Math, asked by TheEvva, 8 months ago

solve :
$\sf\sqrt { \dfrac{x}{x-1}} + \sqrt { \dfrac{ 1- x }{ x }} =2 \dfrac{1}{6}$ , x ≠ 0 and x ≠ 1

Answers

Answered by InfiniteSoul

$\sf{\underline{\boxed{\green{\large{\bold{ Question}}}}}}$ ⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

solve : $\sf\sqrt { \dfrac{x}{x-1}} + \sqrt { \dfrac{ 1- x }{ x }} =2 \dfrac{1}{6}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf{\underline{\boxed{\green{\large{\bold{ Solution}}}}}}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf\implies let \: \sqrt{ \dfrac{x}{x-1}} = y$

$\sf\implies and\: \sqrt{\dfrac{ 1 - x} {x }} = \dfrac{1}{y}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

Given equation reduces to

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf\implies y + \dfrac{1}{y} = \dfrac{13}{6}$

$\sf\implies \dfrac{ y^2 + 1 } { y } = \dfrac{13}{6}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf\implies 6 ( y^2 + 1 ) = 13y$

$\sf\implies 6y^2 + 6 = 13y$

$\sf\implies 6y^2 - 13y + 6 = 0$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

factorisation by middle term split

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf\implies 6y^2 -9y - 4y + 6 = 0$

$\sf\implies 3y ( 2y - 3 ) -2 ( 2y - 3 ) = 0$

$\sf\implies ( 3y - 2 ) ( 2y - 3 ) = 0$

$\sf\implies 3y - 2 = 0$

$\sf \implies 3y = 2$

$\sf\implies y = \dfrac{2}{3}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf{\underline{\boxed{\blue{\large{\bold{ y = \dfrac{2}{3} }}}}}}$

$\sf\implies 2y - 3 = 0$

$\sf \implies 2y = 3$

$\sf\implies y = \dfrac{3}{2}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf{\underline{\boxed{\blue{\large{\bold{ y = \dfrac{3}{2} }}}}}}$

$\sf{\underline{\boxed{\purple{\large{\bold{ y = \dfrac{3}{2} or \dfrac{2}{3} }}}}}}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

_________________________

$\sf\implies when\: y = \dfrac{3}{2}$

$\sf\implies then \sqrt{\dfrac{x}{1 - x }} = \dfrac{3}{2}$

squaring both the sides

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf\implies \dfrac{x}{1 - x } = \dfrac{9}{4}$

$\sf\implies 4x = 9 - 9x$

$\sf\implies 9x + 4x = 9$

$\sf\implies 13x = 9$

$\sf\implies x =\dfrac{9}{13}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf{\underline{\boxed{\blue{\large{\bold{ x = \dfrac{9}{13 } }}}}}}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀ $\sf\implies when\: y = \dfrac{2}{3}$

$\sf\implies then \sqrt{\dfrac{x}{1-x }} = \dfrac{2}{3}$ ⠀

squaring both the sides ⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf\implies \dfrac{x}{1 - x } = \dfrac{4}{9}$

$\sf\implies 9x = 4 - 4x$

$\sf\implies 9x + 4x = 4$

$\sf\implies 13x = 4$

$\sf\implies x =\dfrac{4}{13}$

⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀⠀

$\sf{\underline{\boxed{\blue{\large{\bold{ x = \dfrac{4}{13 } }}}}}}$

$\sf{\underline{\boxed{\purple{\large{\bold{ x = \dfrac{9}{13} or \dfrac{4}{13} }}}}}}$

Answered by ItzDeadDeal

Answer:

Given :

$\tt \dfrac{x}{x - 1} + \dfrac{x - 1}{x} = 2 \dfrac{1}{2} $

To find :

Value of x

Solution :

$\begin{gathered}\tt \dfrac{x}{x - 1} + \dfrac{x - 1}{x} = \dfrac{5}{2} \\ \\ \tt \implies \frac{x(x) + (x - 1)(x - 1)}{(x - 1)x} = \frac{5}{2} \\ \\ \tt \implies \frac{ {x}^{2} + {x}^{2} + 1 - 2x }{ {x}^{2} - x} = \frac{5}{2 } \\ \\ \tt \implies 5( {x}^{2} - x) = 2( {x}^{2} + {x}^{2} + 1 - 2x) \\ \\ \tt \implies 5 {x}^{2} - 5x = 2(2 {x}^{2} + 1 - 2x) \\ \\ \tt \implies 5 {x}^{2} - 5x = 4 {x}^{2} + 2 - 4x \\ \\ \tt \implies 5 {x}^{2} - 4 {x}^{2} - 5x + 4x - 2 = 0 \\ \\ \tt \implies {x }^{2} - x - 2 = 0 \\ \\ \tt \implies {x}^{2} - 2x + x - 2 = 0 \\ \\ \tt \implies x(x - 2) + 1(x - 2) = 0 \\ \\ \tt \implies (x + 1)(x - 2) = 0\end{gathered}$

$\boxed{ \therefore \tt x = - 1 \: or \: 2} $

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Answers

_________________________

Given :

To find :

Value of x

Solution :

solve :
$\sf\sqrt { \dfrac{x}{x-1}} + \sqrt { \dfrac{ 1- x }{ x }} =2 \dfrac{1}{6}$ , x ≠ 0 and x ≠ 1