2007•Unpublished venueRequires access

Observation of diffuse gamma-ray with Electron-Tracking Compton imaging camera loaded on balloon

Atsushi Takada, Toru Tanimori, H. Kubo, K. Miuchi, KEN-ICHI TSUCHIYA, S. Kabuki, H. Nishimura, K. Hattori, Kazuki Ueno, Shunsuke Kurosawa, N. Nonaka, Eiichi Mizuta, R. Orito, T. Nagayoshi

Open publisher page 8 citations

Abstract

We have developed an electron tracking Compton camera (ETCC) as an MeV gamma-ray telescope in the next generation. Our detector consists of a gaseous time projection chamber and a position sensitive scintillation camera. In order to evaluate the performance of this detector, we constructed a flight model detector as a balloon experiment for the observation of diffuse cosmic gamma rays and atmospheric gamma rays. The balloon launched on September 1 in 2006. The balloon reached to 35 km at altitude, and the level flight continued during 4.0 hours. We succeeded in the detection of about 200 downward gamma rays in the energy range of 100 keV-1 MeV during the 3.5 hours level flight (live time 3.0 hours). The detected photon number was consistent to the simulated one. Also, we measured the dependence of the gamma-ray flux on the zenith angle between 0deg and 90deg. Here we report on the detailed performance of the ETCC in this flight.

About this research paper

What this paper is about

We have developed an electron tracking Compton camera (ETCC) as an MeV gamma-ray telescope in the next generation. Our detector consists of a gaseous time projection chamber and a position sensitive scintillation camera. In order to evaluate the performance of this detector, we constructed a flight model detector as a balloon experiment for the observation of diffuse cosmic gamma rays and atmospheric gamma rays. The balloon launched on September 1 in 2006. The balloon reached to 35 km at altitude, and the level flight continued during 4.0 hours. We succeeded in the detection of about 200 downward gamma rays in the energy range of 100 keV-1 MeV during the 3.5 hours level flight (live time 3.0 hours). The detected photon number was consistent to the simulated one. Also, we measured the dependence of the gamma-ray flux on the zenith angle between 0deg and 90deg. Here we report on the detailed performance of the ETCC in this flight.

Why it matters

OpenAlex reports 8 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

We have developed an electron tracking Compton camera (ETCC) as an MeV gamma-ray telescope in the next generation. Our detector consists of a gaseous time projection chamber and a position sensitive scintillation camera. In order to evaluate the performance of this detector, we constructed a flight model detector as a balloon experiment for the observation of diffuse cosmic gamma rays and atmospheric gamma rays. The balloon launched on September 1 in 2006. The balloon reached to 35 km at altitude, and the level flight continued during 4.0 hours. We succeeded in the detection of about 200 downward gamma rays in the energy range of 100 keV-1 MeV during the 3.5 hours level flight (live time 3.0 hours). The detected photon number was consistent to the simulated one. Also, we measured the dependence of the gamma-ray flux on the zenith angle between 0deg and 90deg. Here we report on the detailed performance of the ETCC in this flight.

Key concepts: Physics, Zenith, Gamma ray, Scintillation, Gamma-ray astronomy, Telescope, Tracking (education), Detector

Related papers

Back to paper searchBrowse research topicsOriginal source
Observation of diffuse gamma-ray with Electron-Tracking Compton imaging camera loaded on balloon — Research Paper | ScholarLens