Originally posted by: JujuFish
Originally posted by: ledjani
Well I believe the answer is 0. The derivative of the velocity is acceleration. Thus whenever the graph of the velocity reaches its max, the derivative is 0. Thus the acceleration is 0. Because it is at rest acceleration wise, it has reached the top, and it isn't going up or down anymore.
If the graph of velocity has a local maximum, then acceleration is not constant. If that is the case, then yes, acceleration would be zero at that local maximum.
Originally posted by: Wnh5001
a particle reaches it max height t= 2 seconds, what is the magnitude of its acceleration?
|hint|- the t=2 seconds doesnt mean anything =S, choose wisely,
a)19.6
b)9.81
c)0
d)-9.81
Originally posted by: virtualgames0
Originally posted by: JujuFish
Originally posted by: ledjani
Well I believe the answer is 0. The derivative of the velocity is acceleration. Thus whenever the graph of the velocity reaches its max, the derivative is 0. Thus the acceleration is 0. Because it is at rest acceleration wise, it has reached the top, and it isn't going up or down anymore.
If the graph of velocity has a local maximum, then acceleration is not constant. If that is the case, then yes, acceleration would be zero at that local maximum.
Nope the acceleration is still constant as the force acting on it is constant.
Originally posted by: JujuFish
Originally posted by: virtualgames0
Originally posted by: JujuFish
Originally posted by: ledjani
Well I believe the answer is 0. The derivative of the velocity is acceleration. Thus whenever the graph of the velocity reaches its max, the derivative is 0. Thus the acceleration is 0. Because it is at rest acceleration wise, it has reached the top, and it isn't going up or down anymore.
If the graph of velocity has a local maximum, then acceleration is not constant. If that is the case, then yes, acceleration would be zero at that local maximum.
Nope the acceleration is still constant as the force acting on it is constant.
First, I was speaking in general. If a graph of velocity is curved, then acceleration is not constant. That is the type of graph referred to in ledjani's post. Second, you don't know what forces are acting on it, so you cannot make that claim regarding the OP. Third, notice the "if" in my original statement.
Originally posted by: Cawchy87
The particle is no longer moving if it has reached its max height. The upward force is equal to the force pushing down on it (gravity). Thus 9.81 - 9.81 = 0.
That's the way I see it.
Originally posted by: ledjani
Well I believe the answer is 0. The derivative of the velocity is acceleration. Thus whenever the graph of the velocity reaches its max, the derivative is 0. Thus the acceleration is 0. Because it is at rest acceleration wise, it has reached the top, and it isn't going up or down anymore.
Originally posted by: Rock Hydra
Originally posted by: ledjani
Well I believe the answer is 0. The derivative of the velocity is acceleration. Thus whenever the graph of the velocity reaches its max, the derivative is 0. Thus the acceleration is 0. Because it is at rest acceleration wise, it has reached the top, and it isn't going up or down anymore.
That's what I would have answered.
Originally posted by: Goosemaster
Originally posted by: Rock Hydra
Originally posted by: ledjani
Well I believe the answer is 0. The derivative of the velocity is acceleration. Thus whenever the graph of the velocity reaches its max, the derivative is 0. Thus the acceleration is 0. Because it is at rest acceleration wise, it has reached the top, and it isn't going up or down anymore.
That's what I would have answered.
except that I would have gone into detail about how the acceleration would decrease after a point and continue to decrease until it reached it's amxed height
||accelerationdeceleration|| = acceleration + deceleratin = = mag
Originally posted by: ledjani
Well I believe the answer is 0. The derivative of the velocity is acceleration. Thus whenever the graph of the velocity reaches its max, the derivative is 0. Thus the acceleration is 0. Because it is at rest acceleration wise, it has reached the top, and it isn't going up or down anymore.
Originally posted by: Cawchy87
The particle is no longer moving if it has reached its max height. The upward force is equal to the force pushing down on it (gravity). Thus 9.81 - 9.81 = 0.
That's the way I see it.
Originally posted by: jessicak
b or d....depending on sign convention
Originally posted by: Rainsford
You know, for a technical message board, this thread is just sad...
Assuming a lot more than the OP stated as the question, the answer is 9.8m/s/s. When you throw something directly up into the air, it starts with a positive velocity. However, assuming it's a situation like throwing a ball up in the air and letting it fall back down, the only really important force acting on it is gravtiy. This force is constant during the entire flight of the ball, and afterwards as well of course. This force provides a downward acceleration of 9.8m/s/s, and absent any other force, that is the magnitude of acceleration.
Originally posted by: cRazYdood
This is a pretty poorly worded question if you ask me.
Originally posted by: Heisenberg
/bangs head on desk at some replies
Newton must be spinning in his grave right now.
Originally posted by: Wnh5001
a particle reaches it max height t= 2 seconds, what is the magnitude of its acceleration?
|hint|- the t=2 seconds doesnt mean anything =S, choose wisely,
a)19.6
b)9.81
c)0
d)-9.81
I wasn't really meaning you specifically. I did post a reply earlier in the thread but apparently no one bothered to read it.Originally posted by: Goosemaster
Originally posted by: Heisenberg
/bangs head on desk at some replies
Newton must be spinning in his grave right now.
dude..by all means correct me...I sck at physics.
My first response would be to blurt out 9.8 but my reasoning, as you see it above, is what I would eventual utter to my furious and very angry physics prof.
by all means....enlghten us oh atomic master...
Plum pudding is delicious by the way...way better htan yoru stuff