How do you find the integral of #arcsec(5x) dx# for #x>1/5#?

1 Answer
Jim H
Mar 20, 2015

#int_(1/5)^oo arc sec (5x) dx# diverges.

#int_(1/5)^oo arc sec (5x) dx = lim_(brarroo)int_(1/5)^b arc sec (5x) dx#

As #xrarroo#, the integrand #arc sec (5x) rarr pi/2#.
That is: the line #y= pi/2# is a horizontal asymptote.

As #b rarr oo# the area under the #arc sec# curve from #b# to #b+1# approaches the area of the rectangle with base #[b, b+1]# and height #pi/2#. So as #b rarr oo# the additional area from #b# to #b+1# approaches #+ pi/2#. The integral diverges.

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