• 제목/요약/키워드: Radiation room dose distribution

검색결과 32건 처리시간 0.028초

시스템 개선을 통한 핵의학 검사실의 공간 선량률 감소방안 (Solution to Decrease Spatial Dose Rate in Laboratory of Nuclear Medicine through System Improvement)

  • 문재승;신민용;안성철;유문곤;김수근
    • 한국의료질향상학회지
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    • 제20권1호
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    • pp.60-73
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    • 2014
  • Objectives: This study aims at decreasing spatial dose rate through work improvement whilst spatial dose rate is the cause of increasing personal exposure dose which occurs in the process of handling radioisotope. Methods: From February 2013 until July 2013, divided into "before" and "after" the improvement, spatial dose rate in laboratory of nuclear medicine was measured in gamma image room, PET/CT-1 image room, and PET/CT-2 image room as its locations. The measurement time was 08:00, 12:00 and 17:00, and SPSS 21.0 USA was opted for its statistical analysis. Result: The spatial dose rate at distribution worktable, injection table, the entrance to the distribution room, and radioisotope storage box, which had showed high spatial dose rate, decreased by more than 43.7% a monthly average. The distribution worktable, that had showed the highest spatial dose rate in PET/CT-1 image room, dropped the rate to 42.3% as of July. The injection table and distribution worktable in the PET/CT-2 image room also showed the decline of spatial dose rate to 89% and 64.4%, respectively. Conclusion: By improving distribution process and introducing proper radiation shielding material, we were able to drop the spatial dose rate substantially at distribution worktable, injection table, and nuclide storage box. However, taking into account of steadily increasing amount of radioisotope used, strengthening radiation related regulations, and safe utilization of radioisotope, the process of system improvement needs to be maintained through continuous monitoring.

핵의학과 분배실 내의 공간선량률 측정 (Measurement of the Spatial Dose Rate for Distribution Room in Department of Nuclear Medicine)

  • 박정규;조의현
    • 디지털콘텐츠학회 논문지
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    • 제13권2호
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    • pp.151-157
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    • 2012
  • 방사선 구역 내부의 공간선량은 의학의 발전과 더불어 방호시설이 잘 되어 있어도 작업종사자의 피폭을 증가시킬 우려가 있다. 핵의학과 내의 분배실은 항상 공간선량이 존재하므로 작업종사자의 피폭선량을 예측하기 위하여 분배실 내부의 공간선량을 측정, 분석 하였다. 핵의학과 $^{18}F$ 분배실의 공간선량률 측정결과 최대 $6.78{\pm}0.083{\mu}Sv/h$, $^{99m}Tc$, $^{131}I$ 분배실의 공간선량률이 최대 $9.248{\pm}0.013{\mu}Sv/h$로 나타났다. 또한, $^{18}F$ 분배실의 경우 1m 거리에서 간호사가 IV시 연간 외부피폭선량은 $42.5{\mu}Sv$로 나타났다. 분배실의 분배창을 기준으로 오른쪽 사방향에서 공간선량률이 높게 나타났다. 따라서 방사성의약품을 분배실에서 분배할 경우 방사선 작업종사자의 머무르는 시간을 짧게 해야 하며, 분배창의 오른쪽 사방향의 경우 피폭을 줄이기 위한 분배창의 설계가 필요하며, IV시 작업종사자의 개인피폭선량을 줄이기 위한 최선의 노력이 필요하다고 사료된다.

Analysis of Radiation Exposure Dose according to Location Change during Radiation Irradiation

  • Chang-Ho Cho;Jeong-Lae Kim
    • International Journal of Advanced Culture Technology
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    • 제12권2호
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    • pp.368-374
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    • 2024
  • During an X-ray examination, the beam of radiation is dispersed in many directions. We believe that managing radiation dose is about providing transparency to users and patients in the accurate investigation and analysis of radiation dose. The purpose of measuring the radiation dose as a function of location is to ensure that medical personnel using the equipment or participating in the operating room are minimally harmed by the different radiation doses depending on their location. Four mobile diagnostic X-ray units were used to analyze the radiation dose depending on the spatial location. The image intensifier and the flat panel detector type that receives the image analyzed the dose by angle to measure the distribution of the exposure dose by location. The radiation equipment used was composed of four units, and measuring devices were installed according to the location. The X-ray (C-arm) was measured by varying the position from 0 to 360 degrees, and the highest dose was measured at the center position based on the abdominal position, and the highest dose was measured at the 90° position for the head position when using the image intensifier equipment. The operator or medical staff can see that the radiation dose varies depending on the position of the diagnostic radiation generator. In the image intensifier and flat panel detector type that accepts images, the dose by angle was analyzed for the distribution of exposed dose by position, and the measurement method should be changed according to the provision of dose information that is different from the dose output from the equipment according to the position.

