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j.nima.2015.08.004.pdf | 2.22 MB | Adobe PDF | 見る/開く |
タイトル: | New readout and data-acquisition system in an electron-tracking Compton camera for MeV gamma-ray astronomy (SMILE-II) |
著者: | Mizumoto, T. Matsuoka, Y. Mizumura, Y. Tanimori, T. Kubo, H. Takada, A. Iwaki, S. Sawano, T. Nakamura, K. Komura, S. Nakamura, S. Kishimoto, T. Oda, M. Miyamoto, S. Takemura, T. Parker, J.D. Tomono, D. Sonoda, S. Miuchi, K. Kurosawa, S. |
著者名の別形: | 水本, 哲矢 |
キーワード: | MeV gamma-ray astronomy Compton camera ETCC Electron track |
発行日: | Nov-2015 |
出版者: | Elsevier B.V. |
誌名: | Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment |
巻: | 800 |
開始ページ: | 40 |
終了ページ: | 50 |
抄録: | For MeV gamma-ray astronomy, we have developed an electron-tracking Compton camera (ETCC) as a MeV gamma-ray telescope capable of rejecting the radiation background and attaining the high sensitivity of near 1 mCrab in space. Our ETCC comprises a gaseous time-projection chamber (TPC) with a micro pattern gas detector for tracking recoil electrons and a position-sensitive scintillation camera for detecting scattered gamma rays. After the success of a first balloon experiment in 2006 with a small ETCC (using a 10×10×15 cm3 TPC) for measuring diffuse cosmic and atmospheric sub-MeV gamma rays (Sub-MeV gamma-ray Imaging Loaded-on-balloon Experiment I; SMILE-I), a (30 cm)3 medium-sized ETCC was developed to measure MeV gamma-ray spectra from celestial sources, such as the Crab Nebula, with single-day balloon flights (SMILE-II). To achieve this goal, a 100-times-larger detection area compared with that of SMILE-I is required without changing the weight or power consumption of the detector system. In addition, the event rate is also expected to dramatically increase during observation. Here, we describe both the concept and the performance of the new data-acquisition system with this (30 cm)3 ETCC to manage 100 times more data while satisfying the severe restrictions regarding the weight and power consumption imposed by a balloon-borne observation. In particular, to improve the detection efficiency of the fine tracks in the TPC from ~10% to ~100%, we introduce a new data-handling algorithm in the TPC. Therefore, for efficient management of such large amounts of data, we developed a data-acquisition system with parallel data flow. |
記述: | Available online 10 August 2015 |
著作権等: | © 2015. This manuscript version is made available under the CC-BY-NC-ND 4.0 license http://creativecommons.org/licenses/by-nc-nd/4.0/ The full-text file will be made open to the public on 10 August 2017 in accordance with publisher's 'Terms and Conditions for Self-Archiving'. This is not the published version. Please cite only the published version. この論文は出版社版でありません。引用の際には出版社版をご確認ご利用ください。 |
URI: | http://hdl.handle.net/2433/202021 |
DOI(出版社版): | 10.1016/j.nima.2015.08.004 |
出現コレクション: | 学術雑誌掲載論文等 |

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