• 제목/요약/키워드: 3-D dose distribution

검색결과 188건 처리시간 0.241초

사이버나이프 실시간 종양추적 시스템을 이용한 방사선수술 시 주요 장기의 선량분포 분석 (Analysis of Dose Distribution on Critical Organs for Radiosurgery with CyberKnife Real-Time Tumor Tracking System)

  • 허현도;최상현;김우철;김헌정;김성훈;지영훈;김금배;이상훈;최진호;이레나;신동오
    • 한국의학물리학회지:의학물리
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    • 제20권1호
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    • pp.14-20
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    • 2009
  • 본 연구에서는 복부 전용 팬톰을 이용하여 폐 종양을 모델로 실시간 종양 추적 치료 시 종양에 대한 선량 분포와 종양 부근에 인접하여 상대적으로 움직임이 작은 주요장기인 척추의 선량 분포를 3차원과 4차원 전산화 치료계획을 통하여 나타난 선량분포에 대하여 Gafchromic 필름을 이용하여 선량을 비교평가 하였다. 비교 결과 종양의 선량 분포는 감마 지표 3%, 1 mm를 기준으로 일치도가 3차원 및 4차원에서 각각 90.6%, 97.64%이었고, 척추에서는 감마 지표 3%, 2 mm를 기준으로 3차원 및 4차원에서 각각 57.13%, 90.4%로 나타났다. 종양 및 척추에서 4차원 전산화치료계획 계산값은 측정값과 비교할 경우 근소한 차이를 보였으나 3차원 전산화 치료계획 시 종양에 근접하여 움직임이 작은 척추에서는 계산값과 측정값의 차이가 크게 나타났다. 따라서 사이버나이프와 같은 장비를 이용하여 호흡에 따라 움직이는 종양을 대상으로 실시간 종양추적 치료 시 4차원 전산화 치료계획이 반드시 필요하다고 사료된다.

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인터벤션 시술 시 환자의 선량감소를 위한 3D 프린팅 재료의 적용성 평가 (Feasibility of the 3D Printing Materials for Radiation Dose Reduction in Interventional Radiology)

  • 조용인
    • 대한방사선기술학회지:방사선기술과학
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    • 제43권3호
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    • pp.169-176
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    • 2020
  • Interventional radiology is performed under real-time fluoroscopy, and patients are exposed to a wide range of exposures for a long period of time depending on the examination and procedure. However, studies on radiation protection for patients during an intervention are insufficient. This study aims to evaluate the doses exposed during the intervention and the applicability of 3D printing materials. The organ dose for each intervention site was evaluated using a monte carlo simulatio. Also, the dose reduction effect of the critical organs was calculated when using a shielding device using 3D printing materials. As a result, the organ dose distribution for each intervention site showed a lower dose distribution for organs located far from the x-ray tube. It was analyzed that the influence of scattered rays was higher in the superficial organs of the back of the human body where x-rays were incident. The dose reduction effect on the critical organ using the 3D printing shield showed the highest testis among the gonads, and in the case of other organs, the dose reduction effect gradually decreased in the order of the eye, thyroid, breast, and ovary. Accordingly, it is judged that the 3D printed shield will be sufficiently usable as a shielding device for the radiation protection of critical organs.

Characterization of the 2.5 MeV ELV electron accelerator electron source angular distribution using 3-D dose measurement and Monte Carlo simulations

  • Chang M. Kang;Seung-Tae Jung;Seong-Hwan Pyo;Youjung Seo;Won-Gu Kang;Jin-Kyu Kim;Young-Chang Nho;Jong-Seok Park;Jae-Hak Choi
    • Nuclear Engineering and Technology
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    • 제55권12호
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    • pp.4678-4684
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    • 2023
  • Using the Monte Carlo method, the impact of the angular distribution of the electron source on the dose distribution for the 2.5 MeV ELV electron accelerator was explored. The experiment measured the 3-D dose distribution in the irradiation chamber for electron energies of 1.0 MeV and 2.5 MeV. The simulation used the MCNP6.2 code to evaluate three angular distribution models of the source: a mono-directional beam, a cone shape, and a triangular shape. Of the three models, the triangular shape with angles θ = 30°, φ = 0° best represents the angle of the scan hood through which the electron beam exits. The MCNP6.2 simulation results demonstrated that the triangular model is the most accurate representation of the angular distribution of the electron source for the 2.5 MeV ELV electron accelerator.

