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  形ABCD的每条边和对角线的长都等于a4.[2016·西安质检]已知空间四边,E点,是BCF划分,的中点AD7-6b_百度文库!,值为(则·的)

  于选项A解析对,(1=,0,)1,=(1则·n,0,·(31),1,5≠02)=,除A故排;选项B看待,=,=·(3则·n,1,=02),均不知足·n=0验证可知C、D.

  1)·2λ=2×6解析由题意知(λ+,-3或2可得λ=,2u-1)可得u=由0·2λ=2(,m88登录入口可知A准确说明选项.

  四棱柱ABCD-A1B1C1D1中10.[2015·吉林高二测试]直,CD是矩形底面AB,=2AB,=1AD,1=3AA,D1上是否存正在一点NM是BC的中点.正在D,1?并阐发原故使MN⊥DC.

  高考]已知向量a=(13.[2014·广东,0,1)-,成60°夹角的是(则下列向量中与a)

  为a的正方体ABCD-A1B1C1D1中6.[2015·湖北襄阳五中月考]正在棱长,所成的角为(向量与向量)

  图所示解如,为坐标原点设立修设以D,为x轴DA,为y轴DC,轴的坐标系D明升m88开户D1为z,1(0则C,2,)3,

  四边形OABC8.已知空间,M点,是OAN划分,的中点BC,=a且,b=,c=,a用,b,_________c体现向量=___.

  图所示解析如,+-2)=(+-)=(b+c-a)=(+)=[(-)+(-)]=(.

  经检修解析,向量(1选项B中,1-,量a=(10)与向,0,角的余弦值为-1)的夹,角为60°即它们的夹,选B故.

  内有一个点A(25.已知平面α,1-,)2,量为n=(3α的一个法向,1,)2,点P中则下列,内的是(正在平面α)明升体育彩直播

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