• 제목/요약/키워드: depth radiation

검색결과 637건 처리시간 0.032초

몬테칼로법을 이용한 의료용 선형가속기 차폐벽의 방사화 특성 분석 (Analysis of Radioactive Characterization in the Medical Linear Accelerator Shielding Wall Using Monte Carlo Method)

  • 이동연;박은태
    • 한국콘텐츠학회논문지
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    • 제16권10호
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    • pp.758-765
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    • 2016
  • 본 연구는 의료용 선형가속기를 차폐하고 있는 차폐벽에 대하여 방사화 분석을 함으로서 추후 선형가속기 시설의 해체 시 해체비용의 절반이상을 차지하는 차폐벽에 대하여 폐기물 준위를 평가하고 이에 따른 폐기물 처리방법을 분석함으로서 해체비용 측면에 있어서 이득을 얻을 수 있는 방법에 대하여 논의하고자 한다. 실험결과, 선형가속기에서 발생하는 중성자 양은 차폐벽을 방사화 시키기에 충분한 양이 측정되었으며, 방사화 분석 결과 약 20 개 이상의 핵종이 분석되었다. 이 중 $^{24}Na$, $^{45}Ca$, $^{59}Fe$ 핵종이 규제해제 농도를 초과하는 것으로 분석되었으며, 그 값은 차폐벽 깊이가 깊어질수록 농도는 줄어들었다. 이를 바탕으로 특정 세 구역(E,F,G)은 매립이나 재활용이 불가능한 것으로 평가되었으며, 나머지 구역은 일정 깊이 이상일 경우 매립이나 재활용이 가능한 것으로 평가되었다.

18MeV 선형가속기의 ARC Therapy에 관한 고찰 (A Study on ARC Therapy of 18MeV Linear Accelerator)

  • 김성규;신세원;김명세
    • Journal of Yeungnam Medical Science
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    • 제5권2호
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    • pp.31-36
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    • 1988
  • 회전조사시 회전각도에 따른 계산치와 측정치를 비교, 검토하여 마음과 같은 결과를 얻었다. $90^{\circ}$ 회전시에는 계산치와 측정치와는 4.5%의 차이를 나타내었고 $120^{\circ}$ 회전시에는 4.4%, $180^{\circ}$ 회전시에는 3.9%, $240^{\circ}$ 회전시에는 2.9%, $360^{\circ}$ 회전시에는 2.1%의 차이를 나타내어 회전각도가 클수록 계산치와 측정치와의 차이는 적은 것으로 나타났다. 또한 회전각도에 따라 최고선량지점이 상부로 이동하는 정도는 $90^{\circ}$에서 $240^{\circ}$까지 회전할 때 tumor depth가 4.5cm일 경우에 는 1.67cm에서 1.10cm 정도 상부로 이동하였으며, tumor depth가 8cm일 경우에는 2.45cm에서 1.40cm 정도 상부로 이동하는 것으로 나타났다.

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POLARIZATION OF LYMAN α EMERGENT FROM A THICK SLAB OF NEUTRAL HYDROGEN

  • AHN, SANG-HTEON;LEE, HEE-WON
    • 천문학회지
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    • 제48권3호
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    • pp.195-202
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    • 2015
  • Star forming galaxies found in the early universe exhibit asymmetric Lyα emission line that results from multiple scattering in a neutral thick medium surrounding the Lyα emission source. It is expected that emergent Lyα will be significantly polarized through a large number of resonance scattering events followed by a number of successive wing scatterings. In this study we adopt a Monte Carlo method to calculate the polarization of Lyα transferred in a very thick static slab of HI. Resonantly scattered radiation associated with transitions between is only weakly polarized and therefore linear polarization of the emergent Lyα is mainly dependent on the number of off-resonant wing scattering events. The number of wing scattering events just before escape from the slab is determined by the product of the Doppler parameter a and the line center optical depth τ0, which, in turn, determines the behavior of the linear polarization of Lyα. This result is analogous to the study of polarized radiative transfer of Thomson scattered photons in an electron slab, where the emergent photons are polarized in the direction perpendicular to the slab when the scattering optical depth is small and polarized in the parallel direction when the slab is optically thick. Our simulated spectropolarimetry of Lyα shows that the line center is negligibly polarized, the near wing parts polarized in the direction parallel to the slab and the far wing parts are polarized in the direction perpendicular to the slab. We emphasize that the flip of polarization direction in the wing parts of Lyα naturally reflects the diffusive nature of the Lyα transfer process in thick neutral media.

