• 제목/요약/키워드: photon beams

검색결과 190건 처리시간 0.023초

비균질 팬텀에서 소조사면에 대한 필름측정, 회선/중첩 모델과 몬테 카를로 모사의 비교 연구 (Comparison of Film Measurements, Convolution$^{}$erposition Model and Monte Carlo Simulations for Small fields in Heterogeneous Phantoms)

  • 김상노;제이슨손;서태석
    • 대한의용생체공학회:의공학회지
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    • 제25권2호
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    • pp.89-95
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    • 2004
  • 세기조절방사선치료(IMRT)에서는 일반적인 방사선 치료에서 사용되는 조사면에 비해 비교적 작은 크기의 빔조각(beamlet)을 사용하여 방사선의 세기를 조절하는 새로운 치료법으로 이에 대한 비균질 효과는 많은 연구가 필요하다. 우리는 기하학적으로 일정한 비균질 팬텀들에서 몬테카를로 시뮬레이션에 의한 선량값을 라디오크로믹 필름에 의한 선량값과 회선/중첩 방법에 의한 선량 계산 값과 서로 비교하였다. 몬테 카를로 모사를 위하여 EGS4 코드 기반의 BEAM 코드를 사용하였으며 이를 이용하여 Varian 2300C/D 선형가속기의 두부를 호사하였다. 측정과 모사에 사용된 조사면은 1${\times}$1$\textrm{cm}^2$, 2${\times}$2$\textrm{cm}^2$, 그리고 5${\times}$5$\textrm{cm}^2$이었다. 또한 팬텀의 물질은 솔리드 워터, 폐 등가 물질, 뼈 등가 물질을 사용하여 세 경우의 비극질 팬텀들을 설정하여 방사선을 조사하였다. 회선/중첩 방법과 몬테 카를로 방법에 의한 선량 계산치는 광자 측면선량의 경우 $\pm$1 mm, 깊이선량의 경우 $\pm$2% 이내로 선량측정치와 잘 일치함을 볼 수 있었다. 결론적으로 회선/중첩 방법과 몬테 카를로 방법이 소조사면에서도 필름 측정 데이터와 잘 일치함을 확인할 수 있었다.

Comparison of Dosimetrical and Radiobiological Parameters on Three VMAT Techniques for Left-Sided Breast Cancer

  • Kang, Seong-Hee;Chung, Jin-Beom;Kim, Kyung-Hyeon;Kang, Sang-Won;Eom, Keun-Yong;Song, Changhoon;Kim, In-Ah;Kim, Jae-Sung
    • 한국의학물리학회지:의학물리
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    • 제30권1호
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    • pp.7-13
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    • 2019
  • Purpose: To compare the dosimetrical and radiobiological parameters among various volumetric modulated arc therapy (VMAT) techniques using restricted and continuous arc beams for left-sided breast cancer. Materials and Methods: Ten patients with left-sided breast cancer without regional nodes were retrospectively selected and prescribed the dose of 42.6 Gy in 16 fractions on the planning target volume (PTV). For each patient, three plans were generated using the $Eclipse^{TM}$ system (Varian Medical System, Palo Alto, CA) with one partial arc 1pVMAT, two partial arcs 2pVMAT, and two tangential arcs 2tVMAT. All plans were calculated through anisotropic analytic algorithm and photon optimizer with 6 MV photon beam of $VitalBEAM^{TM}$. The same dose objectives for each plan were used to achieve a fair comparison during optimization. Results: For PTV, dosimetrical parameters such as Homogeneity index, conformity index, and conformal number were superior in 2pVMAT than those in both techniques. $V_{95%}$, which indicates PTV coverage, was 91.86%, 96.60%, and 96.65% for 1pVMAT, 2pVMAT, and 2tVMAT, respectively. In most organs at risk (OARs), 2pVMAT significantly reduced the delivered doses compared with the other techniques, excluding the doses to contralateral lung. For the analysis of radiobiological parameters, a significant difference in normal tissue complication probability was observed in ipsilateral lung while no difference was observed in the other OARs. Conclusions: Our study showed that 2pVMAT had better plan quality and normal tissue sparing than 1pVMAT and 2tVMAT but not for all parameters. Therefore, 2pVMAT could be considered the priority choice for the treatment planning for left breast cancer.

