Friction & Forces - Calculate Force on Wheaties Box

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Homework Help Overview

The problem involves analyzing the forces acting on a box of Wheaties and a box of Cheerios being accelerated across a horizontal surface. The scenario includes given frictional forces and an applied force, prompting a calculation of the force on the Wheaties box resulting from the Cheerios box.

Discussion Character

  • Exploratory, Conceptual clarification, Assumption checking

Approaches and Questions Raised

  • Participants discuss the relationship between the masses of the two boxes based on the coefficients of kinetic friction. There are inquiries about drawing free body diagrams and writing force balance equations for the Wheaties box.

Discussion Status

The discussion is active, with participants questioning the assumptions regarding the coefficients of friction and their implications on the masses of the boxes. Some guidance has been offered regarding the need for a free body diagram and force balance equations.

Contextual Notes

There is a noted confusion regarding the terms "frictional forces" and "coefficients of friction," which may affect the interpretation of the problem. Participants are also reflecting on their understanding of the problem setup.

thegoosegirl42
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Homework Statement


A box of Cheerios and a box of Wheaties are accelerated across a horizontal surface by a horizontal force F applied to the Cheerios box. The magnitude of the frictional force on the Cheerios box is 2N, and the magnitude of the frictional force on the Wheaties box is 4N. If the magnitude of F is 12N, what is the magnitude of the force on the Wheaties box from the Cheerios box.

Homework Equations


Friction=uN
F=ma[/B]

The Attempt at a Solution


a=F/m
12-2-4=6
a=6/(C+W) ----- I am using C and W to represent the mass of the different boxes.
Cgu=2
Wgu=4
However I don't know where to use substitution on this.
 
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If the coefficient of kinetic friction is the same for both boxes, how does the mass of the cheerios box compare with the mass of the wheaties box? Once you know this, draw a free body diagram of the wheaties box, and write down the force balance equation for the wheaties box.

Chet
 
Chestermiller said:
If the coefficient of kinetic friction is the same for both boxes, how does the mass of the cheerios box compare with the mass of the wheaties box? Once you know this, draw a free body diagram of the wheaties box, and write down the force balance equation for the wheaties box.

Chet
I didn't think that the frictional forces were equal but if they are the mass of the bigger one is twice that of the smaller one.
 
thegoosegirl42 said:
I didn't think that the frictional forces were equal but if they are the mass of the bigger one is twice that of the smaller one.
The equations you wrote in post #1 imply that you do think the coefficients of friction are equal.

Let's see the force balance from your free body diagram of the wheaties box.

Chet
 
thegoosegirl42 said:
I didn't think that the frictional forces were equal but if they are the mass of the bigger one is twice that of the smaller one.

Chet said "coefficient of kinetic friction" not "frictional forces". There is a difference.
 
CWatters said:
Chet said "coefficient of kinetic friction" not "frictional forces". There is a difference.
Yeah, I meant coefficient of friction but I didn't realize until I replied and by then it was too late. :-(
 
Chestermiller said:
The equations you wrote in post #1 imply that you do think the coefficients of friction are equal.

Let's see the force balance from your free body diagram of the wheaties box.

Chet
Thank you so much. I guess I was just reading too far into the problem.
 

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