• 제목/요약/키워드: Electron dose calculation

검색결과 65건 처리시간 0.02초

Evaluation of electron dose distribution obtained from ADAC Pinnacle system against measurement and Monte Carlo method for breast patients

  • Lee, S.;Lee, R.;Park, D.;S. Suh
    • 한국의학물리학회:학술대회논문집
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    • 한국의학물리학회 2003년도 제27회 추계학술대회
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    • pp.82-82
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    • 2003
  • Introduction: With the development of dose calculation algorithms for electron beams, 3D RTP systerns are available for electron beam dose distribution commercially. However, no studies evaluated the accuracy of dose calculation with ADAC Pinnacle system for electron beams. So, the accuracy of the ADAC system is investigated by comparing electron dose distributions from ADAC system against the BEAMnrc/DOSXYZnrc. Methods: A total of 33 breast cancer patients treated with 6, 9, and 12MeV electrons in our institution was selected for this study. The first part of this study is to compare the dose distributions of measurement, TPS and the BEAMnrc/DOSXYZnrc code in flat water phantom at gantry zero position and for a 10 ${\times}$ 10 $\textrm{cm}^2$ field. The second part is to evaluate the monitor unit obtained from measurement and TPS. Adding actual breast patient's irregular blocks to the first part, monitor units to deliver 100 cGy to the dose maximum (dmax) were calculated from measurement and 3D RTP system. In addition, the dose distributions using blocks were compared between TPS and the BEAMnrc/DOSXYZnrc code. Finally, the effects of tissue inhomogeneities were studied by comparing dose distributions from Pinnacle and Monte Carlo method on CT data sets. Results: The dose distributions calculated using water phantom by the TPS and the BEAMnrc/ DOSXYZnrc code agreed well with measured data within 2% of the maximum dose. The maximum differences of monitor unit between measured and Pinnacle TPS in flat water phantom at gantry zero position were 4% for 6 MeV and 2% for 9 and 12 MeV electrons. In real-patient cases, comparison of depth doses and lateral dose profiles calculated by the Pinnacle TPS, with BEAMnrc/DOSXYZnrc code has generally shown good agreement with relative difference less than +/-3%. Discussion: For comparisons of real-patient cases, the maximum differences between the TPS and BEAMnrc/DOSXYZnrc on CT data were 10%. These discrepancies were due in part to the inaccurate dose calculation of the TPS, so that it needs to be improved properly. Conclusions: On the basis of the results presented in this study, we can conclude that the ADAC Pinnacle system for electron beams is capable of giving results absolutely comparable to those of a Monte Carlo calculation.

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Comparison between Old and New Versions of Electron Monte Carlo (eMC) Dose Calculation

  • Seongmoon Jung;Jaeman Son;Hyeongmin Jin;Seonghee Kang;Jong Min Park;Jung-in Kim;Chang Heon Choi
    • 한국의학물리학회지:의학물리
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    • 제34권2호
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    • pp.15-22
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    • 2023
  • This study compared the dose calculated using the electron Monte Carlo (eMC) dose calculation algorithm employing the old version (eMC V13.7) of the Varian Eclipse treatment-planning system (TPS) and its newer version (eMC V16.1). The eMC V16.1 was configured using the same beam data as the eMC V13.7. Beam data measured using the VitalBeam linear accelerator were implemented. A box-shaped water phantom (30×30×30 cm3) was generated in the TPS. Consequently, the TPS with eMC V13.7 and eMC V16.1 calculated the dose to the water phantom delivered by electron beams of various energies with a field size of 10×10 cm2. The calculations were repeated while changing the dose-smoothing levels and normalization method. Subsequently, the percentage depth dose and lateral profile of the dose distributions acquired by eMC V13.7 and eMC V16.1 were analyzed. In addition, the dose-volume histogram (DVH) differences between the two versions for the heterogeneous phantom with bone and lung inserted were compared. The doses calculated using eMC V16.1 were similar to those calculated using eMC V13.7 for the homogenous phantoms. However, a DVH difference was observed in the heterogeneous phantom, particularly in the bone material. The dose distribution calculated using eMC V16.1 was comparable to that of eMC V13.7 in the case of homogenous phantoms. The version changes resulted in a different DVH for the heterogeneous phantoms. However, further investigations to assess the DVH differences in patients and experimental validations for eMC V16.1, particularly for heterogeneous geometry, are required.

