Physics Asked on June 30, 2021
There seems to be general disbelief over this formula, so I’m challenging someone to show me the fallacy in the proof below.
The assumptions are that the two objects are rigid and spherically symmetric and that the fluid is of uniform density and incompressible. Note that the gravitational fields induce pressure gradients in the fluid and these affect the force between the two objects.
Proof:
The formula $$ F = -G ~ frac{Delta M_1Delta M_2}{r^2}$$ is correct. The force is the derivative of the energy with respect to the separation $r$. By displacing one of the immersed masses, say $M_1$, effectively only a mass $M_1-m_1$ is displaced. Indeed a volume of fluid with mass $m_1$ is displaced oppositely.
A very similar line of reasoning based on potential energy goes as follows. When a massive objects is added to the system, a mass $m_1$ is removed so effectively the mass added is $Delta M_1$. Therefore an additional potential $V_1=-Gfrac{Delta M_1}{r}$ is added. Adding another object $M_2$ only adds mass $Delta M_2$ which feels $V_1$, resulting in the potential energy $$ V_{12} = -G ~ frac{Delta M_1Delta M_2}{r}$$
Correct answer by my2cts on June 30, 2021
I think there is a lot of confusion here. First of all, by Newtonian gravity, the gravitational force between two distinct objects depends only on their masses and the distance between them. That's it. There are GR corrections of course but we can consider those negligible for now.
Things already go a bit wrong for me in 2). From the question it seems like you are talking about the gravitational influence of one spherical object on another object, but then in 2) you're talking about the fluid, which has no influence on the gravitational influence between the two objects. Does the fluid exert gravitational influence? If it has energy of course it does, but it in no way affects the gravitational influence between the two spherical objects.
Consider this, you are essentially talking about 3 objects here: Spheres A and B, and the fluid C. There are three gravitational forces here, $F_{AB}$, $F_{AC}$, and $F_{BC}$. Your question asks about $F_{AB}$, which as I said must be $F_{AB} = frac{G m_A m_B}{r^2}$, regardless of the fluid.
Now the gravitational force from the fluid does depend on its density and distribution, but it in no way relates to the equation proposed. Let me know if you have any more questions.
Answered by CuriousHegemon on June 30, 2021
The formula is certainly correct (thanks for the endorsement @my2cts). To reiterate: it is important to appreciate that gravity also affects pressure gradients in the fluid and thus the forces on the objects.
The formula can be viewed as a generalization of Newton's Law of gravity or as a generalization of Archimedes principle or as a combination of the two. It is fascinating in that the forces produced are sometimes repulsive and that the inherent quadratic behavior becomes very apparent.
Referring back to "Two helium balloons at a cocktail party", the answer is 'yes', they do find each other attractive. The force is about a picoNewton (not huge). Interestingly, two CO2 ballons experience a similar attraction, even though in this case they are heavier than air. Perhaps most fascinating is that there is a similar magnitude force between one helium and one CO2 balloon, but in this case the force is repulsive!
This repulsive force can, of course, be interpreted as the CO2 balloon being attracted towards the greater bulk of the fluid (away from the He balloon) and the He balloon being pushed away by the buoyancy force that the CO2 balloon induces.
The formula does not require that the objects have uniform density but it does require that the objects (and the density profiles) have spherical symmetry. It does require that the fluid be incompressible and have uniform density but does not seem to require that both objects be immersed in the same fluid.
There is a variation on the formula that can be used on objects of arbitary shape. This relates the force seen when the objects are immersed in the fluid to the force seen when the objects are in a vacuum (note, it no longer says anything about how the force changes with separation).
Ffluid = Fvacuum
(M1-m1)(M2-m2)/(M1M2)
This formula requires that both objects have uniform density and the fluid has uniform density (this ensures that the forces on the object and on the displaced fluid are simply scaled versions).
I don't know how to deal with compressible fluids (such as air) but in many cases the compression and density is already set by other factors. The tiny variations in density caused by the gravitational fields from the objects themselves can probably be ignored.
The formula is probably more of a curiosity, but maybe it could find application in the movement of mascons in the Earth's mantle and lithosphere, for example.
Answered by Roger Wood on June 30, 2021
Get help from others!
Recent Answers
Recent Questions
© 2024 TransWikia.com. All rights reserved. Sites we Love: PCI Database, UKBizDB, Menu Kuliner, Sharing RPP