We
perform direct numerical simulations of quasi-static
magnetohydrodynamic turbulence and compute various energy transfers
including the ring-to-ring and conical energy transfers, and the energy
fluxes of the perpendicular and parallel components of the velocity
field. We show that the rings with higher polar angles transfer energy
to ones with lower polar angles. For large interaction parameters, the
dominant energy transfer takes place near the equator (polar angle Θ≈Π/2
). The energy transfers are local both in wavenumbers and angles. The
energy flux of the perpendicular component is predominantly from higher
to lower wavenumbers (inverse cascade of energy), while that of the
parallel component is from lower to higher wavenumbers (forward cascade
of energy). Our results are consistent with earlier results, which
indicate quasi two-dimensionalization of quasi-static
magnetohydrodynamic flows at high interaction parameters.