NCERT Class 10 Chapter 2(Polynomials) Ques 8 Solution

Question 8

The zeroes of the quadratic polynomial $x^{2} + k x + k$ where $k \neq 0$ , are : (1)cannot both be positive (2)cannot both be negative (3)are always unequal (4)are always equal

Solution:

Let $p (x) = x^{2} + k x + k, k \neq 0$
On comparing $p (x)$ with $a x^{2} + b x + c$ , we get
$a = 1, b = k$ and $c = k$
Now, $x =[\frac{- b \pm \sqrt{b^{2} - 4 a c)]/}}{2 a}$ [by quadratic formula]
$=[\frac{- k \pm \sqrt{k^{2} - 4 k)]/(}}{2 \times 1)}$
$=[\frac{- k \pm \sqrt{k (k - 4)}]/}}{2}, k \neq 0$
Here, we see that
$k (k - 4) > 0$
$\Rightarrow k \in (- \infty, 0) \cup (4, \infty)$
Now, we know that
In quadratic polynomial $a x^{2} + b x + c$
If $a > 0, b > 0, c > 0$ or $a < 0, b < 0, c < 0$ ,
then the polynomial has always all negative zeroes. and is $a > 0, c < 0$ or $a < 0, c > 0$ , then the polynomial has always zeroes of opposite sign.
Case I if $k \in (- \infty, 0)$ i.e., $k < 0$
$\Rightarrow a = 1 > 0, b, c = k < 0$
So, the zeroes are of opposite sign.
Case II If $k \in (4, \infty) i . e ., k \geq 4$
$\Rightarrow a = 1 > 0, b \geq 4$
So, both zeroes are negative
Hence, in any case zeroes of the given quadratic polynomial cannot both be positive.
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NCERT Class 10 Chapter 2(Polynomials) Ques 8 Solution

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