求过程!谢谢
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解:f(x)=-2sin(2x-π/6)+a
=2sin(2x-π/6+π)+a
=2sin(2x+5π/6)+a
(1) x在增区间中有:2kπ-π/2≤(2x+5π/6)≤2kπ+π/2,k∈Z
kπ-2π/3≤x≤kπ-π/6,k∈Z
所以 f(x)的单调递增区间是:[kπ-2π/3,kπ-π/6],k∈Z
(或[kπ+π/3,kπ+5π/6],k∈Z)
(2)由(1) f(x)=2sin(2x+5π/6)+a
x∈(-π/4,0)时 2x+5π/6∈(π/3,5π/6)
当2x+5π/6=π/2 即x=-π/6时
f(x)取到最大值a+2
由已知得 a+2=3
解得 a=1
希望对你有点帮助!
=2sin(2x-π/6+π)+a
=2sin(2x+5π/6)+a
(1) x在增区间中有:2kπ-π/2≤(2x+5π/6)≤2kπ+π/2,k∈Z
kπ-2π/3≤x≤kπ-π/6,k∈Z
所以 f(x)的单调递增区间是:[kπ-2π/3,kπ-π/6],k∈Z
(或[kπ+π/3,kπ+5π/6],k∈Z)
(2)由(1) f(x)=2sin(2x+5π/6)+a
x∈(-π/4,0)时 2x+5π/6∈(π/3,5π/6)
当2x+5π/6=π/2 即x=-π/6时
f(x)取到最大值a+2
由已知得 a+2=3
解得 a=1
希望对你有点帮助!
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