question10

question10 (0) 26 -a 26 - 20 a

Dear Student,
Please find below the solution to the asked query:

z = \sin \frac{8 π}{5} + i (1 + \cos \frac{8 π}{5}) z = 2 \sin \frac{4 π}{5} \cos \frac{4 π}{5} + i (1 + 2 \cos^{2} \frac{4 π}{5} - 1) z = 2 \sin \frac{4 π}{5} \cos \frac{4 π}{5} + i (2 \cos^{2} \frac{4 π}{5}) = 2 \cos \frac{4 π}{5} \{\sin \frac{4 π}{5} + icos \frac{4 π}{5}\} = 2 \cos \frac{4 π}{5} \{\cos (\frac{π}{2} - \frac{4 π}{5}) + isin (\frac{π}{2} - \frac{4 π}{5})\} = 2 \cos \frac{4 π}{5} \{\cos (- \frac{3 π}{10}) + isin (- \frac{3 π}{10})\} = 2 \cos \frac{4 π}{5} \{\cos (- \frac{3 π}{10}) + isin (- \frac{3 π}{10})\} = 2 \cos \frac{4 π}{5} \{\cos (\frac{3 π}{10}) - isin (\frac{3 π}{10})\} As 2 \cos \frac{4 π}{5} is negative, hence we must make it positive as modulus is positive = - 2 \cos \frac{4 π}{5} \{- \cos (\frac{3 π}{10}) + isin (\frac{3 π}{10})\} = - 2 \cos \frac{4 π}{5} \{\cos (π - \frac{3 π}{10}) + isin (π - \frac{3 π}{10})\} = - 2 \cos \frac{4 π}{5} \{\cos (\frac{7 π}{10}) + isin (\frac{7 π}{10})\} Hence argument = \frac{7 π}{10}

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question10

question10 (0) 26 -a 26 - 20 a