F02D45/00G01P3/481G05B15/00G06F9/46
    • F02D41/28F02D41/0097G01P3/481
    • The present invention relates to a circuit for processing internal combustion engine crank angle sensor signals. The construction is such that an output side circuit of a crank angle sensor outputs a crank angle signal with a high level pulse generated in response to the switching on and off of a switch element connected in series to a power source. Moreover, an input side circuit of a signal processing circuit includes a voltage reducing circuit which pulls down a power source voltage applied at the time of pulse generation, to a predetermined voltage and supplies this to an arithmetic processing section. Consequently, the output signal at the time of no pulse generation becomes a low level so that influence from noise is minimized. Also, since the input signal at the time of momentary disconnection of terminals connecting between the crank angle sensor and the processing circuit is a low level, then erroneous recognition of pulse generation is prevented. Moreover, since at the time of pulse generation, current flows between the terminals, then terminal oxidation film is removed so that poor contact can also be prevented.
    • 内燃机曲轴转角传感器信号处理电路技术领域本发明涉及一种用于处理内燃机曲柄角传感器信号的电路。 该结构使得曲柄角传感器的输出侧电路输出具有响应于与电源串联连接的开关元件的接通和断开而产生的高电平脉冲的曲柄角信号。 此外,信号处理电路的输入侧电路包括将脉冲产生时施加的电源电压下拉到预定电压的电压降低电路,并将其提供给运算处理部。 因此,无脉冲产生时的输出信号成为低电平,使得噪声的影响最小化。 此外,由于在曲柄角传感器和处理电路之间连接的端子瞬时断开时的输入信号为低电平,所以防止脉冲产生的错误识别。 此外,由于在脉冲产生时,电流在端子之间流动,因此端子氧化膜被去除,从而也可以防止接触不良。
    • 19. 发明授权
    • Method and apparatus for control of a fuel quantity increase correction
amount for an internal combustion engine, and method and apparatus for
detection of the engine surge-torque
    • 用于控制内燃机的燃料量增加校正量的方法和装置,以及用于检测发动机喘振转矩的方法和装置
    • US5421305A
    • 1995-06-06
    • US186576
    • 1994-01-26
    • Naoki Tomisawa
    • Naoki Tomisawa
    • F02D35/02F02D41/06F02D41/14F02M7/00
    • F02D35/023F02D41/06F02D41/1497F02D2041/288
    • A water temperature base increase correction amount for an internal combustion engine is reducingly corrected while maintaining the level of the surge-torque below a fixed level. A time constant for updating of the reduction correction is set based on a delay time from supply of fuel until generation of torque from combustion of the fuel. In this way responsiveness to the fuel reduction correction can be maintained, enabling improvement in fuel costs and exhaust emissions. Furthermore, the detection of the surge-torque necessary for example, for the control of fuel reduction correction, involves detection of scatter in combustion pressures between cylinders, while at the same time detecting variations in combustion pressure occurring in the same cylinder. The surge-torque level is then detected on the basis of these results. Since the influence or the occurrence of surge-torque is greater at low speed in the case of the former, and at high speed in the case of the latter, good surge-torque detection can be achieved over the whole operating range.
    • 在将喘振转矩的水平维持在固定水平以下的同时,对内燃机的水温升高校正量进行减少校正。 基于从燃料供应到燃料燃烧产生转矩的延迟时间来设定更新减速校正的时间常数。 以这种方式,可以保持对减少燃料校正的响应性,从而能够改善燃料成本和废气排放。 此外,例如用于控制燃料减少校正所需的浪涌转矩的检测涉及检测气缸之间的燃烧压力的散射,同时检测在同一气缸中发生的燃烧压力的变化。 然后根据这些结果检测浪涌转矩水平。 由于浪涌转矩的影响或发生在前者的情况下在低速下较大,并且在后者的情况下高速,因此可以在整个工作范围内实现良好的浪涌转矩检测。