Relative Dose Distribution in the Biological Irradiation Facility at TRIGE Mark-III Reactor

  • Kim, Byung-Sung;Ha, Chung-Woo;Lee, Chang-Kun
    • Nuclear Engineering and Technology
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    • 제7권4호
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    • pp.277-284
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    • 1975
  • TRIGA Mark-III 원자로에 설치된 조사시설에서 중성자-감마 혼합 방사선장의 상대적 선량분포 특성을 중성자와 감다 방사선에 대한 감응함수가 다른 한쌍의 열형광선량계를 사용하여 측정한 결과이다. 수평방향 및 수직방향의 거리에 따른 비교적 균일한 선량 분포를 공유한 지역은 조사실 바닥으로부터 약 40cm와 130cm의 높이데 있는 두 수평 평행판사이의 구역증 조사실쪽으로 반원통형으로 돌출된 알미늄 저수조표면에서 수평방향으로 100cm이상의 거리에 있는 지역에 한정됨이 관찰되었다. 그 이외의 지역은 급격한 선량구배 특성을 갖고 있었고 특히 반원통형 알미늄수조 표면근처와 조사실 콩크리트 차폐내벽근처에서 더욱 구배가 컸다.

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고에너지 전자선의 방사선 치료 기술 (Radiotherapy Technique of High Energy Electron)

  • 서명원;박재일;최홍식;김우열
    • 대한방사선치료학회지
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    • 제1권1호
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    • pp.63-69
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    • 1985
  • High energy electron beams took effect for tumor radio-therapy, however, had a lot of problems in clinical application because of various conversion factors and complication of physical reactions. Therefore, we had experimentally studied the important properties of high energy electron beams from the linear accelerator, LMR-13, installed in Yonsei Cancer Center. The results of experimental studies on the problems in the 8, 10, 12 Mev electron beam therapy were reported as following. 1. On the measurements of the outputs and absorbed does, the ionization type dosimeters that had calibrated by $^{90}Sr$ standard source were suitable as under $3\%$ errors for high energy electrons to measure, but measuring doses in small field sizes and the regions of rapid fall off dose with ionization chambers were difficult. 2. The electron energy were measured precisely with energy spectrometer consisted of magnet analyzer and tele-control detector and the practical electron energy was calculated under $5\%$ errors by maximum range of high energy electron beam in the water. 3. The correcting factors of perturbated dose distributions owing to radiation field, energy and material of the treatment cone were checked and described systematically and variation of dose distributions due to inhomogeneous tissues and sloping skin surfaces were completely compensated. 4. The electron beams, using the scatters; i.e., gold, tin, copper, lead, aluminium foils, were adequately diffused and minimizing the bremsstrahlung X-ray induced by the electron energy, irradiation field size and material of scatterers, respectively. 5. Inproving of the dose distribution from the methods of pendulum, slit, grid and focusing irradiations, the therapeutic capacity with limited electron energy could be extended.

