Entropy of Macroscopic Collision

AI Thread Summary
The discussion centers on calculating the total entropy change resulting from a head-on collision between two cars, each weighing 1410 kg and traveling at 91 km/h. Participants explore the relationship between kinetic energy, heat, and entropy, noting that the kinetic energy of the cars is converted into heat energy during the collision. The relevant equations discussed include the change in entropy (delta-S) and the first law of thermodynamics, which relates heat and work to internal energy. A key insight is that since the process is isothermal, the change in internal energy (delta-U) is zero, simplifying the calculations. Ultimately, the participants arrive at the conclusion that the total entropy change can be calculated using the formula delta-S = Q/T, where Q represents the heat generated in the collision.
begbeg42
Messages
26
Reaction score
0

Homework Statement


Two cars each of mass 1410 kg traveling at 91 km/h in opposite directions collide head-on and come to a disastrous halt; see Figure P.38. Assume that the surrounding air and ground temperature remains fixed at 18°C. Calculate the total entropy change of the cars and environment system that results from the collision.



Homework Equations





The Attempt at a Solution


I understand how to do most problems involving gases or mixing liquids or engines etc. which involve usually microscopic untangible processes but I'm not sure what to make of this. As soon I see collision I think momentum but I don't know where to begin to relate collisions to the formulas and equations in my textbook which deal with volumes, pressures, and mols to this. any hint as a jumpstart would be appreciated! thank you
 
Physics news on Phys.org
S(total)=S(car) + S(car 2) + S(environment) where the values are changes in entropy

delta-S=delta-q/T, where delta-q=heat and T is a constant temperature?

how do I relate velocities and masses to heat?
 
I am really just guessing here, but perhaps all of that kinetic energy is assumed to be converted to heat energy ?
 
wait since
Q + W'=delta-U, where W'=work done by nonconservative/other forces i.e. the work done by the surroundings on the system

W'=(delta-KE) + (delta-PE)...in this case PEi=0 and PEf=0
thus W'=1/2mvf^2- 1/2mvi^2 for both cars

I know just intuivitely that when a car crashes the KE of both cars is translated into heat energy and some into sound and even light (which revert back to heat)...
 
oh haha ok maybe that's the assumption to make because otherwise calculating the delta-U would be difficult or is the delta-U of the entire system=0 i.e. unchanged?
 
well wouldn't it be? it's an isothermal process?
 
uhh nevermind I got it
took a little reasoning but not too difficult
isothermal so delta-T=0 i.e. delta-U=0
Q + W'=U-->Q=-W'
W'=(delta-KE)
delta-S= Q/T

thanks
 
Back
Top