평행평판형 이온함의 두 전극간의 간격 변화에 따른 유효측정점에 관한 연구 (Study on Effective Point of Measurement for Parallel Plate Type ionization Chamber with Different Spacing)

  • 신교철;윤형근
    • 한국의학물리학회지:의학물리
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    • 제13권2호
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    • pp.55-61
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    • 2002
  • 본 연구는 제작된 방사선 측정시스템을 평가하기 위한 방법중의 하나인 유효측정점을 명확히 정하기 위하여 실행되었다. 일반적으로 원통형이나 두 전극간의 간격이 매우 작은 평행평판형 이온함의 경우 유효측정점은 잘 정의 되어있다. 그 정의에 의하면 그리 크지 않은 체적을 갖는 평행평판형 이온함의 유효측정점은 방사선이 입사되는 윗면의 바로 아래로 정의한다고 되어있다. 그러나 본 연구에서 제작한 이온함과 같이 두 전극간의 간격을 비교적 크게 할 경우 위의 정의는 더 이상 유효하지 않을 수도 있을 것으로 생각되어 평행평판형 이온함의 두 전극간의 간격을 3, 6, 10 mm로 하여 체적이 0.9, 1.9, 3.1 cc로 비교적 크게 한 경우에 그 유효측정점의 변화를 검토하고자 하였다. 실험은 의료용 선형가속기로부터 발생가능한 광자선 6, 10 MV와 전자선 6, 12 MeV에 대하여 시행되었으며, 방법은 이온함의 buildup의 두께를 증가시켜가면서 방사선의 측정선량이 최대가 되는 깊이를 조사하였다. 그 결과 광자선과 전자선의 경우 조사된 모든 에너지에 대하여 그 정도의 차이는 있으나 전반적으로 이온함의 체적이 커짐에 따라서 즉, 두 전극간의 간격이 멀어짐에 따라서 유효측정점이 이온함의 윗면에서부터 이온함의 중심 쪽으로 이동하는 경향을 보였다. 그 정도는 이온함 체적의 크기가 커질수록 더 크게 이동하는 양상을 보였다. 이와 같은 결과로 볼 때 평행평판형 이온함의 경우는 두 전극간의 간격이 어느 정도 큰 경우에는 유효측정점이 변하게 됨으로 이온함의 체적에 따라서 그 유효측정점을 조사할 필요가 있다고 생각된다.

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Implications of using a 50-μm-thick skin target layer in skin dose coefficient calculation for photons, protons, and helium ions

  • Yeom, Yeon Soo;Nguyen, Thang Tat;Choi, Chansoo;Han, Min Cheol;Lee, Hanjin;Han, Haegin;Kim, Chan Hyeong
    • Nuclear Engineering and Technology
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    • 제49권7호
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    • pp.1495-1504
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    • 2017
  • In a previous study, a set of polygon-mesh (PM)-based skin models including a $50-{\mu}m-thick$ radiosensitive target layer were constructed and used to calculate skin dose coefficients (DCs) for idealized external beams of electrons. The results showed that the calculated skin DCs were significantly different from the International Commission on Radiological Protection (ICRP) Publication 116 skin DCs calculated using voxel-type ICRP reference phantoms that do not include the thin target layer. The difference was as large as 7,700 times for electron energies less than 1 MeV, which raises a significant issue that should be addressed subsequently. In the present study, therefore, as an extension of the initial, previous study, skin DCs for three other particles (photons, protons, and helium ions) were calculated by using the PM-based skin models and the calculated values were compared with the ICRP-116 skin DCs. The analysis of our results showed that for the photon exposures, the calculated values were generally in good agreement with the ICRP-116 values. For the charged particles, by contrast, there was a significant difference between the PM-model-calculated skin DCs and the ICRP-116 values. Specifically, the ICRP-116 skin DCs were smaller than those calculated by the PM models-which is to say that they were under-estimated-by up to ~16 times for both protons and helium ions. These differences in skin dose also significantly affected the calculation of the effective dose (E) values, which is reasonable, considering that the skin dose is the major factor determining effective dose calculation for charged particles. The results of the current study generally show that the ICRP-116 DCs for skin dose and effective dose are not reliable for charged particles.

The Properties of Beam Intensity Scanner(BInS) in IMRT with Phantom for Three Dimensional Dose Verification

