Question

What is the tension in an elevator cable which must support a 4000 N elevator with maximum upward acceleration of 2.0 g's. What would be the tension if the elevator were allowed to accelerate downward at 0.25 g's?

Answer 1

The tension for the elevator moving upward `=12000N`
The tension for the elevator moving downward `=3000N`

Explanation:

Elevator moving upward

Let the tension in the cable be `=T_1 N`

The weight of the elevator is `=4000 N`

The acceleration is `a=2gms^-2`

Applying Newton's Second Law

`T-4000=4000/g*2g*`

`T=4000+8000=12000N`

Elevator moving downward

Let the tension in the cable be `=T_2 N`

The weight of the elevator is `=4000 N`

The acceleration is `a=0.25gms^-2`

Applying Newton's Second Law

`4000-T=4000/g*0.25g`

`T=4000-1000=3000N`

Answer 2

`1^"st"` case : `F_"elevator"=12000N`

`2^"nd"` case : `F_"elevator"=3000N`

Explanation:

Let's see the first case, moving upwards with acceleration of `2g` :

From the `2^"nd"` Law of Newton :

`ΣF=ma=>F_"elevator"-W=m*2g=>`

`F_"elevator"-mg=m*2g=>F_"elevator"=3mg=>`

`F_"elevator"=3W=>`

`F_"elevator"=3*4000=12000N`

In the second case the elevator goes down with an acceleration of
`0.25g` :

`ΣF=ma=>W-F_"elevator"=0.25mg=>F_"elevator"=0.75W=>`

`F_"elevator"=0.75*4000=3000N`