Chapter 15, Problem 15.111P

To determine

To prove $\square \cdot \text{F}=-{\mu }_{0}J$.

Answer to Problem 15.111P

It is proven that $\square \cdot \text{F}=-{\mu }_{0}J$.

Explanation of Solution

Write the expression for Maxwell’s equation

    $\nabla \times \text{B}-\frac{1}{c^2}\frac{\partial \text{E}}{\partial t}={\mu }_0\text{J}$        (I)

The above equation can be expressed as

    $\left|\begin{array}{ccc}i& j& k\\ \frac{\partial }{\partial x_1}& \frac{\partial }{\partial x_2}& \frac{\partial }{\partial x_3}\\ B_1& B_2& B_3\end{array}\right|-\frac{1}{c}\frac{\partial }{\partial (ct)}\left(E_{1}i+E_{2}j+E_{3}k\right)={\mu }_0\left(J_{1}i+J_{2}j+J_{3}k\right)$

Expand the above equation.

    $\left[\frac{\partial B_3}{\partial x_2}-\frac{\partial B_2}{\partial x_3}-\frac{1}{c}\frac{\partial E_1}{\partial x_4}\right]i+\left[\frac{\partial B_1}{\partial x_3}-\frac{\partial B_3}{\partial x_1}-\frac{1}{c}\frac{\partial E_2}{\partial x_4}\right]j+\left[\frac{\partial B_2}{\partial x_1}-\frac{\partial B_1}{\partial x_2}-\frac{1}{c}\frac{\partial E_3}{\partial x_4}\right]k=\left({\mu }_0{J}_1\right)i+\left({\mu }_0{J}_2\right)j+\left({\mu }_0{J}_3\right)k$        (II)

Equate the $\widehat{\text{i}}$ components of the above equation.

    $0+\frac{\partial B_3}{\partial x_2}-\frac{\partial B_2}{\partial x_3}-\frac{\partial }{\partial x_4}\left(\frac{E_1}{c}\right)={\mu }_0{J}_1$        (III)

Equate the $\widehat{\text{j}}$ components of equation (II).

    $-\frac{\partial B_3}{\partial x_1}+0+\frac{\partial B_1}{\partial x_3}-\frac{\partial }{\partial x_4}\left(\frac{E_2}{c}\right)={\mu }_0{J}_2$        (IV)

Equate the $\widehat{\text{k}}$ components of equation (II).

    $\frac{\partial B_2}{\partial x_1}-\frac{\partial B_1}{\partial x_2}+0-\frac{\partial }{\partial x_4}\left(\frac{E_3}{c}\right)={\mu }_0{J}_3$        (V)

Write the expression for Maxwell’s equation.

    $\nabla \cdot \text{E=}\frac{1}{{\epsilon }_0}k$

The above equation can be written as

    $\frac{\partial E_1}{\partial x_1}+\frac{\partial E_2}{\partial x_2}+\frac{\partial E_3}{\partial x_3}=\frac{1}{{\epsilon }_0}\text{k}$

Since $J_4=ck$, substitute $k=\frac{J_4}{c}$ in the above equation.

    $\begin{array}{c}\frac{\partial E_1}{\partial x_1}+\frac{\partial E_2}{\partial x_2}+\frac{\partial E_3}{\partial x_3}=\frac{1}{{\epsilon }_0}\frac{J_4}{c}\\ \frac{1}{c}\frac{\partial E_1}{\partial x_1}+\frac{1}{c}\frac{\partial E_2}{\partial x_2}+\frac{1}{c}\frac{\partial E_3}{\partial x_3}=\frac{1}{{\epsilon }_0}\frac{J_4}{c^2}\end{array}$

Use $c^2=\frac{1}{{\mu }_0{\epsilon }_0}$ in the above equation.