Electron Accelerator Shielding Design of KIPT Neutron Source Facility

  • Zhong, Zhaopeng;Gohar, Yousry
    • Nuclear Engineering and Technology
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    • 제48권3호
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    • pp.785-794
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    • 2016
  • The Argonne National Laboratory of the United States and the Kharkov Institute of Physics and Technology of the Ukraine have been collaborating on the design, development and construction of a neutron source facility at Kharkov Institute of Physics and Technology utilizing an electron-accelerator-driven subcritical assembly. The electron beam power is 100 kW using 100-MeV electrons. The facility was designed to perform basic and applied nuclear research, produce medical isotopes, and train nuclear specialists. The biological shield of the accelerator building was designed to reduce the biological dose to less than 5.0e-03 mSv/h during operation. The main source of the biological dose for the accelerator building is the photons and neutrons generated from different interactions of leaked electrons from the electron gun and the accelerator sections with the surrounding components and materials. The Monte Carlo N-particle extended code (MCNPX) was used for the shielding calculations because of its capability to perform electron-, photon-, and neutron-coupled transport simulations. The photon dose was tallied using the MCNPX calculation, starting with the leaked electrons. However, it is difficult to accurately tally the neutron dose directly from the leaked electrons. The neutron yield per electron from the interactions with the surrounding components is very small, ~0.01 neutron for 100-MeV electron and even smaller for lower-energy electrons. This causes difficulties for the Monte Carlo analyses and consumes tremendous computation resources for tallying the neutron dose outside the shield boundary with an acceptable accuracy. To avoid these difficulties, the SOURCE and TALLYX user subroutines of MCNPX were utilized for this study. The generated neutrons were banked, together with all related parameters, for a subsequent MCNPX calculation to obtain the neutron dose. The weight windows variance reduction technique was also utilized for both neutron and photon dose calculations. Two shielding materials, heavy concrete and ordinary concrete, were considered for the shield design. The main goal is to maintain the total dose outside the shield boundary less than 5.0e-03 mSv/h during operation. The shield configuration and parameters of the accelerator building were determined and are presented in this paper.

골반 방사선 치료에서 산란이 kV-Conebeam CT 영상 기반의 선량계산에 미치는 영향에 대한 연구 (Study of Scatter Influence of kV-Conebeam CT Based Calculation for Pelvic Radiotherapy)

  • 윤경준;곽정원;조병철;김영석;이상욱;안승도;남상희
    • 한국의학물리학회지:의학물리
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    • 제25권1호
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    • pp.37-45
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    • 2014
  • ConeBeam Computed Tomography (CBCT) 영상을 기반으로 한 선량계산에서는 Fanbeam Computed Tomography (FBCT)와 비교하여 산란에 의한 영향이 크고 그 양상이 다양하게 나타나 오차의 주요한 요인으로 작용하는 것으로 알려져 있다. 본 논문에서는 골반 방사선 치료에서 산란이 CBCT 기반으로 한 선량계산에 미치는 영향을 평가하여 오차를 최소화 할 수 있는 조건에 대하여 연구하였다. 다양한 산란조건에서의 CBCT 영상 취득을 위하여 전자밀도 교정용 팬텀에 크기가 각기 다른 산란물질을 추가하여 "산란부족", "산란과다", 그리고 "산란충분"의 3가지 조건을 정하였다. 산란조건에서 취득된 CBCT 영상에서 팬텀 중심부와 주변부의 위치에 따른 CT number값의 차이와 분포를 분석하여 균질도를 평가하였으며 FBCT 영상 기반의 선량 분포를 기준으로 하여 다양한 산란조건에서의 전자밀도 교정관계를 적용하였을 때 팬텀 및 전립선암 환자 5명의 CBCT 영상에서 계산된 선량분포의 감마합격률 및 상대적 오차를 구하였다. 팬텀 CBCT 영상에 대한 CT number들의 히스토그램에서의 분포에서 물 등가 물질에 해당하는 피크의 폭(FWHM)은 산란부족(685 HU)이나 산란과다(264 HU)보다 산란충분(146 HU)의 조건에서 가장 작게 나타나 균질도가 제일 좋은 것으로 평가되었고 팬텀의 중심부와 주변부에서 동일 성분에 대한 CT number의 차이 역시 같은 결과를 나타내었다. 또한 팬텀의 CBCT 영상을 취득할 때와 동일한 산란조건에서의 교정조건을 적용한 경우 선량계산이 가장 정확하였으며 산란충분의 교정곡선 조건을 적용하였을 때 5명의 전립선암환자(평균 등가지름 27.2 cm)의 CBCT 영상 기반의 선량분포는 FBCT의 경우와 대비하여 1%/3 mm의 감마지표에서 감마합격률 98% 이상을 나타내었다. 이때 FBCT 선량에 대한 CBCT 선량오차는 처방선량 대비 2% 이하(평균 0.2%, -1.3%~1.6%)로 평가되었다. CBCT 골반 촬영을 할 때 일반적인 성인 골반의 원통 등가지름(ECD, Equivalent Cylindrical Diameter)의 산란조건에서 동일 성분에 대한 HU 값이 가장 균질하게 나타나 골반 촬영모드가 최적화되었음을 확인하였으며 일반적인 골반부위와 ECD가 유사한 산란조건, 즉 산란충분조건에서 취득된 전자밀도 교정관계를 적용하여 골반 CBCT 기반에서 선량을 계산하였을 때 최적의 선량 정확성을 확보할 수 있었다.

