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How do you find the limit of #phisecphi# as #phi->pi#?

1 Answer

Dec 12, 2016

#lim_(phi->pi) phi sec phi = -pi#

Explanation:

#phi sec phi = phi/cos phi#

The function is continuous in #phi = pi#, so that:

#lim_(phi->pi) phi sec phi = pi sec(pi) = pi/cos(pi) = -pi#

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