166Ho-chitosan 복합체의 복강 내 투여를 위한 베타선 흡수선량 평가 (Beta Dosimetry in Intraperitoneal Administration of 166Ho-chitosan Complex)

  • 김은희;임상무;박경배
    • 대한핵의학회지
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    • 제32권1호
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    • pp.99-108
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    • 1998
  • Intraperitoneal administration of radioisotopes is suggested to treat the metastatic ovarian cancer in the peritoneal cavity. Administering beta-emitting radioisotopes into the peritoneal cavity allows the maximum energy delivery to the cancerous cells of the peritoneal wall surface while sparing the normal cells located in deep site of the peritoneal wall. In this study, dose estimates of the peritoneal wall are provided to be used for prescribing the amount of $^{166}Ho$-chitosan complex administered. The $^{166}Ho$-chitosan complex diffused in the peritoneal fluid may attach to the peritoneal wall surface. The attachment fraction of $^{166}Ho$-chitosan complex to the peritoneal wall surface is obtained by simulating the ascites with Fischer rats. Both volume source in the peritoneal fluid and the surface source over the peritoneal wall surface are counted for the contribution to the peritoneal wall dose. The Monte Carlo code EGS4 is used to simulate the energy transfer of the beta particles emitted from $^{166}Ho$. A plane geometrical model of semi-infinite volume describes the peritoneal cavity and the peritoneal wall. A semi-infinite plane of $10{\mu}m$ in thickness at every 1 mm of depth in the peritoneal wall is taken as the target in dose estimation. Greater than 98 percents of attachment fraction has been observed from the experiments with Fischer rats. Given $1.3{\mu}Ci/cm^2$ and $2.4{\mu}Ci/ml$ of uniform activity density, absorbed dose is 123 Gy, 8.59 Gy, 3.00 Gy, 1.03 Gy, and .327 Gy at 0 mm, 1 mm, 2 mm, 3 mm, and 4 mm in depth to the peritoneal wall, respectively.

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10 MeV의 전자선이 텅스텐 표적에 충돌하여 생성되는 광자선 스펙트럼의 계산 (Calculation of Photon Spectra from the Tungsten Target for 10 MeV Electron Beam)

  • 이정옥;정동혁;문성록;강정구;김승곤
    • 한국의학물리학회지:의학물리
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    • 제10권1호
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    • pp.55-62
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    • 1999
  • 방사선치료에 이용되는 X-선의 특성을 고찰하기 위하여, 몬테칼로 방법을 이용하여 텅스텐 표적에 입사한 6, 10, 15 MeV 의 전자선에 의해 발생되는 X-선의 에너지분포와 평균에너지를 계산하였다. 빔의 반경의 함수로서 계산된 광자의 평균에너지는 6, 10, 15 MV에 대하여 각각, 1.4-1.6, 2.1-2.5, 2.8-3.3 MeV 범위로서 반경에 크게 의존하지 않고 거의 일정하였다. 표적과의 수직거리 100 cm에서 구해진 6, 10, 15 MV X-선의 에너지분포를 이용하여, 몬테칼로 계산으로 깊이선량율을 계산하였다. 이 중 10 MV에 대한 것을 측정값과 비교하였다. 계산된 10 MV X-선의 깊이선량율은 표면영역을 제외하고 깊이의 증가에 따라 측정값보다 낮게 나타났다. 그 이유는 실제 X-선의 에너지분포에는 편평화여과기에 의한 빔경화효과가 포함되어 있는 반면, 본 연구에서 수행한 몬테칼로 계산결과에는 이 효과가 포함되어 있지 않기 때문으로 생각된다.

