Acceleration of a stationary mass?

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Sitting in a chair results in a sensation of 1g acceleration due to the upward force exerted by the chair counteracting gravity, despite having zero net acceleration. The confusion arises from the distinction between proper acceleration, which is felt, and coordinate acceleration, which is calculated as zero when velocity is constant. The forces acting on a person in the chair balance out, leading to a net force of zero, yet the individual still experiences the effects of gravity. An accelerometer measures the force due to gravity, which is not zero, even though the net force is balanced. Understanding these concepts clarifies why one feels weight while stationary.
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so sitting in a chair gives me an acceleration of 1g. clearly I am not moving relative to the chair and Earth yet acceleration "a" is defined as the change in velocity ie; (Vfinal - Vinitial)/time

in the chair Vfinal = Vinitial = 0 so by definition (and calculation) a = (Vfinal - Vinitial)/time = 0/t = 0

so why am I accelerating at 1g when I just correctly calculated my acceleration to be 0m/s/s
 
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You're not accelerating at 1 g. You are feeling a force from gravity that is equal to your mass times g, and your chair is pushing you up with an equivalent force, such that the net force on you is zero, hence you are not accelerating.

The fact that the force of gravity is ##F = mg## does not mean that you are being accelerated by ##g##, simply that you would be if no other forces were acting on you.
 
Dr Claude given that F = ma or a = F/m, F is not zero, m is not zero so how do you get a to be zero?

I thought F might be net force that cancels to zero ie gravity down reaction of chair up but F is a measurable quantity ie an accelerometer on the chair will give a non zero number.
 
Asked and answered:
houlahound said:
Dr Claude given that F = ma or a = F/m, F is not zero, m is not zero so how do you get a to be zero?
DrClaude said:
The fact that the force of gravity is ##F = mg## does not mean that you are being accelerated by ##g##, simply that you would be if no other forces were acting on you.
 
houlahound said:
Dr Claude given that F = ma or a = F/m, F is not zero, m is not zero so how do you get a to be zero?
Along the vertical direction:
$$
F_\mathrm{total} = F_\mathrm{gravity} + F_\mathrm{chair} = 0
$$
The force fro the chair exactly cancels out the force of gravity, even though ##F_\mathrm{gravity} = mg \neq 0##.
houlahound said:
F is a measurable quantity ie an accelerometer on the chair will give a non zero number.
How do you think that the accelerometer measures ##F_\mathrm{gravity}##? (Hint: think about the example of the chair.)
 
i think i am getting it thanks, will work through the link (seems to be the ticket) to see the difference in defining accelerations.

Geez that link goes into this in the explanation;

4eea48349ad91c80da67232b83fdce7f.png
 
OK so;

Fg = - Fc giving Fg+Fc = 0 = Ftotal = 0

I get that but it does raise the question if Ftotal = 0 why do I feel my own weight?

I have no idea how an accelerometer works, I have a digital one, I doubt there is a spring and ball inside it.
 
houlahound said:
why do I feel my own weight?
You don't. You feel deformations in your body caused by the non-uniformly applied contact force form the chair.

houlahound said:
I have no idea how an accelerometer works, I have a digital one, I doubt there is a spring and ball inside it.
http://en.wikipedia.org/wiki/Accelerometer#Structure
 
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  • #10
houlahound said:
I get that but it does raise the question if Ftotal = 0 why do I feel my own weight?
We'll get to that question when we have finished with the other.

houlahound said:
I have no idea how an accelerometer works, I have a digital one, I doubt there is a spring and ball inside it.
Let's stick with old-fashioned measuring apparatus. How does a dynamometer measure force?
Dynamometer_small.jpg
 
  • #11
simple calibration of the spring under tension via Hooke's law restoring force, write a scale on the side in preferred units.

the spring is not registering a force if it is unloaded but it still "feels" 1g force.
 
  • #12
going off line, not being rude if I do not respond to further posts for awhile.

will check back here later.
 
  • #13
houlahound said:
simple calibration of the spring under tension via Hooke's law restoring force, write a scale on the side in preferred units.
In other words, the dynamometer is measuring the force necessary for the spring to counter the force due to gravity, the equivalent of ##F_\mathrm{chair}## above.

houlahound said:
the spring is not registering a force if it is unloaded but it still "feels" 1g force.
That's an arbitrary choice of the zero, since we want to measure the weight of a mass added to the spring. The spring can be slightly elongated compared to when it is at rest horizontally.
 
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