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    • 91. 发明申请
    • IN SITU SYSTEM FOR DIRECT MEASUREMENT OF ALPHA RADIATION, AND RELATED METHOD FOR QUANTIFYING THE ACTIVITY OF ALPHA-EMITTING RADIONUCLIDES IN SOLUTION
    • 用于直接测量阿尔法辐射的现场系统以及用于定量解决方案中发射放射性核素的活性的相关方法
    • US20130200267A1
    • 2013-08-08
    • US13877404
    • 2011-10-07
    • Nicolas Saurel
    • Nicolas Saurel
    • G01T1/24
    • G01T1/24G01N2223/626G01T7/00
    • A system for in situ nuclear measurement of alpha radiation of an effluent and a related method. The system includes: M diamond semiconductor detectors obtained by chemical vapour deposition, or silicon semiconductor detectors covered with a diamond layer, as alpha radiation detectors, configured to be immersed in the effluent, and to measure alpha radiation emitted by the effluent, M is an integer greater than or equal to 1; P measuring channels connected to the M alpha radiation detectors, P is an integer greater than or equal to 1 and less than or equal to M, each of the P measuring channels configured to provide a value or a sum of alpha activity values from the M alpha radiation detectors to which they are connected; and, if P is greater than 1, a mechanism for adding together results from the P measuring channels.
    • 一种流出物的α辐射原位核测量系统及相关方法。 该系统包括:通过化学气相沉积获得的M个金刚石半导体检测器或覆盖有金刚石层的硅半导体检测器,被配置为浸入流出物中的α辐射检测器,以及测量流出物发射的α辐射,M是 整数大于或等于1; P测量通道连接到Mα辐射检测器,P是大于或等于1且小于或等于M的整数,每个P测量通道被配置为提供来自M的α活度值的值或总和 它们连接的α辐射探测器; 并且如果P大于1,则用于将来自P个测量通道的结果相加的机制。
    • 92. 发明授权
    • Distributed system for radiation detection utilizing multiple clustered detectors
    • 使用多个集群检测器的辐射检测分布式系统
    • US08502158B1
    • 2013-08-06
    • US12756022
    • 2010-04-07
    • Alexander N. GordeevLiudmila A. Antonauskaya
    • Alexander N. GordeevLiudmila A. Antonauskaya
    • G01T1/00
    • G01T7/00
    • A detection unit for detecting ionizing radiation including a crystal that interacts with incoming radiation; a processing module that analyzes the incoming radiation detected by the crystal; a positioning module that determines position of the detection unit; and a network interface module that receives and transmits time stamped radiation data and position information from/to a plurality of other detection units. The detection unit automatically identifies other detection units that are located close to form a cluster. The detection unit also includes radiation data integration logic that integrates the incoming radiation data from all detectors in cluster, the position of the detection unit, the received radiation data from other detection units and the received position information from other detection units in real time, and process it simultaneously, that allows significantly improve performance and reliability.
    • 一种用于检测包括与入射辐射相互作用的晶体的电离辐射的检测单元; 处理模块,分析由晶体检测的入射辐射; 确定所述检测单元的位置的定位模块; 以及网络接口模块,其接收来自多个其他检测单元的时间戳辐射数据和位置信息。 检测单元自动识别位于靠近形成集群的其他检测单元。 检测单元还包括辐射数据积分逻辑,其将来自群集中的所有检测器的入射辐射数据,检测单元的位置,来自其他检测单元的接收辐射数据和来自其他检测单元的接收位置信息实时地整合;以及 同时进行处理,可以显着提高性能和可靠性。
    • 93. 发明申请
    • STAND-ALONE PHOTOSENSOR ASSEMBLY
    • 独立的光电传感器总成
    • US20130146774A1
    • 2013-06-13
    • US13709425
    • 2012-12-10
    • Lance J. Wilson
    • Lance J. Wilson
    • G01J1/04G01T3/06
    • G01J1/0403G01J1/58G01T3/06G01T7/00
    • A stand-alone photosensor assembly has a housing with an axis, a first axial end and a second axial end opposite the first axial end. An adapter may be threadingly coupled to the first axial end of the housing. The adapter may be adapted to mount the housing to a scintillator. A photosensor element may be located inside the housing and adapted to be optically coupled to the scintillator. A sub-housing may be located inside the housing, at least a portion of which is located radially between the housing and the photosensor element. A scintillator assembly may include a scintillator and the photosensor assembly. A machine, such as a radiation detector, may include the scintillator and the photosensor assembly coupled to the scintillator. The machine also may include an output device to generate output in response to the photosensor assembly, and a user interface coupled to the output device.
