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新型双能 X 射线分析方法的可行性研究。

Feasibility study for a novel method of dual energy x-ray analysis.

机构信息

School of Physics, Monash University, Clayton, VIC 3080, Australia.

出版信息

Phys Med Biol. 2011 Sep 7;56(17):5599-619. doi: 10.1088/0031-9155/56/17/009. Epub 2011 Aug 9.

Abstract

Dual energy x-ray analysis (DEXA) is investigated using a nonlinear model for the x-ray linear attenuation coefficient μ that is expressed as a function of electron density N(e) and the fourth compositional ratio R₄. Nonlinear simultaneous equations are solved using a least-squares algorithm based upon the method of Levenberg and Marquardt. Measurements of μ for low atomic number materials (containing elements hydrogen to calcium) at energies 32-66 keV are used to study DEXA accuracy as a function of sample composition, photon energy and their separation ΔE. Results are presented for ΔE = 5-30 keV, for 2% measurement precision, and the doses involved are quantified. The model is subject to propagation of error analysis and results are presented for the relationship between measurement uncertainties and those for N(e) and R₄. The analysis shows how DEXA accuracy is controlled by the fractional compositional cross-product, which represents the contribution of composition to μ, and how this can be optimized by careful selection of beam energies according to the compositional range of interest. Accurate DEXA is achieved over restricted energy and compositional ranges: soft tissues only at approximately 15-25 keV, all tissues at approximately 30-80 keV and, for situations where a higher dose can be tolerated, all tissues at approximately 4-8 MeV.

摘要

双能 X 射线分析(DEXA)采用了一种非线性模型来研究 X 射线线性衰减系数μ,该模型表示为电子密度 N(e)和第四个组成比 R₄的函数。使用基于 Levenberg 和 Marquardt 方法的最小二乘法算法来求解非线性联立方程。使用 32-66keV 能量的低原子序数材料(含氢到钙元素)的μ测量值来研究 DEXA 精度作为样品组成、光子能量及其分离ΔE的函数。结果针对ΔE = 5-30keV,测量精度为 2%,并量化了所涉及的剂量。该模型经过误差传播分析,并针对测量不确定度与 N(e)和 R₄之间的关系给出了结果。分析表明了 DEXA 精度如何受组成分数交叉乘积控制,以及如何根据感兴趣的组成范围通过仔细选择束能量来优化精度。在受限的能量和组成范围内可以实现准确的 DEXA:软组织仅在大约 15-25keV,所有组织在大约 30-80keV,对于可以耐受更高剂量的情况,所有组织在大约 4-8MeV。

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