Development of a Wide Dose-Rate Range Electron Beam Irradiation System for Pre-Clinical Studies and Multi-Purpose Applications Using a Research Linear Accelerator

  • Jang, Kyoung Won;Lee, Manwoo;Lim, Heuijin;Kang, Sang Koo;Lee, Sang Jin;Kim, Jung Kee;Moon, Young Min;Kim, Jin Young;Jeong, Dong Hyeok
    • 한국의학물리학회지:의학물리
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    • 제31권2호
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    • pp.9-19
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    • 2020
  • Purpose: This study aims to develop a multi-purpose electron beam irradiation device for preclinical research and material testing using the research electron linear accelerator installed at the Dongnam Institute of Radiological and Medical Sciences. Methods: The fabricated irradiation device comprises a dual scattering foil and collimator. The correct scattering foil thickness, in terms of the energy loss and beam profile uniformity, was determined using Monte Carlo calculations. The ion-chamber and radiochromic films were used to determine the reference dose-rate (Gy/s) and beam profiles as functions of the source to surface distance (SSD) and pulse frequency. Results: The dose-rates for the electron beams were evaluated for the range from 59.16 Gy/s to 5.22 cGy/s at SSDs of 40-120 cm, by controlling the pulse frequency. Furthermore, uniform dose distributions in the electron fields were achieved up to approximately 10 cm in diameter. An empirical formula for the systematic dose-rate calculation for the irradiation system was established using the measured data. Conclusions: A wide dose-rate range electron beam irradiation device was successfully developed in this study. The pre-clinical studies relating to FLASH radiotherapy to the conventional level were made available. Additionally, material studies were made available using a quantified irradiation system. Future studies are required to improve the energy, dose-rate, and field uniformity of the irradiation system.

Numerical Calculation of the Deflected Path of Electrons through Water under External Magnetic Fields

  • Jeong, Dong-Hyeok;Kim, Jhin-Kee;Shin, Kyo-Chul;Kim, Ki-Hwan;Kim, Jeung-Kee;Oh, Young-Kee;Ji, Young-Hoo;Lee, Jeong-Ok;Kim, Seung-Kyu
    • 한국의학물리학회:학술대회논문집
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    • 한국의학물리학회 2003년도 제27회 추계학술대회
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    • pp.71-71
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    • 2003
  • The study on magnetic field combined radiation therapy, as a new technique to modify the dose distributions using external magnetic field, has been investigated. The goal of the study is to develop the techniques for dose localization, as a particle beam, from the strong magnetic fields. In this study, in order to study the principle of dose deposition in external fields, as a basic approach, we have calculated approximately the paths of traveling electrons in water under external magnetic fields with numerical methods. The calculations are performed for a primary particle by cumulating the steps which are defined as small path lengths which energy loss can be ignored. In this calculation, the energy loss and direction change for a step was calculated by using total stopping power and Lorentz force equation respectively. We have examined the deflected paths of the electron through water as a function of external magnetic field and incident electron s energy. Since we did not take account of the multiple scattering effects for electrons through water, there are errors in this calculation. However, from the results we can explain the principle of dose variation and dose focusing for electron beams under strong magnetic fields in water.

