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प्रश्न
Find the value of p, for which one zero of the quadratic polynomial px2 – 14x + 8 is 6 times the other.
बेरीज
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उत्तर
Given
`{:(px^2 - 14x + 8),(ax^2 + bx + c):}}` On comparison
a = p, b = –14, c = 8
Given that one zero of the given poly is 6 times the other.
Let α and β be two roots.
ATQ, β = 6α
Now, `α + β = (-b)/a`
`α + 6α = (-(-14))/p`
`7α = (14)/p`
`α = 14/(p xx 7)`
`α = 2/p`
`αβ = c/a`
`α(6α) = 8/p`
`6α^2 = 8/p`
`6 (2/p)^2 = 8/p`
`6 (4/p^2) = 8/p`
`(24)/p^2 = 8/p`
`3/p = 1`
⇒ p = 3
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