How do you find sec 2x, given tan x = 5/3 and sin x< 0?

1 Answer
Aniket Mahaseth
Feb 9, 2016

-34/16

Explanation:

Starting from tan x, you can find sec x, because of the trigonometric identity 1 + tan^2x = sec^2x
1+(5/3)^2 = sec^2x
secx= sqrt(34/9)

But since x is in Quadrant II, sec x has to be negative. That's because sec x has the same sign as cos x, because sec x = 1 / cos x. We know that cos x is negative is Quadrant II, therefore so is sec x. So, secx= - sqrt(34/9) = - sqrt(34)/3

Since sec x and cos x are reciprocals of each other,
cos x = 1/sec x = - 3/sqrt(34)
cos^2x= 9/34.......... eq (i)

Now use the identity sin^2x+cos^2x=1 to find sin x:
sin^2x= 1-(9/34) =25/34 ......eq (ii)
Again, we know that sin x is positive in Quadrant II

We know,
sec2x= 1/cos(2x)
= 1/(cos^2x-Sin^2x)
substituting the values,
sec2x= 1/((9/34)-(25/34)= -34/16

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