如图所示,以O为原点建立空间直角坐标系O-xyz.设OD=SO=OA=OB=OC=a,
则A(a,0,0),B(0,a,0),
C(-a,0,0),P(0,-
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则
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设平面PAC的法向量为n,可求得n=(0,1,1),
则cos<C,n>═
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∴<C,n>=60°,
∴直线BC与平面PAC所成的角为90°-60°=30°.
故答案为:30°
如图所示,以O为原点建立空间直角坐标系O-xyz.| a |
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