设左侧2m与m之间的摩擦力为f1,右侧摩擦力为f2,对左侧两物体及右下的2m整体分析则有:f2=5ma (1)对整体有:F=6ma (2)对左侧m有:f1=ma (3);对左边两物体分析则有:T=3ma (4)由题意可知,达最大拉力时,f2=2μmg,代入(1)得:a= 2μmg 5m = 2 5 μg;代入(4)得拉力:T= 6μmg 5 ;故选A.