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Improvement of Calculation Accuracy in the Electron Monte Carlo Algorithm with Optional Air Profile Measurements

  • Sung, Jiwon;Jin, Hyeongmin;Kim, Jeongho;Park, Jong Min;Kim, Jung-in;Choi, Chang Heon;Chun, Minsoo
    • 한국의학물리학회지:의학물리
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    • 제31권4호
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    • pp.163-171
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    • 2020
  • Purpose: In this study, the accuracies of electron Monte Carlo (eMC) calculation algorithms were evaluated to determine whether electron beams were modeled by optional air profiles (APs) designed for each applicator size. Methods: Electron beams with the energies of 6, 9, 12, and 16 MeV for VitalBeam (Varian Medical System, Palo Alto, CA, USA) and 6, 9, 12, 16, and 20 MeV for Clinac iX (Varian Medical System) were used. Optional APs were measured at the source-to-detector distance of 95 cm with jaw openings appropriate for each machine, electron beam energy, and applicator size. The measured optional APs were postprocessed and converted into the w2CAD format. Then, the electron beams were modeled and calculated with and without optional APs. Measured profiles, percentage depth doses, penumbras with respect to each machine, and energy were compared to calculated dose distributions. Results: For VitalBeam, the profile differences between the measurement and calculation were reduced by 0.35%, 0.15%, 0.14%, and 0.38% at 6, 9, 12, and 16 MeV, respectively, when the beams were modeled with APs. For Clinac iX, the differences were decreased by 0.16%, -0.31%, 0.94%, 0.42%, and 0.74%, at 6, 9, 12, 16, and 20 MeV, respectively, with the insertion of APs. Of note, no significant improvements in penumbra and percentage depth dose were observed, although the beam models were configured with APs. Conclusions: The accuracy of the eMC calculation can be improved in profiles when electron beams are modeled with optional APs.

2.5D 전자선 선량계산 알고리즘 개발 (Development of 2.5D Electron Dose Calculation Algorithm)

  • 조병철;고영은;오도훈;배훈식
    • 한국의학물리학회지:의학물리
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    • 제10권3호
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    • pp.133-140
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    • 1999
  • 본 연구에서는 외부조사 전자선에 대한 3 차원 선량계산 알고리즘 모델을 개발하기 위한 기초연구로서 기존의 2D 펜실빔 알고리즘을 확장시켜 3 차원 geometry를 적절히 고려할 수 있는 선량계산 모델을 개발하고자 한다. 선량계산 모듈은 IDL5.2(Reseach Systems Inc. 미국)를 사용하여 프로그램하였으며, Hogstrom의 펜실빔 모델에 의한 선량계산에 필요한 중심축 상의 깊이선량분포는 Siemens M6740의 12MeV 전자선에 대한 측정치를 사용하였고, 전자선의 공기 및 불에서의 선형저지능 (linear stopping power), 선형산란능 (linear scattering power) 은 ICRU 보고서 35로부터 인용하여 사용하였다. 선량계산의 정확도를 확인하기 위하여 정형 조사면에 대한 선량분포 공기 간격 효과 인체 외곽 보정에 대해 전리함, 필름 등을 사용하여 얻은 측정값과 비교, 분석하였다. PC(Pentium III 450MHz) 상에서 프로그램 실행 결과 단일 조사 빔에 대한 선량계산에 약 120초가 소요되어, 선량계산 알고리즘의 최적화를 통한 선량계산 시간 단축이 필요하다 하겠다. 선량 평가에 대한 비교 결과, 정형 및 비정형 조사변에 대한 선량분포는 선량변화가 급격한 반음영 (penumbra) 영역에서 $\pm$3mm 이내의 오차를 보였으며, 측방 선량분포에 따른 비교 결과, 측정치와 5% 이내에서 일치하였다. 또한 공기 간격 및 인체 외곽선 보정의 경우, $\pm$10% 내외에서 측정값과 일치하였다. 결론적으로, 전자선에 대한 2 차원 펜실빔 모델을 확장하여 3 차원 치료계획에 적합하게 3 차원상의 임의의 단변 선량계산이 가능하도록 구현되었다. 또한 비정형 조사변에 대한 선량계산 뿐만 아니라, 인체외곽 및 공기 간격 등과 같이 3 차원적 geometry에 대한 보정이 필요한 경우에 대하여도 이를 선량계산 시 적절히 고려함을 확인할 수 있었다. 추후, CT를 통한 비균질 보정방식을 구현할 계획이며, 이들 선량계산 모듈은 교육 및 연구용으로 적절히 활용할 수 있을 것으로 기대된다.

