Let P Q R be a triangle of area with a=...

Let `P Q R` be a triangle of area with a=2,b=7/2,and c=5/2, where a, b and c are the lengths of the sides of the triangle opposite to the angles at P , Q and R respectively. Then (2sinP-sin2P)/(2sinP+sin2P) equals

`3/(4!)`

`45/(4!)`

`(3/(4!))^(2)`

`(45/(4!))^(2)`

Text Solution

Verified by Experts

We have,
`a=2,b=7/2` and `c=5/2`

`therefore2s=a+b+c`
`rArr2s=2+7/2+5/2rArr2s=8rArrs=4`
`(2sinP-sin2P)/(2sinP+sin2P)`
`=(2sinP-2sinPcosP)/(2sinP+2sinPcosP)`
`=(1-cosP)/(1+cosP)`
`=tan^(2)P/2=((s-b)(s-c))/(s(s-a))`
`=((s-b)(s-c)^(2))/(Delta^(2))={((s-b)(s-c))/(Delta)}^(2)={((2s-2b)(2s-2r))/(4Delta)}^(2)`
`={((8-7)(8-5))/(4Delta))^(2)=(3/(4Delta))^(2)`

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