作业帮一、求下列各式的值(1)lg12-2lg6+lg3 (2)sin(π+α)cos(π-α)/ tan(-α)sin(π/2 - α)二、已知函数f(x)=根号2cos(x-π/12),x属于R.(1)求f(- π/6)的值 (2)若cosθ=3/5,θ属于(3π/2,2π),
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一、求下列各式的值(1)lg12-2lg6+lg3 (2)sin(π+α)cos(π-α)/ tan(-α)sin(π/2 - α)二、已知函数f(x)=根号2cos(x-π/12),x属于R.(1)求f(- π/6)的值 (2)若cosθ=3/5,θ属于(3π/2,2π),
一、求下列各式的值
(1)lg12-2lg6+lg3 (2)sin(π+α)cos(π-α)/ tan(-α)sin(π/2 - α)
二、已知函数f(x)=根号2cos(x-π/12),x属于R.
(1)求f(- π/6)的值 (2)若cosθ=3/5,θ属于(3π/2,2π),求f(θ+π/3).
一、求下列各式的值(1)lg12-2lg6+lg3 (2)sin(π+α)cos(π-α)/ tan(-α)sin(π/2 - α)二、已知函数f(x)=根号2cos(x-π/12),x属于R.(1)求f(- π/6)的值 (2)若cosθ=3/5,θ属于(3π/2,2π),
一、
1)
lg12-2lg6+lg3=lg(12÷6^2×3)=lg1=0
2)
原式=(sin(α)cos(α))/(-sin(α)÷cos(α)·cos(α))=-cos(α)
二、
1)
f(-π/6)=√2cos(-π/6-π/12)
=√2cos(-π/4)
=√2·(√2/2)
=1
2)
f(θ+π/3)=√2cos(θ+π/3-π/12)
=√2cos(θ+π/4)
=√2(cos(θ)cos(π/4)-sin(θ)sin(π/4))
=√2(3/5·√2/2+4/5·√2/2)
=7/5
一、
(1):0 (2)-cox a
二、
(1):1 (2)五分之七能写下过程吗?谢谢(1)lg12-2lg6+lg3 =lg12-lg36+lg3 =lg(12*3)/36=lg1=02)sin(π+α)cos(π-α)/ tan(-α)sin(π/2 - α)=sin(α)cos(α)/ -[tan(α)]cos( α)= -cos( α)二(1)f(-...
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一、
(1):0 (2)-cox a
二、
(1):1 (2)五分之七
收起
(1)lg12-2lg6+lg3 =lg12-lg36+lg3 =lg(12*3)/36=lg1=0
2)sin(π+α)cos(π-α)/ tan(-α)sin(π/2 - α)
=sin(α)cos(α)/ -[tan(α)]cos( α)= -cos( α)
二
(1)f(- π/6)=根号2cos(- π/6-π/12)=根号2cos(- π/4)= 1...
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(1)lg12-2lg6+lg3 =lg12-lg36+lg3 =lg(12*3)/36=lg1=0
2)sin(π+α)cos(π-α)/ tan(-α)sin(π/2 - α)
=sin(α)cos(α)/ -[tan(α)]cos( α)= -cos( α)
二
(1)f(- π/6)=根号2cos(- π/6-π/12)=根号2cos(- π/4)= 1
(2)f(θ+π/3)=根号2cos(θ+π/4)=根号2(cosθcosπ/4-sinθsinπ/4)=cosθ-sinθ
sinθ=-根号(1-cosθ^2)=-4/5
所以f(θ+π/3)=cosθ-sinθ=7/5
收起
一丶
(1)d=2lg2+lg3-lg6=2lg6-lg6=lg6
b=lg6-lg6=0a=0-lg6=-lg6
(2)cos(2π-α)sin(π+α)/sin(π/2+α)tan(3π-α)=cosα(-sinα)/cosα(-tanα)=cosα
二