If #sec(theta+alpha)+sec(theta-alpha)=2sec(theta)#,prove that #cos(theta)=sqrt2 cos(alpha/2)#?

1 Answer
Shwetank Mauria
Feb 11, 2018

Please see below.

Explanation:

#sec(theta+alpha)+sec(theta-alpha)=2sec(theta)# can be written as

#1/cos(theta+alpha)+1/cos(theta-alpha)=2/costheta#

or #(cos(theta+alpha)+cos(theta-alpha))/(cos(theta+alpha)cos(theta-alpha))=2/cos(theta)#

or#(2xx2costhetacosalpha)/(cos(theta+alpha+theta-alpha)+cos(theta+alpha-theta+alpha))=2/costheta#

or #(2costhetacosalpha)/(cos2theta+cos2alpha)=1/costheta#

or #2cos^2thetacosalpha=cos2theta+cos2alpha#

or #2cos^2thetacosalpha=2cos^2theta-1+2cos^2alpha-1#

or #2cos^2theta(cosalpha-1)=2cos^2alpha-2#

or #cos^2theta=(cos^2alpha-1)/(cosalpha-1)=cosalpha+1#

or #cos^2theta=2cos^2(alpha/2)#

and #costheta=sqrt2cos(alpha/2)#

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