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몬테카를로 방법을 이용한 이동형 X선 투시검사 시 수술실 내 공간선량평가 (Spatial Dose Distribution for C-arm Examination within Operation Room Using Monte Carlo Method)

  • 김정훈;신엄현
    • 대한방사선기술학회지:방사선기술과학
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    • 제44권3호
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    • pp.205-210
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    • 2021
  • The purpose of this study was to analyze the spatial dose according to the distance by location of medical workers when using a mobile X-ray fluoroscopy device in the operating room through a simulation experiment. The MCNPX program was used for the simulation, and the location of medical workers was set around the operating table, and the spatial dose distribution according to the distance and changes in imaging conditions was evaluated. As a result, The highest score was 2.74×10-4 mGy, 2.72×10-4 mGy, and 1.18×10-4 mGy based on the 10 cm distance from the operating table. Spatial dose depending on the distance 100cm, A point 5.15×10-5 mGy is decreased 19% of 10cm, D point 5.12×10-5 mGy, 19 % of 10cm, and G pint, 1.73×10-5 mGy is reduced by 15% of 10cm. Based on this study, medical-related workers directly or indirectly participating in surgery carry potential risks of radiation exposure during surgery, but there are difficulties in radiation protection due to the nature of their work. Therefore, efforts to reduce exposure suitable for the operating room environment will be required.

A Study on the Isodose Distribution in a Vascular Characterization Room

  • Choi, Young;Kang, Byung-Sam;Min, Jung-Whan
    • 대한디지털의료영상학회논문지
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    • 제13권1호
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    • pp.7-11
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    • 2011
  • As applications of radiation grow wider from use in the early detection of lesions and preventive diagnosis purposes to the treatment of diseases, the possibilities for patients and working professionals to be exposed to radiation are becoming greater than ever. This can not only directly bring about an increase in patient's individual radiation exposure, but also brings about an increase in the annual radiation dose of working professionals. Therefore, research and countermeasures to reduce radiation dosage are required. In this study, space dosimetry has been divided into two separate measuments with an understanding of the increasing number of angiography procedures: front perspective and side perspective. According to the results of the isodose curve, a way to minimize radiation exposure in working professionals has been suggested. This was made possible by workers through awareness of suitable working positions.

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수술실 내 C-arm 장치의 산란선 분포에 대한 연구 (The Study on Scattered Ray by C-arm in Operation Room)

  • 박성현;박주미;김현수
    • 대한디지털의료영상학회논문지
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    • 제13권1호
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    • pp.21-26
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    • 2011
  • A radiation imaging system used in a surgery room is mainly using C-arm which is purposed to fluoroscope. C-arm is often use to watch an operation's accuracy and progress, but not only being bombed to this first beam but also affected to this scattered beam, so now we are look for the way to reduce bombed amount of doctor, nurses and radiological technologists. We measured the exposure dose in $0^{\circ}$ spot according to the distance to find out frequency distribution of scattered ray in an operation room and found the spot which has the same exposure dose from $30^{\circ}$ distance of all directions and wrote isodose curve. We analyzed the data and found out the sudden reduction of scattered ray according to the long direction also found out that scattered ray was not related to the directions. Operators must recognize the reduction of exposure dose. Because reducing scattered ray from all directions in an operation room is really difficult. So every operators must use shelters to reduce the exposure dose and notice the safety.

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의료기관 방사선 종사자의 직무별 개인피폭선량에 관한 연구 (Medical Radiation Exposure Dose of Workers in the Private Study of the Job Function)

