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Name: Please solve RD Sharma Class 12 Chapter 21 Differential Equation Exercise 21.10 Question 37 Subquestion (v) maths textbook solution.
Uploaded: Sun, 2021-09-05 23:59
Description: Please solve RD Sharma Class 12 Chapter 21 Differential Equation Exercise 21.10 Question 37 Subquestion (v) maths textbook solution.

Please solve RD Sharma Class 12 Chapter 21 Differential Equation Exercise 21.10 Question 37 Subquestion (v) maths textbook solution.

Answers (1)

Answer : $x e^{\tan ^{-1} y}=\tan ^{-1} y$

Give : $\left(1+y^{2}\right) d x+\left(x-e^{\tan ^{-1} y}\right) d y=0$

Hint : Using $\int \frac{1}{1+x^{2}} d x$

Explanation : $\left(1+y^{2}\right) d x+\left(x-e^{\tan ^{-1} y}\right) d y=0$

$\begin{aligned} &=\left(x-e^{\tan ^{-1} y}\right) d y=-\left(1+y^{2}\right) d x \\ &=x-e^{\tan ^{-1} y}=-\left(1+y^{2}\right) \frac{d x}{d y} \\ &=\frac{x-e^{\tan ^{-1} y}}{1+y^{2}}=-\frac{d x}{d y} \end{aligned}$

$\begin{aligned} &=\frac{x}{1+y^{2}}-\frac{e^{\tan ^{-1} y}}{1+y^{2}}+\frac{d x}{d y}=0 \\ &=\frac{d x}{d y}+\left(\frac{1}{1+y^{2}}\right) x=\frac{e^{\tan ^{-1} y}}{1+y^{2}} \end{aligned}$

This is a linear differential equation of the form

$\begin{aligned} &\frac{d x}{d y}+P x=Q \\ &P=\frac{1}{1+y^{2}} \text { and } Q=\frac{e^{\tan ^{1} y}}{1+y^{2}} \end{aligned}$

The integrating factor $If$ of this differential equation is

$\begin{aligned} &I f=e^{\int P d x} \\ &=e^{\int \frac{1}{1+y^{2}} d x} \\ &=e^{\tan ^{-1} y} \; \; \; \; \; \; \; \; \; \; \; \; \; \; \; \; \; \; \; \; \; \quad\left[\int \frac{1}{1+x^{2}} d x=\tan ^{-1} x+C\right] \end{aligned}$

Hence, the solution is

$\begin{aligned} &x I f=\int Q I f d y+C \\ &=x\left(e^{\tan ^{-1} y}\right)=\int \frac{e^{-\tan ^{-1} y}}{1+y^{2}} e^{\tan ^{-1} y} d y+C \\ &=x e^{\tan ^{-1} y}=\int \frac{1}{1+y^{2}} d y+C \; \; \; \; \; \; \; \; \; \; \quad\left[e^{-\tan ^{-1} y+\tan ^{-1} y}=e^{0}=1\right] \\ &=x e^{\tan ^{-1} y}=\tan ^{-1} y+C \ldots(i) \; \; \; \; \; \; \; \quad\left[\int \frac{1}{1+y^{2}} d y=\tan ^{-1} y\right] \end{aligned}$

Now $y(0)=0$

$\begin{aligned} &=0 e^{\tan ^{-1}(0)}=\tan ^{-1}(0)+C \\ &=C=0 \quad\left[\tan ^{-1}(0)=0\right] \end{aligned}$

Substituting in (i)

$\begin{aligned} &=x e^{\tan ^{-1} y}=\tan ^{-1} y+0 \\ &=x e^{\tan ^{-1} y}=\tan ^{-1} y \end{aligned}$

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Please solve RD Sharma Class 12 Chapter 21 Differential Equation Exercise 21.10 Question 37 Subquestion (v) maths textbook solution.

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