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    • 1. 发明授权
    • Vehicle driving condition detection device
    • 车辆行驶状况检测装置
    • US06374172B1
    • 2002-04-16
    • US09684923
    • 2000-10-10
    • Hiroyuki YamaguchiKatsuhiro AsanoYasushi AmanoKenji TozuAkitaka Nishio
    • Hiroyuki YamaguchiKatsuhiro AsanoYasushi AmanoKenji TozuAkitaka Nishio
    • B60T824
    • B60W40/103B60T8/172B60T2210/22B60T2230/02B60W30/18172B60W2050/0028B60W2550/12B60W2550/142B62D6/04G01L5/20
    • A vehicle driving condition detection device is adapted to detect a vehicle running along a banked or laterally sloping road, as well as a lateral acceleration, and sideslip angle with good accuracy. The sideslip angle is estimated at a vehicle-body sideslip angle estimating circuit based on a steering angle &dgr;f, a lateral acceleration ÿ, a yaw rate {dot over (&thgr;)}, and a vehicle speed V. In addition, using a differentiating device, the estimated sideslip angle is differentiated to calculate a slip angular velocity. A subtracting device is provided at which a deviation is calculated between the slip angular velocity and a slip angular velocity detected at a slip angular velocity calculating circuit. The deviation can detect a banked or laterally sloping road due to the fact that the detected slip angular velocity at the slip angular velocity calculating circuit includes the gravity acceleration component that depends on the slope or bank of the road. Upon detecting a banked or sloping road, a deviation &Dgr;ÿ (={dot over (&thgr;)}·V−ÿ) is outputted from a switching device, and at a subtracting device the detected lateral acceleration ÿ is corrected by being subtracted with the deviation &Dgr;ÿ. On the basis of the resultant or corrected lateral acceleration ÿ, the vehicle-body sideslip angle is estimated. Such an estimation is made irrespective of the slope or bank of the road.
    • 车辆驾驶状况检测装置适用于检测沿着横向倾斜的道路行驶的车辆以及横向加速度和高精度的侧滑角。 在基于转向角增量,横向加速度ÿ,偏航率{点(θ))和车速V的车身侧滑角估计电路估计侧滑角。另外,使用微分装置 ,估计的侧滑角被差分以计算滑移角速度。 提供一种减法装置,在该减法装置中计算滑移角速度与在滑动角速度计算电路处检测到的滑移角速度之间的偏差。 由于在滑移角速度计算电路处检测到的滑动角速度包括取决于道路的坡度或堤岸的重力加速度分量,偏差可以检测堤岸或横向倾斜的道路。 在检测到一条倾斜的道路时,从切换装置输出偏差DELTAÿ(= {dot over(θ)} V-ÿ),在减法装置中,通过用偏差减去检测到的横向加速度ÿ DELTAÿ。 基于所得到的或校正的横向加速度is,估计车身侧滑角度。 无论道路的坡度还是堤岸,都做出这样的估计。
    • 2. 发明授权
    • Vehicle running condition judgement device
    • 车辆运行状态判断装置
    • US06308115B1
    • 2001-10-23
    • US09361996
    • 1999-07-28
    • Hiroyuki YamaguchiKatsuhiro AsanoKenji TozuTakayuki ItohAkitaka Nishio
    • Hiroyuki YamaguchiKatsuhiro AsanoKenji TozuTakayuki ItohAkitaka Nishio
    • G06F770
    • B60W40/064B60T8/172B60T2270/86B60W40/101B60W40/103B60W2550/12B62D6/04B62D7/159
    • A vehicle running condition judgment device for accurately detecting a change in a road surface condition and a vehicle's limit running condition. With substitution of respective tire characteristics and a detected state quantity into a vehicle motion model, vehicle slip angles are estimated for respective assumed road surface conditions. Based on the current state quantity and the last estimated vehicle slip angle, currently estimated vehicle slip angles for the respective assumed road surface conditions are compensated. A differential operation section calculates an estimation value of a vehicle slip angular velocity for each of the assumed road surface conditions based on the compensated vehicle slip angles for the respective assumed road surface conditions. Meanwhile, an operation section calculates a detection value of a vehicle slip angular velocity based on the detected state quantity. By comparing the detection value and the respective estimation values for the assumed road surface conditions, the current road surface condition is determined. Further, a lateral acceleration is calculated based on a vehicle slip angle, and compared with the detection value for determination of the road surface condition, and also with a predetermined limit value for determination of a vehicle's limit running condition.