    • 独立的光传感器组件具有壳体,该壳体具有轴线,第一轴向端部和与第一轴向端部相对的第二轴向端部。 适配器可以螺纹连接到壳体的第一轴向端。 适配器可以适于将外壳安装到闪烁体。 光电传感器元件可以位于壳体内部并且适于光学耦合到闪烁体。 子壳体可以位于壳体内部,其壳体的至少一部分位于壳体和光电传感元件之间的径向位置。 闪烁体组件可以包括闪烁体和光电传感器组件。 诸如辐射检测器的机器可以包括闪烁体和耦合到闪烁体的光传感器组件。 该机器还可以包括响应于光电传感器组件而产生输出的输出装置,以及耦合到输出装置的用户界面。
    • 95. 发明申请
    • Miniature Radiation Detector Module Configured as Smart Mobile Device/Phone Ad-On
    • 微型辐射检测器模块配置为智能移动设备/电话广告
    • US20130092843A1
    • 2013-04-18
    • US13356640
    • 2012-01-23
    • Marcos de Azambuja TurquetiGuilherme Cardoso
    • Marcos de Azambuja TurquetiGuilherme Cardoso
    • G01T7/00
    • G01T7/00
    • A smart device “plug-in” radiation module(s) and/or methods are described wherein the bulk of non-sensor radiation circuitry is off-loaded to the smart device. By attaching the radiation module to the smart device via a power/communication port (for example, the smart device's headphone/microphone jack) robust attachment can be achieved as well as uniformity of attachment across different smart devices. A very small radiation module form factor is obtainable, not to mention a very significant cost reduction, allowing widespread adoption of radiation detectors as well as radiation geo-mapping. Power for the radiation module can be obtained from the smart device's headphone plug, utilizing the audio out (speaker) signal's power. Similarly, input to the smart device can be facilitated via the audio in (microphone) signal. Further, output of the radiation module can be visualized on the smart device, as well as control functions.
    • 描述了智能设备“插件”辐射模块和/或方法,其中非传感器辐射电路的大部分被卸载到智能设备。 通过经由电源/通信端口(例如,智能设备的耳机/麦克风插孔)将辐射模块附接到智能设备,可以实现坚固的附件以及跨越不同智能设备的连接的均匀性。 可以获得非常小的辐射模块形状因子,更不用说显着的成本降低,允许广泛采用辐射探测器以及辐射地理映射。 利用音频输出(扬声器)信号的功率,可以从智能设备的耳机插头获得辐射模块的电源。 类似地,可以通过(麦克风)信号中的音频来促进对智能设备的输入。 此外,可以在智能设备上显示辐射模块的输出以及控制功能。
    • 97. 发明授权
    • Radiation detector
    • 辐射检测器
    • US08399859B2
    • 2013-03-19
    • US12742200
    • 2008-11-14
    • Steven John StanleySimon John DoranPaul Michael Jenneson
    • Steven John StanleySimon John DoranPaul Michael Jenneson
    • G01N21/00
    • G01T7/00G01T1/08G01T5/10
    • The invention provides a device for the detection and mapping of radiation, the device comprising a polymeric core located within an external shell material, wherein the polymeric core comprises at least one radiation sensitive component and the external sheath comprises a collimation sheath. Preferably, the polymeric core comprises a spherical core which is encased within the external shell. The external shell is preferably comprised of a metal, most preferably lead or tungsten. The invention also provides a method for the detection and mapping of radiation in a location, which comprises: (a) placing a device according to the invention in the location to be investigated; (b) allowing the device to remain in the location and be exposed to the radiation for a predetermined length of time; (c) removing the device from the location; (d) removing the polymeric core from the external shell; and (e) analysing said polymeric core by means of an optical analysis technique applying a software-based image reconstruction algorithm in order to determine the location, form and intensity of said radiation. The device and method of the invention facilitate the detection and mapping of radiation, and find particular use in mapping the location, intensity and identity of radio-logical hazards in 3 dimensions in sites such as active cells, gloveboxes, other active plants and confined spaces. Advantages over the prior art include the lack of requirement for an electrical supply, and the ability to deal with high radiation backgrounds and to be deployed in confined or restricted spaces.
