Gravitational Field problem Question

jessedevin
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Homework Statement



Three objects -- two of mass m and one of mass M -- are located at three corners of a square of edge length l. Find the gravitational field g at the fourth corner due to these objects. (Express your answers in terms of the edge length l, the masses m and M, and the gravitational constant G).

p14-03alt.gif


Homework Equations



g=-GM/r2

The Attempt at a Solution



g= ga+gb+gc
g= Gm/l2 [tex]\hat{i}[/tex]+ (GM/(l[tex]\sqrt{2}[/tex])2)(cos([tex]\pi/4[/tex])[tex]\hat{i}[/tex]+sin([tex]\pi/4[/tex])[tex]\hat{j}[/tex])+Gm/l2 [tex]\hat{j}[/tex]

I know you have to take the magnitude of this, but when I did that , I still get the wrong answer. Here's what I got:

||g||=[tex]\sqrt{2G^2/l^4(m^2+M^2)}[/tex]

Did I start it right? Can someone help?
 
Last edited:
Isn't the gravitational field given by GM/r ?

You have 3 vectors to add, but happily the 2 m's at right angles gives one lying in the direction of M

So ... √2Gm/L + GM/(√2*L) = √2*G*(m + M/2)/L ?
 
LowlyPion said:
Isn't the gravitational field given by GM/r ?

You have 3 vectors to add, but happily the 2 m's at right angles gives one lying in the direction of M

So ... √2Gm/L + GM/(√2*L) = √2*G*(m + M/2)/L ?

So do you take the magnitude of that? I am still confused, because my book says otherwise. Can you go through your process?
 
I think what you did originally is correct, but it ask for the magnitude without the vector sign. So just put down the answer using c^2 = a^2 + b^2 and then I believe you have to indicate the degree according to the x-axis. I'm doing a similar problem. Wait, yeah you did that, never mind.
 
I got it!
Instead of converting M vectors into g forces of x and y, why don't you convert the other 2 m mass into direction of M which is Gm/l^2 * cos(45) * 2.
Then add it to the g force of M
My answer is (1.41Gm + 0.5GM)/l^2.
Hope it helps, the post was like half a month ago, lol.
 

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