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DEFECT DETECTION WITHIN A PIPE USING ULTRASOUND EXCITED THERMOGRAPHY

  • Cho, Jai-Wan;Seo, Yong-Chil;Jung, Seung-Ho;Kim, Seung-Ho;Jung, Hyun-Kyu
    • Nuclear Engineering and Technology
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    • 제39권5호
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    • pp.637-646
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    • 2007
  • An UET (ultrasound excited thermography) has been used for several years for a remote non-destructive testing in the automotive and aircraft industry. It provides a thermo sonic image for a defect detection. A thermograhy is based On a propagation and a reflection of a thermal wave, which is launched from the surface into the inspected sample by an absorption of a modulated radiation. For an energy deposition to a sample, the UET uses an ultrasound excited vibration energy as an internal heat source. In this paper the applicability of the UET for a realtime defect detection is described. Measurements were performed on two kinds of pipes made from a copper and a CFRP material. In the interior of the CFRP pipe (70mm diameter), a groove (width - 6mm, depth - 2.7mm, and length - 70mm) was engraved by a milling. In the case of the copper pipe, a defect was made with a groove (width - 2mm, depth - 1mm, and length - 110 mm) by the same method. An ultrasonic vibration energy of a pulsed type is injected into the exterior side of the pipe. A hot spot, which is a small area around the defect was considerably heated up when compared to the other intact areas, was observed. A test On a damaged copper pipe produced a thermo sonic image, which was an excellent image contrast when compared to a CFRP pipe. Test on a CFRP pipe with a subsurface defect revealed a thermo sonic image at the groove position which was a relatively weak contrast.

Comparative Study of the Effective Dose from Panoramic Radiography in Dentistry Measured Using a Radiophotoluminescent Glass Dosimeter and an Optically Stimulated Luminescence Detector

  • Lee, Kyeong Hee;Kim, Myeong Seong;Kweon, Dae Cheol;Choi, Jiwon
    • Journal of the Korean Physical Society
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    • 제73권9호
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    • pp.1377-1384
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    • 2018
  • Accurate measurement of the absorbed dose and the effective dose is required in dental panoramic radiography involving relatively low energy with a rotational X-ray tube system using long exposures. To determine the effectiveness of measuring the irradiation by using passive dosimetry, we compared the entrance skin doses by using a radiophotoluminescent glass dosimeter (RPL) and an optically stimulated luminescence detector (OSL) in a phantom model consisting of nine and 31 transverse sections. The parameters of the panoramic device were set to 80 kV, 4 mA, and 12 s in the standard program mode. The X-ray spectrum was applied in the same manner as the panoramic dose by using the SpekCalc Software. The results indicated a mass attenuation coefficient of $0.008226cm^2/g$, and an effective energy of 34 keV. The equivalent dose between the RPL and the OSL was calculated based on a product of the absorbed doses. The density of the aluminum attenuators was $2.699g/cm^3$. During the panoramic examination, tissue absorption doses with regard to the RPL were a surface dose of $75.33{\mu}Gy$ and a depth dose of $71.77{\mu}Gy$, those with regard to the OSL were surface dose of $9.2{\mu}Gy$ a depth dose of $70.39{\mu}Gy$ and a mean dose of $74.79{\mu}Gy$. The effective dose based on the International Commission on Radiological Protection Publication 103 tissue weighting factor for the RPL were $0.742{\mu}Sv$, $8.9{\mu}Sv$, $2.96{\mu}Sv$ and those for the OSL were $0.754{\mu}Sv$, $9.05{\mu}Sv$, and $3.018{\mu}Sv$ in the parotid and sublingual glands, orbit, and thyroid gland, respectively. The RPL was more effective than the OSL for measuring the absorbed radiation dose in low-energy systems with a rotational X-ray tube.

Assessment of sediment profiles applying nuclear techniques: use of a nucleonic gauge in Panama Canal watershed

