How do you find all the solutions for 2 (sin^2)2x + 5 sin(2x) - 3 = 0?

1 Answer
Nghi N.
Oct 11, 2016

x = pi/12 + kpi

Explanation:

Call sin 2x = T, and solve this quadratic equation for T:
2T^2 + 5T - 3 = 0
D = d^2 = b^2 - 4ac = 25 + 24 = 49 --> d = +- 7
There are 2 real roots:
T = -b/(2a) +- d/(2a) = - 5/4 +- 7/4 = (-5 +- 7)/4
T1 = 2/4 = 1/2 and T2 = - 12/4 = -3
Next, use trig table and unit circle:
a. sin 2x = T1 = 1/2
2x = pi/6 + 2kpi
x = pi/12 + kpi
b. sin 2x = T2 = -3
Solution rejected since < - 1

Related questions
See all questions in Solving Trigonometric Equations
Impact of this question
4506 views around the world
You can reuse this answer
Creative Commons License