Find the Normal Force of a box in an elevator cab

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Homework Help Overview

The problem involves calculating the normal force acting on a box of catnip in an elevator cab system, where two cabs are connected by a cable. The scenario includes specific masses and a tension value in the cable.

Discussion Character

  • Mathematical reasoning, Assumption checking

Approaches and Questions Raised

  • Participants discuss the relationship between tension, mass, and acceleration due to gravity. There is a focus on the equations used to derive the normal force and the implications of dropping terms in the calculations.

Discussion Status

The discussion is ongoing, with participants verifying each other's reasoning and questioning specific steps in the calculations. Some guidance has been offered regarding the manipulation of equations, but no consensus has been reached on the final solution.

Contextual Notes

Participants are navigating the implications of gravitational acceleration in their calculations and the correct application of the equations of motion in the context of the problem.

ayesha91
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Homework Statement



Elevator cabs A and B are connected by a short cable and can be pulled upward or lowered by the cable above cab A. Cab A has mass 1700 kg; cab B has mass 1300 kg. A 12.0 kg box of catnip lies on the floor of cab A. The tension in the cable connecting the cabs is 1.91×10^4 N. What is the magnitude of the normal force on the box from the floor?"

Homework Equations



F=ma

The Attempt at a Solution



T-mBg=mBa
T = mB(a+g)
a+g=T/mB

N=m(a+g) = m (T/mB)= (12.0)(1.91×10^4/1300) = 176 N (rounded value)
 
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N=m(a+g) = m (T/mB)
Why did you drop the "g" in this step? Other than that, it looks good to me.
 
ayesha91 said:
T-mBg=mBa
T = mB(a+g)
a+g=T/mB

I found that a+g=T/mB
So, I replaced a+g by T/mB
 
You are correct! I bungled the move from Mb to the catnip.
 

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