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    • 1. 发明授权
    • Engine control apparatus
    • US09624774B2
    • 2017-04-18
    • US14347025
    • 2011-09-28
    • Satoru Watanabe
    • Satoru Watanabe
    • B60T7/12F01B25/00F02D41/24F02D41/26G05B15/02F02D41/06
    • F01B25/00F02D41/068F02D41/2416F02D41/2422F02D41/266F02D2200/021F02D2200/0414F02D2200/501G05B15/02
    • It is a task of the invention to make it possible to calculate a control target value of one actuator or control target values of a plurality of actuators regarding engine control at a high speed through the use of a multicore processor. With a view to accomplishing this task, a plurality of lattice points that are arranged on a two-dimensional orthogonal coordinate system having axes representing a first operating condition and a second operating condition respectively are associated respectively with at least one or some of a plurality of cores that are arranged in a latticed manner on the multicore processor on one-on-one level on a same line as on the two-dimensional orthogonal coordinate system, and a calculation program for calculating an optimal control value at the associated lattice point or calculation programs for calculating optimal control values at the associated lattice points are allocated respectively to at least one or some of the plurality of the cores. In addition, each of the cores with which the lattice points are associated respectively is programmed, in a case where an operation area on the two-dimensional orthogonal coordinate system to which a current operating point belongs is an area that is defined by the lattice point associated with each of the cores itself, to transmit, to an interpolation calculation core, an optimal control value at the relevant lattice point that is calculated by each of the cores itself. The interpolation calculation core is programmed to perform an interpolation calculation of an optimal control value at the current operating point using optimal control values at all the lattice points that define the operation area on the two-dimensional orthogonal coordinate system to which the current operating point belongs. In addition, the multicore processor outputs the optimal control value at the current operating point, which is obtained from the interpolation calculation core, as a control target value of each of the actuators.
    • 2. 发明申请
    • CONTROL DEVICE DESIGN METHOD AND CONTROL DEVICE
    • 控制装置设计方法与控制装置
    • US20150378335A1
    • 2015-12-31
    • US14768606
    • 2014-02-12
    • Kota SATAJunichi KAKOSatoru WATANABEYuta SUZUKIMasato EDAHIRO
    • Kota SATAJunichi KAKOSatoru WATANABEYuta SUZUKIMasato EDAHIRO
    • G05B17/02
    • G05B17/02
    • The present invention relates to a control device design method for a control device that determines a manipulation amount of a control object having a dead time by feedback control so as to bring a control amount of the control object closer to a target value. The method according to the present invention includes a step of designing a feedback loop that computes a correction amount for the manipulation amount using a plurality of controllers including a prediction model of the control object, a step of deriving the same number of delay elements as the plurality of controllers from a dead time element of the prediction model, and a step of allocating the plurality of controllers associated with the delay elements to a plurality of arithmetic units so that the computation of the feedback loop is performed by parallel computation by the plurality of arithmetic units that operate in parallel.
    • 本发明涉及一种控制装置的控制装置设计方法,其通过反馈控制确定具有死区时间的控制对象的操作量,以使控制对象的控制量更接近目标值。 根据本发明的方法包括以下步骤:使用包括控制对象的预测模型的多个控制器来计算操作量的校正量的反馈回路的步骤,导出与所述控制对象相同数量的延迟元件的步骤 来自预测模型的死区时间元素的多个控制器,以及将与延迟元件相关联的多个控制器分配给多个算术单元的步骤,使得反馈回路的计算由多个 并行运算的算术单元。
    • 4. 发明申请
    • DATABASE SYSTEM AND DATABASE MANAGEMENT METHOD
    • 数据库系统和数据库管理方法
    • US20140297697A1
    • 2014-10-02
    • US13576365
    • 2012-07-11
    • Satoru WatanabeJunji Ogawa
    • Satoru WatanabeJunji Ogawa
    • G06F3/06
    • G06F3/061G06F3/0655G06F3/067G06F16/24569
    • The method includes (A) acquiring storage location information that can identify a volume that stores data and access type information, (B) acquiring volume management information that can identify the storage unit that stores the volume, (C) identifying the volume of data to be accessed, identifying the storage unit storing the volume, and identifying the storage method of the storage unit, (D) identifying the type of access to the data to be accessed, (E) determining whether the data needs to be moved to another storage unit of a different storage method based on the storage method and the type of access, and (F) giving an indication of moving the data if it is determined that the data needs to be moved in (E).
    • 该方法包括:(A)获取可以识别存储数据的卷的存储位置信息和访问类型信息,(B)获取可以识别存储卷的存储单元的卷管理信息,(C)识别数据量到 识别存储单元的存储单元,识别存储单元的存储方法,(D)识别要访问的数据的访问类型,(E)确定数据是否需要被移动到另一个存储器 基于存储方法和访问类型的不同存储方法的单元,以及(F)如果确定需要在(E)中移动数据,则给出移动数据的指示。
    • 9. 发明授权
    • Method for preparing mayenite-containing oxide and method for preparing electroconductive mayenite-containing oxide
    • 制备含钙锰氧化物的方法及其制备含导电钙铝氧化物的方法
    • US08377413B2
    • 2013-02-19
    • US13192568
    • 2011-07-28
    • Kazuhiro ItoSatoru WatanabeNaomichi MiyakawaSetsuro ItoKazunari Watanabe
    • Kazuhiro ItoSatoru WatanabeNaomichi MiyakawaSetsuro ItoKazunari Watanabe
    • C01F7/00
    • C01F7/164C01P2006/40
    • To provide a method for preparing a mayenite-containing oxide containing a mayenite type compound and having a hydride ion density of at least 1×1018/cm3 without need for expensive facilities, control of complicated reaction conditions or a long period of reaction time. A method for preparing a mayenite-containing oxide, which comprises a firing step of heating a starting material having a molar ratio of CaO:Al2O3 being from 9:10 to 14:5 based on the oxides at a temperature of from 900 to 1,300° C. to obtain a fired powder and a hydrogenation step of firing the fired powder at a temperature of at least 1,210° C. and lower than 1,350° C. in a hydrogen-containing gas having an oxygen partial pressure of at most 1,000 Pa to obtain a mayenite-containing oxide containing a mayenite type compound and having a hydride ion density of at least 1×1018/cm3, and a method for preparing an electroconductive mayenite-containing oxide, which comprises irradiating the obtained mayenite-containing oxide with an ultraviolet ray etc. to obtain a mayenite-containing oxide containing an electroconductive mayenite type compound.
    • 为了提供一种制备含有钙铝石型化合物并且氢化物离子密度为至少1×1018 / cm3而不需要昂贵的设备,控制复杂的反应条件或长时间的反应时间的钙铝氧化物的方法。 一种含有钙铝石的氧化物的制造方法,其特征在于,在900〜1300℃的温度下,对CaO:Al 2 O 3的摩尔比为9:10〜14:5的原料进行加热, 以获得烧制粉末和氢化步骤,在氧分压至多为1000Pa的含氢气体中,在至少1,210℃且低于1350℃的温度下焙烧烧制粉末至 得到含有钙铝石型化合物,含氢离子密度为1×1018 / cm3以上的含钙锰矿的氧化物,以及制造含导电性钙铝的氧化物的方法,其包括用紫外线照射所得到的含有钙铝的氧化物 以获得含有导电钙铝石型化合物的含有钙铝的氧化物。