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    • 75. 发明公开
    • DEVICE AND METHOD FOR RADIATION DOSIMETRY
    • 用于辐射剂量测量的装置和方法
    • EP3074793A1
    • 2016-10-05
    • EP14805287.1
    • 2014-11-30
    • ION BEAM APPLICATIONS S.A.
    • MENICHELLI, DavidFRIEDL, Friedrich
    • G01T1/29H01J47/02
    • G01T1/2935A61N5/1075A61N2005/1087H01J47/02
    • The present invention relates to a dosimetry device (10) for determining a spatial distribution of a quantity of radiation incident on the dosimetry device. The device comprises a segmented electrode assembly (12) comprising an electrically non- conducting substrate (13) having a plurality of electrode elements (14) provided thereon, surrounded by ground electrodes. The device further comprises an electrically conducting sheet (16) comprising a protrusion (17) arranged such as to define a plurality of ionization chamber cavities (18) between the segmented electrode assembly (12) and the electrically conducting sheet (16). The device also comprises a voltage applying means (28) for applying a voltage difference between the electrically conducting sheet (16) and the plurality of electrode elements (14) and a routing means (25) for routing a plurality of ionization currents corresponding to the plurality of electrode elements (14) to a processing means.
    • 本发明涉及用于确定入射到剂量测定装置上的辐射量的空间分布的剂量测定装置(10)。 该装置包括分段电极组件(12),该分段电极组件包括具有设置在其上的多个电极元件(14)的不导电衬底(13),所述多个电极元件被接地电极包围。 该装置还包括导电片(16),该导电片包括布置成在分段电极组件(12)和导电片(16)之间限定多个电离室空腔(18)的突起(17)。 该装置还包括用于在导电片(16)和多个电极元件(14)之间施加电压差的电压施加装置(28),以及用于路由多个电离电流的路由装置(25) 多个电极元件(14)传送到处理装置。
    • 77. 发明公开
    • DEVICE FOR SUPPORTING AND POSITIONING A PATIENT IN A MEDICAL EQUIPMENT
    • 设备,用于医疗设备,支撑和定位患者
    • EP3061498A1
    • 2016-08-31
    • EP16155012.4
    • 2016-02-10
    • Ion Beam Applications S.A.
    • DEBATTY, AlexandreWIKLER, DavidDOUBLIEZ, Paul-François
    • A61N5/10A61B34/30A61G13/02A61G13/04A61B6/04
    • A61B6/0457A61B34/70A61N5/1049A61N5/1069
    • A device for supporting and positioning a patient in a medical equipment comprises a patient support means, a robotic arm supporting the patient support means, and an robotic wrist with at least two motorized rotational degrees of freedom, the robotic wrist being borne by the robotic arm and bearing the patient support means. A translational release unit is connected between the robotic wrist and the patient support means. It includes an XY translation mechanism providing two translational degrees of freedom and a translation locking mechanism cooperating with the XY translation mechanism. The translation locking mechanism is switchable between a locked state, in which it locks the two translational degrees of freedom of the XY translation mechanism in a mechanically defined position, and an unlocked state, in which the two translational degrees of freedom are unlocked.
    • 臂的装置,用于支撑并在医疗设备定位患者包括患者支撑装置,机器人臂支撑所述患者支撑装置,并具有至少两个机动化旋转自由度的机器人手腕,所述机器人手腕由所述机器人承担 和轴承的患者支撑装置。 平移释放单元被连接在机器人手腕和患者支撑装置之间。 它包括在XY转换机制提供了两个平移自由度和平移锁定机制XY平移机构协作。 平移锁定机构的锁定状态,其中它锁定在机械限定位置的两个平移自由度的XY平移机构的自由度,而在解锁状态,其中两个平移自由度被解锁之间切换。
    • 78. 发明公开
    • Energy degrader
    • 能源退化
    • EP3035776A1
    • 2016-06-22
    • EP14198364.3
    • 2014-12-16
    • ION BEAM APPLICATIONS S.A.
    • Claereboudt, Yves
    • H05H7/12A61N5/00G21K1/00
    • G21K1/00A61N5/1077A61N2005/1087A61N2005/1095G21K1/10H05H7/12H05H2007/125H05H2277/11
    • An energy degrader for attenuating the energy of a charged particle beam (50) and comprising two energy attenuation members (A, B) having different masses. The degrader further comprises a drive unit (10) configured to move simultaneously the two energy attenuation members at respectively a first and a second speed across the particle beam (50) during a first movement and to move the lightest of the two energy attenuation members at a third speed across the particle beam (50) during a second movement, the third speed being higher than the first speed. More accurate and faster variation of the energy of the charged particle beam (50) can hence be achieved.
    • 一种能量衰减器,用于衰减带电粒子束(50)的能量并且包括具有不同质量的两个能量衰减构件(A,B)。 降级器还包括驱动单元(10),该驱动单元被配置为在第一运动期间使两个能量衰减构件分别在第一速度和第二速度处跨过粒子束(50)同时移动,并且将两个能量衰减构件中的最轻的 在第二移动期间穿过粒子束(50)的第三速度,第三速度高于第一速度。 因此可以实现带电粒子束(50)的能量的更精确和更快的变化。