设正方体棱长为a,
如图,延长BB1至E,使B1E=a/2
易证,A1E∥DM
∠EA1N即为所求,
A1E=a*(√5)/2
A1N*A1N=AD*AD+DN*DN+AA1*AA1
A1N=3a/2
NE=a*(√14)/2
NE*NE=A1*A1+A1E*A1E
∠EA1N为直角,选D
难呀
你直接建系
