Determine the elevator's acceleration

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y90x
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Homework Statement



An 82 kg man inside a 40-kg dumb-waiter pulls down on the rope. At that moment the scale on which he is standing reads 209 N. Determine the elevator's acceleration.

Homework Equations


F=ma

The Attempt at a Solution


I know the acceleration is 0.152 m/s^2 upwards , I need help solving the problem
https://www.physicsforums.com/attachments/215547
I drew a diagram , I’m no sure I am correct because I keep getting a number greater
 
Last edited:
on Phys.org
kuruman said:
Draw a free body diagram, then apply the relevant equation that you posted.

Would the rope have an impact though?
 
kuruman said:
What do you think? Would the man be able to raise himself without it?

Fn=209N (the scale reading)
Fg=mg
=(82kg)(9.8) = 803.6 N

And the force exerted on the rope is T
So the formula would be,

(Fn +T)-Fg=ma

Am I wrong or missing something ?
 
kuruman said:
You have the equation with the man as the system. However the tension is unknown. How are you going to find that?

I’m no sure , I have two missing variables. Wouldn’t that mean to supplement a (acceleration) with F/M ?
 
haruspex said:
That's just for the man, right?
What about the equation for the dumb waiter? Make sure to use a different variable for the mass.

Image1511565636.718284.jpg

Would this be all the forces ? Or would the dumb waiter exert a normal force as well
 

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y90x said:
View attachment 215554
Would this be all the forces ? Or would the dumb waiter exert a normal force as well
You have ΣF=ma equation for the man. Your second one can be either for the dumb waiter only or for the man+dumb waiter combination. Your choice.
If for the dumb waiter, what force does the man exert on it? Remember Newton's laws.
If for the combination, ignore forces between the man and the dumb waiter since they are internal to the system, but be careful about the force the rope exerts on the combination.
 
haruspex said:
You have ΣF=ma equation for the man. Your second one can be either for the dumb waiter only or for the man+dumb waiter combination. Your choice.
If for the dumb waiter, what force does the man exert on it? Remember Newton's laws.
If for the combination, ignore forces between the man and the dumb waiter since they are internal to the system, but be careful about the force the rope exerts on the combination.

If I were to chose only the dumb waiter c wouldn’t it be the gravitational force going down and the tension ?
So it’ll be
Fnet=ma
T-Md=Md(a)
 
haruspex said:
You left out g, and another force. As I wrote, remember Newton's laws.

Oh yes !
Wouldn’t it be the man’s force being exerted down on the elevator ?

T- Md•g - M•g = a(Md+M)
 
y90x said:
T- Md•g - M•g = a(Md+M)
In Fnet = ma, m is the mass of the system. Your system is the dumbwaiter, so what quantity should multiply a?
Also on the left side you have M⋅g. That's the force that the Earth exerts on the man, however neither the Earth nor the man are part of this system. The force exerted by the man on the dumbwaiter is not his weight. What is that force? As @haruspex wrote, remember Newton's Laws.
 
kuruman said:
In Fnet = ma, m is the mass of the system. Your system is the dumbwaiter, so what quantity should multiply a?
Also on the left side you have M⋅g. That's the force that the Earth exerts on the man, however neither the Earth nor the man are part of this system. The force exerted by the man on the dumbwaiter is not his weight. What is that force? As @haruspex wrote, remember Newton's Laws.

So you would multiply a by 40? The mass of the dumbwaiter . So then the missing force would be the normal force in which the scale reads ?

T - Mdg + Fn = Mda ?
Since the man isn’t part of the system , his mass or weigh shouldn’t be included ?
 
y90x said:
Oh yes !
Wouldn’t it be the man’s force being exerted down on the elevator ?
Yes.
T- Md•g - M•g = a(Md+M)
However, the man’s force being exerted down on the elevator isn't mg in this case.

What does Newton's third law say about the force the man exerts on the elevator as compared with the force the elevator exerts on the man?
 
haruspex said:
Which way is the normal force acting on the dumb waiter?

It’s going up , so shouldn’t it be added to tension
 
SammyS said:
Yes.

However, the man’s force being exerted down on the elevator isn't mg in this case.

What does Newton's third law say about the force the man exerts on the elevator as compared with the force the elevator exerts on the man?

That they should be equal but since the elevator is accelerating wouldn’t that make his weight seen heavier or lighter depending the speed it’s going ?
 
y90x said:
That they should be equal but since the elevator is accelerating wouldn’t that make his weight seen heavier or lighter depending the speed it’s going ?
No. The weight is the force Mmang with which the Earth attracts the man. What changes is the normal force exerted by the scale on the man that always adapts itself to provide the observed acceleration. The scale measures the normal exerted on its surface. Just push down on a scale with your hand to convince yourself that it is not displaying your weight.
 
kuruman said:
No. The weight is the force Mmang with which the Earth attracts the man. What changes is the normal force exerted by the scale on the man that always adapts itself to provide the observed acceleration. The scale measures the normal exerted on its surface. Just push down on a scale with your hand to convince yourself that it is not displaying your weight.

Oh, I see
So then it’ll be
T-209N-40g=40a ?
 
kuruman said:
It'll be that.

But tension is still unknown, to solve it would it be

T - 82g = 209N because the elevator is going upwards, or
82g-T =209N
 
kuruman said:
You have two equations, one for the man and one for the dumbwaiter, and two unknowns, the acceleration and the tension.

So how do you find tension ?
 
y90x said:
It’s going up , so shouldn’t it be added to tension
The normal force between the man and the dumb waiter (we can ignore the scale since that is considered massless, so just transmits the force straight through) must be up on one and down on the other. Does it act down on the man and up on the dumb waiter or the other way around?
 
haruspex said:
The normal force between the man and the dumb waiter (we can ignore the scale since that is considered massless, so just transmits the force straight through) must be up on one and down on the other. Does it act down on the man and up on the dumb waiter or the other way around?

Wouldn’t it be the other way around ? Up on the man and down on the dumbwaiter ?