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Transcript
Solutions Thermodynamics Test Term 2, 2015
Define:
i.
System: the object(s) or physical situation that is being studied
Boundary: is what separates the system from the environment
Environment: everything external to the system that has bearing on the system
ii.
Thermodynamic process
A process that changes from one state (p,v, and t) to another state examples include: isobaric,
isovolumetric, isothermal, adiabatic, and polytrophic.
iii.
Adiabatic
A thermodynamic process where no heat is exchanged between the system and the
environment, ΞQ = 0
iv.
Polytrophic
Thermodynamic process where the relationship between pressure, volume is ππ£ π = ππππ π‘πππ‘
v.
The four laws of thermodynamics
0th Law of thermodynamics: There exists a useful scalar quantity called temperature that is a
property of all thermodynamics systems. When 2 bodies (A and B) are in thermal equilibrium
(same temperature) with a third body (C), then all bodies (AC, BC, AB) are in equilibrium with
each other.
1st Law of thermodynamics: Energy is neither created or destroyed, energy can only change form.
ππ
ππ
There is exists a useful quantity called internal energy. ππ = ππ β ππ ππ β« ππ‘ = β« ππ‘ β β«
ππ
ππ‘
2nd Law of thermodynamics: Heat must flow from hot to cold. The second law deals with entropy
or the measure of the quality of energy in natural processes and states if a process can happen in
nature.
3rd Law of thermodynamics: it is impossible by any procedure, no matter how idealized, to reduce
any system to absolute zero temperature in finite number of operations.
List as many as you know:
i.
System variables
Pressure, Volume, Temperature, Mass/Moles and Internal Energy
ii.
Equations of state
βπ = βπ β βπ
ππ£ = ππ
π
ππ£ π = ππππ π‘πππ‘
π
) (π£ β π) = π
π
π£2
πππ
π=
π
π
(π +
iii.
Thermodynamic processes
A process that involves heat transfer, work or a change in internal energy of a system.
1. Sketch the following processes on a pV diagram, Isobaric, isovolumetric, isothermal and
adiabatic
Pressure
A
Process A to B: Isothermal
Process A to C: Adiabatic
Process A to D: Isovolumetric
B
D
Process B to D: Isobaric
C
Volume
2. A gas expands from an initial state where p1 = 400 kPa and V1 = 0.2 m3 to a final state where p2 =
200 kPa. The relationship between pressure and volume during the process is pV = constant.
Sketch the process on a p-V diagram and determine the work, in kJ.
Pressure
p1V1
p2V2
Volume
ππ = ππππ π‘πππ‘
π1 π1 = π2 π2
π1 π1
π2 =
π2
400 πππ × 0.2 π3
= π3
200 πππ
π½π
400 × 0.2 π3
= π. π ππ
200
π πΆπππ π‘πππ‘
π
1
π = β« π ππ = β«π 2
= ππππ π‘πππ‘ ln
= π1 π1 ln
π2
π1
ππ
π2
π1
πΎ = 400(0.02) ln
0.4
= ππ. π π±πππππ
0.2
3. One thousand kg of natural gas at volume of 10 m3 and 255 K is stored in a tank. If the pressure,
p, specific volume, v and temperature, T, of the gas are related by the following expression
π = [(5.18 π₯ 10β3 ) {
πππ π3
}
ππ πΎ
π
]β
π3
(π£ β 0.002668
)
ππ
(8.91 π₯ 10β3 ) πππ π9
{
}
π£2
ππ2
where v is in m3/kg, T is in K, and p is in bar, determine the pressure of the tank.
π = [(5.18 π₯ 10
β3 )
πππ π3
{
}
ππ πΎ
π = [(5.18 π₯ 10β3 )
π = [(5.18 π₯ 10β3 )
π
π
π£=
10 π3
π3
= 0.01
1000 ππ
ππ
(8.91 π₯ 10β3 ) πππ π9
]β
2 { ππ2 }
π3
π3
π3
(0.01
β 0.002668
)
(0.01
)
ππ
ππ
ππ
255 πΎ
(8.91 π₯ 10β3 ) πππ π9
255
πππ
]{
}β
2 { ππ2 }
(0.01 β 0.002668 )
π3
(0.01
)
ππ
(8.91 π₯ 10β3 ) πππ π9
255
πππ
]{
}β
{
}
π9
(0.01 β 0.002668 )
ππ2
(0.0001
)
ππ2
π = [(5.18 π₯ 10β3 )
(8.91 π₯ 10β3 ) πππ
255
πππ
]{
}β
{
}
(0.01 β 0.002668 )
(0.0001 )
π= [
π= [
π£=
(89.1 ) πππ
1.32
πππ
]{
}β
{
}
(0.007332 )
180.0
]{
πππ
}β
(89.1 ) πππ
{
} = ππ. π ππ·π
4. One mole of a monatomic gas goes in a cycle ABCA as in figure 3. Let (P0, V0, T0) be the
parameters at A and 2T0 the temperature at B. Solve algebraically:
i.
