Kyle Wies said:
Oops forgot to add those!
There's
N-Newtons
M-mass
J-joule
S-seconds
N*m-Newton mass
My question is what is the power output of gravity. I'm not sure if it is just 9.81 or something else. Any guidance helps!
The standard value for the acceleration (##g##) of gravity (near the Earth's surface) is about 9.80665 (m/s
2), which rounds to 9.81 if we want three significant figure accuracy. However, most "elementary" physics applications often take ##g = 9.8 \; m/s^2##; I, personally, use 9.81.
In fact, due to "centrifugal" effects caused by the Earth's rotation, the actual value of ##g## depends on latitude:
$$ \begin{array}{lr}
g_{\rm{poles}} &=& 9.832 \; m/s^2 \\
g_{45^o} &=& 9.806 \; m/s^2\\
g_{\rm{equator}} &=& 9.780 \; m/s^2
\end{array}$$
So, unless you are doing super-accurate ballistic or aeronautical computations, you can just go ahead and use ##g = 9.81##.
By the way: NEVER denote it by ##G## as you did; in Physics the symbol ##G## stands for the "gravitational constant", not the acceleration of gravity. People might very well subtract marks if you use ##G## instead of ##g##.