• 제목/요약/키워드: percentage depth dose

검색결과 56건 처리시간 0.032초

1차원 광섬유 팬텀선량계를 이용한 치료용 광자선의 피부 및 선량보강영역에서 상대선량 측정 (Measurement of Relative Depth dose of Therapeutic Photon Beam Using One-Dimensional Fiber-Optic Phantom Dosimeter)

  • 문진수;장경원;유욱재;서정기;박장연;조영호;이봉수
    • 센서학회지
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    • 제20권2호
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    • pp.96-101
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    • 2011
  • In this study, we fabricated a fiber-optic phantom dosimeter by arraying square type of plastic optical fibers in a PMMA phantom for measuring relative depth doses of therapeutic photon beams. To minimize the cross-talk between fiber-optic dosimeters, we selected appropriate septum by measuring leaked scintillating lights according to the various kinds of septa. In addition, we measured percentage depth doses of 6, 15 MV photon beams using a fiber-optic phantom dosimeter.

몬테카를로 방법에 의한 6 MV 선형가속기의 광자 흡수선량 분포 평가에 관한 연구 (A Study on Photon Dose Calculation in 6 MV Linear Accelerator Based on Monte Carlo Method)

  • 강상구;안성환;김종일
    • 대한방사선기술학회지:방사선기술과학
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    • 제34권1호
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    • pp.43-50
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    • 2011
  • 본 연구에서는 Geant4 시뮬레이터를 이용하여 Varian 2100C/D 선형가속기의 헤드 부분과 다엽콜리메이터를 모델링한 후 6 MV 광자 선속에 대해 선량분포 평가의 기본이 되는 물팬텀($50{\times}50{\times}50\;cm^3$) 내에서의 심부선량백분율(Percentage depth dose)과 측면선량(lateral dose)에 대해 검출기를 이용한 측정 결과와 시뮬레이션 결과를 비교 평가하였다. 시뮬레이션은 두 단계로 나누어 진행하였다. 첫 번째 단계에서 타겟을 통해 나오는 광자의 에너지 스펙트럼을 측정하였다. 다음 단계에서 셈플링한 에너지 스펙트럼에 따라 광자를 직접 팬텀에 조사하는 방식으로 수행하였다. 실험 결과 $5{\times}5 \;cm^2$$10{\times}10\;cm^2$ 조사야에서의 심부선량백분율과 16 mm, 50 mm, 100 mm에서 측정한 측면 선량 모두 측정값과 비교하여 2% 이내의 오차를 보여 임상적으로 허용범위 안의 오차를 확인하였고 다엽콜리메이터의 정확도는 1 mm 이내의 오차를 확인 할 수 있었다. 본 연구의 연구 결과를 기초로 한 계산적 방법은 오차가 많이 발생하는 비균질성 조직 내에서의 선량분포 연구와 DICOM 데이터를 적용한 선량 계산 시뮬레이션 응용에서 활용하기 위해 선행되어야 하는 기초 자료로서 활용가치가 있다고 판단된다.

동일 기종 선형가속기간 8 MV 광자선에 대한 빔 매칭 정확도 평가 (Evaluation of Beam-Matching Accuracy for 8 MV Photon Beam between the Same Model Linear Accelerator)

