91Ó°ÊÓ

Given function is,.

$\ln \sqrt{{(1+x)}^2+y^2}$

Let,$f\left(z\right)=u+iv$.

Here$u=\ln \sqrt{{\left(1+x\right)}^2+y^2}$.

Now it has to verify given function is harmonic.

If the given function is satisfied role="math" localid="1664352899239" $\frac{{∂}^{2}u}{∂x^2}+\frac{{∂}^{2}u}{∂y^2}=0$then the function is harmonic.

Now,

$$\begin{gathered} \frac{∂u}{∂x}=\frac{1}{2}\frac{1}{{\left(1+x\right)}^2+y^2}×2\left(1+x\right) \\ =\frac{\left(1+x\right)}{{\left(1+x\right)}^2+y^2} \\ \frac{{∂}^{2}u}{∂x^2}=\frac{{\left(1+x\right)}^2-y-2\left(1+x\right).\left(1+x\right)}{{\left(1+x\right)}^2+y^2} \\ =\frac{{\left(1+x\right)}^2-y^2}{{\left[{\left(1+x\right)}^2+y^2\right]}^2} \end{gathered}$$……. (1)

Also,

$$\begin{gathered} \frac{∂u}{∂x}=\frac{1}{2}\frac{1}{{\left(1+x\right)}^2+y^2}×2y \\ =\frac{y}{{\left(1+x\right)}^2+y^2} \\ \frac{{∂}^{2}u}{∂x^2}=\frac{{\left(1+x\right)}^2-y^2}{{\left[{\left(1+x\right)}^2+y^2\right]}^2} \end{gathered}$$……. (2)

Adding equations (1) and (2), it has $\frac{{∂}^{2}u}{∂x^2}+\frac{{∂}^{2}u}{∂}=0$

It can be shown that, if is a harmonic function which is defined at role="math" localid="1664359217982" $z_0=x_0+i{y}_0$, then an analytic function of which u is the real part is given as follows:

$f\left(z\right)=2u\left(\begin{array}{cc}\frac{z+\stackrel{¯}{z_0}}{2},& \frac{z-\stackrel{¯}{z_0}}{2i}\end{array}\right)+cons\tan t$

Let $z_0=0$ then

$$\begin{gathered} u\left(0,0\right)=\ln \sqrt{{\left(1+0\right)}^2+0^2} \\ =\ln 1 \\ =0 \end{gathered}$$

Therefore, obtain:

$$\begin{gathered} f\left(z\right)=2\ln \sqrt{{\left(1+\frac{z}{2}\right)}^2-\frac{z^2}{4}}+cons\tan t \\ f\left(z\right)=\ln \left(1+z\right)+C \end{gathered}$$