Si-Yuan Luo, Wan-Cheng Xiao, Lie He, Hai-Feng Zhang, Xiao-Dong Wang
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引用次数: 0
Abstract
Muon imaging technology, as an emerging detection method, is widely used in various fields. Muons can be classified into cosmic ray muons and accelerator muons based on their origins. Cosmic ray muons stand out for wide energy range, strong penetrating power and no artificial radiation. These characteristics make cosmic ray muon imaging technology adept at achieving nondestructive imaging of target objects. Presently, the commonly used imaging methods include scattering and transmission imaging technologies that leverage muon information for imaging. Additionally, muon and muonic secondary particle coincidence imaging technology utilizes information from secondary particles generated during the interaction between muons and target objects for imaging. The accelerator muon, distinguished by its high flux, strong monochromaticity, and adjustable energy, enables rapid and multidimensional imaging of target objects at various depths. Furthermore, it facilitates the analysis of material elements through muonic X-rays. This article provides insights into the production process and physical characteristics of muons, the fundamental principles of muon imaging technology, and its diverse applications across disciplines. It also explores the current development status and emerging trends in fields such as mineral resource exploration, archaeological studies, and nuclear safety.
μ介子成像技术作为一种新兴的探测方法,被广泛应用于各个领域。μ介子按其来源可分为宇宙射线μ介子和加速器μ介子。宇宙射线渺子具有能量范围广、穿透力强、无人工辐射等特点。这些特点使得宇宙射线μ介子成像技术能够对目标物体进行无损成像。目前,常用的成像方法包括利用μ介子信息进行成像的散射和透射成像技术。此外,μ介子和μ介子二次粒子重合成像技术利用μ介子与目标物体相互作用过程中产生的二次粒子信息进行成像。加速器μ介子具有通量高、单色性强和能量可调等特点,可对不同深度的目标物体进行快速和多维成像。此外,它还有助于通过μ介子 X 射线分析物质元素。本文深入介绍了μ介子的产生过程和物理特性、μ介子成像技术的基本原理及其在各学科的广泛应用。文章还探讨了μ介子成像技术在矿产资源勘探、考古研究和核安全等领域的发展现状和新兴趋势。
期刊介绍:
Nuclear and Particle Physics Proceedings is the premier publication outlet for the proceedings of key conferences on nuclear and high-energy physics and related areas. The series covers both large international conferences and topical meetings. The newest discoveries and the latest developments, reported at carefully selected meetings, are published covering experimental as well as theoretical particle physics, nuclear and hadronic physics, cosmology, astrophysics and gravitation, field theory and statistical systems, and physical mathematics.