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    • 2. 发明授权
    • Radiation detection device
    • 辐射检测装置
    • US08421025B2
    • 2013-04-16
    • US12690252
    • 2010-01-20
    • Eric Gros D'AillonMarie RuatLoïck Verger
    • Eric Gros D'AillonMarie RuatLoïck Verger
    • G01T1/24
    • G01T1/2928G01T1/241
    • This device for the detection of ionizing radiation includes a stack integrating a first set of electrodes (1), a solid detector material sensitive to ionizing radiation (2), capable of interacting therewith by releasing electron and electron hole mobile charge carriers, and a second set of electrodes (3), said first and second sets of electrodes being polarized in such a way that an electric field is applied through the detector material (2), thereby allowing the charge carriers generated by the interaction between the detector material and the ionizing radiation to migrate. It further includes electrically insulated electrodes (41-44), known as non-collecting electrodes, and positioned in the volume of the detector material (2) subjected to the electric field, and capable, by capacitive effect, of detecting the charges induced by the migration of the charge carriers in the volume of the detector subjected to the electric field.
    • 用于检测电离辐射的该装置包括:集成第一组电极(1),对电离辐射(2)敏感的固体检测器材料,能够通过释放电子和电子空穴移动电荷载体与其相互作用的堆叠;以及第二组 电极组(3),所述第一和第二组电极以使得通过检测器材料(2)施加电场的方式被极化,从而允许通过检测器材料和离子化之间的相互作用产生的电荷载流子 辐射迁移。 它还包括称为非集电极的电绝缘电极(41-44),并且位于经受电场的检测器材料(2)的体积中,并且能够通过电容效应来检测由 电荷载体在受电场检测的体积中的迁移。
    • 4. 发明申请
    • Gamma-Camera Utilizing the Interaction Depth in a Detector
    • 伽马相机利用检测器中的相互作用深度
    • US20110260072A1
    • 2011-10-27
    • US13177423
    • 2011-07-06
    • Lucie GuerinVéronique RebuffelLoïck Verger
    • Lucie GuerinVéronique RebuffelLoïck Verger
    • G01T1/24G06K9/00
    • G01T1/242G01T1/249G01T1/2928
    • A method for underwater packaging of radioactive materials includes creating a vacuum in a cavity of a cleaning device to automatically cause a portion of the cleaning device to move upward to actuate the cleaning device from an open position to a closed position; mounting the cleaning device inside a safe containment area of a transportation and/or storage device; placing the transportation and/or storage device in a pool after filling the safe containment area with water; loading a radioactive material into the safe containment area; closing the transportation and/or storage device using at least one cover; extracting the transportation and/or storage device from the pool; draining the water inside the safe containment area; and creating a pressure differential in the safe containment area to dry the safe containment area, wherein the pressure differential causes the cleaning device to automatically actuate from the closed position to the open position.
    • 用于放射性物质的水下包装的方法包括在清洁装置的空腔中产生真空以自动使清洁装置的一部分向上移动以将清洁装置从打开位置致动到关闭位置; 将清洁装置安装在运输和/或存储装置的安全容纳区域内; 在运输和/或储存装置用水填充安全容纳区域之后将其放置在池中; 将放射性物质装入安全区域; 使用至少一个盖封闭运输和/或储存装置; 从池中提取运输和/或存储装置; 将水排入安全区域内; 以及在所述安全容纳区域中产生压力差以干燥所述安全容纳区域,其中所述压差使得所述清洁装置自动地从所述关闭位置致动到所述打开位置。
    • 5. 发明授权
    • Electromagnetic and particle detector with reduced number of connections
    • 具有减少连接数的电磁和粒子检测器
    • US07659515B2
    • 2010-02-09
    • US11575535
    • 2005-09-12
    • Eric Gros D'AillonLoïck Verger
    • Eric Gros D'AillonLoïck Verger
    • G01T1/24
    • G01T1/2928
    • A detecting device comprises at least one 2-dimensional set of elementary sensors of the semiconductor type for transforming energy of radiation to be detected into electric signals. Each elementary sensor is provided on one side with an anode and on the opposite side with a cathode adapted to be electrically connected on a circuit for reading and operating on the signals. The anodes are electrically interconnected to constitute a plurality of anode subsets electrically connected at least in pairs to a measuring anode path looped on said reading and operating circuit. Each anode is connected to two separate measuring anode pats. The cathodes are electrically interconnected to constitute adjacent cathode subsets, each cathode subset being electrically connected to a measuring cathode path. The anodes belonging to two anode subsets and connected to a common anode path are associated with sensors whereof the cathodes belong to separate cathode subsets.
