How Do You Calculate Tension in a Pulley System on a Ramp?

brunettegurl
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Homework Statement



Two blocks,connected by a string over a pulley, slide along the frictionless ramp shown in the diagram. What is the tension in the string?

Homework Equations



[tex]\sum[/tex]F=ma

The Attempt at a Solution


so i set up an equation for each mass
m1=3kg
[tex]\frac{Fg1+Ft}{m1}[/tex]=a
m1=5kg
[tex]\frac{Fg2+Ft}{m2}[/tex]=a

i equated the two since the a would be the same to solve for Ft
m2[(m1*g*cos30deg)+T1]=m1[(m2*g*cos60deg]+T1]

when i solve the equation and simplify for T i get 26.9N when i should be getting around 25 N..pls help
 

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brunettegurl said:
m1=3kg
[tex]\frac{Fg1+Ft}{m1}[/tex]=a
m1=5kg
[tex]\frac{Fg2+Ft}{m2}[/tex]=a

i equated the two since the a would be the same to solve for Ft

Hi brunettegurl! :smile:

(i can't see the diagram yet, but …)

if I'm guessing right, the accelerations aren't both a …

one is minus a :wink:
 
Also: Gravity acts down the incline while tension acts up--they must have different signs.
 
m1=3kg
[tex]\frac{-Fg1+Ft}{m1}[/tex]=a
m1=5kg
[tex]\frac{Fg2-Ft}{m2}[/tex]=a

i equated the two since the a would be the same to solve for Ft
m2[(-m1*g*cos30deg)+T1]=m1[(m2*g*cos60deg]-T1]
does that look better??
 
Hi brunettegurl! :smile:
Doc Al said:
Also: Gravity acts down the incline while tension acts up--they must have different signs.

Same thing applies to the other block. :wink:
 
so is my new equation wrong??
 
oops!

brunettegurl said:
so is my new equation wrong??

oops! must have misread it :redface:

yes, the first two equations are correct …

but shouldn't the final one have sin rather than cos?
 
why would it be sin instead of cos??
 
Last edited:
Try splitting the force of gravity, a downward vector, into a component parallel to and a component perpendicular to the ramp. You'll see that the parallel component is mgsin(a), where a is the angle of inclination of the ramp.
 

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