Answer to Question #169319 in Astronomy | Astrophysics for kaashfi

Due to the symmetry of the triangle SAB we may calculate the distance from the Sun to the star as the height of the triangle.

Let "AB = 2a, \\;\\;\\angle ASB = 2\\theta." So "a = 1.5\\cdot10^8\\,\\mathrm{km}, \\theta = 1''."

The height d of an isosceles triangle is "d = \\dfrac{a}{\\tan\\theta} = \\dfrac{1.5\\cdot10^8\\,\\mathrm{km}}{\\tan 1 ''}."

For small angles their tangents are approximately equal to the angle expressed in radians.

"1'' \\approx \\dfrac{1}{206265}\\,\\mathrm{rad} \\; \\Rightarrow \\; d \\approx 1.5\\cdot10^8\\,\\mathrm{km}\\cdot 206265 \\approx 3.1\\cdot10^{13}\\,\\mathrm{km}."

The speed of light is "c\\approx 3\\cdot 10^5\\,\\mathrm{km\/s}," and there are "86400\\cdot365.24 \\approx 3.16\\cdot10^7" seconds in a year, so the light-year is "3.16\\cdot10^7\\,\\mathrm{s}\\cdot3\\cdot10^5\\,\\mathrm{km\/s} = 9.5\\cdot 10^{12}\\,\\mathrm{km}."

Therefore, 1 pc is equal to "\\dfrac{3.1\\cdot10^{13}}{9.5\\cdot10^{12}} \\approx 3.3" light years.