Question #0e470

1 Answer
kubik98
Jan 5, 2018

#(2cosx+sin(3x))/((3-4sin^2x)cosx)#

Explanation:

#(2sinx)/sin(3x)+tanx/tan(3x)=(2sinx)/sin(3x)+(sinx/cosx)/(sin(3x)/cos(3x))=#

#=((2sinx)/cos(3x)+(sinx/cosx)*(sin(3x)/(cos(3x))) ) /(sin(3x)/cos(3x))=#

#=(((2sinxcosx+sinx*(sin(3x)))/(cancelcos(3x)*cosx)) ) /(sin(3x)/cancelcos(3x))=#

#=(( 2sinxcosx+sinx*(sin(3x)) )/cosx)/(sin(3x))=#

#= (2sinxcosx+sinx*sin(3x))/(sin(3x)cosx)=#

#sin(3x)=3sinx-4sin^3x#

#= (2sinxcosx+sinx*sin(3x))/((3sinx-4sin^3x)cosx)=#

#= (cancel(sinx)(2cosx+sin(3x)))/(cancel(sinx)(3-4sin^2x)cosx)=#

#= (2cosx+sin(3x))/((3-4sin^2x)cosx)#

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