Lecture - Rutgers Physics
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Transcript Lecture - Rutgers Physics
Lecture 2 The First Law of Thermodynamics (Ch.1)
Lecture 1 - we introduced macroscopic parameters that describe
the state of a thermodynamic system (including temperature), the
equation of state f (P,V,T) = 0, and linked the internal energy of
the ideal gas to its temperature.
Outline:
1.
Internal Energy, Work, Heating
2.
Energy Conservation – the First Law
3.
Enthalpy
4.
Heat Capacity
Internal Energy
The internal energy of a system of particles, U, is the sum of the kinetic
energy in the reference frame in which the center of mass is at rest and the
potential energy arising from the forces of the particles on each other.
Difference between the total energy and the internal energy?
system
boundary
system
U = kinetic + potential
“environment”
B
P
T
A
V
The internal energy is a state function – it depends only on
the values of macroparameters (the state of a system), not
on the method of preparation of this state (the “path” in the
macroparameter space is irrelevant).
In equilibrium [ f (P,V,T)=0 ] :
U = U (V, T)
U depends on the kinetic energy of particles in a system and an average
inter-particle distance (~ V-1/3) – interactions.
For an ideal gas (no interactions) :
U = U (T) - “pure” kinetic
Internal Energy of an Ideal Gas
The internal energy of an ideal gas
with f degrees of freedom:
f
U Nk BT
2
f 3 (monatomic), 5 (diatomic), 6 (polyatomic)
(here we consider only trans.+rotat. degrees of freedom, and neglect
the vibrational ones that can be excited at very high temperatures)
How does the internal energy of air in this (not-air-tight) room change
with T if the external P = const?
f
PV f
U Nin roomk BT Nin room
PV
2
k BT 2
- does not change at all, an increase of the kinetic energy of individual
molecules with T is compensated by a decrease of their number.
Work and Heating (“Heat”)
We are often interested in U , not U. U is due to:
Q - energy flow between a system and its
environment due to T across a boundary and a finite
thermal conductivity of the boundary
WORK
HEATING
– heating (Q > 0) /cooling (Q < 0)
(there is no such physical quantity as “heat”; to
emphasize this fact, it is better to use the term
“heating” rather than “heat”)
W - any other kind of energy transfer across
boundary
- work
Work and Heating are both defined to describe energy transfer
across a system boundary.
Heating/cooling processes:
conduction: the energy transfer by molecular contact – fast-moving
molecules transfer energy to slow-moving molecules by collisions;
convection: by macroscopic motion of gas or liquid
radiation:
by emission/absorption of electromagnetic radiation.
The First Law
The first law of thermodynamics: the internal energy of a system can be
changed by doing work on it or by heating/cooling it.
U = Q + W
From the microscopic point of view, this statement is equivalent to
a statement of conservation of energy.
Sign convention: we consider Q and W to be positive if energy flows
into the system.
P
For a cyclic process (Ui = Uf) Q = - W.
If, in addition, Q = 0 then W = 0
T
An equivalent formulation:
Perpetual motion machines of the first type do not exist.
Perpetual motion machines come in two types: type 1 violates
the 1st Law (energy would be created from nothing), type 2 violates
the 2nd Law (the energy is extracted from a reservoir in a way that
causes the net entropy of the machine+reservoir to decrease).
V
Quasi-Static Processes
Quasi-static (quasi-equilibrium) processes – sufficiently
slow processes, any intermediate state can be considered
as an equilibrium state (the macroparamers are welldefined for all intermediate states).
Advantage: the state of a system that participates in a quasi-equilibrium
process can be described with the same (small) number of macro
parameters as for a system in equilibrium (e.g., for an ideal gas in quasiequilibrium processes, this could be T and P). By contrast, for nonequilibrium processes (e.g. turbulent flow of gas), we need a huge number
of macro parameters.
Examples of quasiequilibrium processes:
isochoric:
isobaric:
isothermal:
adiabatic:
V = const
P = const
T = const
Q=0
For quasi-equilibrium processes, P, V, T are
well-defined – the “path” between two states
is a continuous lines in the P, V, T space.
P
T
2
1
V
Work
A – the
The work done by an external force on a gas
enclosed within a cylinder fitted with a piston:
piston
area
W = (PA) dx = P (Adx) = - PdV
force
x
P
The sign: if the volume is decreased, W is positive (by
compressing gas, we increase its internal energy); if the
volume is increased, W is negative (the gas decreases
its internal energy by doing some work on the
environment).
V2
W1 2 P(T ,V )dV
V1
W = - PdV - applies to any
shape of system boundary
dU = Q – PdV
The work is not necessarily associated with the volume changes – e.g.,
in the Joule’s experiments on determining the “mechanical equivalent of
heat”, the system (water) was heated by stirring.