    $\begin{array}{c}\frac{\partial }{\partial x_1}\left(\frac{E_1}{c}\right)+\frac{\partial }{\partial x_2}\left(\frac{E_2}{c}\right)+\frac{\partial }{\partial x_3}\left(\frac{E_3}{c}\right)=\frac{1}{{\epsilon }_0}\left({\mu }_0{\epsilon }_0\right)J_4\\ \frac{\partial }{\partial x_1}\left(\frac{E_1}{c}\right)+\frac{\partial }{\partial x_2}\left(\frac{E_2}{c}\right)+\frac{\partial }{\partial x_3}\left(\frac{E_3}{c}\right)={\mu }_0{J}_4\end{array}$        (VI)

Write the matrix form of $\text{F}$.

    $\text{F}=\left[\begin{array}{cccc}0& B_3& -B_2& -\frac{E_1}{c}\\ -B_3& 0& B_1& \frac{-E_2}{c}\\ B_2& -B_1& 0& \frac{-E_3}{c}\\ \frac{E_1}{c}& \frac{E_2}{c}& \frac{E_3}{c}& 0\end{array}\right]$        (VII)

Write the matrix for $G$.

    $G=\left[\begin{array}{cccc}+1& 0& 0& 0\\ 0& +1& 0& 0\\ 0& 0& +1& 0\\ 0& 0& 0& -1\end{array}\right]$        (VIII)

Write the equation for $\square G\text{F}$.

    $\begin{array}{c}\square G\text{F=}\left(\frac{\partial }{\partial x_1}\frac{\partial }{\partial x_2}\frac{\partial }{\partial x_3}\frac{\partial }{\partial x_3}\frac{-\partial }{\partial x_4}\right)\left[\begin{array}{cccc}0& B_3& -B_2& \frac{-E_1}{c}\\ -B_3& 0& B_1& \frac{-E_2}{c}\\ B_2& -B_1& 0& \frac{-E_3}{c}\\ \frac{-E_1}{c}& \frac{-E_2}{c}& \frac{-E_3}{c}& 0\end{array}\right]\\ =\left(\begin{array}{l}0+\frac{\partial }{\partial x_2}\left(-B_3\right)+\frac{\partial }{\partial x_3}\left(B_2\right)-\frac{\partial }{\partial x_4}\left(\frac{-E_1}{c}\right)\frac{\partial }{\partial x_1}\left(B_3\right)+0+\frac{\partial }{\partial x_4}\left(\frac{-E_2}{c}\right)\frac{\partial }{\partial x_1}\left(-B_2\right)+\frac{\partial }{\partial x_2}\left(B_1\right)+0-\frac{\partial }{\partial x_4}\left(\frac{E_3}{c}\right)\\ \frac{\partial }{\partial x_1}\left(\frac{-E_1}{c}\right)+\frac{\partial }{\partial x_2}\left(\frac{-E_2}{c}\right)+\frac{\partial }{\partial x_3}\left(\frac{-E_3}{c}\right)+0\end{array}\right)\end{array}$

Since $\square \cdot \text{F=}\square G\text{F}$, the matrix form of $\square G\text{F}$ is given by

    $\square G\text{F=}\left[\begin{array}{l}0+\frac{\partial }{\partial x_2}\left(-B_3\right)+\frac{\partial }{\partial x_3}\left(B_2\right)+\frac{\partial }{\partial x_4}\left(\frac{E_1}{c}\right)\hfill \\ \frac{\partial }{\partial x_1}\left(B_3\right)+0+\frac{\partial }{\partial x_3}\left(-B_1\right)+\frac{\partial }{\partial x_4}\left(\frac{E_2}{c}\right)\hfill \\ \frac{\partial }{\partial x_1}\left(-B_2\right)+\frac{\partial }{\partial x_2}\left(B_1\right)+0+\frac{\partial }{\partial x_4}\left(\frac{E_3}{c}\right)\hfill \\ \frac{\partial }{\partial x_1}\left(\frac{-E_1}{c}\right)+\frac{\partial }{\partial x_2}\left(\frac{-E_2}{c}\right)+\frac{\partial }{\partial x_3}\left(\frac{-E_3}{c}\right)+0\hfill \end{array}\right]$        (IX)

Write the matrix form of $G\text{F}$.