The values of TC and PB
ii.
The work done in each part: AB, BC and CA
iii.
The heat input in each part: AB, BC and CA
Given:
State
A
B
C
Pressure
P0
P0
Volume
V0
V0
2V0
Temperature
T0
2T0
Find: PB
ππ = ππ
π
Ideal Gas Law allows us to write
π0 π0 = ππ΅ ππ΅ (1)
Also, at A
π0 π0 = ππ
π0 (2)
From the table above at B
ππ΅ π0 = ππ
(2π0 ) (3)
Thus, (2) ÷ (3) yields
π0 π0
ππ
π0
=
ππ΅ π0 ππ
(2π0 )
Canceling
π0 1
= ππ π·π© = ππ·π
ππ΅ 2
Given
State
A
B
C
Pressure
P0
ππ·π
P0
Volume
V0
V0
2V0
Temperature
T0
2T0
Find: TC
ππ = ππ
π
Ideal Gas Law allows us to write
π0 π0 = ππΆ ππΆ (1)
Also, at A
π0 π0 = ππ
π0 (2)
From the table above at C
π0 (2π0 ) = ππ
ππΆ (3)
Thus, (2) ÷ (3) yields
π0 π0
ππ
π0
=
π0 2π0 ππ
ππΆ
Canceling
1 π0
=
ππ π»πͺ = ππ»π
2 ππΆ
State
A
B
C
Pressure
P0
ππ·π
P0
Volume
V0
V0
2V0
Temperature
T0
2T0
ππ»π
ππ·π
ππ»π
ππ»π
Find the work done and heat input in each process
Process A -> B
βπ = βπ β βπ
ππ΅
π = β« π ππ = β« π ππ
ππ΄
Inputting values
π½π
πΎ = β« π π
π½ = π
π½π
βπ =
3ππ
(ππ΅ β ππ΄ )
3(1)π
(2π0 β π0 )
=
2
2
3π
π0
βπ =
2
Plugging into Energy equation
3π
π0
= βπ β 0
2
or
βπΈ =
ππΉπ»π
π
State
A
B
C
Pressure
P0
ππ·π
P0
Volume
V0
V0
2V0
Temperature
T0
2T0
ππ»π
ππ·π
ππ»π
ππ»π
Process B -> C
βπ = βπ β βπ
ππΆ
π = β« π ππ = β« π ππ
ππ΅
Because pV = constant
ππΆ
π= β«
ππ΅
πΆπππ π‘πππ‘
ππ
π
= ππππ π‘πππ‘ ln
ππΆ
ππ΅
Because ππ΅ ππ΅ = ππππ π‘πππ‘
ππΆ
= ππ΅ ππ΅ ln
ππ΅
Putting in values for pB, VB and VC
2π0
= 2π0 π0 ln
π0
πΎ = πππ π½π π₯π§ π
βπ =
3ππ
(ππΆ β ππ΅ )
3(1)π
(2π0 β 2π0 )
=
2
2
βπΌ = π
Plugging into Energy equation
0 = βπ β 2π0 π0 ln 2
or
βπΈ = πππ π½π π₯π§ π
State
A
B
C
Pressure
P0
ππ·π
P0
Volume
V0
V0
2V0
Temperature
T0
2T0
ππ»π
ππ·π
ππ»π
ππ»π
Process C -> A
βπ = βπ β βπ
π = β« π ππ
Because pressure is constant C -> A
ππ΄
π = π β« ππ = β«
ππ
ππΆ
= π(ππ΄ β ππΆ )
= π0 (π0 β 2π0 )
πΎ = βππ π½π
βπ =
3ππ
(ππ΄ β ππΆ )
3(1)π
(π0 β 2π0 )
=
2
2
3π
π0
βπ = β
2
Plugging into Energy equation
β
3π
π0
= βπ β (β)π0 π0
2
or
βπΈ = β
ππΉπ»π
β ππ π½π
π
