Patents by Inventor Kenji Itagaki

Kenji Itagaki has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Patent number: 11021154
    Abstract: In a hybrid vehicle, each of an engine and an MG1 is mechanically coupled to a drive wheel with a planetary gear being interposed. The planetary gear and an MG2 are configured such that motive power output from the planetary gear and motive power output from the MG2 are transmitted to the drive wheel as being combined. When a first condition is satisfied during traveling of the vehicle, a controller stops combustion in the engine and performs motoring by the MG1 such that the planetary gear outputs deceleration torque. When a second condition in addition to the first condition is satisfied (YES in S20) during deceleration of the hybrid vehicle with deceleration torque, the controller performs motoring with throttle opening being set to first opening or larger and WGV opening being set to second opening or smaller.
    Type: Grant
    Filed: February 24, 2020
    Date of Patent: June 1, 2021
    Assignee: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi Yonezawa, Satoshi Yoshizaki, Osamu Maeda, Daigo Ando, Yoshikazu Asami, Kenji Itagaki, Shunsuke Oyama, Koichiro Muta
  • Patent number: 10982548
    Abstract: An impeller includes a disk that has tubular first and second disk members, a blade that is integrally provided with the second disk member, and a cover that is integrally provided with the blade and covers the blade. The first disk member has a ring-shaped recessed portion therein. The second disk member has a ring-shaped engaging portion that is configured to engage with the first disk member by being inserted into the recessed portion. A first shrink-fitting portion is provided in a boundary portion between an outer circumferential surface of the engaging portion and an inner circumferential surface of the recessed portion that comes into contact with the outer circumferential surface.
    Type: Grant
    Filed: February 20, 2017
    Date of Patent: April 20, 2021
    Assignee: MITSUBISHI HEAVY INDUSTRIES COMPRESSOR CORPORATION
    Inventors: Nobuyori Yagi, Akihiko Morikawa, Shinichiro Tokuyama, Hiroki Takagi, Kenji Itagaki
  • Publication number: 20210061250
    Abstract: A hybrid vehicle includes an engine; an output member, a rotary electric machine; and a power dividing mechanism including an input element coupled to the engine, a reaction force element coupled to the rotary electric machine, and an output element coupled to the output member. Further, the rotary electric machine is provided such that, in order that a torque corresponding to required engine torque based on an acceleration request is applied to the drive wheel, a reaction torque corresponding to the required engine torque is output, the reaction torque of the rotary electric machine is output when an engine speed is equal to or higher than a predetermined value, and, when the engine speed is lower than the predetermined value, an engine speed increase rate is maximized regardless of an accelerator opening degree.
    Type: Application
    Filed: December 25, 2018
    Publication date: March 4, 2021
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Kenji ITAGAKI, Taro MOTEKI, Koichi KATO
  • Publication number: 20210061086
    Abstract: A hybrid vehicle includes: an engine; an output member transmitting a driving force to drive wheels; a rotating electric machine; and a power split mechanism splitting and transmitting a driving force from the engine to the output member and the rotating electric machine. Further, the power split mechanism includes an input element, connected to the engine; a reaction force element, connected to the rotating electric machine; and an output element, connected to the output member, when an engine rotation speed is to be increased, an engine torque is output by adding an engine inertia torque to an engine required torque, and a reaction force torque, corresponding to the engine required torque, is output by the rotating electric machine, and a feedback torque, constituting a feedback system with respect to a target rotation speed of the engine, is output as the reaction force torque of the rotating electric machine.
    Type: Application
    Filed: December 25, 2018
    Publication date: March 4, 2021
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventor: Kenji ITAGAKI
  • Publication number: 20200370484
    Abstract: A vehicle includes an engine including an injector of cylinder injection type and a forced induction device, a second motor generator that generates electric power with an output torque of the engine, and an ECU that controls the engine and the second motor generator. When an amount of intake air and a fuel pressure of the engine decrease in boosting of suctioned air by the forced induction device, the ECU reduces a decrease in the amount of intake air during a period in which an injection amount is equal to a minimum injection amount, and when an excessive torque is generated in the output torque of the engine along with reducing a decrease in the amount of intake air, the ECU absorbs the excessive torque by a power generation operation of the second motor generator.
