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How do you evaluate #int 1/sqrt(2x+1) # for [3, 4]?

1 Answer

Oct 15, 2015

#3-sqrt7#

Explanation:

#I = int_(3)^(4) 1/sqrt(2x+1) dx#

#2x+1=t => 2dx=dt => dx=dt/2#

#t_1 = 2*3+1=7#
#t_2 = 2*4+1=9#

#I = int_7^9 1/sqrtt dt/2 = 1/2 int_7^9 t^(-1/2) dt = 1/2 t^(1/2)/(1/2)=t^(1/2)#

#I = sqrt9-sqrt7 = 3-sqrt7#

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