    • 检测装置包括半导体类型的至少一个二维基本传感器组,用于将待检测的辐射能量转换为电信号。 每个基本传感器在一侧设置有阳极,并且在相对侧设置有适于电连接在电路上用于读取和操作信号的阴极。 阳极电互连以构成至少成对地电连接到在所述读取和操作电路上环绕的测量阳极路径的多个阳极子集。 每个阳极连接到两个单独的测量阳极路径。 阴极电互连以构成相邻的阴极子集,每个阴极子组电连接到测量阴极通路。 属于两个阳极子集并且连接到公共阳极路径的阳极与其阴极属于分离的阴极子集的传感器相关联。
    • 7. 发明申请
    • RADIATION DETECTION DEVICE
    • 辐射检测装置
    • US20100213382A1
    • 2010-08-26
    • US12690252
    • 2010-01-20
    • Eric Gros D'AillonMarie RuatLoïck Verger
    • Eric Gros D'AillonMarie RuatLoïck Verger
    • G01T1/24
    • G01T1/2928G01T1/241
    • This device for the detection of ionizing radiation includes a stack integrating a first set of electrodes (1), a solid detector material sensitive to ionizing radiation (2), capable of interacting therewith by releasing electron and electron hole mobile charge carriers, and a second set of electrodes (3), said first and second sets of electrodes being polarized in such a way that an electric field is applied through the detector material (2), thereby allowing the charge carriers generated by the interaction between the detector material and the ionizing radiation to migrate. It further includes electrically insulated electrodes (41-44), known as non-collecting electrodes, and positioned in the volume of the detector material (2) subjected to the electric field, and capable, by capacitive effect, of detecting the charges induced by the migration of the charge carriers in the volume of the detector subjected to the electric field.
    • 用于检测电离辐射的该装置包括:集成第一组电极(1),对电离辐射(2)敏感的固体检测器材料,能够通过释放电子和电子空穴移动电荷载体与其相互作用的堆叠;以及第二组 电极组(3),所述第一和第二组电极以使得通过检测器材料(2)施加电场的方式被极化,从而允许通过检测器材料和离子化之间的相互作用产生的电荷载流子 辐射迁移。 它还包括称为非集电极的电绝缘电极(41-44),并且位于经受电场的检测器材料(2)的体积中,并且能够通过电容效应来检测由 电荷载体在受电场检测的体积中的迁移。
    • 9. 发明授权
    • Enhanced processing circuit for spectrometry system and spectrometry system using same
    • 用于光谱测定系统和使用其的光谱测定系统的增强处理电路
    • US07388210B2
    • 2008-06-17
    • US10536505
    • 2003-11-20
    • Patrice Ouvrier-BuffetJacques RustiqueLoïck Verger
    • Patrice Ouvrier-BuffetJacques RustiqueLoïck Verger
    • G01T1/24H01L27/146
    • G01T1/17
    • This is a processing circuit for a spectrometry chain including a particle radiation detector (21), including a charge preamplifier stage (20) receiving a current (I1) from the detector, representative of the amount of charges emitted by a particle which has interacted with the detector, and an integrator stage (26). A differentiator stage (25) is connected between the charge preamplifier stage (20) and the integrator stage (26), the differentiator stage (25) receiving a signal (V1) from the charge preamplifier stage (20) and delivering to the integrator stage (26), a signal (V2), image of the detector current (I1), the integrator stage (26) delivering, an image (V3) of the amount of charges emitted by a particle which has interacted with the detector.Application notably to the high energy single channel probes.
    • 这是用于包括粒子辐射检测器(21)的光谱测定链的处理电路,其包括从检测器接收电流(I 1)的电荷前置放大器级(20),代表由相互作用的颗粒发射的电荷量 与检测器和积分器级(26)。 差分器级(25)连接在充电前置放大器级(20)和积分器级(26)之间,微分器级(25)接收来自电荷前置放大器级(20)的信号(V 1)并传递给积分器 阶段(26),信号(V 2),检测器电流(I 1),积分器级(26)的图像传送由与颗粒相互作用的颗粒发射的电荷量的图像(V 3) 探测器。 特别适用于高能量单通道探头。