  • Young W. Vahc;Park, Kwangyl;Byung Y. Yi;Park, Kyung R.;Lee, Jong Y.;Ohyun Kwon;Park, Kwangyl;Kim, Keun M.
    • 한국의학물리학회:학술대회논문집
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    • 한국의학물리학회 2003년도 제27회 추계학술대회
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    • pp.64-64
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    • 2003
  • Objectives: Patient dose verification is clinically the most important parts in the treatment delivery of radiation therapy. The three dimensional(3D) reconstruction of dose distribution delivered to target volume helps to verify patient dose and determine the physical characteristics of beams used in intensity modulated radiation therapy(IMRT). We present Beam Intensity Scanner(BInS) system for the pre treatment dosimetric verification of two dimensional photon intensity. The BInS is a radiation detector with a custom made software for relative dose conversion of fluorescence signals from scintillator. Methods: This scintillator is fabricated by phosphor Gadolinium Oxysulphide and is used to produce fluorescence from the irradiation of 6MV photons on a Varian Clinac 21EX. The digitized fluoroscopic signals obtained by digital video camera will be processed by our custom made software to reproduce 3D relative dose distribution. For the intensity modulated beam(IMB), the BInS calculates absorbed dose in absolute beam fluence, which are used for the patient dose distribution. Results: Using BInS, we performed various measurements related to IMRT and found the followings: (1) The 3D dose profiles of the IMBs measured by the BInS demonstrate good agreement with radiographic film, pin type ionization chamber and Monte Carlo simulation. (2) The delivered beam intensity is altered by the mechanical and dosimetric properties of the collimating of dynamic and/or static MLC system. This is mostly due to leaf transmission, leaf penumbra, scattered photons from the round edges of leaves, and geometry of leaf. (3) The delivered dose depends on the operational detail of how to make multileaf opening. Conclusions: These phenomena result in a fluence distribution that can be substantially different from the initial and calculative intensity modulation and therefore, should be taken into account by the treatment planing for accurate dose calculations delivered to the target volume in IMRT.

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준소조사면에서의 산란인자 (The Head Scatter Factor For Quasi - small Field Sizes)

  • 이상공;김진기;김정홍;김부길;권형철;김정수
    • 한국의학물리학회지:의학물리
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    • 제6권2호
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    • pp.13-19
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    • 1995
  • 준소조사면을 대상으로 한 측정자료로부터 콜리메이터에의한 산란영향과 웨지(wedge) 사용에 따른 부가적 효과를 알아보았다. 6MV 의료용 선형가속기에서 발생된 방사선속의 중심축에서 공기중과 폴리스틸렌 팬톰, 물에대해 점리함 및 반도체검출기를 이용한 측정으로 헤드산란(위ㆍ아래 콜리메이터)의 방사선 기원과 그 크기를 결정하였다. 편평화 필터에서 형성된 산란이 대부분 윗 콜라메이터 조절에 의한 영향이 가장 크게 미침을 알수 있었다. 준소조사면에서 웨지인자(wedge factor)의 깊이에대한 영향은 웨지 각이 클수록 많은 경향을 보였고 조사변에대한 영향은 0.28%였다. 임상적으로 10 $\times$10$\textrm{cm}^2$ 이하의 준소조사면과 wedge가 부가적으로 사용되는 10cm 깊이 이하의 조사면 변화에대한 관심으로 헤드산란 및 워지에의한 영향을 확인함으로서보다 적합한 선량계산을 도모하고자 하였다.

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투과선량의 수치해석에 의한 전산화단층영상장치 X선의 에너지 분포결정 (Empirical Determination of a CT X-ray Spectra by Numerical Analysis using Transmission Data)

  • 최태진;김옥배;서수지
    • 한국의학물리학회지:의학물리
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    • 제8권2호
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    • pp.35-43
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    • 1997
  • 광자선의 흡수계수교정과 차등 투과력이 관련된 연구에서 X선의 스펙트럼은 중요한 관심사이다. 본 연구에서는 전산화단층영상장치의 80, 120 kVp X선의 실험적 투과선량으로부터 수치해석을 통해 에너지스펙트럼을 구하였다. 투과선량은 직경 30cm, 두께 5mm 내지 92.3 mm의 알루미늄 파이프필터의 중앙에 반도체검출기를 설치하고 10mm 슬릿빔의 투과선량을 측정하였다. 스펙트럼재구성은 텅스텐타켓의 특성 X선을 포함한 반복적 수치 해석을 통해 에너지 구간별 스펙트럼을 구하였으며 에너지구간은 2keV로 하였다. 재구성한 에너지분포를 이용하여 계산된 투과선량과 측정투과선량의 비교는 두 광자에너지에서 모두 좋은 일치를 보였다. 에너지구간별 분할조사선량의 반복적 계산에 근거를 둔 수치해석은 흡수체의 감쇄된 선속으로부터 X선의 에너지스펙트럼을 매우 유용하게 결정할 수 있음을 보여주었다.