    • 本发明提供了一种用于检测和映射辐射的装置,该装置包括位于外壳材料内的聚合物芯,其中聚合物芯包括至少一种辐射敏感组分,外护套包括准直护套。 优选地,聚合物芯包括被包封在外壳内的球形芯。 外壳优选由金属,最优选铅或钨组成。 本发明还提供了一种用于检测和映射位置中的辐射的方法,其包括:(a)将根据本发明的设备放置在待调查的位置; (b)使设备保持在该位置并暴露于辐射预定的时间长度; (c)将设备从该位置拆下; (d)从外壳中去除聚合物芯; 和(e)通过应用基于软件的图像重建算法的光学分析技术来分析所述聚合物芯,以便确定所述辐射的位置,形式和强度。 本发明的装置和方法有助于辐射的检测和映射,并且特别用于在诸如活性细胞,手套箱,其他活性植物和密闭空间等位点的三维图形中绘制无线电逻辑危害的位置,强度和身份 。 与现有技术相比的优点包括缺乏对电源的要求,以及处理高辐射背景并被部署在有限空间中的能力。
    • 100. 发明申请
    • Radiation measurement using timing-over-Ethernet protocol
    • 使用以太网协议进行辐射测量
    • US20120153166A1
    • 2012-06-21
    • US13068208
    • 2011-05-05
    • Andrey K. GueorguievMartin F. OhmesJeffrey R. PrestonLeslie D. HoyHartmut Brands
    • Andrey K. GueorguievMartin F. OhmesJeffrey R. PrestonLeslie D. HoyHartmut Brands
    • G01T1/20G01T1/18G01T1/185G01T1/00G01T1/24
    • G01T7/00G01T1/172H04J3/0667
    • A highly scalable platform for radiation measurement data collection with high precision time stamping and time measurements between the elements in the detection array uses IEEE 1588 with or without Synchronous Ethernet (timing over Ethernet) to synchronize the measurements. At a minimum, the system includes at least two radiation detector units, an IEEE 1588 and SyncE enabled Ethernet switch, and a computer for processing. The addition of timing over Ethernet and power over Ethernet (PoE) allows a radiation measurement system to operate with a single Ethernet cable, simplifying deployment of detectors using standardized technology with a multitude of configuration possibilities. This eliminates the need for an additional hardware for the timing measurements which simplifies the detection system, reduces the cost of the deployment, reduces the power consumption of the detection system and reduces the overall size of the system.
    • 用于辐射测量数据采集的高度可扩展的平台,具有高精度时间戳和检测阵列中的元件之间的时间测量,使用IEEE 1588(带或不带同步以太网或以太网)来同步测量。 该系统至少包括两个辐射探测器单元,一个IEEE 1588和启用了SyncE的以太网交换机,以及一个用于处理的计算机。 通过以太网和以太网供电(PoE)增加时间可以使辐射测量系统使用单个以太网电缆进行操作,从而简化了使用具有多种配置可能性的标准化技术的探测器部署。 这样就不再需要额外的硬件来进行时序测量,从而简化了检测系统,降低了部署成本,降低了检测系统的功耗并降低了系统的整体尺寸。