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NATO Advanced Research Workshop on Explosives Detection Using Magnetic and Nuclear Resonance Techniques

机译:北约利用核磁共振技术探测爆炸物的高级研究讲习班

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摘要

Nuclear quadrupole resonance (NQR) a highly promising new technique for bulk explosives detection: relatively inexpensive, more compact than NMR, but with considerable selectivity. Since the NQR frequency is insensitive to long-range variations in composition, mixing explosives with other materials, such as the plasticizers in plastic explosives, makes no difference. The NQR signal strength varies linearly with the amount of explosive, and is independent of its distribution within the volume monitored. NQR spots explosive types in configurations missed by the X-ray imaging method. But if NQR is so good, why it is not used everywhere? Its main limitation is the low signal-to-noise ratio, particularly with the radio-frequency interference that exists in a field environment, NQR polarization being much weaker than that from an external magnetic field. The distinctive signatures are there, but are difficult to extract from the noise. In addition, the high selectivity is partly a disadvantage, as it is hard to build a multichannel system necessary to cover a wide range of target substances. Moreover, substances fully screened by metallic enclosures, etc. are difficult to detect. A workshop was held at St Petersburg in July 2008 in an attempt to solve these problems and make NQR the universal technique for the detection of bombs regardless of type. This book presents the essentials of the papers given there.
机译:核四极共振(NQR)是一种用于散装爆炸物检测的极有希望的新技术:相对便宜,比NMR紧凑,但具有相当大的选择性。由于NQR频率对成分的长期变化不敏感,因此将炸药与其他材料(例如塑料炸药中的增塑剂)混合不会造成任何影响。 NQR信号强度随炸药量线性变化,并且不受其在受监测体积内的分布的影响。 NQR可以发现X射线成像方法无法识别的爆炸类型。但是,如果NQR这么好,为什么没有在所有地方都使用它呢?它的主要局限性是信噪比低,特别是在野外环境中存在射频干扰的情况下,NQR极化比来自外部磁场的极化要弱得多。有独特的签名,但是很难从噪音中提取出来。另外,高选择性部分是不利的,因为难以建立覆盖多种目标物质所必需的多通道系统。而且,很难检测到被金属外壳等完全屏蔽的物质。为了解决这些问题并使NQR成为检测炸弹的通用技术,无论其类型如何,该研讨会于2008年7月在圣彼得堡举行。本书介绍了那里提供的论文的要点。

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