courses:ast201:1
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courses:ast201:1 [2023/10/01 00:40] – [5.1 Stellar aberration] asad | courses:ast201:1 [2023/10/02 00:45] (current) – [4. Newton and Einstein] asad | ||
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Newton made gravity the physical reason behind planetary motions as opposed to Descartes' | Newton made gravity the physical reason behind planetary motions as opposed to Descartes' | ||
- | $$ g = \frac{GM}{r^2} $$ | + | $$ \vec{g} = \frac{GM}{r^2} \hat{r} $$ |
- | and the gravitational potential | + | where $G$ is the Newtonian gravitational constant, $M$ the mass of an object |
$$ U = - \frac{GMm}{r} $$ | $$ U = - \frac{GMm}{r} $$ | ||
for a small mass $m$ around a large mass $M$. | for a small mass $m$ around a large mass $M$. | ||
+ | |||
+ | The theory was later modified by Einstein as | ||
+ | |||
+ | $$ G_{\mu\nu} + \Lambda g_{\mu\nu} = \kappa T_{\mu\nu} $$ | ||
+ | |||
+ | where $G_{\mu\nu}$ is the [[bn: | ||
+ | |||
+ | $$ \kappa = \frac{8\pi G}{c^4} $$ | ||
+ | |||
+ | is the Einstein gravitational constant. | ||
===== - Stellar aberration and parallax ===== | ===== - Stellar aberration and parallax ===== | ||
+ | The heliocentric theory was finally proved by two observations: | ||
==== - Stellar aberration ==== | ==== - Stellar aberration ==== | ||
{{https:// | {{https:// | ||
- | In this example of 2D frame moving only in the $x$-direction | + | |
+ | In this example of 2D frame moving only in the $x$-direction, the vertical component of the apparent speed of light ($u$) will not change, but the horizontal component will be modified due to the velocity of the Earth. | ||
$$ \tan\phi = \frac{u_y' | $$ \tan\phi = \frac{u_y' | ||
- | where $\gamma=(1-v^2/ | + | where $\gamma=(1-v^2/ |
$$ \tan\phi = \frac{c\sin\theta}{\gamma(c\cos\theta+v)} = \frac{\sin\theta}{\gamma(v/ | $$ \tan\phi = \frac{c\sin\theta}{\gamma(c\cos\theta+v)} = \frac{\sin\theta}{\gamma(v/ | ||
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and, finally, if $\theta-\phi$ is very small then **aberration** $\alpha = \theta-\phi \approx v/c$. | and, finally, if $\theta-\phi$ is very small then **aberration** $\alpha = \theta-\phi \approx v/c$. | ||
+ | |||
+ | Using google colab, calculate the factor $v/c$ considering $v$ to be the speed of earth around the sun which is $30$ km/s. You will see that $v/c\approx 20$ arcsec. So the maximum stellar aberration is 20 arcsec, but the actual measurement of aberration will vary from $-20$ to $+20$ arcsec for starlight coming at a right angle with the plane of the solar system. | ||
{{https:// | {{https:// | ||
+ | |||
+ | The annual variation of aberration can be seen in the figure above. Around the time of March equinox, the Earth is travelling toward left in this figure, so starlight is also bent toward the left, but as the Earth approaches the June solstice, the aberration vanishes and then again increases as the Earth travels toward the September equinox. The aberration again goes to zero around the time of December solstice. | ||
[[https:// | [[https:// | ||
+ | |||
+ | This variation has been modelled above using a sine function with an amplitude of $20$ arcsec and a period of $2\pi$. The amplitude is not exactly $20$ and the sine curve is not vertically symmetric because the variation of the orbital velocity of the Earth in its elliptical orbit has been taken into account here. Click on the image to see the python code and the corresponding equations. | ||
+ | |||
+ | Compare this model with the actual observations carried out by James Bradley in 1727 using the star $\gamma$ Draconis. | ||
+ | |||
+ | {{https:// | ||
+ | |||
+ | You can see minimum aberration during the solstices and maximum aberration during the equinoxes as predicted. Think why! | ||
==== - Stellar parallax ==== | ==== - Stellar parallax ==== | ||
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HIPPARCOS has parallax uncertainties of 0.97 mas for around 118k stars brighter than $m_V=8.0$. | HIPPARCOS has parallax uncertainties of 0.97 mas for around 118k stars brighter than $m_V=8.0$. | ||
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- | Explore Gaia: https:// | ||
===== Further reading ===== | ===== Further reading ===== |
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