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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유방암 환자의 Field-in-Field Technique 치료 시 호흡의 움직임에 따른 선량 평가 (Evaluation of the Dose According to the Movement of Breath During Field-in-Field Technique Treatment of Breast Cancer Patients)

  • 권경태
    • 대한방사선기술학회지:방사선기술과학
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    • 제41권6호
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    • pp.561-566
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    • 2018
  • Field-in-Field Technique is applied to the radiation therapy of breast cancer patients, and it is possible to compensate the difference in breast thickness and deliver uniform dose in the breast. However, there are several fields in the treatment field that result in a more complex dose delivery than a single field dose delivery. If the patient's respiration is irregular during the delivery of the dose by several fields and the change of respiration occurs, the dose distribution in the breast changes. Therefore, based on the computed tomography images of breast cancer patients, a human model was created by using a 3D printer (Builder Extreme 1000) to describe the volume in the same manner. A computerized tomography (CT) of the human body model was performed and a treatment plan of 260 cGy / fx was established using a 6-MV field-in-field technique using a computerized treatment planning system (Eclipse 13.6, Varian, USA). The distribution of the dose in the breast according to the change of the respiration was measured using a moving phantom at 0.1 cm, 0.3 cm, 0.5 cm amplitude, using a MOSOXIDE Silicon Field Effect Transistor (MOSFET, Best Medical, Canada) Were measured and compared. The distribution of dose in the breast according to the change of respiration showed similar value within ${\pm}2%$ in the movement up to 0.3 cm compared to the treatment plan. In this experiment, we found that the dose distribution in the breast due to the change of respiration when the change of respiration was increased was not much different from the treatment plan.

LINAC을 이용한 뇌정위적 방사선 수술에 대한 3 차원 선량분포 (Three-Dimensional Dose Distribution for the System of Linear Accelerator-based Stereotactic Radiosurgery)

  • Suh, Tae-Suk
    • 한국의학물리학회지:의학물리
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    • 제2권2호
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    • pp.121-128
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    • 1991
  • 뇌정위적 방사선 수술 시 정확한 3차원적 선량분포에 대한 정보가 필요한다. 3차원적 치료계획은 최적선량분포를 얻기위한 것이며 환자 데이타, 선량분포, 방사선 조사 요소들에 대한 3차원적인 관계를 다루어야만 한다. 원형 조사면에 대한 single 조사면 선량 데이타와 3차원 선량 알고리듬을 이용하여 non-coplanar moving arcs 에 대한 3차원적 선량모델이 개발되었다. 뇌정위적 방사선 수술시 3차원 선량 알고리듬의 적용과 여러경우에 대한 응용에 대하여 논의되어진다.

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3차원 체적팬텀을 이용한 토모치료의 Delivery Quality Assurance 평가 (Evaluation of DQA for Tomotherapy using 3D Volumetric Phantom)

  • 이상욱;김정구
    • 대한방사선기술학회지:방사선기술과학
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    • 제39권4호
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    • pp.607-614
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    • 2016
  • 토모를 이용한 회전 방사선치료 시 2차원적인 선량분포 평가 대신 3차원적 선량분포 평가의 필요성에 관하여 연구하였다. 토모 치료 부위의 정확한 선량분포를 측정하기 위하여 RANDO phantom을 이용하였으며, 평가 대조군으로 gafchromic EBT2 필름의 선량분포와 3차원 체적팬텀인 ArcCHECK phantom을 이용하여 3차원적인 선량분포를 gamma correction(3%/3 mm, 2%/2 mm)으로 평가하였다. 팬텀에 대한 치료 영역은 각각 0.5, 1, 1.5, 2, 2.5, 3 cm로 설정하였으며, 처방선량을 1,200 cGy로 하여 5회씩 선량을 조사하였다. Gafchromic EBT2 필름을 이용한 절대선량 측정 시 평균오차는 $0.76{\pm}0.59%$이었으며, ArcCHECK phantom을 이용한 절대선량 측정 시 평균오차는 $1.37{\pm}0.76%$로 나타났다. 선량분포의 평가에서 gafchromic EBT2 필름인 경우 gamma correction(3%/3 mm)은 평균 $97.72{\pm}0.02%$, ArcCHECK phantom인 경우 평균 $99.26{\pm}0.01%$로 측정되었다. 또한 gafchro mic EBT2 필름에서 gamma correction(2%/2 mm)의 평균은 $94.21{\pm}0.02%$이며, ArcCHECK phantom에서는 평균은 $93.02{\pm}0.01%$로 측정되었다. 토모치료를 이용한 환자 DQA에서 3차원 체적팬텀인 ArcCHECK phantom을 이용한 선량분포 평가가 cheese phantom을 이용한 선량분포 평가에 비하여 치료영역 주변부에 대한 정확한 측정과 실시간 평가가 가능하므로 환자의 치료가 보다 더 정확하고 빨리 이루어질 수 있을 것으로 사료된다.

