19.64 a cylinder with a piston contains 0.150 mol 105 pa ...19.64 a cylinder with a piston contains...

28
19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 10 5 Pa and 300K. The nitrogen may be treated as an ideal gas. The gas is first compressed isobarically to ½ its original volume. It then expands adiabatically back to its original volume, and finally it is heated isochorically to its original pressure. a) Draw the p-V diagram, b) Compute the temperatures at the beginning and end of the adiabatic expansion, c) Compute the minimum pressure.

Upload: others

Post on 01-Mar-2020

23 views

Category:

Documents


0 download

TRANSCRIPT

Page 1: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as an ideal gas. The gas is first compressed isobarically to ½ its original volume. It then expands adiabatically back to its original volume, and finally it is heated isochorically to its original pressure. a) Draw the p-V diagram, b) Compute the temperatures at the beginning and end of the adiabatic expansion, c) Compute the minimum pressure.

Page 2: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

p

V

p0

V0

Isobaric compression to V0/2

V0/2

Page 3: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

p

V

p0

V0 V0/2

adiabatic expansion to V0

Page 4: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

p

V

p0

V0 V0/2

isochoric heating to p0

Page 5: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

b) Compute the temperatures at the beginning and end of the adiabatic expansion

KTPap

n

3001080.1

150.0

0

50

=×=

= Given

p

V

p0

V0 V0/2

Ti

Tf

Page 6: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

inRTVp

nRTVp

=

=

20

0

000

Get Ti from ideal gas law:

KTTi 15020 ==

KTPap

n

3001080.1

150.0

0

50

=×=

= Given

p

V

p0

V0 V0/2

Ti

Tf

b) Compute the temperatures at the beginning and end of the adiabatic expansion

Get Tf from:

10

10011

22, −

−−− =

= γ

γγγ VTVTVTVT fffii

KKTTf 7.1132

3002 4.1

0 === γ

Page 7: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

c) Compute the minimum pressure. p

V

p0

V0 V0/2

Ti

Tf pmin

PapKKPa

TT

pp f

4min

5

00min

1082.6

3007.113)1080.1(

×=

×==

000

0min

nRTVpnRTVp f

=

=

Page 8: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Thermal systems spontaneously change only in certain ways:

Spontaneous heat flow always occurs from a hotter body to a colder body

Ch. 20

2nd Law of Thermodynamics

(even though to do the reverse does not violate the 1st Law of Thermodynamics)

Page 9: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Heat Engine: a device that converts heat to work

Simple engines involve a cyclic process of a working substance (usually an ideal gas)

WQU =⇒=∆ 0Net heat flow into working substance equals net work done by engine

Two thermal reservoirs [one hot (H), one cold (C)]: exchange heat with working substance at constant T (QH and QC)

Page 10: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Heat Engine: a device that converts heat to work

H

C

H

C

H QQ

QQ

QWe −=+== 11Efficiency of engine:

Page 11: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

20.40 A heat engine takes 0.350 mol of a diatomic ideal gas around the cycle shown. What is the efficiency?

HQWe =

TRnTnCQU V ∆

=∆==∆

25

Compute the W, Q for each process: 1 2: isochoric W=0 (dV=0)

1st Law

JKmolKJmol

31018.2)300)(/314.8)(2/5)(350.0(

×=

=

Page 12: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

2 3: adiabatic Q=0

)0(786)108)(/314.8)(2/5)(350.0(

>−=−⋅=

∆=−=∆

WJKKmolJmol

TnCWU V

Page 13: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

3 1: isobaric

JKKmolJmol

TnRVpW

559)192)(/314.8)(350.0(

−=−⋅=

∆=∆=

RRCCTnCQ Vpp )2/7(, =+=∆=

JKKmolJmolQ

1956)192)(/314.8)(2/7)(350.0(

−=−⋅=

Page 14: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Net Work done:

JJJWW 2275597861332 =−=+ →→

Heat Input (QH):

JQ 321 1018.2 ×=→

HQW

%4.10104.01018.2

2273

==×

=J

Je

Page 15: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Engine Statement of the 2nd Law

It is impossible for any system to undergo a process in which it absorbs heat from a reservoir at a single temperature and converts the heat completely into mechanical work, with the system ending up in the same state in which it began.

Or equivalently… Heat cannot be converted completely into work with no other change taking place.

Or equivalently… There are no engines with 100% efficiency.

Page 16: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Internal Combustion Engines

Page 17: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Otto Cycle

fuel injected

Page 18: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Diesel Cycle fuel injected

allows for greater r, efficiency

Page 19: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Stirling Cycle

V rV

Qbc

Qcd

Qda

Qab

Qin=Qbc+Qcd

Qout=Qab+Qda

heat enters, leaves during more than one process

in

out

in QQ

QWe −== 1

Page 20: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Brayton Cycle (jet engines) p

V

rp

p Ta a b

c d ab: isobaric compression bc: adiabatic compression cd: isobaric expansion da: adiabatic expansion

What is the efficiency?

Page 21: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

ab:

)(

)(

bap

abpC

TTnCTTnCQ−−=

−=

H

C

H QQ

QWe −== 1

cd: )( cdpH TTnCQ −=

express Tb, Tc, Td in terms of Ta, r

cd

ba

TTTTe

−−

−=1

QC

QH

p

V

rp

p Ta a b

c d

Page 22: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

γγγγad TpTrp −− = 11)(

γγ /)1( −=r

TT ad

dbb

bbb

nRTVrpnRTVp=

=)(

γ/1rTT a

b =

rTT d

b =

)/1/1()/11(1 1/2/)1(

/1

−− −−

−= γγγ

γ

rrTrT

a

a

cd

ba

TTTTe

−−

−=1

γγ /)1(1 −−= r

p

QC

QH

V

rp

p Ta a b

c d

γγ /)1( −=r

TT bc

1/2 −= γrTT a

c

Page 23: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

r0 2 4 6 8 10 12

e

0.0

0.1

0.2

0.3

0.4

0.5

0.6

γγ /)1(1 −−= r

QC

QH

V

rp

p Ta a b

c d

Page 24: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Refrigerators: heat engine in reverse

CH

CC

CH

CH

QQQ

WQ

K

WQQWQQ

−==

+=

−=−

Coefficient of performance

Page 25: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Real refrigerators

Page 26: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

2nd Law of Thermodynamics

It’s impossible to convert heat completely to work (e =1), with no other change taking place.

It’s impossible for any process to have as its sole result the transfer of heat from a colder body to a hotter body.

Engine statement:

Refrigerator statement:

Page 27: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Equivalence of Engine and Refrigerator Statements of 2nd Law

Page 28: 19.64 A cylinder with a piston contains 0.150 mol 105 Pa ...19.64 A cylinder with a piston contains 0.150 mol of nitrogen at 1.8 × 105 Pa and 300K. The nitrogen may be treated as

Carnot Cycle: maximum efficiency

H

C

H

C

TT

QQ

e −=−= 11