  • Xavier Sanchez;Henry Hoo;Patrick Brisset;Reinhardt Pinzon
    • Nuclear Engineering and Technology
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    • 제54권11호
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    • pp.4236-4243
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    • 2022
  • An industrial nuclear technique based on the use of an X-ray profiler was implemented to estimate the densities or concentrations of sediments present in an Atlantic maritime zone in the areas subjected to dredging under the governance of the Panama Canal Authority (ACP). The sediment profiles show in most areas there is a concentration of between 1.00-1.15 g/cm3 except for one area in particular, the density starts at 1.20 g/cm3 and even reaches values greater than 1.50 g/cm3; therefore, an already consolidated sediment is present, which, depending on the depth found. Values of 1.265 g/cm3, 1.297 g/cm3, 1.185 g/cm3 obtained by ACP previous studies are within the range of 1.20-1.30 g/cm3 measured with the nucleonic gauge. However, it should be noted that during the tests with the X ray profiler, sediment densities values greater than the aforementioned limit were also obtained that varying according at depths close to 12 m and 18 m with values reached up to 1.513 g/cm3 and 1.60 g/cm3, respectively. This demonstrates that sediment accumulation depends on depth. This nucleonic gauge is feasible technique for the study of the sedimentation phenomenon in channel basins and even in other projects nationwide.

Selective Laser Melting 방식으로 적층제조된 Inconel 718 합금의 조사 경화 특성 (Irradiation Hardening Property of Inconel 718 Alloy produced by Selective Laser Melting)

  • 서주원;임상엽;진형하;천영범;강석훈;한흥남
    • 한국분말재료학회지
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    • 제30권5호
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    • pp.431-435
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    • 2023
  • An irradiation hardening of Inconel 718 produced by selective laser melting (SLM) was studied based on the microstructural observation and mechanical behavior. Ion irradiation for emulating neutron irradiation has been proposed owing to advantages such as low radiation emission and short experimental periods. To prevent softening caused by the dissolution of γ' and γ" precipitates due to irradiation, only solution annealing (SA) was performed. SLM SA Inconel 718 specimen was ion irradiated to demonstrate the difference in microstructure and mechanical properties between the irradiated and non-irradiated specimens. After exposing specimens to Fe3+ ions irradiation up to 100 dpa (displacement per atom) at an ambient temperature, the hardness of irradiated specimens was measured by nano-indentation as a function of depth. The depth distribution profile of Fe3+ and dpa were calculated by the Monte Carlo SRIM (Stopping and Range of Ions in Matter)-2013 code under the assumption of the displacement threshold energy of 40 eV. A transmission electron microscope was utilized to observe the formation of irradiation defects such as dislocation loops. This study reveals that the Frank partial dislocation loops induce irradiation hardening of SLM SA Inconel 718 specimens.

Initial Dosimetry of a Prototype Ultra-High Dose Rate Electron-Beam Irradiator for FLASH RT Preclinical Studies

  • Hyun Kim;Heuijin Lim;Sang Koo Kang;Sang Jin Lee;Tae Woo Kang;Seung Wook Kim;Wung-Hoa Park;Manwoo Lee;Kyoung Won Jang;Dong Hyeok Jeong
    • 한국의학물리학회지:의학물리
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    • 제34권3호
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    • pp.33-39
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    • 2023
  • Purpose: FLASH radiotherapy (RT) using ultra-high dose rate (>40 Gy/s) radiation is being studied worldwide. However, experimental studies such as preclinical studies using small animals are difficult to perform due to the limited availability of irradiation devices and methods for generating a FLASH beam. In this paper, we report the initial dosimetry results of a prototype electron linear accelerator (LINAC)-based irradiation system to perform ultra-high dose rate (UHDR) preclinical experiments. Methods: The present study used the prototype electron LINAC developed by the Research Center of Dongnam Institute of Radiological and Medical Sciences (DIRAMS) in Korea. We investigated the beam current dependence of the depth dose to determine the optimal beam current for preclinical experiments. The dose rate in the UHDR region was measured by film dosimetry. Results: Depth dose measurements showed that the optimal beam current for preclinical experiments was approximately 33 mA, corresponding to a mean energy of 4.4 MeV. Additionally, the average dose rates of 80.4 Gy/s and 162.0 Gy/s at a source-to-phantom surface distance of 30 cm were obtained at pulse repetition frequencies of 100 Hz and 200 Hz, respectively. The dose per pulse and instantaneous dose rate were estimated to be approximately 0.80 Gy and 3.8×105 Gy/s, respectively. Conclusions: Film dosimetry verified the appropriate dose rates to perform FLASH RT preclinical studies using the developed electron-beam irradiator. However, further research on the development of innovative beam monitoring systems and stabilization of the accelerator beam is required.