Development of PC-based Radiation Therapy Planning System

  • Suh, Tae-Suk;P task group, R-T
    • 한국의학물리학회:학술대회논문집
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    • 한국의학물리학회 2002년도 Proceedings
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    • pp.121-122
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    • 2002
  • The main principle of radiation therapy is to deliver optimum dose to tumor to increase tumor cure probability while minimizing dose to critical normal structure to reduce complications. RTP system is required for proper dose plan in radiation therapy treatment. The main goal of this research is to develop dose model for photon, electron, and brachytherapy, and to display dose distribution on patient images with optimum process. The main items developed in this research includes: (l) user requirements and quality control; analysis of user requirement in RTP, networking between RTP and relevant equipment, quality control using phantom for clinical application (2) dose model in RTP; photon, electron, brachytherapy, modifying dose model (3) image processing and 3D visualization; 2D image processing, auto contouring, image reconstruction, 3D visualization (4) object modeling and graphic user interface; development of total software structure, step-by-step planning procedure, window design and user-interface. Our final product show strong capability for routine and advance RTP planning.

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아크 치료를 위한 고속 근사선량모델 개발 (Fast Approximate Dose Model Used in Arc Therapy)

  • 서태석;서덕영
    • Journal of Radiation Protection and Research
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    • 제20권4호
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    • pp.227-236
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    • 1995
  • 선량데이타와 정확한 3차원 선량모델을 이용하여 여러 아크에 대한 선량분포를 조사하였다. 정확한 선량모델에 의해 계산된 선량 값은 판단한 실험식으로 표현이 가능했으며 이는 선량 최적화 과정에서 반복적으로 선량 값을 계산하는데 매우 유용하였다. 360도 아크와 부분 아크에 대한 선량 값을 빠른 속도로 계산하기 위하며 실험적으로 구해진 실린더형 선량모델을 개발하였다. 200개 위치의 정확한 선량 값을 비선형식으로 피팅하여 7개의 변수를 포함하는 실험식을 개발하였다. 결과적으로 이 모델을 이용하는 경우 한 아크에 대한 선량 계산시 400개의 위치를 계산하는데 PC-486으로 1초 이내에서 계산이 가능하였다. 결론적으로 개발된 고속선량모델은 정확한 선량모델에 의한 선량 값과 유사한 값을 제공함으로써 계간속도가 늦은 일반 3차원 선량모델을 대치할 수 있을 것으로 사려된다.

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방사선치료에서 3D 프린터를 이용한 기능적 조직보상체의 제작 (Manufacturing a Functional Bolus Using a 3D printer in Radiation Therapy)

  • 이이성;김정구
    • 대한방사선기술학회지:방사선기술과학
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    • 제43권1호
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    • pp.9-14
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    • 2020
  • Commercial plate bolus is generally used for treatment of surface tumor and required surface dose. We fabricated 3D-printed bolus by using 3D printing technology and usability of 3D-printed bolus was evaluated. RT-structure of contoured plate bolus in the TPS was exported to DICOM files and converted to STL file by using converting program. The 3D-printed bolus was manufactured with rubber-like translucent materials using a 3D printer. The dose distribution calculated in the TPS and compared the characteristics of the plate bolus and the 3D printed bolus. The absolute dose was measured inserting an ion chamber to the depth of 5 cm and 10 cm from the surface of the blue water phantom. HU and ED were measured to compare the material characteristics. 100% dose was distributed at Dmax of 1.5 cm below the surface when was applied without bolus. When the plate bolus and 3D-plate bolus were applied, dose distributed at 0.9 cm and 0.8 cm below the surface of the bolus. After the comparative analysis of the radiation dose at the reference depth, differences in radiation dose of 0.1 ~ 0.3% were found, but there was no difference dose. The usability of the 3D-printed bolus was thus confirmed and it is considered that the 3D-printed bolus can be applied in radiation therapy.