We investigate the effects of pure Dzyaloshinskii-Moriya(DM) interaction with magnetic field on entanglement in intrinsic decoherence,assuming that the system is initially in four Bell states |φ±> =(|00> ± |11>)/2;and|ψ±> =(|01) ± |10>)/2;respectively.It is found that if the system is initially in the state ρ1(0) = |φ+><φ+|,the entanglement can obtain its maximum when the DM interaction vector D is in the plane of XOZ and magnetic field B = B;with the infinite time t,moreover the entanglement is independent of B;and t when B;is perpendicular to D.In addition,we obtain similar results when the system is initially in the states ρ2(0) =|φ-><φ-| or ρ3(0) = |ψ+><ψ+|.However,we find that if the system is initially in the state ρ4(0) =|ψ-><ψ-|,the entanglement can obtain its maximum for infinite t,when the DM vector is in the plane of YOZ,XOZ,or XOY,with the magnetic field parallel to X,Y,or Z axis,respectively.Moreover,when the axial B is perpendicular to D for the initial state ρ4(0),the negativity oscillates with time t and reaches a stabie value,the larger the value of B is,the greater the stable value is,and the shorter the oscillation time of the negativity is.Thus we can adjust the direction and value of the external magnetic field to obtain the maximal entanglement,and avoid the adverse effects of external environment in some initial state.This is feasible within the current experimental technology.