    Type: Application
    Filed: May 4, 2020
    Publication date: November 26, 2020
    Applicant: Toyota Jidosha Kabushiki Kaisha
    Inventors: Koichi Yonezawa, Satoshi Yoshizaki, Osamu Maeda, Daigo Ando, Yoshikazu Asami, Kenji Itagaki, Shunsuke Oyama, Koichiro Muta
  • Publication number: 20200362782
    Abstract: An indicator control system includes an indicator configured to show a rotational speed of an internal combustion engine, and a controller configured to control an indicated rotational speed, which is the rotational speed to be shown by the indicator. The controller is configured such that, during a specific period in which the rotational speed of the internal combustion engine is reduced from a first rotational speed to a rotational speed lower than the first rotational speed and then increased to a second rotational speed higher than the first rotational speed, the controller increases the indicated rotational speed to the second rotational speed without reducing the indicated rotational speed from the first rotational speed to the rotational speed lower than the first rotational speed.
    Type: Application
    Filed: May 1, 2020
    Publication date: November 19, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventor: Kenji ITAGAKI
  • Publication number: 20200361443
    Abstract: A vehicle includes an engine, a first MG, a planetary gear mechanism to which the engine, the first MG, and a counter shaft are connected, and an HV-ECU configured to control the engine and the first MG. The engine includes a turbocharger that boosts suctioned air to be fed to the engine. The HV-ECU controls the engine and the first MG to initially decrease the engine's rotation speed and simultaneously increase torque that the engine generates when on a map indicating a relationship between the engine's rotation speed and torque generated by the engine the controller shifts a first operating point to a second operating point at which torque generated by the engine and the rotation speed of the engine are higher than at the first operating point and the turbocharger boosts suctioned air.
    Type: Application
    Filed: April 17, 2020
    Publication date: November 19, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventor: Kenji ITAGAKI
  • Publication number: 20200361470
    Abstract: The hybrid vehicle includes an engine having a throttle valve and a forced induction device, a second MG (a motor generator), a drive wheel connected to the engine and the second MG, and a controller (an HV-ECU). While the forced induction device performs boosting, the controller performs a reduction rate restricting process for restricting a target engine torque reduction rate in magnitude to be less than an upper limit rate to prevent a throttle opening degree from rapidly decreasing. Further, the controller performs MG regenerative control for controlling the second MG so that regenerative braking by the second MG compensates for engine brake reduced by the reduction rate restricting process.
    Type: Application
    Filed: April 29, 2020
    Publication date: November 19, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi Yoshizaki, Osamu Maeda, Daigo Ando, Yoshikazu Asami, Kenji Itagaki, Shunsuke Oyama, Koichiro Muta
  • Publication number: 20200331453
    Abstract: A vehicle includes: a motor generator; an engine having a forced induction device; and a HV-ECU. An operation region of the engine includes a PM generating region in which an amount of particulate matters included in exhaust gas of the engine is more than a predetermined amount due to a load of the engine being abruptly increased during boosting by the forced induction device. The PM generating region is a low-rotation and high-torque region. When assistance by the motor generator is sufficiently obtained and the engine is operated in the PM generating region, the HV-ECU restricts an increasing rate of the torque of the engine to be less than or equal to an upper limit rate. The HV-ECU complements, by the torque of the motor generator, the torque of the engine restricted by restricting the increasing rate of the torque of the engine.
    Type: Application
    Filed: April 9, 2020
    Publication date: October 22, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi YOSHIZAKI, Osamu MAEDA, Daigo ANDO, Yoshikazu ASAMI, Kenji ITAGAKI, Shunsuke OYAMA, Koichiro MUTA
  • Publication number: 20200325839
    Abstract: When it is determined that control of warm-up of a catalyst is necessary at the time of start of an engine, an ECU starts warm-up control. Initially, the ECU performs first processing for a first set time period. In the first processing, the ECU sets the engine to an idle state and fully opens a waste gate valve. When the first set time period has elapsed since the first processing was started, the ECU performs second processing. In the second processing, the ECU sets the engine to a prescribed rotation speed and fully closes the waste gate valve. When a second set time period has elapsed since the second processing was started, the ECU quits the second processing and quits warm-up control.
