Math, asked by rohidasdhongade692, 7 months ago

It
y =
√sinx + [√sinx + (√sinx + .…...+ then .................. .​

Answers

Answered by Anonymous
2

Step-by-step explanation:

\green{\bold{\underline{ ✪ UPSC-ASPIRANT✪ }}}

\red{\bold{\underline{\underline{QUESTION:-}}}}

Q:-solve and verify the equation

 \frac{1}{3} x - 4 = x - ( \frac{1}{2} + \frac{x}{ 3} )

\huge\tt\underline\blue{Answer }

_ _ _ _ _ _ _ _ _ _ _ _ _ _ _✍️

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⟹</p><p> \frac{1}{3} x - 4 = x  - ( \frac{1}{2}  +  \frac{x}{3} )

⟹</p><p> \frac{x}{3}  - 4 = x - ( \frac{3 + 2x}{6} )

⟹</p><p> \frac{x - 12}{3}  = x - ( \frac{2x + 3}{6} )

⟹</p><p> \frac{x - 12}{3}  = x -  \frac{2x - 3}{6}

⟹</p><p> \frac{x - 12}{3}  =  \frac{6x - 2x - 3}{6}

⟹</p><p> \frac{x - 12}{3}  =  \frac{4x - 3}{6}

cancelling 6( R.H.S) By 3 From L.H.S

⟹ \frac{x - 12}{1}  =  \frac{4x  - 3}{2} </p><p>

⟹</p><p>2(x - 12) = 4x - 3

⟹</p><p>2x - 24 = 4x - 3

⟹</p><p> - 24 + 3 = 4x - 2x

⟹</p><p> - 21 = 2x

⟹</p><p>x =  -  \frac{21}{2}

CHECK:-

⟹ \frac{  - \frac{21}{2} }{3}  - 4 =   - \frac{21}{2}  - ( \frac{1}{2}  + ( - ) \frac{ \frac{21}{2} }{3} )</p><p>

⟹</p><p> -  \frac{21}{6}  - 4 =  -  \frac{21}{2}  - ( \frac{1}{2}  -  \frac{21}{6} )

⟹</p><p>  - \frac{7}{2}  - 4 =   - \frac{21}{2} - ( \frac{1}{2}   -  \frac{7}{2} )

⟹</p><p> \frac{ - 7 - 8}{2}  = -   \frac{21}{2}  - ( -  \frac{6}{2} )

⟹ -  \frac{15}{2}  =  -  \frac{21}{2} - ( - 3) </p><p>

⟹</p><p>  - \frac{15}{2}  =  -  \frac{21}{2}  + 3

⟹</p><p> -  \frac{15}{2}  =  \frac{ - 21 + 6}{2}  =  -  \frac{15}{2}

THEREFORE,L.H.S=R.H.S

VERIFIED✔️

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HOPE IT HELPS YOU..

_____________________

Thankyou:)

Answered by manissaha129
1

Answer:

y =  \sqrt{ \sin(x)  +  \sqrt{ \sin(x) +  \sqrt{ \sin(x)... \: to \:  \infty  }  } }  \\ y =  \sqrt{ \sin(x) + y }  \\  {y}^{2}  =  \sin(x)  + y \\ On \: differentiating \: both \: sides, \: we \: get \\ 2y \frac{dy}{dx}   =  \cos(x)  +  \frac{dy}{dx}  \\ (2y - 1) \frac{dy}{dx}  =  \cos(x)  \\   \boxed{\frac{dy}{dx}  =  \frac{ \cos(x) }{(2y - 1)} }✓

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