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http://dx.doi.org/10.17946/JRST.2017.40.4.03

Measurement of Spatial Scattered Dose Distribution According to Presence or Absence of Radiation Shielding in the Operating Room  

Do, Sang-Lock (Department of Radiological Science, Daegu Catholic University)
Cho, Pyong-Kon (Department of Radiological Science, Daegu Catholic University)
Kim, Seong-Jin (Korea Institute of Medical Device Assessment)
Jung, Dong Kyung (Department of Radioation Oncology, Daegu Fatima Hospital)
Publication Information
Journal of radiological science and technology / v.40, no.4, 2017 , pp. 549-556 More about this Journal
Abstract
This study compared the spatial scattered dose distribution according to whether the recently developed radiation shielding is used or not in order to understand the spatial scattered dose distribution of C-arm. The horizontal side distribution increased by $30^{\circ}$ in the interval of the radius 50 cm on the height of 95 cm based on the head of the patient, and it was measured by increasing $30^{\circ}$ with the interval of 50 cm in the vertical side of each horizontal side. In the same method, the radiation shielding was installed and measured. The result of measurement shows that the horizontal side of 50 cm distance was $0^{\circ}$, $90^{\circ}$ and $180^{\circ}$, was $1.77{\pm}0.12$, $1.90{\pm}0.13$, $2.12{\pm}0.14$, and $2.69{\pm}0.15mSv/h$ in the $270^{\circ}$ direction, and was $1.59{\pm}0.12$, $0.99{\pm}0.09$, $1.47{\pm}0.11$, and $1.37{\pm}0.11mSv/h$ after the use of the radiation shielding. In addition, the vertical distribution in horizontal direction $90^{\circ}$ with 50 cm distance was $30^{\circ}$, $60^{\circ}$, $120^{\circ}$, was $3.85{\pm}0.18$, $9.15{\pm}0.28$, $10.82{\pm}0.31$, and $5.40{\pm}0.22mSv/h$ in $150^{\circ}$, and was $2.03{\pm}0.13$, $4.32{\pm}0.19$, $2.76{\pm}0.16$, and $1.92{\pm}0.13mSv/h\;mR/h$ after the use of the radiation shielding. Both direction showed decrease according to the use of the radiation shielding. Therefore, radiation related workers who work in operating rooms should recognize the spatial scattered dose distribution exactly and need to try to prevent the risk of radiation exposure with proper protective measures.
Keywords
C-arm; spatial scattered dose distribution; radiation shielding; radiation related worker; risk of radiation exposure;
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Times Cited By KSCI : 7  (Citation Analysis)
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1 Lee JG. Principles of Radiation Protection. Korea Association for Radiation Application. Geoseong Publishing Printing; 2016, 541-93.
2 Korea Centers for Disease Control and Prevention. Publication of Medical Radiation Occupational Radiation Statistics Statistical Yearbook. 2017 [cited 2017 October 10]; https://www.cdc.go.kr/CDC/contents/CdcKrContentLink.jsp?fid=21&cid=72953&ctype=1.
3 Shim DM, Kim YM, Oh SK, Lim CM, Kown BT. Radiation Induced Hand Necrosis of an Orthopaedic Surgeon Who Had Treated a Patient with Fluoroscopy-Guided Spine Injection. J Korean Orthop Assoc. 2014;49(3):250-4.   DOI
4 Kim JW, Kim JJ. Radiation Exposure to the Orthopaedic Surgeon during Fracture Surgery. J Korea Orthop Assoc. 2010;45:107-13.   DOI
5 Park SH, Park JM, Kim HS. The Study on Scattered Ray by C-arm in Operation Room. Korean journal of digital imaging in medicine. 2011;13: 21-6.
6 Kown DM, Park MH, Nam HD. Measurement of the Scattered Spatial Dose Distribution for the Mobile X-ray Radiography. Journal of Korean Society of radiological technology. 2001;24(1): 23-6.
7 Sung KH, Jung YJ, Kwon SS, Lee GW, Chung CY, Lee KM, Cha HM, et al. Performances of a protector against scattered radiation during intraoperative use of a C-arm fluoroscope. Journal of Radiological Protection. 2016;36:629-40.   DOI
8 Ministry of Health and Welfare. Rules om Safty Control for Diagnostic Radiographic Unit. 2017 [cited 2017 October 10]; http://www.law.go.kr/lsSc.do?menuId=0&subMenu=1&query=%EC%A7%84%EB%8B%A8%EC%9A%A9%EB%B0%A9%EC%82%AC%EC%84%A0#undefined.
9 Kim BH, Kim HJ. A Study on knowledge, perception, self-efficacy, and performance on radiation protection among perioperative workers in terms of radiation protection. Journal of the Korea Academia-Industrial cooperation Society. 2017;18(5):343-54.   DOI
10 Lee JG. Principles of Radiation Protection. Korea Association for Radiation Application. Geoseong Publishing Printing; 2016, 381-431.
11 Choi SK. A Study of Changes in the Primary Dose Penetrating the Protective Apron on SID in X-ray Radiography. Journal of Radiological Science and Technology. 2016;39(4):501-7.   DOI
12 Cho PK. Distribution of the Scatter Ray on Chest X-ray Examinations. The Joumal of the Korea Contents Association. 2012;12(7):255-60.
13 Cho PK. Distribution of the Scatter ray in Fluoroscopy X-ray Room. The Journal of the Korea Contents Association. 2011;11(10):349-54.   DOI
14 Kim KS, Song JN, Kim SO. Study on the Method for Reducing the Operator’s Exposure Dose From a C-Arm System. Journal of Radiological Science and Technology. 2016;39(4):493-9.   DOI
15 Choi SK. Relationship between the Distribution of Space doses in X-ray Rooms and the "Inverse Square Law of Distance". The Journal of the Korea Contents Association. 2013;13(8):301-7.   DOI
16 Choi SG. A Study of Changes in the Primary Dose Penetrating the Protective Apron on SID in X-ray Radiography. Journal of Radiological Science and Technology. 2016;39(4):501-7.   DOI