    Type: Application
    Filed: April 7, 2020
    Publication date: October 15, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi Yonezawa, Satoshi Yoshizaki, Osamu Maeda, Daigo Ando, Yoshikazu Asami, Kenji Itagaki, Shunsuke Oyama, Koichiro Muta
  • Publication number: 20200317186
    Abstract: A vehicle includes an engine, a first MG, a planetary gear mechanism, a battery that stores power generated by the first MG and supplies the stored power to the first MG, and an HV-ECU that controls the engine and the first MG. The engine includes a turbo. A boost line is determined on a map representing a relationship between the rotation speed of the engine and torque generated by the engine, and the turbo boosts suctioned air when torque generated by the engine, as indicated by an operating point on the map, exceeds the boost line. The HV-ECU controls the engine and the first MG so that when the allowable value Wout of power output from the battery is small, the operating point exceeds the boost line at a higher rotation speed than when the allowable value Wout is large.
    Type: Application
    Filed: March 24, 2020
    Publication date: October 8, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi Yoshizaki, Osamu Maeda, Daigo Ando, Yoshikazu Asami, Kenji Itagaki, Shunsuke Oyama, Koichiro Muta
  • Publication number: 20200317214
    Abstract: When a learning condition is satisfied, an ECU starts learning processing and controls opening of a throttle valve in accordance with a first map. The ECU calculates a difference between an actual rotation speed and a target rotation speed of the engine at the current time. When magnitude of the difference is equal to or larger than a prescribed value, the ECU performs second learning processing. In second learning processing, the ECU controls a first MG to set a rotation speed of the engine to an idle rotation speed by using output torque from the first MG. How much the throttle valve's opening is corrected is calculated based on torque of the first MG required for setting the rotation speed of the engine to the idle rotation speed, and opening of the throttle valve is updated. The first map is updated based on updated opening of the throttle valve.
    Type: Application
    Filed: April 3, 2020
    Publication date: October 8, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi Yonezawa, Satoshi Yoshizaki, Osamu Maeda, Daigo Ando, Yoshikazu Asami, Kenji Itagaki, Shunsuke Oyama, Koichiro Muta
  • Publication number: 20200318588
    Abstract: A vehicle includes an engine, a first motor generator coupled to the engine, and an HV-ECU that performs motoring control of rotating a crankshaft of the engine by the first motor generator. The engine includes an intake air passage, a forced induction device provided in the intake air passage, and an air flow meter that detects a flow rate of air (suctioned air amount) that passes through the intake air passage. The HV-ECU diagnoses air leakage as occurring in the intake air passage when the suctioned air amount is less than a reference amount during the motoring control.
    Type: Application
    Filed: March 17, 2020
    Publication date: October 8, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi Yoshizaki, Osamu Maeda, Daigo Ando, Yoshikazu Asami, Kenji Itagaki, Shunsuke Oyama, Koichiro Muta
  • Publication number: 20200307547
    Abstract: A hybrid vehicle includes: an internal combustion engine; a rotating electric machine; a planetary gear mechanism to which the internal combustion engine, the rotating electric machine and an output shaft are connected; a filter that traps a particulate matter contained in exhaust gas of the internal combustion engine; and a controller that controls the internal combustion engine and the rotating electric machine. When the controller performs a regeneration control to combust a particulate matter accumulated in the filter, the controller controls the internal combustion engine and the rotating electric machine to shift an operating point on a map representing a relationship between rotation speed of the internal combustion engine and torque generated by the internal combustion engine to a side on which generated torque is smaller so that the filter has a temperature within a regeneration temperature range enabling the regeneration control to be performed.
    Type: Application
    Filed: March 25, 2020
    Publication date: October 1, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi YOSHIZAKI, Osamu MAEDA, Daigo ANDO, Yoshikazu ASAMI, Kenji ITAGAKI, Shunsuke OYAMA, Koichiro MUTA
  • Publication number: 20200307550
    Abstract: A vehicle includes an engine including a forced induction device, a knock sensor and a crank angle sensor that detect an occurrence of LSPI, a battery that supplies electric power to a second motor generator, and an ECU. When an occurrence of the LSPI is detected, the ECU restricts a maximum torque, which can be output by the engine with the forced induction device, more than when an occurrence of the LSPI is not detected to prevent an engine operating point from being included in an LSPI area, and when an output of the engine becomes insufficient along with the restriction on the maximum torque, the engine compensates for an amount of the insufficient output with electric power supplied from the battery.
