Improving cosmic ray composition determination through better tracking

被引:0
作者
Ganel, O [1 ]
Seo, ES [1 ]
机构
[1] Univ Maryland, Inst Phys Sci & Technol, College Pk, MD 20742 USA
来源
SUN AND SIMILAR STARS/COSMIC RAY SPECTRA AND COMPOSITION | 2001年 / 26卷 / 11期
关键词
D O I
暂无
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Several experiments now under construction or in various stages of study are intended to improve cosmic ray composition measurements through element (or element group) identification. To achieve this, some form of finely segmented (pixel) charge detector will be used to reduce the effects of back-scattered particles on the measurement. These experiments will utilize 'tracking calorimeters' to reconstruct the trajectory of high-energy cosmic particles through the charge measurement device to identify the correct pixel. As an example, the Advanced Cosmic-ray Composition Experiment on the Space Station, a mission currently being studied, is aimed at obtaining more precise measurements, above the atmosphere, of the element-by-element (H - U) fluxes of cosmic ray particles at the limiting energies expected from supernova shocks. The expected energy reach is 10(15) eV for H - Fe but less than 10(10) eV for the heavier nuclei, which do not depend on the calorimeter. The following describes a tracking algorithm based on information from the calorimeter, scintillators, and charge detector, suggests some design choices, and estimates the expected tracking resolution for this experiment. (C) 2001 COSPAR. Published by Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:1835 / 1838
页数:4
相关论文
共 50 条
[21]   Cosmic ray composition and interactions: measurements at the knee [J].
Navarra, G .
NUCLEAR PHYSICS B-PROCEEDINGS SUPPLEMENTS, 1999, 75A :72-80
[22]   Composition Sensitivity for the Cosmic Ray Anisotropy with SWGO [J].
Taylor, Andrew M. ;
Giacinti, Gwenael ;
Desiati, Paolo ;
Velez, Juan Carlos Diaz ;
Chiavassa, Andrea ;
Di Sciascio, Guiseppe ;
Velazquez, Juan Carlo Arteaga ;
Kunwar, Samridha .
37TH INTERNATIONAL COSMIC RAY CONFERENCE, ICRC2021, 2022,
[23]   Cosmic ray composition below 1 TeV [J].
Wiedenbeck, M.E. .
International Cosmic Ray Conference, 1990,
[24]   Maximum entropy analysis of cosmic ray composition [J].
Nosek, Dalibor ;
Ebr, Jan ;
Vicha, Jakub ;
Travnicek, Petr ;
Noskova, Jana .
ASTROPARTICLE PHYSICS, 2016, 76 :9-18
[25]   Cosmic ray composition from direct measurements [J].
Giller, M .
NUCLEAR PHYSICS B, 1997, :164-165
[26]   Cosmic-ray sources and source composition [J].
Tsao, CH ;
Silberberg, R ;
Barghouty, AF .
ASTROPHYSICAL JOURNAL, 2001, 549 (01) :320-324
[27]   ISOTOPIC COMPOSITION OF COSMIC-RAY NUCLEI [J].
ENGE, W .
NUCLEAR INSTRUMENTS & METHODS, 1977, 147 (01) :211-220
[28]   TRANSFORMATIONS OF COSMIC-RAY COMPOSITION IN GALAXY [J].
SHAPIRO, MM ;
SILBERBERG, R ;
TSAO, CH .
BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1975, 20 (04) :710-710
[29]   Anomalous cosmic ray composition from ACE [J].
Leske, RA .
26TH INTERNATIONAL COSMIC RAY CONFERENCE, 2000, 516 :274-282
[30]   Composition and energy spectra of cosmic rays - Implications for cosmic ray origins [J].
Cherry, ML .
INTERSECTIONS BETWEEN PARTICLE AND NUCLEAR PHYSICS - 6TH CONFERENCE, 1997, (412) :1022-1030