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Question
Find the value of k for which the equation x2 + k(2x + k – 1) + 2 = 0 has real and equal roots.
Sum
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Solution
The given equation is x2 + k(2x + k – 1) + 2 = 0.
⇒ x2 + 2kx + k(k – 1) + 2 = 0
So, a = 1, b = 2k, c = k(k – 1) + 2
We know D = b2 – 4ac
⇒ D = (2k)2 – 4 × 1 × [k(k – 1) + 2]
⇒ D = 4k2 – 4[k2 – k + 2]
⇒ D = 4k2 – 4k2 + 4k – 8
⇒ D = 4k – 8
⇒ D = 4(k – 2)
For equal roots, D = 0
Thus, 4(k – 2) = 0
So, k = 2.
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