  • 김연래;정진범;강성희
    • 대한방사선기술학회지:방사선기술과학
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    • 제43권2호
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    • pp.105-114
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    • 2020
  • This study aimed to assess of beam-matching accuracy for an 8 MV beam between the same model linear accelerators(Linac) commissioned over two years. Two models were got the customer acceptance procedure(CAP) criteria. For commissioning data for beam-matched linacs, the percentage depth doses(PDDs), beam profiles, output factors, multi-leaf collimator(MLC) leaf transmission factors, and the dosimetric leaf gap(DLG) were compared. In addition, the accuracy of beam matching was verified at phantom and patient levels. At phantom level, the point doses specified in TG-53 and TG-119 were compared to evaluate the accuracy of beam modelling. At patient level, the dose volume histogram(DVH) parameters and the delivery accuracy are evaluated on volumetric modulated arc therapy(VMAT) plan for 40 patients that included 20 lung and 20 brain cases. Ionization depth curve and dose profiles obtained in CAP showed a good level for beam matching between both Linacs. The variations in commissioning beam data, such as PDDs, beam profiles, output factors, TF, and DLG were all less than 1%. For the treatment plans of brain tumor and lung cancer, the average and maximum differences in evaluated DVH parameters for the planning target volume(PTV) and the organs at risk(OARs) were within 0.30% and 1.30%. Furthermore, all gamma passing rates for both beam-matched Linacs were higher than 98% for the 2%/2 mm criteria and 99% for the 2%/3 mm criteria. The overall variations in the beam data, as well as tests at phantom and patient levels remains all within the tolerance (1% difference) of clinical acceptability between beam-matched Linacs. Thus, we found an excellent dosimetric agreement to 8 MV beam characteristics for the same model Linacs.

고 에너지 X-선 조사에 의한 광섬유 방사선량계와 이온 전리함의 심부선량 백분율 측정 및 비교 (Measurements and comparisons of PDDs using ion chamber and fiber-optic dosimeter irradiated by high energy photon beam)

  • 조동현;장경원;유욱재;서정기;허지연;이봉수;조영호;문주현;박병기
    • 센서학회지
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    • 제18권2호
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    • pp.173-178
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    • 2009
  • In this study, we have fabricated a fiber-optic dosimeter using an organic scintillator and a plastic optical fiber for measuring percentage depth dose with high energy X-ray beam. The scintillating light generated in organic sensor probe embedded in a solid water are guided by 20 m plastic optical fiber to the light-measuring device such as a photodiode- amplifier system. Using a fiber-optic dosimeter and an ion chamber, percentage depth dose curves are measured with 6 and 15 MV energies of X-ray beam whose field sizes are $2\;cm\;{\times}\;2\;cm$ and $10\;cm\;{\times}\;10\;cm$.

고(高) 에너지 전자선(電子線) 치료시(治療時) 체내(體內) 공동(空洞)으로 인(因)한 선량분포(線量分布)의 변동(變動) (Perturbation of Dose Distributions for Air Cavities in Tissue by High Energy Electron)

  • 추성실;이도행;최병숙
    • Journal of Radiation Protection and Research
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    • 제1권1호
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    • pp.22-30
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    • 1976
  • The perturbation of dose distribution adjacent to cavities in high energy electron has shown that the percentage of dose increase varies markedly as a function of the build-up layer, the length and thickness of the cavities, and the electron energy. The dose distribution showed that cavities similar in size to those encountered in the head and neck measured by industrial film dosimetry and corrected by ionization chambers. The most increased doses by measuring are resulted in a localized dose of up to 130% of that measured at the depth of maximum dose within a homogeneous tissue equivalent phantom. The measured values and correction factors of dose perturbation due to air cavities showed in diagrams and would be summarized as follows. 1. In $8{\sim}12MeV$ electron beams, the most marked dose is observed when the build-up layer thickness is 0.5cm and cavity volume is $2{\times}2{\times}2cm^3$. 2. The highest dose point is located under cavity when the energy is increased and cavity length is longer. 3. The cavity length at which the maximum percentage dose occurs decreases with increasing energy. 4. The highest percentage cavity doses are obtained when the energy is high, the build-up layer is thin, the thickness of the cavity is large, and the length of the cavity is approximately 1 to 3cm. 5. The doses of upper portion of cavity are less than the standard dose distribution as 5 to 10%. 6. The maximum range of electron beam are extended as much as thickness of cavity. 7. A cavity having a length of 5cm closely approximates a cavity of infinite length.