W and Q are not State Functions
- we can bring the system from state 1 to
state 2 along infinite # of paths, and for each
path P(T,V) will be different.
V2
W1 2 P(T ,V )dV
V1
P
T
2
Since the work done on a system depends not
only on the initial and final states, but also on the
intermediate states, it is not a state function.
V
1
U = Q + W
U is a state function, W - is not
thus, Q is not a state function either.
B
Wnet WAB WCD P2 V2 V1 P1 V1 V2
P
P2
P1
A
P2 P1 V2 V1 0
D
V1
PV diagram
C
V2
V
- the work is negative for the “clockwise” cycle; if
the cyclic process were carried out in the reverse
order (counterclockwise), the net work done on
the gas would be positive.
Comment on State Functions
U, P, T, and V are the state functions, Q and W are not. Specifying an initial and final
states of a system does not fix the values of Q and W, we need to know the whole
process (the intermediate states). Analogy: in classical mechanics, if a force is not
conservative (e.g., friction), the initial and final positions do not determine the work, the
entire path must be specified.
In math terms, Q and W are not exact differentials of some functions
of macroparameters. To emphasize that W and Q are NOT the state
functions, we will use sometimes the curled symbols (instead of d)
for their increments (Q and W).
d U T d S P dV
y
- an exact differential
U
V
S
d a Ax x, y dx Ay x, y dy
- it is an exact differential if it is
the difference between the values of some (state) function
z(x2,y2)
d a zx dx, y dy zx, y
z(x,y) at these points:
Ax x, y Ay x, y
x
A necessary and sufficient condition for this:
y
x
z
z x, y
z x, y
If this condition
z
Ax x, y
Ay x, y
d z dx dy
holds:
x
y
x y
y x
T
f
e.g., for an ideal gas: Q dU PdV Nk B dT dV - cross derivatives
V
are not equal
2
z(x1,y1)
Problem
Imagine that an ideal monatomic gas is taken from its initial state A to state
B by an isothermal process, from B to C by an isobaric process, and from
C back to its initial state A by an isochoric process. Fill in the signs of Q,
W, and U for each step.
P,
105 Pa
2
A
T=const
1
Step
Q
W
U
AB
+
--
0
BC
--
+
--
CA
+
0
+
B
C
1
2
V, m3
P
Another Problem
During the ascent of a meteorological helium-gas filled balloon,
its volume increases from Vi = 1 m3 to Vf = 1.8 m3, and the
pressure inside the balloon decreases from 1 bar (=105 N/m2) to
0.5 bar. Assume that the pressure changes linearly with volume
between Vi and Vf.
(a) If the initial T is 300K, what is the final T?
(b) How much work is done by the gas in the balloon?
(c) How much “heat” does the gas absorb, if any?
Pi
Pf
Vi
Vf
V
PV 0.625 bar/m 3 V 1.625 bar
(a)
PV NkB T
PV
T
NkB
Vf
(b) WON P(V )dV
Vi
0.5bar 1.8m3
T f Ti
300K
270K
3
Pi Vi
1bar 1m
Pf V f
Vf
- work done on a system WBY P (V )dV - work done by a system
Vi
Vf
WON WBY WBY P(V )dV 0.5 0.8 bar m3 0.5 0.4 bar m3 0.6bar m3 6 104 J
(c)
U Q WON
Vi
T
3
3
Q U WON NkB T f Ti WON Pi Vi f 1 WBY 1.5 105 J 0.1 6 104 J 4.5 104 J
2
2
Ti
Quasistatic Processes in an Ideal Gas
isochoric ( V = const )
P
W12 0
2
PV= NkBT2
PV= NkBT1
1
V1,2
V
3
Q12 NkB T2 T1 0
2
P
(see the last slide)
dU Q12
isobaric
CV T
( P = const )
2
W12 P(V , T )dV PV2 V1 0
2
1
V1
1
PV= NkBT2
PV= NkBT1
V2
V
5
Q12 NkB T2 T1 0
2
dU W12 Q12
CP T
Isothermal Process in an Ideal Gas
P
isothermal ( T = const ) :
PV= NkBT
W
V2
Wi f
dU 0
V2
V1
V
V
NkBT ln i
Vf
Wi-f > 0 if Vi >Vf (compression)
Wi-f < 0 if Vi <Vf (expansion)
V2
dV
V
NkBT ln 2
V
V1
V1
W12 P(V , T )dV NkBT
V1
Q12 W12
Adiabatic Process in an Ideal Gas
adiabatic (thermally isolated system)
dU W12
Q12 0
The amount of work needed to change the state of a thermally isolated system
depends only on the initial and final states and not on the intermediate states.