    $\begin{array}{c}G\text{F=}\left[\begin{array}{cccc}+1& 0& 0& 0\\ 0& +1& 0& 0\\ 0& 0& +1& 0\\ 0& 0& 0& -1\end{array}\right]\left[\begin{array}{cccc}0& B_3& -B_2& \frac{-E_1}{c}\\ -B_3& 0& B_1& \frac{-E_2}{c}\\ B_2& -B_1& 0& \frac{-E_3}{c}\\ \frac{E_1}{c}& \frac{E_2}{c}& \frac{E_3}{c}& 0\end{array}\right]\\ =\left[\begin{array}{cccc}0+0+0+0& B_3+0+0+0& -B_2+0+0+0& \frac{-E_1}{c}+0+0+0\\ 0-B_3+0+0& 0+0+0+0& 0+B_1+0+0& 0-\frac{E_2}{c}+0+0\\ 0+0+B_2+0& 0+0-B_1+0& 0+0+0+0& 0+0-\frac{E_3}{c}+0\\ 0+0+0-\frac{E_1}{c}& 0+0+0-\frac{E_2}{c}& 0+0+0-\frac{E_3}{c}& 0+0+0+0\end{array}\right]\\ =\left[\begin{array}{cccc}0& B_3& -B_2& \frac{-E_1}{c}\\ -B_3& 0& B_1& \frac{-E_2}{c}\\ B_2& -B_1& 0& \frac{-E_3}{c}\\ \frac{-E_1}{c}& \frac{-E_2}{c}& -\frac{E_3}{c}& 0\end{array}\right]\end{array}$        (X)

Since $\square =\left(\frac{\partial }{\partial x_1}\frac{\partial }{\partial x_2}\frac{\partial }{\partial x_3}\frac{-\partial }{\partial x_4}\right)$ equation (IX) is written as

    $\begin{array}{c}\square \cdot \text{F=}\left[\begin{array}{l}-\left(0+\frac{\partial }{\partial x_2}\left(B_2\right)+\frac{\partial }{\partial x_3}\left(-B_2\right)+\frac{\partial }{\partial x_4}\left(\frac{-E_1}{c}\right)\right)\hfill \\ -\left(\frac{\partial }{\partial x_1}\left(-B_3\right)+0+\frac{\partial }{\partial x_3}\left(B_1\right)+\frac{\partial }{\partial x_4}\left(\frac{-E_2}{c}\right)\right)\hfill \\ -(\frac{\partial }{\partial x_1}\left(B_2\right)+\frac{\partial }{\partial x_2}\left(-B_1\right)+0+\frac{\partial }{\partial x_4}\left(-\frac{E_3}{c}\right)\hfill \\ -(\frac{\partial }{\partial x_1}\left(\frac{E_1}{c}\right)+\frac{\partial }{\partial x_2}\left(\frac{E_2}{c}\right)+\frac{\partial }{\partial x_3}\left(\frac{E_3}{c}\right)+0\hfill \end{array}\right]\\ =\left[\begin{array}{c}-{\mu }_0{J}_1\\ -{\mu }_0{J}_2\\ -{\mu }_0{J}_3\\ -{\mu }_0{J}_4\end{array}\right]\\ =-{\mu }_0\left[\begin{array}{l}{J}_1\hfill \\ J_2\hfill \\ J_3\hfill \\ J_4\hfill \end{array}\right]\end{array}$        (XI)

Since $\left[\begin{array}{l}{J}_1\hfill \\ J_2\hfill \\ J_3\hfill \\ J_4\hfill \end{array}\right]=\text{J}$, equation (XI) is written as

    $\square \cdot \text{F=}{\mu }_0\text{J}$

Conclusion:

Therefore, it is proven that $\square \cdot \text{F}=-{\mu }_{0}J$.