- A: mass number

- Z: atomic number

- X: element produced

A balanced nuclear equation is one where the sum of the mass numbers (the top number in notation) and the sum of the atomic numbers balance on either side of an equation.

Beta decay of sodium-26

- Electron: ${}_{-1}^0\text{e}$

- Atomic number of sodium is 11

${}_{11}^{26}\text{Na}{\to }_{-1}^0\text{e}{+}_Z^{\text{A}}\text{X}$

First, let us calculate the values of  A and  Z

$\begin{array}{c}26=0+\text{A }\\ \text{A}=26\\ 11=-1+\text{Z}\\ \text{Z}=12\end{array}$

The element with atomic number 12 is magnesium, so the product is magnesium-26

${}_{11}^{26}\text{Na}{\to }_{-1}^0\text{e}{+}_{12}^{26}\text{Mg}$

Beta decay of francium-223

- Electron:${}_{-1}^0\text{e}$

- Atomic number of francium is 223

${}_{87}^{223}\text{Fr}{\to }_{-1}^0\text{e}+{\text{Z}}_{\text{Z}}^{\text{A}}\text{X}$

First, let us calculate the values of A and Z

$\begin{array}{c}223=0+\text{A}\\ \mathbf{A}=223\\ 87=-1+Z\\ Z=88\end{array}$

The element with atomic number 88 is radium, so the product is radium-223

${}_{87}^{223}\text{Fr}{\to }_{-1}^0\text{e}{+}_{88}^{223}\text{Ra}$

Alpha decay of  ${}_{83}^{212}\text{Bi}$

- Alpha particle: ${}_2^4\text{He}$${}_{83}^{212}\text{Bi}{\to }_2^4\text{He}+\frac{\text{A}}{\text{Z}}\text{X}$

First, let us calculate the values of  A and  Z

$\begin{array}{c}212=4+\text{A}\\ \mathbf{A}=212-4\\ =208\\ 83=2+\mathbf{Z}\end{array}$

Solve further

 $\begin{array}{c}\text{Z}=83-2\\ =81\end{array}$

The element with atomic number   is thallium, so the product is thallium- 208

${}_{83}^{212}\text{Bi}{\to }_2^4\text{He}{+}_{81}^{208}\text{Tl}$