GREPhysics.NET
GR | # Login | Register
   
  GR9677 #74
Problem
GREPhysics.NET Official Solution    Alternate Solutions
This problem is still being typed.
Thermodynamics}Entropy

Recall the definition of entropy to be dS = dQ/T. The heat is defined here as dQ = m c dT, and thus S = \int mcdT/T.

One is given two bodies of the same mass. One mass is at T_1=500 and the other is at T_2=100 before they're placed next to each other. When they're put next to each other, one has the net heat transferred being 0, thus Q_1 = -Q_2 \Rightarrow T_f = (T_1+T_2)/2=300.

The entropy is thus S =  \int^{T_f}_{T_1} mcdT/T +  \int^{T_f}_{T_2} mcdT/T = mc \left ( \ln(3/5) + \ln(3) \right) = 2mc \ln 3 - mc \ln 5 = mc(\ln 9 - \ln 5) = mc \ln(9/5), as in choice (B).


See below for user comments and alternate solutions! See below for user comments and alternate solutions!
Alternate Solutions
asdfman
2009-11-05 00:11:38
Used POE.

Expect there to be a change in entropy - E is out.
Know the typical integral to find S will involve a ln - A is out.
Expect the entropy to increase for the system - D is out.
Based on the numbers, expect there to be a ratio as an argument of the ln - C is tentatively out.

I'd come back to it if there was time and run the math to see if B is actually correct. If not this logic narrows it down to 2 choices.
Alternate Solution - Unverified
Comments
q
2019-10-15 15:39:09
Cependant, Hernandez ne re?oit pas suffisamment l\'occasion de montrer ses compétences comme il joue derrière Ronaldo, Gareth Bale, Karim Benzema et James Rodriguez.\r\nq http://www.alaubergededaon.com/fr2.aspNEC
q
2019-10-09 14:08:02
Sevilla: 12-2-4, 39 pointsFollow Damon Salvadore sur TwitterFOR PLUS NOUVELLES ET MISES à JOUR SPORTS, cliquez sur ce lien pour visiter LATIN POST.\r\nq http://www.eurotrends.it/en6.aspNEC
physicsphysics
2011-10-11 08:21:33
I think this problem is a little bit tricky. To obtain the equation form of integral, the system should be changed reversibly. If this system is irreversible, the entropy change of this system is -Delta q/T + \Delta q/T = zero.
physicsphysics
2011-10-11 08:24:13
Sorry. I confused two cases. Just reversible case is zero. irreversible case is S>=0.
NEC
mrTrig
2010-11-05 13:50:32
yosun, you can reduce the logarithms much faster by simply knowing that addition of two results in multiplication of arguments. mc(\ln{(\frac{3}{5})} +\ln{3}) = mc\ln{(\frac{9}{5})}NEC
asdfman
2009-11-05 00:11:38
Used POE.

Expect there to be a change in entropy - E is out.
Know the typical integral to find S will involve a ln - A is out.
Expect the entropy to increase for the system - D is out.
Based on the numbers, expect there to be a ratio as an argument of the ln - C is tentatively out.

I'd come back to it if there was time and run the math to see if B is actually correct. If not this logic narrows it down to 2 choices.
Alternate Solution - Unverified
dstahlke
2009-10-09 10:53:51
But isn't it true that dS \ge dQ/T with equality only in the case where the process is reversible? This process doesn't seem reversible to me.
kroner
2009-10-11 20:16:00
In the context of the whole system it's not a reversible process. From that perspective dQ = 0 so you are correct that dS > dQ/T = 0. Clearly the change in entropy is positive.

But considering the two objects separately, they're each undergoing a reversible process (being uniformly heated or cooled). The change in entropy for each can be found by setting dS = dQ/T where dQ is the heat flowing into that object. Then you sum the changes contributed by each object.
Answered Question!
vinograd19
2007-02-02 10:27:17
I think there is a mistake in solution. One integral is positive, the other is negative. But in solution they are both positive.
hungrychemist
2007-10-07 21:34:32
Solution is correct. The sign of integral is determined solely from the limits of integration. Notice ln(3/5) itself is a minus number as expected.
NEC

Post A Comment!
You are replying to:
I think this problem is a little bit tricky. To obtain the equation form of integral, the system should be changed reversibly. If this system is irreversible, the entropy change of this system is -Delta q/T + \Delta q/T = zero.

Username:
Password:
Click here to register.
This comment is best classified as a: (mouseover)
 
Mouseover the respective type above for an explanation of each type.

Bare Basic LaTeX Rosetta Stone

LaTeX syntax supported through dollar sign wrappers $, ex., $\alpha^2_0$ produces .
type this... to get...
$\int_0^\infty$
$\partial$
$\Rightarrow$
$\ddot{x},\dot{x}$
$\sqrt{z}$
$\langle my \rangle$
$\left( abacadabra \right)_{me}$
$\vec{E}$
$\frac{a}{b}$
 
The Sidebar Chatbox...
Scroll to see it, or resize your browser to ignore it...