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Design of a Lens System Reduces Chromatic Aberration for Proton Radiography

Published online by Cambridge University Press:  01 January 2024

Qinggang Jia*
Affiliation:
Institute of Applied Physics and Computational Mathematics, No. 6, Hua-Yuan Road, Hai-Dian District, Beijing, China
Wenyuan Wang
Affiliation:
Institute of Applied Physics and Computational Mathematics, No. 6, Hua-Yuan Road, Hai-Dian District, Beijing, China
Haibo Xu
Affiliation:
Institute of Applied Physics and Computational Mathematics, No. 6, Hua-Yuan Road, Hai-Dian District, Beijing, China
Liang Lu
Affiliation:
Sino-French Institute of Nuclear Engineering and Technology, Sun Yat-Sen University, Zhuhai 519082, Guangdong, China Institute of Modern Physics, Chinese Academy of Sciences, Lanzhou 730000, China
*
Correspondence should be addressed to Qinggang Jia; qgjia_xjtu@126.com

Abstract

Multi-GeV proton radiography is an important tool for diagnosing density distribution of thick objects. The magnetic lens system called Zumbro lens is widely employed because it compensates for the image distortion induced by small angle multiple Coulomb scattering (MCS) that occurs when the charged protons passing through the object. However, radiography is still suffering from chromatic aberration induced blurring, if the momentum of transmitted proton is different from the reference value of Zumbro lens. In this paper, two methods are employed to reduce chromatic aberration. The first is based on magnetic lens optimization. In addition, a new lens system is first proposed locating the downstream of Zumbro. It is named “auxiliary” lens, which can correct the chromatic aberration for certain protons with momentum far away from the reference of Zumbro lens. Monte Carlo simulation shows that this proposed lens can decrease chromatic aberration and improve the radiography image evidently.

Information

Type
Research Article
Creative Commons
Creative Common License - CCCreative Common License - BY
This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
Copyright
Copyright © 2022 Qinggang Jia et al.
Figure 0

Figure 1: Layout of proton beam in radiography system.

Figure 1

Figure 2: The flowchart of optimization with GA.

Figure 2

Table 1: Optimized parameters.

Figure 3

Table 2: Parameters of an optimized diffuser and matching lens.

Figure 4

Figure 3: Proton beam at object plane. (a) Coordinate-angle correlations. (b) beam intensity distribution.

Figure 5

Figure 4: The structure of auxiliary lens and beam trajectory.

Figure 6

Figure 5: The geometry of slab object. (a) Beam eye view. (b) Oblique view.

Figure 7

Figure 6: Recorded image of the slab object with the same proton beam. (a) Given by the Zumbro system (19.78 GeV). (b) Provided by auxiliary lens (19.76 GeV).

Figure 8

Figure 7: Cross-sectional distribution of sphere object. −250 MeV means the reference momentum is 250 MeV lower than that of the incident proton (20 GeV/c). (a) Cross-sectional distribution. (b) Residual error.