Material characterization and Monte Carlo simulation of lead and non-lead X-Ray shielding materials

被引:26
作者
Aral, Nebahat [1 ,2 ]
Amor Duch, Maria [3 ]
Ardanuy, Monica [2 ]
机构
[1] Yeditepe Univ, Dept Mat Sci & Nanotechnol Engn, Kayisdagi Caddesi, TR-34755 Istanbul, Turkey
[2] Univ Politecn Catalunya UPC Barcelona TECH, Dept Mat Sci, Text Engn Div, C Colom 11, E-08222 Terrassa, Spain
[3] Univ Politecn Catalunya UPC Barcelona TECH, Inst Energy Technol, Diagonal 647, E-08028 Barcelona, Spain
关键词
X-ray shielding; Material analysis; Monte Carlo; Lead; Non-lead; Lightweight apron; APRONS; HAZARDS;
D O I
10.1016/j.radphyschem.2020.108892
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In this paper, the compositions of commercial lead and non-lead X-ray protective materials were investigated by material analysis methods as FTIR-ATR, SEM/EDS, and density measurement to estimate the content of the structures, which were not declared explicitly by the manufacturers. Moreover, Monte Carlo simulations were carried out with the estimated weight ratio of the element amounts and actual densities. Hypothetical compositions were also generated and all the compositions were evaluated in terms of weight per area values versus dose transmission values. The results show that non-lead materials are basically composed of antimony and bismuth. The commercial material with the lowest density showed insufficient attenuation performance, hence it should not be proposed for lightweight apron production. The simulation results indicated also that non-lead compositions that contain adequate amount of radiopaque elements can be environmentally friendly alternatives for lightweight aprons at 60 kV and 90 kV. Besides, at higher levels as 120 kV, non-lead compositions lose their weight advantage against lead compositions.
引用
收藏
页数:9
相关论文
共 25 条
[1]   The X-ray attenuation and the flexural properties of lead-free coated fabrics [J].
Aral, Nebahat ;
Nergis, F. Banu ;
Candan, Cevza .
JOURNAL OF INDUSTRIAL TEXTILES, 2017, 47 (02) :252-268
[2]   An alternative X-ray shielding material based on coated textiles [J].
Aral, Nebahat ;
Nergis, F. Banu ;
Candan, Cevza .
TEXTILE RESEARCH JOURNAL, 2016, 86 (08) :803-811
[3]   Should We Keep the Lead in the Aprons? [J].
Bartal, Gabriel ;
Sailer, Anna M. ;
Vano, Eliseo .
TECHNIQUES IN VASCULAR AND INTERVENTIONAL RADIOLOGY, 2018, 21 (01) :2-6
[4]   X-Ray Protective Clothing: Does DIN 6857-1 Allow an Objective Comparison Between Lead-Free and Lead-Composite Materials? [J].
Eder, H. ;
Schlattl, H. ;
Hoeschen, C. .
ROFO-FORTSCHRITTE AUF DEM GEBIET DER RONTGENSTRAHLEN UND DER BILDGEBENDEN VERFAHREN, 2010, 182 (05) :422-428
[5]   Protective aprons in imaging departments: manufacturer stated lead equivalence values require validation [J].
Finnerty, M ;
Brennan, PC .
EUROPEAN RADIOLOGY, 2005, 15 (07) :1477-1484
[6]   Occupational hazards of interventional cardiologists: Prevalence of orthopedic health problems in contemporary practice [J].
Goldstein, JA ;
Baiter, S ;
Cowley, M ;
Hodgson, J ;
Klein, LW .
CATHETERIZATION AND CARDIOVASCULAR INTERVENTIONS, 2004, 63 (04) :407-411
[7]  
Higgins F., 2013, APPL NOTE, V5991-3649
[8]  
ICRP, 2007, ANN ICRP, V37
[9]  
Jones AK, 2013, MED PHYS, V40, DOI 10.1118/1.4805098
[10]   Validation of ATR FT-IR to identify polymers of plastic marine debris, including those ingested by marine organisms [J].
Jung, Melissa R. ;
Horgen, F. David ;
Orski, Sara V. ;
Rodriguez, Viviana C. ;
Beers, Kathryn L. ;
Balazs, George H. ;
Jones, T. Todd ;
Work, Thierry M. ;
Brignac, Kayla C. ;
Royer, Sarah-Jeanne ;
Hyrenbach, K. David ;
Jensen, Brenda A. ;
Lynch, Jennifer M. .
MARINE POLLUTION BULLETIN, 2018, 127 :704-716