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論文

A New Standard DNA Damage (SDD) data format

Schuemann, J.*; McNamara, A. L.*; Warmenhoven, J. W.*; Henthorn, N. T.*; Kirkby, K.*; Merchant, M. J.*; Ingram, S.*; Paganetti, H.*; Held, K. D.*; Ramos-Mendez, J.*; et al.

Radiation Research, 191(1), p.76 - 93, 2019/01

 被引用回数:34 パーセンタイル:97.99(Biology)

DNA損傷には様々なタイプがあり、異なった生物学的効果を引き起こす。過去数10年間、放射線照射によるDNA損傷の生成やそれらが引き起こす生物効果のシミュレーションが行われてきたが、各研究者が独自のデータフォーマットを用いて解析していたため、相互比較を行うことができなかった。そこで、本論文では、新しい標準DNA損傷データフォーマットを提案し、モデル間の相互比較を可能とする。これにより、放射線照射によるDNA損傷のメカニズム解明や放射線影響シミュレーション研究の活性化を図る。

論文

Monte Carlo modelling for the ${it in vivo}$ lung monitoring of enriched uranium; Results of an international comparison

Broggio, D.*; Bento, J.*; Caldeira, M.*; Cardenas-Mendez, E.*; Farah, J.*; Fonseca, T.*; Konvalinka, C.*; Liu, L.*; Perez, B.*; Capello, K.*; et al.

Radiation Measurements, 47(7), p.492 - 500, 2012/07

 被引用回数:20 パーセンタイル:85.18(Nuclear Science & Technology)

In order to assess the reliability of Monte-Carlo (MC) based numerical calibration of ${it in vivo}$ counting systems, and in order to provide training for this issue, particularly the use of voxel phantoms, the EURADOS network supported a comparison of MC simulation results of well defined experiments. ${it In vivo}$ measurements of enriched uranium in a thoracic phantom have been carried out and the needed information to simulate these measurements was distributed to participants. About half of the participants managed to simulate the measured counting efficiency without support from the organizers. Following additional support all participants managed to simulate the counting efficiencies within a typical agreement with experiment of $$pm$$5%.

論文

The Accelerator prototype of the IFMIF/EVEDA project

Mosnier, A.*; Beauvais, P. Y.*; Branas, B.*; Comunian, M.*; Facco, A.*; Garin, P.*; Gobin, R.*; Gournay, J. F.*; Heidinger, R.*; Ibarra, A.*; et al.

Proceedings of 1st International Particle Accelerator Conference (IPAC '10) (Internet), p.588 - 590, 2010/05

The objectives of the IFMIF/EVEDA project are to produce the detailed design of the entire IFMIF facility, as well as to build and test a number of prototypes, including a high-intensity CW deuteron accelerator (125 mA @ 9 MeV). Most of the accelerator components (injector, RFQ, superconducting RF-linac, transport line and beam dump, RF systems, local control systems, beam instrumentation) are designed and provided by European institutions (CEA/Saclay, CIEMAT, INFN/LNL, SCK-CEN), while the RFQ couplers, the supervision of the control system and the building including utilities constructed at Rokkasho BA site are provided by JAEA. The coordination between Europe and Japan is ensured by an international project team, located in Rokkasho, where the accelerator will be installed and commissioned. The design and R&D activities are presented, as well as the schedule of the prototype accelerator.

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