    • 一种车辆行驶状态判断装置,用于准确地检测路面状况和车辆极限行驶状态的变化。 通过将各轮胎特性和检测到的状态量替换为车辆运动模型,针对相应的假定路面条件估计车辆滑行角度。 基于当前状态量和最后估计的车辆滑移角度,对各个假设路面条件的当前估计车辆滑移角进行补偿。 差分运算部根据各假定路面条件的补偿车辆滑移角,计算出各假定路面条件下的车辆滑行角速度的推定值。 同时,操作部根据检测到的状态量来计算车辆滑行角速度的检测值。 通过比较所述假设路面条件的检测值和各自的估计值,确定当前路面状况。 此外,基于车辆滑移角计算横向加速度,并且与用于确定路面状况的检测值进行比较,并且还与用于确定车辆极限行驶状态的预定极限值进行比较。
    • 8. 发明授权
    • Device and method for estimating physical quantity and device and method for ABS control
    • 用于估算物理量的装置和方法以及用于ABS控制的装置和方法
    • US06447076B1
    • 2002-09-10
    • US09407894
    • 1999-09-29
    • Shoji ItoEiichi OnoMasaru SugaiTakaji UmenoKatsuhiro AsanoHiroyuki YamaguchiSatoru Onozawa
    • Shoji ItoEiichi OnoMasaru SugaiTakaji UmenoKatsuhiro AsanoHiroyuki YamaguchiSatoru Onozawa
    • B60T860
    • B60T8/172
    • A wheel velocity signal for each wheel detected by a wheel velocity sensor is input to a bandpass filter. Signals from frequency bands unrelated to the unsprung resonance are then removed from the wheel velocity signal and only signals from frequency bands related to the unsprung resonance are output. A road surface &mgr; gradient estimation device uses an online identification method to identify an damping ratio of a second order resonance model similar to a suspension—tire resonance model from the signal output from the bandpass filter. The road surface &mgr; gradient is then estimated from the identified damping ratio. The damping ratio of the second order resonance model corresponds to the road surface &mgr; gradient in the following manner: when the damping ratio is identified as being small, the road surface &mgr; gradient is estimated as being large; and when the road surface &mgr; gradient is identified as being large, the damping ratio is estimated as being small.
    • 由车轮速度传感器检测到的每个车轮的车轮速度信号被输入到带通滤波器。 然后从不同于簧下共振的频带发出的信号从车轮速度信号中除去,并且仅输出与非簧下共振相关的频带的信号。 路面mu梯度估计装置使用在线识别方法从与带通滤波器输出的信号相似的悬挂轮胎共振模型中识别类似于二次谐振模型的阻尼比。 然后根据所识别的阻尼比估计路面μm梯度。 二次谐振模型的阻尼比以下列方式对应于路面μ0的梯度:当阻尼比被识别为小时,路面μ0的梯度被估计为较大; 并且当路面μm梯度被识别为大时,阻尼比被估计为小。
    • 9. 发明授权
    • Braking estimation device, anti-lock brake controller, and braking pressure controller
    • 制动估计装置,防抱死制动控制器和制动压力控制器
    • US06182001B2
    • 2001-01-30
    • US08996316
    • 1997-12-22
    • Masaru SugaiKatsuhiro AsanoTakaji UmenoEiichi OnoHiroyuki Yamaguchi
    • Masaru SugaiKatsuhiro AsanoTakaji UmenoEiichi OnoHiroyuki Yamaguchi
    • G06F700
    • B60T8/885B60T2270/413
    • An apparatus for diagnosing a fault in a dynamic system includes a controller which controls the dynamic system through use of a control input signal and vibrates the dynamic system through use of an vibration signal irrelevant to the internal state quantity of the dynamic system; an observer for estimating, on the basis of a response output from the vibration dynamic system, total disturbance which is a sum of an internal disturbance vector stemming from a fault in the dynamic system and a vibration disturbance vector occurring in the dynamic system through vibration; a correlation calculation unit which calculates cross-correlation between the thus-estimated total disturbance and the internal state quantity of the dynamic system and separates a component related to the internal disturbance from the total disturbance; and a diagnostic unit for diagnosing a fault in the dynamic system on the basis of the thus-separated component related to the internal disturbance. Since the dynamic system is vibrated, the response output can be increased even when there exists small external disturbance. As a result, a fault or a variation in air pressure in a tire can be highly accurately diagnosed.
    • 用于诊断动态系统中的故障的装置包括控制器,其通过使用控制输入信号来控制动态系统,并通过使用与动态系统的内部状态量无关的振动信号来振动动态系统; 基于来自振动动态系统的响应输出,基于动态系统中的故障产生的内部干扰矢量与通过振动在动态系统中发生的振动干扰矢量之和的总干扰来估计观测器; 相关计算单元,其计算由此估计的总干扰与动态系统的内部状态量之间的互相关,并将与内部干扰有关的分量与全部干扰分离; 以及用于基于与内部干扰相关的如此分离的分量来诊断动态系统中的故障的诊断单元。 由于动态系统振动,即使存在小的外部干扰,响应输出也可以增加。 结果,可以高精度地诊断轮胎中的故障或空气压力的变化。