COnstRaiNing the Origin of Galactic cosmic RAys using gamma-ray and Neutrino Diffuse Emissions
Location: Italy
Source: EU Funding & Tenders Portal
While cosmic rays (CRs) were discovered more than a century ago, their sources have not been firmly identified yet. It is commonly believed that CRs below PeV energy have a Galactic origin. However, we struggle to find Galactic sources able to accelerate CR up to PeV energy. The standard candidates, supernova remnants (SNRs), do not seem to reach such high energies, suggesting the need for an alt
Project Information FAQ
Project Information
Want to explore the full details? View the full report
Participants
Sponsoring Agency | Obfuscated Data |
Company | Obfuscated Data |
Status
Original status | ongoing |
Taiyo status | Obfuscated Data |
Taiyo last update | 00-00-0000 |
Available timestamps | 00-00-0000 |
Available timestamp type | Obfuscated Data |
Contact
Contact name | Obfuscated Data |
Phone | 0000000000 |
ObfuscatedData@email.com | |
Address | Obfuscated Data, Obfuscated data, obfuscated data, Obfuscated data |
Description
Description | While cosmic rays (CRs) were discovered more than a century ago, their sources have not been firmly identified yet. It is commonly believed that CRs below PeV energy have a Galactic origin. However, we struggle to find Galactic sources able to accelerate CR up to PeV energy. The standard candidates, supernova remnants (SNRs), do not seem to reach such high energies, suggesting the need for an alternative source class. A key factor in addressing this question is the observation of other messengers, such as gamma rays and neutrinos. These particles, produced by CR interactions with the interstellar medium, carry valuable information about the locations of sources, and the propagation of CRs around sources and through the Galaxy. The LHAASO detector recently reported the observation of ultra-high-energy (UHE) gamma rays from various sources, including the Cygnus cocoon, providing a first experimental proof that star clusters (SCs) might be PeVatrons. Additionally, observations suggest that the regions around some of these sources exhibit a reduced diffusion coefficient, likely due to high levels of magnetic turbulence. With LHAASO unveiling the UHE gamma-ray sky, it is timely and crucial to use these observations to identify the sources of CRs. In the first work package (WP) of CORNO GRANDE, we will investigate how different scenarios for CR transport around sources affect the capability of LHAASO to resolve PeV sources. In the second WP, we will explore SCs as potential PeVatrons. In particular, we will use a semi-analytical model to describe CR propagation from SCs and SNRs. By computing the CR flux at Earth and comparing it with local measurements, we will constrain the magnetic turbulence around sources. In the last WP, we will constrain the number of PeV SCs in our population using the LHAASO catalog. Finally, we will calculate the gamma-ray and neutrino diffuse emission produced by our population and compare it with recent measurements by LHAASO and IceCube. |
Original sub-sector | Obfuscated |
Original Currency | USD |
Original budget | 000000000000000 |
Procurement method | Obfuscated Data |
Budget | 000000000000000 |
Location
Region | Obfuscated |
Country | Obfuscated |
State | Obfuscated Data |
County | Obfuscated |
Location | Obfuscated Data, Obfuscated data, obfuscated data, Obfuscated data |
Source
Source reliability | High |
Data quality score | 100% |
Source | Obfuscated Data |
URL | obfuscated_data,obfuscateddata.com |
More Details
Project Type | Obfuscated Data |
Article Published Date | Obfuscated Data |
