高一数学求大神!!!!
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楼主没拍完整啊- -、、、
⒏D
sin²α+cos2α
=sin²α+2cos²α-1
=cos²α+(sin²α+cos²α)-1
=cos²α=1/4,
∵α∈(0,π/2),
∴cosα=1/2,α=π/3,
∴tanα=√3.
故答案选D.
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⒐B
∵A、B是△ABC的内角,
∴sinA=√(1-cos²A)=2√5/5,
sinB=√(1-cos²B)=√10/10,
∴cosC=-cos(A+B)
=-(cosAcosB-sinAsinB)
=-√2/10<0
∴C为钝角,△ABC为趸交三角形.
故答案选B.
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⒑D
y=sinxcosx+√3cos²x
=1/2×sin2x+√3/2×(2cos²x-1+1)
=1/2×sin2x+√3/2×(2cos²x-1)+√3/2
=sin(2x+π/3)+√3/2
2x+π/3=kπ => x=-π/6+kπ/2(k∈Z)
∴符号条件的是点(π/3,√3/2).
故答案选D.
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⒏D
sin²α+cos2α
=sin²α+2cos²α-1
=cos²α+(sin²α+cos²α)-1
=cos²α=1/4,
∵α∈(0,π/2),
∴cosα=1/2,α=π/3,
∴tanα=√3.
故答案选D.
----------------------------------------------------------------------------------------------------------------------
⒐B
∵A、B是△ABC的内角,
∴sinA=√(1-cos²A)=2√5/5,
sinB=√(1-cos²B)=√10/10,
∴cosC=-cos(A+B)
=-(cosAcosB-sinAsinB)
=-√2/10<0
∴C为钝角,△ABC为趸交三角形.
故答案选B.
----------------------------------------------------------------------------------------------------------------------
⒑D
y=sinxcosx+√3cos²x
=1/2×sin2x+√3/2×(2cos²x-1+1)
=1/2×sin2x+√3/2×(2cos²x-1)+√3/2
=sin(2x+π/3)+√3/2
2x+π/3=kπ => x=-π/6+kπ/2(k∈Z)
∴符号条件的是点(π/3,√3/2).
故答案选D.
//--------------------------------------------------------------------------------------------------------------------
【明教】为您解答,
如若满意,请点击【采纳为满意回答】;如若您有不满意之处,请指出,我一定改正!
希望还您一个正确答复!
祝您学业进步!
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⒈C
y=2sin(π/4-x)=-2sin(x-π/4),
要求函数y的单调递增区间,只需求函数y=2sin(x-π/4)的单调递减区间,←这点要注意
π/2+2kπ≤x-π/4≤3π/2+2kπ
3π/4+2kπ≤x≤7π/4+2kπ(k∈Z)
∴符号条件的是[-5π/4,-π/4],
故答案选C.
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⒉D
y=3sin(2x-π/3)=3sin[2(x-π/6)],
只要将y=3sin2x的图像向右平移π/6个单位就可得到y=3sin(2x-π/3)的图像,
故答案选D.
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⒊B
∵→b∥→c,
∴2y=-4,y=-2,
∵→a⊥→b,
∴x+y=0,x=2,
∴→a+→b=(3,-1),
∴|→a+→b|=√(3²+1²)=√10,
故答案选B.
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⒋B
函数y的最小正周期T=2π/4=π/2,
故两条相邻对称轴之间的距离=T/2=π/4,
故答案选B.
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⒌B
|→a|=|→b|=√(sin²15°+cos²15°)=1,
cos=→a▪→b/|→a||→b|
=2sin15°cos15°
=sin30°=1/2,
∴→a、→b的夹角为π/3,
故答案选B.
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