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    • 3. 发明授权
    • Replenisher mechanism for a development station of a reproduction apparatus
    • 用于再现设备的显影站的补充机构
    • US06298207B1
    • 2001-10-02
    • US09574036
    • 2000-05-18
    • Scott Thomas SlatteryJerry Eugene LivadasJames R. Carey
    • Scott Thomas SlatteryJerry Eugene LivadasJames R. Carey
    • G03G1508
    • G03G15/0877G03G15/086G03G2215/0888
    • A mechanism for replenishing particulate material from a receptacle to a remote reservoir. The replenisher mechanism includes a housing having a sensor for sensing the level of particulate material within the housing, pair of spaced end walls, and a pair of spaced side walls. At least a portion of the side walls are flexible. An interface provides flow communication of particulate material between a particulate material receptacle and the housing, and a delivery assembly provides flow communication of particulate material between the housing and a remote reservoir. At least one paddle assembly is operatively associated with at least one of the flexible side walls for moving such side wall in a manner to substantially prevent agglomeration and flake production in the particulate material within the housing. The paddle assembly includes a first pivot rod mounted in fixed spatial relation to the housing, a paddle supported on the first pivot rod, a second pivot rod carried by the paddle. A reciprocating actuator arm is connected to the second pivot rod to selectively move the paddle about the first pivot rod. A lever is pivotably mounted on the second pivot rod, whereby when the paddle is rotated about the first pivot rod by reciprocation of the actuator arm, the lever rotates about the second pivot rod providing movement of the flexible membrane adjacent to the first pivot rod causing the breaking of any particulate material bridges at that point.
    • 用于将颗粒材料从容器补充到远程储存器的机构。 补充机构包括具有传感器的壳体,该传感器用于感测壳体内的颗粒材料的水平面,一对隔开的端壁和一对隔开的侧壁。 侧壁的至少一部分是柔性的。 接口提供颗粒材料在颗粒材料容器和壳体之间的流动连通,并且输送组件提供颗粒材料在壳体和远程储存器之间的流动连通。 至少一个桨叶组件可操作地与至少一个柔性侧壁相关联,以便以这样的方式移动该侧壁,以便基本上防止壳体内的颗粒材料中的附聚和片状生成。 桨叶组件包括与壳体固定的空间关系安装的第一枢轴杆,支撑在第一枢转杆上的桨叶,由桨承载的第二枢轴杆。 往复式致动器臂连接到第二枢轴杆,以选择性地围绕第一枢转杆移动桨叶。 杆可枢转地安装在第二枢转杆上,由此当桨通过致动器臂的往复运动绕第一枢轴转动时,杆围绕第二枢转杆旋转,从而提供柔性膜相邻于第一枢轴杆的运动,从而导致 任何颗粒材料桥梁的破裂。
    • 4. 发明授权
    • Replenisher mechanism interface
    • 补液机构接口
    • US06553201B1
    • 2003-04-22
    • US09574055
    • 2000-05-18
    • Scott Thomas SlatteryJerry Eugene LivadasJames R. Carey
    • Scott Thomas SlatteryJerry Eugene LivadasJames R. Carey
    • G03G1508
    • G03G15/0877G03G15/0855G03G15/0865G03G15/0867G03G2215/0673G03G2215/0678Y10S222/01
    • An interface member providing flow communication of particulate material between a particulate material receptacle and a housing of a mechanism for replenishing particulate material from a receptacle to a remote reservoir. The interface member includes a casting defining a flow communication passage. A plate is attached to the casting at an angle to the horizontal to define an angled entrance to the casting. A member, associated with said angled entrance plate, is provided for guiding and holding the marking particle receptacle at a corresponding angle to the horizontal when the receptacle is installed on the angled entrance plate, whereby the angled orientation of the receptacle lets air percolate into the receptacle while the receptacle is emptying, allowing the particulate material to flow freely out of the receptacle.
    • 界面构件,其提供颗粒材料在颗粒材料容器和用于将颗粒材料从容器补充到远程储存器的机构的壳体之间的流动连通。 接口构件包括限定流动连通通道的铸件。 板以与水平面成一定角度附接到铸件,以限定铸件的成角度入口。 与所述成角度的入口板相关联的构件被设置成当所述容器安装在所述倾斜的入口板上时,用于将所述标记颗粒容器以相应的角度引导并保持在所述水平面上,由此所述容器的倾斜取向使得空气渗透到 容器在容器排空时允许颗粒物质自由地流出容器。
    • 5. 发明授权
    • Replenisher mechanism for a reproduction apparatus development station with continuous monitoring of remaining marking particle material
    • 用于连续监测剩余标记颗粒材料的再现设备开发站的补充机构
    • US06526236B1
    • 2003-02-25
    • US10007998
    • 2001-11-13
    • Scott Thomas SlatteryJerry Eugene Livadas
    • Scott Thomas SlatteryJerry Eugene Livadas
    • G03G1508
    • G03G15/0877G03G15/0856G03G15/086
    • A mechanism for replenishing particulate material from receptacles to a reservoir, which provides a highly accurate and continuous indication of the amount of particulate material remaining in the housing of the replenisher mechanism. The replenisher mechanism includes a housing having a plurality of discrete sensors for sensing the level of particulate material within the housing, a delivery assembly which provides flow communication of particulate material between the housing and a remote reservoir, and has a delivery assembly sensor that senses the amount of particulate material delivered by the delivery assembly. A logic and control unit operatively connected to the housing level sensors and the delivery assembly sensor continuously determines the amount of particulate material remaining in the housing so as to indicate when, and how much, particulate material to add to the housing.
