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    • 1. 发明授权
    • Overload resistant differential pressure sensor
    • 超载差压传感器
    • US06598482B2
    • 2003-07-29
    • US10172131
    • 2002-06-14
    • Wolfgang ScholzAlbrecht VogelPeter Krippner
    • Wolfgang ScholzAlbrecht VogelPeter Krippner
    • G01L1500
    • G01L19/0627G01L13/026G01L19/0618
    • A differential pressure sensor has a first and a second measuring chamber. Each measuring chamber is limited by a rigid carrier plate and a diaphragm plate, which is formed in the region of the measuring chamber as a pressure-sensitive measuring diaphragm. To design the differential pressure sensor to be resistant to overloading, the carrier plate is arranged between a first and a second diaphragm plate and has congruent concave depressions on opposite sides in the plane of the plate. The depressions are connected to one another by a decentered duct, penetrating the carrier plate perpendicularly to the plane of the plates. In the region of the measuring chambers, the diaphragm plates are formed congruently in relation to the depressions as pressure-sensitive measuring diaphragms. The measuring chambers and the duct are filled with an incompressible fluid.
    • 差压传感器具有第一和第二测量室。 每个测量室由刚性载体板和隔膜板限制,该板在测量室的区域中形成为压敏测量膜片。 为了设计差压传感器以防止过载,承载板布置在第一和第二隔膜板之间,并且在板的平面的相对侧上具有一致的凹陷。 凹陷通过偏心的管道相互连接,垂直于板的平面穿透载体板。 在测量室的区域中,隔板相对于凹陷形成为压敏测量隔膜。 测量室和管道填充有不可压缩流体。
    • 4. 发明授权
    • Differential pressure sensor
    • 差压传感器
    • US06640640B2
    • 2003-11-04
    • US10172235
    • 2002-06-14
    • Wolfgang ScholzAlbrecht VogelPeter Krippner
    • Wolfgang ScholzAlbrecht VogelPeter Krippner
    • G01L1500
    • G01L19/0618G01L9/0055G01L9/0073G01L13/026
    • A differential pressure sensor has a first and a second measuring chamber. Each measuring chamber is limited by a rigid carrier plate and a diaphragm plate, which is formed in the region of the measuring chamber as a pressure-sensitive measuring diaphragm. To design the differential pressure sensor to be resistant to overloading, the carrier plate is arranged between a first and a second diaphragm plate and has congruent concave depressions on opposite sides in the plane of the plate. The depressions are connected to one another by a central duct, penetrating the carrier plate perpendicularly to the plane of the plates. In the region of the measuring chambers, the diaphragm plates are formed congruently in relation to the depressions as pressure-sensitive measuring diaphragms. The measuring chambers are coupled to one another by a ram guided axially movably in the duct.
    • 差压传感器具有第一和第二测量室。 每个测量室由刚性载体板和隔膜板限制,该板在测量室的区域中形成为压敏测量膜片。 为了设计差压传感器以防止过载,承载板布置在第一和第二隔膜板之间,并且在板的平面的相对侧上具有一致的凹陷。 凹陷通过中心导管彼此连接,垂直于板的平面穿过载体板。 在测量室的区域中,隔板相对于凹陷形成为压敏测量隔膜。 测量室通过在管道中可轴向移动的冲头彼此联接。
    • 8. 发明授权
    • Device for measuring the oxygen concentration in gases
    • 用于测量气体中氧气浓度的装置
    • US06739179B2
    • 2004-05-25
    • US10012160
    • 2001-10-29
    • Albrecht VogelDieter BinzManfred WetzkoPeter Krippner
    • Albrecht VogelDieter BinzManfred WetzkoPeter Krippner
    • G01N2762
    • G01N27/74
    • A measuring device for determining the oxygen content in gases is described. The measuring device is disposed between two magnets that are positioned at a distance from one another. The measuring device is equipped with a sensor that is held rotatably within a frame. The sensor has two parallelepipedic bodies that are both made hollow or solid and are connected to one another via a web-shaped structural element. The web-shaped structural element is fastened to the frame via at least one holding element, so that the sensor can be rotated about its center of gravity. The amount of rotation is dependent on the quantity of oxygen that is concentrated between the two magnets. A current can be conducted through a conductor track led on the surface of the sensor and generates a correspondingly high restoring force by which the sensor is brought into the position of rest again.
    • 描述了用于确定气体中的氧含量的测量装置。 测量装置设置在彼此相距一定距离的两个磁体之间。 测量装置配备有可旋转地保持在框架内的传感器。 该传感器具有两个平行六面体,它们均制成中空或实心的并通过网状结构元件相互连接。 网状结构元件经由至少一个保持元件紧固到框架,使得传感器可围绕其重心旋转。 旋转量取决于集中在两个磁体之间的氧气的量。 电流可以通过在传感器表面上引导的导体轨道传导,并产生相应高的恢复力,通过该恢复力,传感器再次进入休息位置。