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प्रश्न
Show that one root of the quadratic equation x2 + (3 – 2a)x – 6a = 0 is –3. Hence, find its other root.
उत्तर
Given equation be x2 + (3 – 2a)x – 6a = 0 ...(1)
Since –3 be the root of given equation (1)
∴ Putting x = –3 in equation (1); we have
9 + (3 – 2a)(–3) – 6a = 0
`\implies` 9 – 9 + 6a – 6a = 0
`\implies` 0 = 0, which is true
∴ From (1); x2 + 3x – 2ax – 6a = 0
`\implies` x(x + 3) – 2a(x + 3) = 0
Either x + 3 = 0 or x – 2a = 0
i.e. x = –3 or x = 2a
∴ x = –3, 2a
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