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Thermodynamic Quantities Defined
Internal Energy = U = the sum of all the energy held by the molecules:
* the PE stored in their chemical bonds, attractions and repulsions
* the KE of their motion; translation, rotation, vibration
U1@ T1
U2@ T2
Q
Heat = Q = is what flows between bodies when one loses internal energy, and another gains it.
Gases and WorkWork can be done on a gas.
Internal energy increases U = +
U = Won But the side effect of the man doing work is that the gas might get hotter and some of the heat leak out of the walls.
U = Won - Q lost
We can prevent this from happening by insulating the piston and chamber so that no heat can go in or
out (adiabatic means Q = 0, no heat flows)
Gases and Work 2
Internal energy is used up (lost, decreases) as piston pushes up.
U = neg
U = - Wby But the side effect is that the gas might cool and some of the heat be sucked into the walls.
U = - Wby + Q into
We can prevent this from happening by insulating the piston and chamber so that no heat can go in or
out (adiabatic means Q = 0, no heat flows)
Work can be done by a gas.
The First Law of ThermodynamicsThe total change in the internal energy of a system is the sum of the work done on the system and the heat transferred to the system.
U = Won + Q into
If Q = 0 (adiabatic) , then ΔU is positive if positive work is done on the system.
If W = 0, (isochoric: box cant expand or contract), then ΔU is positive if heat flows into the system
Expansions and contractions of gases are shown on PV diagrams
Pressure of gas on walls
Volume of gas increases as pressure on walls decreasesTypical of an expansion
Volume of gas decreases as pressure on walls increasesTypical of an compression of gas
The area under a PV graphs has special
significance.
The area under a PV graphs has special
significance.
Wgas = F x = PA x
x
But A x = volume compressed
Wgas = P V = area under a PV graph
Wgas = P V = area under a PV graph
Try calculating the work done by the gas in
this isobaric expansion
P = 1.01 x 105 Pa , Vi = .7 m3, Vf = 1.3 m3
W = P V = (1.01 x 105 N/m2)( .6 m3)= 60600 J
What if the arrow were switched and it was
an isobaric compression? W = P V = (1.01 x 105 N/m2)(- .6 m3)= - 60600 J
+W -W
Net work = 0
Name the process A to BIsobaric expansion
How much work is done? W= PV=Po (3Vo) = 3PoVo
Name the process B to CIsochoric loss of pressure
How much work is done? W= PV=Po 0 = 0
Name the process C to A Contraction
How much work is done? W= PV=can’t be done because P is changing
W = estimate of area under curve = 4.5 boxes
4.5 boxes (1 box = ½ PoVo) = -2.25 PoV0
Net Work done in cycle = 3PoVo +0 + -2.25 PoVo= + .75 PoVo
Net Work done in cycle = 3PoVo +0 + -2.25 PoVo= + .75 PoVo
Do you see a shortcut?
Get the area of the enclosed triangle
W= ½ bh = ½ 3Vo (½ Po) = ¾ PoVoSo for any closed cycle, the net work done is the area enclosed .
For an open cycle (where you don’t return to the P, V, T you started at) the work done is the sum of the areas under the curve
On each GRAPH below, draw lines and curves to indicate 3
processes: isobaric, isochoric and isothermal.
PP
V
V
T T
Closed Cycles: WHEN A SYSTEM RETURNS TO
ITS SAME P and V
P
V
P
V
P
V
Since PV = nRT, that means it returns to the same temperature as well. U = 0, and the first law reduces to ___________.
This means W = - Q and all work done is lost as ________. The work done is also the area of the enclosed cycle.
Tell how the first law changes for process that are
U = W + QAdiabatic
Isothermal
Isobaric
Isochoric
U = W + Q
U = W + Q
U = W + Q
Another powerful tool: if you know PV of a gas, you can automatically calculate its temperature.
PV = nRT# of moles gas constant
Assume the data below applies to a 20
mole sample of ideal gas
Find temperatures at points 1 and 2:
P1V1 = nRT1
So T1 = P1V1/nR= 5e5 (1)/20(8.3) = 7600°K
P2V2 = nRT2
So T2 = P2V2/nR= 2e5 (.5)/20(8.3) = 60°K
Interpretation: the gas _____________ and ____________
PV = nRT = a constantIsothermal = at constant temperature
What’s the shape of the curve xy = 1 ?
This shape is called an isotherm . You must actually know T at all points or calculate it to be sure; can’t tell by shape alone.
Occurs in an ice bath (thermal resevoir) that can exchange heat with walls if temperature starts to change
A.k.a isochoric
When a gas expands adiabatically, the work done in the expansion comes at the expense of the internal energy of the gas causing the temperature of the gas to drop. The figure below shows P-V diagrams for these two processes.
U = Won + Q into
Which process resulted in a
higher temperature?
Thus the adiabat lies below the isotherm.
U = KEint + PE int = (3/2) nkT
In the end, the internal energy of a gas depends only on its temperature, assuming PVT changes only.
Chemical or phase changes could change PE of molecules, but we don’t deal with that in this course.
Example: One mole of monatomic ideal gas is enclosed under a frictionless piston. A series of processes occur, and eventually the state of the gas returns to its initial state with a P-V diagram as shown below. Answer the following in terms of P0, V0, and R.
A. Find the temperature at each vertex.B. Find the change in internal energy for each
process.C. Find the work by the gas done for each process.
Example: One mole of ideal gas is at pressure P0 and volume V0. The gas then undergoes three
processes. 1.The gas expands isothermally to 2V0 while heat Q flows into the gas.
2.The gas is compressed at constant pressure back to the original volume.3.The pressure is increased while holding the volume constant until the gas returns to its initial state.
A. Draw a P-V diagram that depicts this cycle. Label relevant points on the axes. In terms of T0, the initial temperature, label each vertex with the temperature of the gas at that point.
For the remaining sections, answer in terms of T0, Q, and R.
B. Find the change in internal energy for each leg of the cycle. C. Find the work done by the gas on each leg of the cycle. D. Find the heat that flows into the gas on legs 2 and 3. E. Find the efficiency of this cycle.
Example: One mole of ideal gas is at pressure P0 and volume V0. The gas then undergoes three
processes. 1.The gas expands isothermally to 2V0 while heat Q flows into the gas.
2.The gas is compressed at constant pressure back to the original volume.3.The pressure is increased while holding the volume constant until the gas returns to its initial state.
A. Draw a P-V diagram that depicts this cycle. Label relevant points on the axes. In terms of T0, the initial temperature, label each vertex with the temperature of the gas at that point.
For the remaining sections, answer in terms of T0, Q, and R.
B. Find the change in internal energy for each leg of the cycle. C. Find the work done by the gas on each leg of the cycle. D. Find the heat that flows into the gas on legs 2 and 3. E. Find the efficiency of this cycle.
http://apcentral.collegeboard.com/members/article/1,3046,151-165-0-44428,00.htmlFor solution go to
Example: Calculate the internal energy of the air in a typical room with volume 40 m3. Treat the air as if it were a monatomic ideal gas at 1 atm = 1.01 105 Pa.
You can use the gas law PV=nRT to express the internal energy in terms of pressure and volume.