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몬테칼로 기법을 이용한 CBCT의 광자선 특성 및 선량 분석 (Analysis of Photon Characteristics and Absorbed Dose with Cone Beam Computed Tomography (CBCT) using Monte Carlo Method)

  • 김종보;김정훈;박은태
    • 한국방사선학회논문지
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    • 제11권3호
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    • pp.161-169
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    • 2017
  • 방사선 치료 시 자세 확인 촬영을 목적으로 3차원 영상 획득이 가능한 콘빔씨티 촬영이 많이 이용되고 있다. 본 연구에서는 몬테칼로 기법을 이용한 모의실험을 통해 콘빔씨티 촬영 시 피폭선량을 정략적으로 분석하고 표준화된 데이터를 제시하고자 한다. 실험은 MCNPX(ver. 2.5.0)를 이용하였으며, 먼저 콘빔씨티를 모사한 후 광자선 스펙트럼을 분석하였다. 그리고 물 팬텀을 모사하여 깊이별 심부선량 백분율과 흡수선량을 측정하였다. 광자선 스펙트럼을 분석한 결과, 관전압 80 ~ 120 kVp 에서 평균 에너지는 조건에 따라 25.7 ~ 52.6 keV로 나타났으며 특성X선 에너지는 9, 60, 68, 70 keV로 나타났다. 물 팬텀을 사용하여 심부선량 백분율을 측정한 결과 표면에서 최대선량이 나타났으며 깊이가 깊어질수록 감소하는 것으로 나타났다. 흡수선량 또한 깊이가 증가할수록 감소하였으며 팬텀 전체가 받는 흡수선량은 9.7 ~ 18.7 mGy로 나타났다. 이는 일반적으로 방사선 치료에 사용되는 주당 처방선량인 약 10Gy의 0.2%를 차지하는 선량이며 이는 치료효과에는 큰 영향을 미치지 않을 것으로 판단된다. 그러나 처방선량에 비해 미미한 수준일지라도 이를 간과해서는 안 될 것이다.

Analytical Consideration of Surface Dose and Kerma for Megavoltage Photon Beams in Clinical Radiation Therapy

  • Birgani, Mohammad Javad Tahmasebi;Behrooz, Mohammad Ali;Razmjoo, Sasan;Zabihzadeh, Mansour;Fatahiasl, Jafar;Maskni, Reza;Abdalvand, Neda;Asgarian, Zeynab;Shamsi, Azin
    • Asian Pacific Journal of Cancer Prevention
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    • 제17권1호
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    • pp.153-157
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    • 2016
  • Background: In radiation therapy, estimation of surface doses is clinically important. This study aimed to obtain an analytical relationship to determine the skin surface dose, kerma and the depth of maximum dose, with energies of 6 and 18 megavoltage (MV). Materials and Methods: To obtain the dose on the surface of skin, using the relationship between dose and kerma and solving differential equations governing the two quantities, a general relationship of dose changes relative to the depth was obtained. By dosimetry all the standard square fields of $5cm{\times}5cm$ to $40cm{\times}40cm$, an equation similar to response to differential equations of the dose and kerma were fitted on the measurements for any field size and energy. Applying two conditions: a) equality of the area under dose distribution and kerma changes in versus depth in 6 and 18 MV, b) equality of the kerma and dose at $x=d_{max}$ and using these results, coefficients of the obtained analytical relationship were determined. By putting the depth of zero in the relation, amount of PDD and kerma on the surface of the skin, could be obtained. Results: Using the MATLAB software, an exponential binomial function with R-Square >0.9953 was determined for any field size and depth in two energy modes 6 and 18MV, the surface PDD and kerma was obtained and both of them increase due to the increase of the field, but they reduce due to increased energy and from the obtained relation, depth of maximum dose can be determined. Conclusions: Using this analytical formula, one can find the skin surface dose, kerma and thickness of the buildup region.