    Type: Application
    Filed: March 25, 2020
    Publication date: October 1, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi YOSHIZAKI, Osamu MAEDA, Daigo ANDO, Yoshikazu ASAMI, Kenji ITAGAKI, Shunsuke OYAMA, Koichiro MUTA
  • Publication number: 20200307546
    Abstract: An HV-ECU performs processing including calculating requested system power, calculating requested engine power when an engine activation request has been issued, setting an operating point on a predetermined operating line, setting an upper limit value of magnitude of an amount of lowering in engine rotation speed to a first value when a vehicle is in a sport running state and when the previous operating point is within a forced induction range, setting the upper limit value to a second value when the vehicle is not in the sport running state or when the previous operating point is not within the forced induction range, correcting the operating point, and outputting an engine operation state command, a first MG torque command, and a second MG torque command.
    Type: Application
    Filed: March 16, 2020
    Publication date: October 1, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi YOSHIZAKI, Osamu MAEDA, Daigo ANDO, Yoshikazu ASAMI, Kenji ITAGAKI, Shunsuke OYAMA, Koichiro MUTA
  • Publication number: 20200307548
    Abstract: An HV-ECU performs processing including controlling an engine to be in a non-forced induction operation state when an engine has been on and when an engine stop request has been issued, performing processing for stopping the engine when a predetermined first period has elapsed, restricting forced induction and output when the engine stop request has not been issued and when a current time point is immediately after start of the engine, canceling restriction when a predetermined second period has elapsed, and controlling the engine with a position on a higher rotation speed side than a current operating point along an equal power line being set as an operating point when the current time point is not immediately after start of the engine and when a negative pressure is insufficient.
    Type: Application
    Filed: March 16, 2020
    Publication date: October 1, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi YOSHIZAKI, Osamu MAEDA, Daigo ANDO, Yoshikazu ASAMI, Kenji ITAGAKI, Shunsuke OYAMA, Koichiro MUTA
  • Publication number: 20200309005
    Abstract: A hybrid vehicle includes: an internal combustion engine; a rotating electric machine; a planetary gear mechanism to which the internal combustion engine, the rotating electric machine and an output shaft are connected; a catalyst that purifies exhaust gas of the internal combustion engine; and a controller that controls the internal combustion engine and the rotating electric machine. The controller controls the internal combustion engine and the rotating electric machine to perform catalyst temperature control to shift an operating point on a map representing a relationship between rotation speed of the internal combustion engine and torque generated by the internal combustion engine so that the catalyst has a temperature within an appropriate temperature range. Degradation of the catalyst can be suppressed without deteriorating the function of the catalyst.
    Type: Application
    Filed: March 23, 2020
    Publication date: October 1, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi YOSHIZAKI, Osamu MAEDA, Daigo ANDO, Yoshikazu ASAMI, Kenji ITAGAKI, Shunsuke OYAMA, Koichiro MUTA
  • Publication number: 20200307369
    Abstract: In a hybrid vehicle, each of an engine and an MG1 is mechanically coupled to a drive wheel with a planetary gear being interposed. The planetary gear and an MG2 are configured such that motive power output from the planetary gear and motive power output from the MG2 are transmitted to the drive wheel as being combined. The engine includes a turbocharger, an EGR valve, and a WGV. When opening of the EGR valve exceeds first opening, a controller maintains opening of the WGV at second opening or larger.
    Type: Application
    Filed: February 27, 2020
    Publication date: October 1, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi Yonezawa, Satoshi Yoshizaki, Osamu Maeda, Daigo Ando, Yoshikazu Asami, Kenji Itagaki, Shunsuke Oyama, Koichiro Muta
  • Publication number: 20200298823
    Abstract: An HV-ECU calculates requested output torque Tec based on requested power and compares the requested output torque with controlled upper limit torque Teth. When requested output torque Tec has attained to controlled upper limit torque Teth, the HV-ECU restricts output torque of engine to controlled upper limit torque Teth and calculates actual output torque Ter at that time. Then, the HV-ECU calculates a difference (differential torque ?Te) between controlled upper limit torque Teth and actual output torque Ter. The HV-ECU learns controlled upper limit torque Teth based on differential torque ?Te.
    Type: Application
    Filed: March 6, 2020
    Publication date: September 24, 2020
    Applicant: TOYOTA JIDOSHA KABUSHIKI KAISHA
    Inventors: Koichi YONEZAWA, Satoshi YOSHIZAKI, Osamu MAEDA, Daigo ANDO, Yoshikazu ASAMI, Kenji ITAGAKI, Shunsuke OYAMA, Koichiro MUTA