“…For example, in the galaxy formation [5,6], to study vortex solutions in non-abelian gauge theories with spontaneous symmetry breaking [7] and to study the gravitational analogue of the Aharonov-Bohm effect [8][9][10][11][12]. In recent developments, cosmic strings have * fmandrade@uepg.br † cleversonfilgueiras@yahoo.com.br ‡ edilbertoo@gmail.com been considered to analyze solutions in de Sitter and anti-de Sitter spacetimes [13], to study the thermodynamic properties of a neutral particle in a magnetic cosmic string background by using an approach based on the partition function method [14], to compute the vacuum polarization energy of string configurations in models similar to the standard model of particle physics [15], to find the deflection angle in the weak limit approximation by a spinning cosmic string in the context of the Einstein-Cartan theory of gravity [16], to analyze numerically the behavior of the solutions corresponding to an Abelian string in the framework of the Starobinsky model [17], to study solutions of black holes [18], to investigate the average rate of change of energy for a static atom immersed in a thermal bath of electromagnetic radiation [19], to study Hawking radiation of massless and massive charged particles [20], to study the non-Abelian Higgs model coupled with gravity [21], in the quantum dynamics of scalar bosons [22], hydrodynamics [23], to study the non-relativistic motion of a quantum particle subjected to magnetic field [24], to investigate dynamical solutions in the context of super-critical tensions [25], Higgs condensate [26], to analyze the effects on spin current and Hall electric field [27,28], to investigate the dynamics of the Dirac oscillator [29,30], to study non-inertial effects on the ground state energy of a massive scalar field [31], Landau quantization [32] and to investigate the quantum vacuum interaction energy [33].…”