Solve the irrational inequality -4 - x2 - -x2x- 0

Given √(4 x^2) + √(x^2)x≥ 0 will be true if 4 x^2≥0⇒ (x 2)(x+2)≤0,x≠0 x∈[ 2,2] {0}⋯(1) Case 1: when x≥0 √(4 x^2)≥ √(x^2)x ⇒ nbsp; √(x^2)x lt;0 ⇒√(x^2)x ...

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Byju's Answer

Standard XIII

Mathematics

Inequality

Solve the irr...

Question

Solve the irrational inequality $\sqrt{4 - x^{2}} + \frac{\sqrt{x^{2}}}{x} \geq 0$

[- \sqrt{3}, 0) \cup (0, 2]

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[- 2, 2]

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[2, 4] \cup [5, 13]

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ϕ

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Solution

The correct option is A $[- \sqrt{3}, 0) \cup (0, 2]$
Given $\sqrt{4 - x^{2}} + \frac{\sqrt{x^{2}}}{x} \geq 0$ will be true
if $4 - x^{2} \geq 0 \Rightarrow (x - 2) (x + 2) \leq 0, x \neq 0$
$x \in [- 2, 2] - {0} \dots (1)$

Case $1 :$ when $x \geq 0$
$\sqrt{4 - x^{2}} \geq - \frac{\sqrt{x^{2}}}{x} \Rightarrow - \frac{\sqrt{x^{2}}}{x} < 0 \Rightarrow \frac{\sqrt{x^{2}}}{x} > 0 \Rightarrow x > 0 \dots (1)$

Case $2 :$ when $x < 0$
$\sqrt{4 - x^{2}} \geq - \frac{\sqrt{x^{2}}}{x} \Rightarrow 4 - x^{2} \geq 1, x \neq 0 \Rightarrow x^{2} - 3 \leq 0, x \neq 0 \Rightarrow (x - \sqrt{3}) (x + \sqrt{3}) \leq 0, x \neq 0$
$∴ x \in [- \sqrt{3}, 0) \dots (3)$

Hence from $(1), (2)$ and $(3)$
$x \in [- \sqrt{3}, 2] - {0}$

Suggest Corrections

Solve the irrational inequality √4−x2+√x2x≥0

Solve the irrational inequality $\sqrt{4 - x^{2}} + \frac{\sqrt{x^{2}}}{x} \geq 0$