Answer:
50 arcsec.
Explanation:
Diameter of the Jupiter is 139822 km.
Minimum distance of the Jupiter from the earth is,
[tex]S=588\times 10^{6}km[/tex]
Now angular diameter of the Jupiter from the Earth can be calculate as,
[tex]\theta=\frac{D}{S}[/tex]
Here, D is the diameter, and S is the minimum distance from the observing planet.
Now,
[tex]\theta=\frac{139822 km}{588\times 10^{6}km}\\\theta=237.792517\times 10^{-6} arcradian[/tex]
We know that,
[tex]1radian= \frac{180\times 60\times 60}{\pi } arcsec[/tex]
Therefore,
[tex]\theta=237.792517\times 10^{-6}(\frac{180\times 60\times 60}{\pi } arcsec)\\\theta=49.07arcsec[/tex]
Therefore, the angular diameter of planet Jupiter is 49.07 arcsec which is quite close to the 50 arcsec which is given in options.
