ADDITIVE MANUFACTURING PROCESS PLAN OPTIMIZATION METHOD AND OPTIMIZER, AND ADDITIVE MANUFACTURING METHOD

    公开(公告)号:US20190079493A1

    公开(公告)日:2019-03-14

    申请号:US16109885

    申请日:2018-08-23

    Inventor: Yong YANG Yibo GAO

    Abstract: A process plan optimization method for manufacturing a workpiece by adding a material in a plurality of layers is provided. The method includes: building a predicting model, the predicting model configured to predict a temperature variation of at least a portion of the workpiece; predicting an expected temperature variation of the portion of the workpiece to be manufactured during a given time period based on the predicting model and the process plan; and adjusting the process plan in response to the expected temperature variation of the portion failing to meet a preset condition, to make the expected temperature variation of the portion meet the preset condition.

    CONTROL SYSTEM AND METHOD FOR MITIGATING ROTOR IMBALANCE ON A WIND TURBINE
    2.
    发明申请
    CONTROL SYSTEM AND METHOD FOR MITIGATING ROTOR IMBALANCE ON A WIND TURBINE 有权
    用于减轻风轮转子不平衡的控制系统和方法

    公开(公告)号:US20140037448A1

    公开(公告)日:2014-02-06

    申请号:US13932692

    申请日:2013-07-01

    Abstract: A wind turbine includes multiple blades, multiple Micro Inertial Measurement Units (MIMUs) for sensing parameter signals of the blades, and a control system. The control system includes a blade bending moment calculation unit, a blade bending moment error signal calculation unit, and a pitch angle compensation command calculation unit. The blade bending moment calculation unit is used for calculating blade bending moment values of the blades based at least on the sensed parameters. The blade bending moment error signal calculation unit is used for calculating blade bending moment error signals of the blades based on the calculated blade bending moment values of the blades and multiple blade bending moment commands. The pitch angle compensation command calculation unit is used for calculating pitch angle compensation commands of the blades based on the calculated blade bending moment error signals to adjust pitch angles of the blades respectively.

    Abstract translation: 风力涡轮机包括多个叶片,用于感测叶片的参数信号的多个微惯性测量单元(MIMU)和控制系统。 控制系统包括叶片弯矩计算单元,叶片弯矩误差信号计算单元和俯仰角补偿指令计算单元。 叶片弯矩计算单元用于至少基于所感测的参数来计算叶片的叶片弯矩值。 刀片弯矩误差信号计算单元用于根据叶片的计算叶片弯矩值和多叶片弯矩命令来计算叶片的叶片弯矩误差信号。 桨距角补偿指令计算单元用于基于所计算的叶片弯矩误差信号来计算叶片的俯仰角补偿命令,以分别调节叶片的桨距角。

    BORESCOPE AND NAVIGATION METHOD THEREOF
    3.
    发明申请
    BORESCOPE AND NAVIGATION METHOD THEREOF 审中-公开
    BORESCOPE和NAVIGATION方法

    公开(公告)号:US20150319410A1

    公开(公告)日:2015-11-05

    申请号:US14687747

    申请日:2015-04-15

    Abstract: The borescope includes an insertion tube, a first image processor, a model store unit, a pose calculator, a second image processor, a navigation image calculator and a display. The insertion tube includes a detection head and at least one sensor for receiving signals in the insertion tube and generating sensed signals. The first image processor is for calculating a first image based on first image signals captured by the detection head. The second image processor is for adjusting the initial pose calculated by the pose calculator to a navigation pose until a difference between the first image and a second image calculated based on the navigation pose and a predetermined model falls in an allowable range. The navigation image calculator is for calculating a navigation image based on the navigation pose and the predetermined model. The display is for showing the navigation image.

    Abstract translation: 管状镜包括插入管,第一图像处理器,模型存储单元,姿态计算器,第二图像处理器,导航图像计算器和显示器。 插入管包括检测头和用于在插入管中接收信号并产生感测信号的至少一个传感器。 第一图像处理器用于基于由检测头捕获的第一图像信号来计算第一图像。 第二图像处理器用于将由姿态计算器计算出的初始姿态调整为导航姿势,直到基于导航姿态计算的第一图像和第二图像之间的差异以及预定模型落在允许范围内。 导航图像计算器用于基于导航姿势和预定模型来计算导航图像。 显示屏用于显示导航图像。

    GAS-LIQUID SEPARATION DEVICE AND METHOD
    4.
    发明申请

    公开(公告)号:US20180236462A1

    公开(公告)日:2018-08-23

    申请号:US15898447

    申请日:2018-02-17

    CPC classification number: B04C3/06 B01D5/0021 B01D17/0217 B01D45/16 B04C5/08

    Abstract: The present invention discloses a gas-liquid separation device, including: a vortex generating region, used for receiving a gaseous fluid and providing a gaseous vortex; a fluid conversion region, used for receiving the gaseous vortex and providing a liquid fluid; and a fluid separation region that includes a first fluid passage for receiving the liquid fluid and a second fluid passage for receiving the gaseous fluid which is not converted into liquid fluid, wherein a cross section of the fluid separation region has a first width and a second width, the first width is greater than the second width, and the first fluid passage is connected with the second fluid passage at the position of the first width. The present invention also discloses a gas-liquid separation method.

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