How to Calculate Average Net Force on a Truck with Changing Velocity

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Homework Help Overview

The discussion revolves around calculating the average net force acting on a truck that is decelerating from a higher speed to a lower speed over a specified time interval. The subject area pertains to dynamics and force calculations in physics.

Discussion Character

  • Exploratory, Assumption checking, Problem interpretation

Approaches and Questions Raised

  • Participants discuss the relationship between initial and final velocities, acceleration, and force. There are attempts to apply the formula for force based on momentum change and questions regarding the accuracy of speed conversions.

Discussion Status

The discussion is ongoing with participants expressing differing views on the calculations. Some guidance has been offered regarding the application of formulas, but there is no consensus on the correct answer due to discrepancies in calculations and assumptions about speed conversions.

Contextual Notes

There are noted discrepancies in speed conversions, which may affect the calculations. The problem is framed as a multiple-choice question, adding pressure to align with a specific answer provided by the teacher.

Kimorto
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Thanx for everyone who has helped so far.
(This is not homework, I'm doing problems to study for my final that is in less than 3 hours).
This next question I'm having a hard time with is...

A 2150-kg truck is traveling along a straight,level road at a constant speed of 55.0km/h (15.8m/s) when the driver removes his foot from the accelerator. After 21.0 seconds, the truck's speed is 33.0 km/h (9.2m/s). What is the magnitude of the average net force acting on the truck during the 21.0 second interval?

The answer is 626 N but I have no idea on how to get to it.
 
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This is one dimensional movement along a straight line...

v_f = v_i - a * t. where i and f denote initian and final...

just try it and multiply with m to find the force...


regards
marlon
 
Marlon, that doesn't seem right, I keep getting 675 and the answer says its 626 (multiple choice question, closest answer is 626, and teacher said answer is 626)
 
yes, i see your point though i am quite certain of this...

regards
marlon...

perhaps someone else can help...
 
F = dp/dt = m(v_2 - v_1)/ t = 2150kg(9.2m/s - 15.8m/s)/21s ~ 675

675 has to be right. Your book/teacher is wrong :P
 
you have your conversions wrong.. 55 km/h is 15.3 m/s not 15.8 m/s. The rest is correct.
 

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