The Union Jack was the name of the flag made when England,Scotland and Ireland joined together to make one country.
2019届高考数学一轮复习第七章立体几何第四节直线、平面
平行的判定及其性质课时作业
课时作业
A组——基础对点练
1.设m,n是不同的直线,α,β是不同的平面,且m,n?α,则“α∥β”是“m∥β且n∥β”的( ) A.充分不必要条件 B.必要不充分条件 C.充要条件
D.既不充分也不必要条件
解析:若m,n?α,α∥β,则m∥β且n∥β;反之若m,n?α,m∥β且n∥β,则α与β相交或平行,即“α∥β”是“m∥β且n∥β”的充分不必要条件. 答案:A
2.设α,β是两个不同的平面,m,n是平面α内的两条不同直线,l1,l2是平面β内的两条相交直线,则α∥β的一个充分不必要条件是( )
A.m∥l1且n∥l2 C.m∥β且n∥β
B.m∥β且n∥l2 D.m∥β且l1∥α
解析:由m∥l1,m?α,l1?β,得l1∥α,同理l2∥α,又l1,l2相交,所以α∥β,反之不成立,所以m∥l1且n∥l2是α∥β的一个充分不必要条件. 答案:A
Sailors used to speak of a “jack” when they meant a flag which was set near the bow of a sailing ship.The flag showed the coutry to which the ship belonged.The Union Jackbecame the flag of Great Britain.1 / 9
The Union Jack was the name of the flag made when England,Scotland and Ireland joined together to make one country.
3.设α,β是两个不同的平面,m是直线且m?α,“m∥β”是“α∥β”的( ) A.充分而不必要条件 B.必要而不充分条件 C.充分必要条件
D.既不充分也不必要条件
解析:若m?α且m∥β,则平面α与平面β不一定平行,有可能相交;而m?α且α∥β一定可以推出m∥β,所以“m∥β”是“α∥β”的必要而不充分条件. 答案:B
4.已知m,n是两条不同的直线,α,β,γ是三个不同的平面,则下列命题中正确的是( ) A.若α⊥γ,α⊥β,则γ∥β
B.若m∥n,m?α,n?β,则α∥βC.若m∥n,m⊥α,n⊥β,则α∥βD.若m∥n,m∥α,则n∥α
解析:对于A,若α⊥γ,α⊥β,则γ∥β或γ与β相交;对于B,若m∥n,m?α,n?β,则α∥β或α与β相交;易知C正确;对于D,若m∥n,m∥α,则n∥α或n在平面α内.故选C. 答案:C
5.下列四个正方体图形中,A,B为正方体的两个顶点,M,N,P分别为其所在棱的中点,能得出AB∥平面MNP的图形的序号是( ) A.①③ C.①④
B.②③ D.②④
Sailors used to speak of a “jack” when they meant a flag which was set near the bow of a sailing ship.The flag showed the coutry to which the ship belonged.The Union Jackbecame the flag of Great Britain.2 / 9
The Union Jack was the name of the flag made when England,Scotland and Ireland joined together to make one country.
解析:对于图形①,平面MNP与AB所在的对角面平行,即可得到AB∥平面MNP;对于图形④,AB∥PN,即可得到AB∥平面MNP;图形②③无论用定义还是判定定理都无法证明线面平行. 答案:C
6.已知正方体________(只填序号).
①AD1∥BC1;②平面AB1D1∥平面BDC1;③AD1∥DC1;④AD1∥平面BDC1.
解析:连接AD1,BC1,AB1,B1D1,C1D1,BD,因为AB綊C1D1,所以四边形AD1C1B为平行四边形,故AD1∥BC1,从而①正确;易证BD∥B1D1,AB1∥DC1,又AB1∩B1D1=B1,BD∩DC1=D,故平面AB1D1∥平面BDC1,从而②正确;由图易知AD1与DC1异面,故③错误;因AD1∥BC1,AD1?平面BDC1,BC1?平面BDC1,故AD1∥平面BDC1,故④正确. 答案:①②④
7.如图所示,在四面体ABCD中,M,N分别是△ACD,△BCD的重心,则四面体的四个面所在平面中与MN平行的是________. 解析:连接AM并延长,交CD于E,连接BN,并延长交CD于F,由重心性质可知,E,F重合为一点,且该点为CD的中点E,连接MN,由==,得MN∥AB.因此,MN∥平面ABC且MN∥平面ABD. 答案:平面ABC、平面ABD
8.(2018·咸阳模拟)如图所示,在四棱锥O-ABCD中,底面ABCD是边长为1的菱形,∠ABC=,OA⊥底面ABCD,OA=2,M为OA的中点,N为BC的中点.
,下列结论中,正确的结论是
Sailors used to speak of a “jack” when they meant a flag which was set near the bow of a sailing ship.The flag showed the coutry to which the ship belonged.The Union Jackbecame the flag of Great Britain.3 / 9
2019届高考数学一轮复习第七章立体几何第四节直线、平面平行的判定及其性质课时作业
