Fast full $N$-body simulations of generic modified gravity: derivative coupling models
C\'esar Hern\'andez-Aguayo (MPA, Excellence Cluster ORIGINS),, Cheng-Zong Ruan (ICC, Durham), Baojiu Li (ICC, Durham), Christian Arnold, (ICC, Durham), Carlton M. Baugh (ICC, Durham), Anatoly Klypin (NMSU),, Francisco Prada (IAA, Granada)

TL;DR
MG-GLAM is a highly optimized N-body simulation code that enables rapid and accurate modeling of various modified gravity theories, facilitating large-scale cosmological studies and survey preparations.
Contribution
The paper introduces MG-GLAM, a fast, versatile N-body simulation code for multiple modified gravity models, including new algorithms for derivative coupling models.
Findings
Over two orders of magnitude speedup compared to previous codes
Accurate predictions of matter power spectrum and halo abundance
Successful implementation of models with screening mechanisms
Abstract
We present MG-GLAM, a code developed for the very fast production of full -body cosmological simulations in modified gravity (MG) models. We describe the implementation, numerical tests and first results of a large suite of cosmological simulations for two broad classes of MG models with derivative coupling terms -- the Vainshtein- and Kmouflage-type models -- which respectively features the Vainshtein and Kmouflage screening mechanism. Derived from the parallel particle-mesh code GLAM, MG-GLAM incorporates an efficient multigrid relaxation technique to solve the characteristic nonlinear partial differential equations of these models. For Kmouflage, we have proposed a new algorithm for the relaxation solver, and run the first simulations of the model to understand its cosmological behaviour. In a companion paper, we describe versions of this code developed for conformally-coupled MG…
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