If tan square theta is equal to 1-k square, show that dec theta + tan cube theta. cosec theta is equal to +-(2-k square) 3/2
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Correct Question :
If tan² θ = 1 - k², Show that sec θ + tan³ θ.cosec θ = ( 2 - k² ) ^ ( 3/2 )
Answer :
Given :
tan² θ = 1 - k² ----- Eq( 1 )
From, sec θ + tan³ θ.cosec θ
= sec θ + tan² θ.tan θ.cosec θ
Expressing tanθ.cosecθ in terms of sinθ and cosθ
= sec θ + tan² θ × ( sin θ / cos θ ) × ( 1 / sin θ )
= sec θ + tan² θ × ( 1 / cos θ )
Using inverse of cos θ i.e sec θ we get,
= sec θ + tan² θ × sec θ
Taking sec θ common
= sec θ ( 1 + tan² θ )
Using identity sec² θ = 1 + tan² θ
= sec θ × sec² θ
= sec³ θ
It can be written as
= ( sec² θ ) ^ ( 3/2 )
Using identity sec² θ = 1 + tan² θ
= ( 1 + tan² θ ) ^ ( 3/2 )
From Eq( 1 )
= ( 1 + 1 + k² ) ^( 3/2 )
= ( 2 + k² )^( 3/2 )
Hence shown.
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