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CORSIKA 8: A general framework for particle cascade simulations

作者:Jean-Marco Alameddine, Johannes Albrecht, Antonio Augusto Alves, Juan Ammerman Yebra, Luisa Arrabito, Dominik Baack, Alan Coleman, Cosmin Deaconu, Hans Dembinski, Dominik Elsässer, Ralph Engel, Alice Faure, Alfredo Ferrari, Chloé Gaudu, Christian Glaser, Marvin Gottowik, Dieter Heck, Tim Huege, Karl-Heinz Kampert, Nikolaos Karastathis, Jeffrey Lazar, Lukas Nellen, David Parello, Tanguy Pierog, Remy Prechelt, Radek Privara, Maximilian Reininghaus, W. Rhode, Felix Riehn, Maximilian Sackel, Pranav Sampathkumar, Alexander Sandrock, André Schmidt, Jan Soedingrekso, Ralf Ulrich, Philipp Windischhofer, Baobiao Yue · 发表于:Astroparticle Physics · 年份:2026 · DOI:10.1016/j.astropartphys.2026.103265 · 研究领域:High-Energy Particle Collisions Research、Particle physics theoretical and experimental studies、Radiation Therapy and Dosimetry

The simulation of extensive air showers and particle cascades in general is a cornerstone of modern astroparticle physics. For more than two decades, CORSIKA, currently in version 7, has been one of the most widely used tools for this purpose. However, its architecture reflects design constraints of an earlier computing era, as well as increasingly limiting extensibility, maintainability, and adaptability to modern experimental requirements. CORSIKA 8 is a complete redesign of the original CORSIKA code, implemented in modern C++ and based on contemporary software engineering principles. It introduces a modular and extensible simulation framework with explicit handling of units, flexible geometry, and environment descriptions. In this paper, we present the design philosophy and core architecture of CORSIKA 8, describe the implementation of electromagnetic and hadronic shower physics, and validate air shower simulations against CORSIKA 7. The results demonstrate good agreement at the ∼ 5 – 10% level for key observables, confirming the physics fidelity of CORSIKA 8. The observed differences reflect the current level of intrinsic systematic uncertainties in state-of-the-art air-shower simulations. We also showcase new use cases that were beyond the capabilities of version 7, such as the simulation of cross-media showers and particle cascades in ice, including radio-signal propagation.