Dynamics - packages on an incline

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Homework Help Overview

The discussion revolves around a dynamics problem involving packages sliding down an incline and interacting with a conveyor belt. The original poster presents a scenario where packages are thrown down an incline with an initial velocity and must determine their speed at a specific point and the distance they slide on the conveyor belt before coming to rest.

Discussion Character

  • Exploratory, Assumption checking, Problem interpretation

Approaches and Questions Raised

  • Participants discuss the application of energy principles and forces acting on the packages, including friction and gravitational components. There are questions about the final energy state of the packages relative to the conveyor belt and whether the initial velocity changes upon contact with the belt. Some participants explore different interpretations of the problem's requirements regarding the distance slid on the belt.

Discussion Status

The conversation is ongoing, with participants offering various interpretations and calculations. Some have provided insights into the energy equations used, while others express confusion about the problem's wording and the implications for the calculations. There is no explicit consensus on the correct approach or interpretation yet.

Contextual Notes

Participants note the importance of understanding the definitions of terms like "relative to the belt" and question the assumptions made about the velocities involved. There is also mention of constraints related to the homework context, such as not having covered momentum in their studies.

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Packages are thrown down an incline at A with a velocity of 1 m/s.
The packages slide along the surface ABS to a conveyor belt which moves with a velocity of 2 m/s.

Knowing that d = 7.5 m and µ = 0.25 between the packages and all surfaces, determine...

a) speed of the package at C
b) distance a package will slide on the conveyor belt before it comes to rest relative to the beltAttempted solution:

FBD -- N = Wsinθ for part 1

Kinetic energy = T
Work = U

T2 = T1 + U12
T2 = 1/2 mv^2 + [Fweight - Ffriction]*distance
T2 = m*[1/2+ Wsinθ-µWcosθ]*(7.5 m)

T2 = 21.36*m (Energy at point B)Then...

N = W = mg

T3 = T2 + U23 = T2 -(Ffriction*distance)
T3 = 21.36*m - .25*mg*7
T3 = 4.19*m

4.19*m = 1/2 mv^2
v = sqrt(4.19*2)

v=2.89 m/sthis is the correct velocity at the point, but when i try to find the distance it will slide, i cant.TF= Tfinal = 0

Tf = T3 + U3->F = 0
T3 = -U3F
4.19*m = µ*mg*distance

distance = 4.19/(µ*g)

this gives me a distance of 1.7 m, but the answer is 0.893 m.

help please? thanks

yay.jpg
 
Last edited:
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hi pleasehelpme6! :smile:

(have a mu: µ and a theta: θ and try using the X2 icon just above the Reply box :wink:)
pleasehelpme6 said:
TF= Tfinal = 0

noooo … :rolleyes:
 
tiny-tim said:
hi pleasehelpme6! :smile:

(have a mu: µ and a theta: θ and try using the X2 icon just above the Reply box :wink:)


noooo … :rolleyes:


could you please elaborate...?

with respect to the belt, wouldn't the final energy be zero?
or is there some momentum change i missed? (we haven't covered momentum yet so i could easily have missed it)
 
pleasehelpme6 said:
with respect to the belt, wouldn't the final energy be zero?

yes, and you can do it wrt the belt …

but then the initial v won't be 2.89, will it? :wink:
 
does that mean the package doesn't change velocity at all from touching the belt?

that would mean the velocity is .89 m/s, making T3/belt=.5*m(.89)^2

so...

Tstop = 0 = T3/belt + Wfriction
T3/belt = -Wfriction

((.5)*.89^2)/(µg) = distance = 0.16

which is incorrect.
 
i think the question is asking for the distance relative to the ground
 
it asks for "the distance a package will slide on the conveyor belt before it comes to rest relative to the belt"
 
pleasehelpme6 said:
it asks for "the distance a package will slide on the conveyor belt before it comes to rest relative to the belt"

maybe, maybe not …

it doesn't say "the distance a package will slide relative to the belt" …

and i think my interpretation gives the correct answer :wink:
 
the distance the package will slide ON THE BELT, before it comes to rest relative to the belt.
this leads me to believe it wants the distance it will slide On the belt.
if i took the total distance, it would be greater than 7 m, which is very wrong.

please clarify what you mean, as i am no less confused than when i began.
thanks.
 
  • #10
I know this is late but for anyone else that may be searching and is coming across this problem.

You have worked out to vc = 2.985 m/s correctly.

To find distanced package will slide on the conveyer belt before it comes to rest relative to the belt you use: vbelt= 2 m/s
vc = 2.985 m/s
Uc-belt= (-μk(W)(d)

Then Tc + Uc-belt = Tbelt
.5(m)(2.9852) + (-.025)(W)(d) = .5(m)(22)

4.1905 + (-.25)(9.81)(d) = 2

d = .89317 m
 

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