Evaluate the following integrals:
Assume 3secx + 5=t
d(3secx + 5)=dt
3secxtanx=dt
Secxtanx=
Substitute t and dt
We get
⇒ 
⇒ 
But t = 3secx + 5
∴ the equation becomes
⇒ 
.
13
Evaluate the following integrals:
Assume 3secx + 5=t
d(3secx + 5)=dt
3secxtanx=dt
Secxtanx=
Substitute t and dt
We get
⇒
⇒
But t = 3secx + 5
∴ the equation becomes
⇒ .