  • 강천구;오기백;박훈희
    • 핵의학기술
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    • 제15권2호
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    • pp.3-12
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    • 2011
  • 본 연구는 방사성동위원소의 의학적 이용도가 증가함에 따라 의료기관 핵의학과 방사선관계종사자의 직무별 방사선 이용에 대한 개인 방사선피폭선량의 실태를 파악하여, 방사선 위험에 대해 경각심을 고취시키고, 방사선 관계종사자들에게 안전관리와 합리적인 피폭선량 관리에 도움을 주고자 분석하였다. 2010년 1월 1일부터 2010년 12월 31일까지 의료기관에서 근무하는 방사선종사자로 분류되어 개인 방사선피폭선량 측정을 정기적, 연속적으로 1년간 조사 관리된 540명의 종사자를 대상으로 부서별, 선량영역구간별, 근무기간별, 직무별 관련업무를 파악하여 심부선량에 대하여 연간평균피폭선량을 각각 분석하였다. 분석법으로는 빈도분석과 ANOVA를 시행하였다. 의료기관 방사선종사자의 부서별 연간피폭선량은 핵의학과 4.57 mSv로 가장 높았으며, 심장혈관중재술실 2.09 mSv, 마취통증의학과 1.42 mSv, 영상의학과 1.10 mSv, 구강악안면 방사선과 0.59 mSv, 방사선종양학과 0.50 mSv 순으로 높게 나타났다. 선량영역별 분포는 핵의학과, 심장혈관중재술실에서 5.01~19.05 mSv의 높은 선량영역분포를 보였으며, 부서별 방사선사의 연간피폭선량은 핵의학과 7.14 mSv로 가장 높은 피폭선량을 보이고 있으며, 심장혈관중재술실 1.46 mSv로 높았고, 영상의학과 0.97 mSv, 구강악안면방사선과 0.66 mSv, 방사선종양학과 0.54 mSv 순으로 나타났다. 세부업무에 따른 직무별 연간평균피폭선량은 싸이크로트론 관련 합성 업무 17.47 mSv로 가장 높은 피폭선량을 보였으며, Gamma camera 영상실 7.24 mSv, PET/CT 영상실 업무가 7.60 mSv로 높게 나타났고, 인터벤션 2.04 mSv, 심혈관중재술실 1.46 mSv, 일반촬영 1.21 mSv, Primart 치료실 0.90 mSv, 구강악안면방사선과 일반촬영 0.66 mSv 순으로 나타났다. 근무기간별, 선량영역별에 따른 연간평균피폭선량은 구강악안면방사선과에서는 10~14년 종사자가 1.01~3.00 mSv로 높은 평균선량을 보였고, 방사선종양학과는 모든 근무기간에 따라 0.00~1.00 mSv 의 낮은 선량영역구간에서 분포를 보였으며, 심혈관중재술실은 10~14년, 15~19년 근무에 따라 각각 1.01~3.00 mSv 선량영역구간에서 분포하였으며, 영상의학과에서는 1~4년, 5~9년 종사자가 각각 1.01~8.00 mSv의 가장 높은 선량영역구간에서 분포를 보였고, 핵의학과에서는 1~4년, 5~9년 종사자가 각각 3.01~19.05 mSv 의 가장 높은 선량영역구간에서 분포를 보였으며, 10~14년, 15~19년 종사자에서도 각각 3.01~15.00 mSv의 높은 선량영역구간에서 분포를 보였다. 이와 같은 결과로 볼 때 의료기관에서 근무하는 방사선관계종사자의 대부분이 현재의 방사선 안전관리가 실효성 있게 이루어지고 있었으며, 직무특성에 따라 많은 차이가 있는 것을 알게 되었다. 그러나 방사선 피폭을 최소화시키는 노력이 필요하며, 이를 위해서 체계적 교육과 합리적인 피폭량 관리를 위한 체계가 필요하다고 사료된다.

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몬테칼로 방법을 이용한 방사성 불소에 대한 L-블럭형 방호장비의 차폐율 및 공간의 선량분포 계산 (Calculation of Shielding Rate and Dose Distribution of Space of L-Block-Type Protective Equipment for Radioactive Fluorine using the Monte Carlo Method)

  • 한동현
    • 한국방사선학회논문지
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    • 제15권6호
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    • pp.813-819
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    • 2021
  • 본 연구에서는 방사성 불소의 인체 내 주입 시 방사선 방호목적으로 사용되는 L-블럭형 방호장비의 차폐율과 주변공간의 선량분포를 몬테칼로 방법을 이용해 계산하였다. L-블럭형 차폐장치의 몸체 및 윈도우 부위의 차폐율은 99.99 %였다. 1 m거리에서 계산한 선량분포는 XZ평면의 135°, 45°, 225°, 315°, 180°에서 상대적으로 높게 나타났고, 0°, 90°, 270°에서는 매우 낮게 계산되었다. YZ평면에서는 135°, 180°, 225°에서 상대적으로 높게 나타났고, 나머지 각도에서는 매우 낮게 계산되었다. AZ와 BZ 평면에서도 YZ평면과 유사한 결과를 나타냈다. 또한 선원의 수평방향과 선원의 상방 45°방향의 선량분포를 통해 225°~315°범위에서 차폐율이 가장 우수함을 확인하였다. 이와 같은 결과가 방사선 작업 종사자들의 방사선 방호에 필요한 기초자료로 활용되기를 기대한다.