Find the values of k for which the following system of equations have infinitely many solutions.
(i) 2x + 3y = 7
(ii) (k + 2)x + (2k + 1)y = 3(2k - 1)

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Solution

The correct option is C 4
System of equations:
$a_{1} x + b_{1} y + c_{1} = 0$
$a_{2} x + b_{2} y + c_{2} = 0$
have infinite solutions if:
$\frac{a_{1}}{a_{2}} = \frac{b_{1}}{b_{2}} = \frac{c_{1}}{c_{2}}$
The given system of equations will have infinitely many solutions if:
$\frac{2}{k + 2} = \frac{3}{(2 k + 1)} = \frac{- 7}{- 3 (2 k - 1)} \Rightarrow \frac{2}{k + 2} = \frac{3}{2 k + 1} a n d \frac{3}{(2 k + 1)} = \frac{- 7}{- 3 (2 k - 1)}$

$\Rightarrow$ 4k + 2 = 3k + 6 and 18k - 9 = 14k + 7
$\Rightarrow$ 4k - 3k = 6 - 2
$\Rightarrow$ k = 4
Also, 18k - 9 = 14k + 7
$\Rightarrow$ 18k - 14k = 7 + 9
$\Rightarrow$ 4k = 16
$∴$ Value of k = 4

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k

2 x - 3 y = 7

(k + 2) x - (2 k + 1) y = 3 (2 k - 1)

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