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Temporal Imaging CeBr_3 Compton Camera: A New Concept for Nuclear Decommissioning and Nuclear Waste Management

机译:Temporal Magaging Cebr_3 Compton相机:核退役和核废物管理的新概念

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During nuclear decommissioning or waste management operations, a camera that could make an image of the contamination field and identify and quantify the contaminants would be a great progress. Compton cameras have been proposed, but their limited efficiency for high energy gamma rays and their cost have severely limited their application. Our objective is to promote a Compton camera for the energy range (200 keV - 2 MeV) that uses fast scintillating crystals and a new concept for locating scintillation event: Temporal Imaging. Temporal Imaging uses monolithic plates of fast scintillators and measures photons time of arrival distribution in order to locate each gamma ray with a high precision in space (X,Y,Z), time (T) and energy (E). This provides a native estimation of the depth of interaction (Z) of every detected gamma ray. This also allows a time correction for the propagation time of scintillation photons inside the crystal, therefore resulting in excellent time resolution. The high temporal resolution of the system makes it possible to veto quite efficiently background by using narrow time coincidence (< 300 ps). It is also possible to reconstruct the direction of propagation of the photons inside the detector using timing constraints. The sensitivity of our system is better than 1 nSv/h in a 60 s acquisition with a ~(22)Na source. The project TEMPORAL is funded by the ANDRA/PAI under the grant No. RTSCNADAA160019.
机译:在核退役或废物管理业务期间,一个可以制作污染领域的图像并识别和量化污染物的相机将是一个很大的进展。康普顿相机已提出,但它们对高能伽马光线的有限效率及其成本严重限制了其应用。我们的目标是推广康普顿相机,用于能量范围(200 kev - 2 Mev),它使用快速闪烁的晶体和一个新概念来定位闪烁事件:时间成像。时间成像使用快速闪烁体的整体板,并测量光子到达时间分布,以便在空间(x,y,z),时间(t)和能量(e)中具有高精度的每个伽马射线。这提供了每个检测到的伽马射线的相互作用深度(z)的本机估计。这也允许对晶体内部的闪烁光子的传播时间进行时间校正,因此导致优异的时间分辨率。系统的高时间分辨率使得可以通过使用窄时间巧合(<300 ps)来赋予相当有效的背景。还可以使用定时约束重建检测器内的光子内的光子的传播方向。在60次采集中,我们的系统的敏感性优于1nsv / h,使用〜(22)na源。项目时间由ANDRA / PAI资助,根据RTSCNADAA160019补助金。

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