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Complex Numbers - De Moivres Theorem (2 Viewers)

mazza_728

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Hey.. just doing some revision and i need to express cons2@-isin2@ in the form (cos@+isin@)<sup>n</sup> and also need to show, using de moivre's theorem that
cos2@=cos<sup>2</sup>@-isin<sup>2</sup>@
sin2@=2sin@cos@
and
tan2@=(2tan@)/(1-tan<sup>2</sup>@)
Can you guys help??
Thanks xoxo
 

mojako

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expand (cos@+isin@)n (n=2) using De Moivre's theorem.
expand (cos@+isin@)n (n=2) using binomial theorem.

equate real parts of the two expansions
equate imaginary parts of the two expansions

tan2@=(2tan@)/(1-tan2@)
for this one I think you can do sin2@/cos2@
(write sin2@=2sin@cos@ etc)
 

BillyMak

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mazza_728 said:
Hey.. just doing some revision and i need to express cons2@-isin2@ in the form (cos@+isin@)<sup>n</sup> and also need to show, using de moivre's theorem that
cos2@=cos<sup>2</sup>@-isin<sup>2</sup>@
sin2@=2sin@cos@
and
tan2@=(2tan@)/(1-tan<sup>2</sup>@)
Can you guys help??
Thanks xoxo


cos2@ - isin2@ = (cos@ - isin@)<sup>2</sup>

RHS = (cos@ - isin@)<sup>2</sup>
= cos<sup>2</sup>@ - 2isin@cos@ - sin<sup>2</sup>@

Equate Real parts from LHS and RHS:

cos2@ = cos<sup>2</sup>@ - sin<sup>2</sup>@ - Eqn. 1 (That "i" you gave in the question shouldn't be there methinks)

Equate Imaginary parts from LHS and RHS:

- sin2@ = - 2sin@cos@
sin2@ = 2sin@cos@ - Eqn. 2

Eqn.2/Eqn.1 = (sin2@)/(cos2@) = 2sin@cos@/(cos<sup>2</sup>@ - sin<sup>2</sup>@)

Divide top and bottom of RHS by cos<sup>2</sup>@

tan2@ = 2tan@/(1 - tan<sup>2</sup>@)
 

ngai

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mazza_728 said:
Hey.. just doing some revision and i need to express cons2@-isin2@ in the form (cos@+isin@)<sup>n</sup>
cons2@
how did u manage to type cons?
the n is nowhere near the c, o, s, or @
 

Teoh

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Hehehe

Force of habit? Most words that start with 'con' end up having the next letter as 's'?

Conscription? Consumption? Conspicuous? Constituition?

We can make a game of it ;)
 

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