V2
W12 P(V , T )dV
P
V1
2
V2
1
PV= NkBT2
PV= NkBT1
V1
V
to calculate W1-2 , we need to know P (V,T)
for an adiabatic process
U
f
Nk BT
2
2 dP
1
0
f
P
f
Nk B dT PdV
2
( f – the # of “unfrozen” degrees of freedom )
PV NkBT PdV VdP NkB dT
dV
V
dU
,
2
1
f
PdV VdP
2
PdV
f
V
P
dV
dP
0
V P1 P
V1
V
P
ln ln 1 PV P1V1 const
P
V1
PV
Adiabatic Process in an Ideal Gas (cont.)
PV P1V1 const
P
2
V2
1
PV= NkBT2
PV= NkBT1
V1
V
An adiabata is “steeper” than an isotherma:
in an adiabatic process, the work flowing
out of the gas comes at the expense of its
thermal energy its temperature will
decrease.
P1V1
P(V , T )dV dV
V
V1
V1
V2
W12
V2
1 1
1
P1V1
1
1
1 V2
V1
1+2/31.67 (monatomic), 1+2/5 =1.4 (diatomic), 1+2/6 1.33 (polyatomic)
(again, neglecting the vibrational degrees of freedom)
Problem
Imagine that we rapidly compress a sample of air whose initial pressure is
105 Pa and temperature is 220C (= 295 K) to a volume that is a quarter of
its original volume (e.g., pumping bike’s tire). What is its final temperature?
Rapid compression – approx. adiabatic, no time for the energy
exchange with the environment due to thermal conductivity
P1V1 Nk BT1
P2V2 Nk BT2
P2
P1V1 P2V2
P1V1
V2
P1V1
P1V1
Nk
T
T2
B 2
V2 1
T1
For adiabatic processes:
V1
T2 T1
V2
1
1
V1
V2
1
T1 V1
T2 V2
also
P 1 / T const
1
const
295 K 40.4 295 K 1.74 514 K
- poor approx. for a bike pump, works better for diesel engines
T2
T1
Non-equilibrium Adiabatic Processes
(Joule’s Free-Expansion Experiment)
TV 1 const
- applies only to quasiequilibrium processes !!!
1.
2.
TV 1 const
V – increases
T – decreases (cooling)
On the other hand, U = Q + W = 0
U ~ T T – unchanged
(agrees with experimental finding)
Contradiction – because approach
#1 cannot be justified – violent
expansion of gas is not a quasistatic process. T must remain the
same.
The Enthalpy
Isobaric processes (P = const):
dU = Q - PV = Q -(PV)
Q = U + (PV)
H U + PV - the enthalpy
The enthalpy is a state function, because U, P,
and V are state functions. In isobaric processes,
the energy received by a system by heating equals
to the change in enthalpy.
isochoric:
Q=U
isobaric:
Q=H
in both cases, Q
does
not
depend on the
path from 1 to 2.
Consequence: the energy released (absorbed) in chemical reactions at constant
volume (pressure) depends only on the initial and final states of a system.
f
f
The enthalpy of an ideal gas: H U PV
Nk BT Nk BT 1 Nk BT
2
2
(depends on T only)
Heat Capacity
The heat capacity of a system - the amount of energy
transfer due to heating required to produce a unit
temperature rise in that system
T
C is NOT a state function (since Q is not a
state function) – it depends on the path
between two states of a system
f1
Q
T
f2
f3
T1+dT
T1
i
V
( isothermic – C = , adiabatic – C = 0 )
The specific heat capacity
C
C
c
m
CV and CP
U the heat capacity at
CV
T V constant volume
Q
dU PdV
C
dT
dT
H
CP
T P
the heat capacity at
constant pressure
To find CP and CV, we need f (P,V,T) = 0 and U = U (V,T)
C
dU PdV
U
U
dU
dT
dV
dT
T V
V T
dV
U U
P
T
V
V
T
dT
U
dV
CP CV
P
V T
dT P
CV and CP for an Ideal Gas
For an ideal gas
f
U Nk BT
2
CV = dU/dT
CV of one mole of H2
7/2NkB
Vibration
5/2NkB
f
f
CV Nk B nR
2
2
Rotation
3/2NkB
# of moles
Translation
10
U
dV
Nk
C P CV
P
P B Nk B
P
V T
dT P
0
R ( for one mole )
For one mole of a monatomic ideal gas:
100
1000
T, K
f
C P CV Nk B 1 Nk B
2
f
1nR
2
CV
3
5
R CP R
2
2