首页> 外文会议>Conference on Sensors, and Command, Control, Communications, and Intelligence Technologies for Homeland Security and Homeland Defense >Finding Concealed High Atomic Numbered Materials Hidden in Cargo Containers using Dual Energy High Energy X-rays from a Linear Accelerator with the unique signature from Photofission
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Finding Concealed High Atomic Numbered Materials Hidden in Cargo Containers using Dual Energy High Energy X-rays from a Linear Accelerator with the unique signature from Photofission

机译:使用带有从线性加速器的双能量高能量X射线找到隐藏在货物容器中隐藏的隐藏的高原子编号材料,其中来自光缺陷的独特签名

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The Dual Energy X-ray technique employs two X-ray projection images of an object with X-ray energy spectra at a low X-ray energy and a high X-ray energy. The two energies are both high enough to penetrate all cargoes. The endpoint energies for low and high will be approximately 5-6 MeV and 8-9.5 MeV respectively. These energies are chosen such that pair production is the dominant energy loss mechanism for the high energy mode. By defining the ratio of the transmitted X-ray photon R = T_(high)/T_(low) it can be shown that there is a difference in the ratio that will permit the detection of materials that are significantly higher in atomic number than the low to mid atomic numbered elements that normally appear in the stream of commerce. This difference can be used to assist in the automatic detection of high atomic numbered materials. These materials might be a WMD or dirty bomb. When coupled with detectors that can observe the delayed signature of photon induced fission a confirmation of a WMD may be made. The use of the delayed photons and neutrons from Photofission can confirm the presence of Special Nuclear Materials (SNM). The energy required to induce fission in SNM by a photon is approximately 6 MeV with the maximum fission production rate from X-ray photons in the energy range of 12-15 MeV.
机译:双能X射线技术在低X射线能量和高X射线能量下采用具有X射线能谱的对象的两个X射线投影图像。这两个能量均足够高,以渗透所有货物。低低和高的终点能量分别为约5-6兆升和8-9.5mev。选择这些能量,使得对生产是高能量模式的主要能量损失机制。通过定义透射的X射线光子R = T_(高)/ T_(低)的比率可以示出,该比率差异将允许检测原子数明显高于的材料低至Mid Itomic编号元素,通常出现在商业流中。这种差异可用于有助于自动检测高原子编号材料。这些材料可能是一个巨大的炸弹或脏炸弹。当耦合与可以观察到光子诱导裂变的延迟特征的探测器时,可以进行WMD的确认。使用延迟的光子和中子从光缺失可以确认存在特殊核材料(SNM)。通过光子诱导SNM裂变所需的能量约为6meV,其来自X射线光子的最大裂变产生率在12-15meV的能量范围内。

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