다엽 콜리메이터와 제작차폐물의 동시 사용시 표면선량 변화 (Surface and Percentage Depth Doses for Multileaf Collimator Conjunction with Conventional Block)

  • 양광모;서현숙
    • 한국의학물리학회지:의학물리
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    • 제13권2호
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    • pp.62-68
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    • 2002
  • 최근 설치된 선형가속기는 다엽 콜리메이터를 장착하고 있다. 기본적으로 다엽 콜리메이트의 사용은 기존의 차폐블럭을 대체하는 역할을 한다. 그러나 다엽 콜리메이터는 폭 1 cm의 콜리메이터가 각각 움직여서 방사선 조사 범위를 만들어 정교한 조사범위를 만들기 어려운 경우가 있을 수 있다. 따라서 조사야를 보다 정밀하게 만들기 위해 다엽 콜리메이터 아래 추가 차폐물을 사용하게 된다. 다엽 콜리메이터 아래 추가 차폐물을 사용할 경우 차폐물과 환자의 피부표면과의 거리가 짧아져 피부표면 선량이 증가하게 되며 최대 선량점(D$_{max}$)이 변할 수 있다. 이와 같은 변화는 조사야의 크기와 방사선의 에너지에 따라 영향을 받을 수 있다. 따라서 본 연구는 다엽 콜리메이터 아래 추가 차폐물을 사용할 때 조사야와 방사선에너지에 따라 표면선량과 최대 선량점의 변화를 측정하여 이들 값이 증가함을 확인하였고 다엽 콜리메이터 아래 추가 차폐물을 사용함으로써 증가한 표면선량은 전자 흡수판으로 2-3 mm 두께의 납판을 사용하여 효과적으로 감소시킬 수 있음을 확인하였다.

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Geant4 코드를 이용한 선형가속기 6 MV 광자선의 선량분포에 관한 연구 (Geant4 Code Based Simulation of 6 MV Photon Beam for Analysis of Dose Distribution)

  • 이준성;김양수;이선영
    • 대한방사선기술학회지:방사선기술과학
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    • 제45권5호
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    • pp.449-455
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    • 2022
  • This study is to present a Geant4 code for the simulation of the absorbed dose distribution given by a medical linac for 6 MV photon beam. The dose distribution was verified by comparison with calculated beam data and beam data measured in water phantom. They were performed for percentage depth dose(PDD) and beam profile of cross-plane for two field sizes of 10 × 10 and 15 × 15 cm2. Deviations of a percentage and distance were obtained. In energy spectrum, the mean energy was 1.69 MeV. Results were in agreement with PDD and beam profile of the phantom with a tolerance limit. The differences in the central beam axis data 𝜹1 for PDD had been less than 2% and in the build up region, these differences increased up to 4.40% for 10 cm square field. The maximum differences of 𝜹2 for beam profile were calculated with a result of 4.35% and 5.32% for 10 cm, 15 cm square fields, respectively. It can be observed that the difference was below 4% in 𝜹3 and 𝜹4. For two field sizes of 𝜹50-90 and RW50, the results agreed to within 2 mm. The results of the t-test showed that no statistically significant differences were found between the data for PDD of 𝜹1, p>0.05. A significant difference on PDD was observed for field sizes of 10 × 10 cm2, p=0.041. No significant differences were found in the beam profile of 𝜹3, 𝜹4, RW50, and 𝜹50-90. Significant differences on beam profile of 𝜹2 were observed for field sizes of 10 × 10 cm2, p=0.025 and for 15 × 15 cm2, p=0.037. This work described the development and reproducibility of Geant4 code for verification of dose distribution.

Photon Beam Commissioning for Monte Carlo Dose Calculation

  • Cho, Byung-Chul;Park, Hee-Chul;Hoonsik Bae
    • 한국의학물리학회:학술대회논문집
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    • 한국의학물리학회 2002년도 Proceedings
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    • pp.106-108
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    • 2002
  • Recent advances in radiation transport algorithms, computer hardware performance, and parallel computing make the clinical use of Monte Carlo based dose calculations possible. Monte Carlo treatment planning requires accurate beam information as input to generate accurate dose distributions. The procedures to obtain this accurate beam information are called "commissioning", which includes accelerator head modeling. In this study, we would like to investigate how much accurately Monte Carlo based dose calculations can predict the measured beam data in various conditions. The Siemens 6MV photon beam and the BEAM Monte Carlo code were used. The comparisons including the percentage depth doses and off-axis profiles of open fields and wedges, output factors will be presented.

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