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가우시안 근사를 이용한 6 MeV 전자선의 에너지분포에 관한 연구 (Study on Energy Distribution of the 6 MeV Electron Beam using Gaussian Approximation)

  • 이정옥;김승곤
    • 대한방사선기술학회지:방사선기술과학
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    • 제22권2호
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    • pp.53-56
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    • 1999
  • A Gaussian distribution was parametrized for the initial distribution of the electron beam emitted from a 6MeV medical linear accelerator. A percent depth dose was measured in a water phantom and the corresponding Monte Carlo calculations were performed starting from a Gaussian distribution for a range of standard deviations, ${\sigma}=0.1$, 0.15, 0.2, 0.25, and 0.3 with being the mean value for the Incident beam energy. When measurement and calculation were compared, the calculation with the Gaussian distribution for ${\sigma}=0.25$ turned out to agree best with the measurement. The results from the present work can be utilized as input energy data in planning an electron beam therapy with a Monte Carlo calculation.

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방사선 치료용 고에너지 전자선의 조직 내 선량분포 특성에 관한 연구 (Study on Characteristics of Dose Distribution in Tissue of High Energy Electron Beam for Radiation Therapy)

  • 나수경
    • 대한방사선치료학회지
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    • 제14권1호
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    • pp.175-186
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    • 2002
  • The purpose of this study is directly measure and evaluate about absorbed dose change according to nominal energy and electron cone or medical accelerator on isodose curve, percentage depth dose, contaminated X-ray, inhomogeneous tissue, oblique surface and irradiation on intracavitary that electron beam with high energy distributed in tissue, and it settled standard data of hish energy electron beam treatment, and offer to exactly data for new dote distribution modeling study based on experimental resuls and theory. Electron beam with hish energy of $6{\sim}20$ MeV is used that generated from medical linear accelerator (Clinac 2100C/D, Varian) for the experiment, andwater phantom and Farmer chamber md Markus chamber und for absorbe d dose measurement of electron beam, and standard absorbed dose is calculated by standard measurements of International Atomic Energy Agency(IAEA) TRS 277. Dose analyzer (700i dose distribution analyzer, Wellhofer), film (X-OmatV, Kodak), external cone, intracavitary cone, cork, animal compact bone and air were used for don distribution measurement. As the results of absorbed dose ratio increased while irradiation field was increased, it appeared maximum at some irradiation field size and decreased though irradiation field size was more increased, and it decreased greatly while energy of electron beam was increased, and scattered dose on wall of electron cone was the cause. In percentage depth dose curve of electron beam, Effective depth dose(R80) for nominal energy of 6, 9, 12, 16 and 20 MeV are 1.85, 2.93, 4.07, 5.37 and 6.53 cm respectively, which seems to be one third of electron beam energy (MeV). Contaminated X-ray was generated from interaction between electron beam with high energy and material, and it was about $0.3{\sim}2.3\%$ of maximum dose and increased with increasing energy. Change of depth dose ratio of electron beam was compared with theory by Monte Carlo simulation, and calculation and measured value by Pencil beam model reciprocally, and percentage depth dose and measured value by Pencil beam were agreed almost, however, there were a little lack on build up area and error increased in pendulum and multi treatment since there was no contaminated X-ray part. Percentage depth dose calculated by Monte Carlo simulation appeared to be less from all part except maximum dose area from the curve. The change of percentage depth dose by inhomogeneous tissue, maximum range after penetration the 1 cm bone was moved 1 cm toward to surface then polystyrene phantom. In case of 1 cm and 2 cm cork, it was moved 0.5 cm and 1 cm toward to depth, respectively. In case of air, practical range was extended toward depth without energy loss. Irradiation on intracavitary is using straight and beveled type cones of 2.5, 3.0, 3.5 $cm{\phi}$, and maximum and effective $80\%$ dose depth increases while electron beam energy and size of electron cone increase. In case of contaminated X-ray, as the energy increase, straight type cones were more highly appeared then beveled type. The output factor of intracavitary small field electron cone was $15{\sim}86\%$ of standard external electron cone($15{\times}15cm^2$) and straight type was slightly higher then beveled type.

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