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A particle is droped under gravity from rst a height h and it travels a distance `(9h)/(25)` in the last second,the height h Is (take g=9.8 `ms^(-2)`)

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`(h)nth=u+(2n+1)/(2)g` (or) `(9h)/(25)=0+(2n-1)/(2) g` …….(i)
`h=0+(1)/(2)gxx(n)^(2)` ……..(ii)
(i)/(ii), we `(9)/(25)=(2n-1)/(n^(2))`
9 `n^(2)`=50 n-25
9 `n^(2)`-50 n+25=0
After solving n =5s,`(5)/(9)s`
H=122.5 m, 1.5 m.
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