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Landmarks in The Skull for Stereotactic Radiotherapy

  • Hiroki, Ohtani;Toraji, Irifune;Etsuo, Kunieda;Hidetoshi, Saitoh;Masahiro, Fukushi;Tsuguhisa, Katoh
    • 한국의학물리학회:학술대회논문집
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    • 한국의학물리학회 2002년도 Proceedings
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    • pp.144-145
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    • 2002
  • Stereotactic radiotherapy is required to irradiate a small tumor accurately. The radiotherapy showing improves when making an accidental error little boundlessly. It is performed according to treatment planning that is established by the outside landmark of head. At present, when stereotactic radiotherapy for a head is done, the Leksell Flame is fixed on the head, and positioning based on the point and so on which it is in that fixed implement is performed. However, there are problems on the method done at present in the point such as reappearance when the fractionated irradiation method in which the Leksell Flame is removed and installed at every treatment is done because there are landmarks outside the head. Landmarks in the skull were decided, and that precision was examined for the purpose of the improvement of the radiation therapeutic gain. Linac-graphy with longitudinal and lateral view were taken with 6 MV photon beams. A distance to base point inside the skull, each film measured the angle from a center of the small irradiation field, and comparison was done. From the results, a large accidental error wasn't seen as a result of the measurement by every film. Stereotactic radiotherapy for a head treatment had an accidental error of about several millimeters when treatment positioning was done. Therefore, it was thought that there was no problem about an accidental error to arise by putting a landmark in the skull. And, because an accidental error was easy to discover, we thought that modification could be done easily. It was suggested that a landmark in the skull on thus study were useful for improvement of stereotactic radiotherapy.

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$^{60}Co\;\gamma$선과 10MV X선의 조사면 밖의 선량분포에 관한 연구 (A Study on Dobe Distribution outside Co-60 $\gamma$ Ray ana 10MV X Ray Fields)

  • 강위생;허승재;하성환
    • Radiation Oncology Journal
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    • 제2권2호
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    • pp.271-280
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    • 1984
  • The peripheral dose, defined as the dose outside therapeutic photon fields, which is responsible for the functional damage of the critical organs, fetus, and radiation. induced carcinogenesis, has been investigated for $^{60}Co\;\gamma$ ray and 10 MV Xray. It was measured by silicon diode controlled by semiautomated water phantom without any shielding or with lead plate of HVL thickness put horizontally or vertically to shield stray radiations. Authors could obtain following results. 1. The peripheral dose was larger than $0.7\%$ of central axis maximum dose even at 20cm distance from field margin. That is clinically significant, so it should be reduced. 2. Even for square fields of 10 MV Xray, radial peripheral dose distribution did not coincide with transverse distribution, because of the position of collimator jaws. 3. Between surface and $d_m$, the peripheral dose distributions show a pattern of the dose distribution of electron beams and the maximum doss was approximately proportional to the length of a side of square field. 4. The peripheral doses depended on radiation quality, field size, distance from field margin and depth in water. Distance from field margin was the most important factor. 5. Except for near surface, the peripheral dose from phantom was approximately equal to that from therapy unit. 6. To reduce the surface dose outside fields, therapist should shield stray radiations from therapy unit by lead plate of at least one HVL for 10 MV X-ray and by bolus equivalent to tissue of 0.5cm thickness for $^{60}Co$. 7. To reduce the dose at depth deeper than $d_m$, it is desirable to shield stray radiations from therapy unit by lead.

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Verification of Mechanical Leaf Gap Error and VMAT Dose Distribution on Varian VitalBeamTM Linear Accelerator

  • Kim, Myeong Soo;Choi, Chang Heon;An, Hyun Joon;Son, Jae Man;Park, So-Yeon
    • 한국의학물리학회지:의학물리
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    • 제29권2호
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    • pp.66-72
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    • 2018
  • The proper position of a multi-leaf collimator (MLC) is essential for the quality of intensity-modulated radiation therapy (IMRT) and volumetric modulated arc radiotherapy (VMAT) dose delivery. Task Group (TG) 142 provides a quality assurance (QA) procedure for MLC position. Our study investigated the QA validation of the mechanical leaf gap measurement and the maintenance procedure. Two $VitalBeam^{TM}$ systems were evaluated to validate the acceptance of an MLC position. The dosimetric leaf gaps (DLGs) were measured for 6 MV, 6 MVFFF, 10 MV, and 15 MV photon beams. A solid water phantom was irradiated using $10{\times}10cm^2$ field size at source-to-surface distance (SSD) of 90 cm and depth of 10 cm. The portal dose image prediction (PDIP) calculation was implemented on a treatment planning system (TPS) called $Eclipse^{TM}$. A total of 20 VMAT plans were used to confirm the accuracy of dose distribution measured by an electronic portal imaging device (EPID) and those predicted by VMAT plans. The measured leaf gaps were 0.30 mm and 0.35 mm for VitalBeam 1 and 2, respectively. The DLG values decreased by an average of 6.9% and 5.9% after mechanical MLC adjustment. Although the passing rates increased slightly, by 1.5% (relative) and 1.2% (absolute) in arc 1, the average passing rates were still within the good dose delivery level (>95%). Our study shows the existence of a mechanical leaf gap error caused by a degenerated MLC motor. This can be recovered by reinitialization of MLC position on the machine control panel. Consequently, the QA procedure should be performed regularly to protect the MLC system.