How do you solve 5sin(2x)=1?

2 Answers
maganbhai P.
Mar 9, 2018

x=kpi+alpha,kinZandalpha=tan^(-1)(5+-2sqrt6)
OR
x=(kpi)/2+(-1)^k*beta/2,kinZandbeta=sin^(-1)(1/5)

Explanation:

5sin2x=1=>sin2x=1/5=>(2tanx)/(1+tan^2x)=1/5
=>10tanx=1+tan^2x=>tan^2x-10tanx+1=0
=>tan^2x-10tanx+25-24=0
=>(tanx-5)^2=24=(2sqrt(6))^2
=>tanx-5=+-2sqrt6=>tanx=5+-2sqrt6inR
=>tanx=tan(tan^(-1)(5+-2sqrt6)), let ,alpha=tan^(-1)(5+-2sqrt6)
:.x=kpi+alpha,kinZandalpha=tan^(-1)(5+-2sqrt6)
OR
5sin2x=1=>sin2x=1/5in[-1,1]
=>sin2x=sin(sin^(-1)(1/5)), let ,beta=sin^(-1)(1/5)
:.2x=kpi+(-1)^k*beta,kinZand beta=sin^(-1)(1/5)
=>x=(kpi)/2+(-1)^k*beta/2,kinZandbeta=sin^(-1)(1/5)

Nghi N
Mar 10, 2018

x = 5^@77 + k180^@
x = 84^@23 + k180^@

Explanation:

sin 2x = 1/5
Calculator and unit circle give 2 solutions:
a. 2x = 11^@54 + k360^@ -->
x = 5^@77 + k180^@
b. 2x = 180 - 11.54 = 168^@46 + k360^@ -->
x = 84.23 + k180^@

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