MCQ
Find the acceleration of block $B$


- A$0$
- B$\frac{5}{2}\,m/s^2$
- ✓$\frac{5}{7}\,m/s^2$
- D$\frac{5}{14}\,m/s^2$

$B: 2 T-8 g=8(a)$
Where $'a'$ is acceleration of block $B$ upwards
$\Rightarrow 2 g=28(a)$
$a=\frac{20}{28}=\frac{5}{7} \mathrm{m} / \mathrm{s}^{2}$
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[Given: Wien's constant as $2.9 \times 10^{-3} \mathrm{~m}-\mathrm{K}$ and $\frac{\mathrm{hc}}{\mathrm{e}}=1.24 \times 10^{-6} \mathrm{~V}-\mathrm{m}$ ]
| List-$I$ | List-$II$ |
| ($P$) $2000 \mathrm{~K}$ | ($1$) The radiation at peak wavelength can lead to emission of photoelectrons from a metal of work function $4 \mathrm{eV}$ |
| ($Q$) $3000 \mathrm{~K}$ | ($2$) The radiation at peak wavelength is visible to human eye. |
| ($R$) $5000 \mathrm{~K}$ | ($3$) The radiation at peak emission wavelength will result in the widest central maximum of a single slit diffraction. |
| ($S$) $10000 \mathrm{~K}$ | ($4$) The power emitted per unit area is $1 / 16$ of that emitted by a blackbody at temperature $6000 \mathrm{~K}$. |
| ($5$) The radiation at peak emission wavelength can be used to image human bones. |