    • 用于将颗粒材料从容器补充到储存器的机构,其提供残留在补充器机构的壳体中的颗粒材料的量的高精度和连续的指示。 补充器机构包括具有多个离散传感器的壳体,用于感测壳体内的颗粒材料的水平;输送组件,其在壳体和远程容器之间提供颗粒材料的流动连通,并且具有传感组件传感器, 由输送组件输送的颗粒物质的量。 可操作地连接到壳体液位传感器和输送组件传感器的逻辑和控制单元连续地确定壳体中残留的颗粒材料的量,以便指示何时以及多少颗粒材料添加到壳体中。
    • 7. 发明授权
    • Producing correction data for printer
    • 生成打印机校正数据
    • US08736894B2
    • 2014-05-27
    • US13331075
    • 2011-12-20
    • Chung-Hui KuoHwai-Tzuu TaiStacy M. MunechikaJerry Eugene Livadas
    • Chung-Hui KuoHwai-Tzuu TaiStacy M. MunechikaJerry Eugene Livadas
    • G06K15/02
    • H04N1/506G03G15/0194G03G15/5062
    • Correction data is produced for density errors in prints produced using a printer. While printing a test image, the periods of rotation of one or more rotatable imaging members arranged along a receiver feed path in the printer are measured using respective period sensors. The printed test image is measured along a selected measurement direction and a reproduction error signal representing deviation from aim density is determined. For each period sensor, the autocorrelation of the reproduction error signal for the corresponding period is determined. If the determined autocorrelation exceeds a selected threshold, the reproduction error signal is decomposed at the corresponding period to extract the variation from the measured component. The remaining error signal is separated by frequency terms. The variations from the data at measured periods and the remaining error signal are used to produce a correction signal.
    • 使用打印机生产的打印件中的密度误差产生校正数据。 在打印测试图像时,使用各自的周期传感器测量沿着打印机中的接收器馈送路径布置的一个或多个可旋转成像构件的旋转周期。 沿所选的测量方向测量打印的测试图像,并且确定表示偏离目标密度的再现误差信号。 对于每个周期传感器,确定相应周期的再现误差信号的自相关。 如果所确定的自相关超过选定的阈值,则在相应的周期分解再现误差信号以从测量的分量中提取变化。 剩余的误差信号由频率项分隔。 使用测量周期的数据和剩余误差信号的变化产生校正信号。
    • 8. 发明申请
    • PRODUCING CORRECTION DATA FOR PRINTER
    • 生成打印机的校正数据
    • US20130155422A1
    • 2013-06-20
    • US13331075
    • 2011-12-20
    • Chung-Hui KuoHwai-Tzuu TaiStacy M. MunechikaJerry Eugene Livadas
    • Chung-Hui KuoHwai-Tzuu TaiStacy M. MunechikaJerry Eugene Livadas
    • G06K15/02
    • H04N1/506G03G15/0194G03G15/5062
    • Correction data is produced for density errors in prints produced using a printer. While printing a test image, the periods of rotation of one or more rotatable imaging members arranged along a receiver feed path in the printer are measured using respective period sensors. The printed test image is measured along a selected measurement direction and a reproduction error signal representing deviation from aim density is determined. For each period sensor, the autocorrelation of the reproduction error signal for the corresponding period is determined. If the determined autocorrelation exceeds a selected threshold, the reproduction error signal is decomposed at the corresponding period to extract the variation from the measured component. The remaining error signal is separated by frequency terms. The variations from the data at measured periods and the remaining error signal are used to produce a correction signal.
    • 使用打印机生产的打印件中的密度误差产生校正数据。 在打印测试图像时,使用各自的周期传感器测量沿着打印机中的接收器馈送路径布置的一个或多个可旋转成像构件的旋转周期。 沿所选的测量方向测量打印的测试图像,并且确定表示偏离目标密度的再现误差信号。 对于每个周期传感器,确定相应周期的再现误差信号的自相关。 如果所确定的自相关超过选定的阈值,则在相应的周期分解再现误差信号以从测量的分量中提取变化。 剩余的误差信号由频率项分隔。 使用测量周期的数据和剩余误差信号的变化产生校正信号。