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Theoretical competition. Tuesday, 15 July 2014
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Problem 2. Van der Waals equation of state
Solution
Part Π. Non-ideal gas equation of state
A1. If π = π is substituted into the equation of state, then the gas pressure turns infinite. It is obvious that
this is the moment when all the molecules are tightly packed. Therefore, the parameter π is approximately
equal to the volume of all molecules, i.e.
π = ππ΄ π3
(A1.1)
A2. In the most general case the van der Waals equation of state can be rewritten as
ππ π3 − (π
ππ + πππ )π2 + ππ − ππ = 0
(A2.1).
Since at the critical values of the gas parameters the straight line disappears, then, the solution of
(A2.1) must have one real triple root, i.e. it can be rewritten as follows
ππ (π − ππ )3 = 0
(A2.2).
Comparing the coefficients of expression (A2.1) and (A2.2), the following set of equations is
obtained
3ππ ππ = π
ππ + πππ
3ππ π3π = π
(A2.3).
{
3
ππ ππ = ππ
Solution to the set (A2.3) is the following formulas for the van der Waals coefficients
27π
2 ππ2
π=
(A2.4),
64ππ
π
ππ
π = 8π
(A2.5).
π
Alternative solution
The critical parameters are achieved in the presence of an inflection point in the isotherm, at which
the first and second derivatives are both zero. Therefore, they are defined by the following conditions
ππ
( ) =0
(A2.6),
ππ
π
and
π2 π
(
) =0
(A2.7).
ππ2 π
Thus, the following set of equations is obtained
π
π
2π
− (π −ππ )2 + 3 = 0
π
2π
ππ
(ππ −π)3
−
ππ
6π
π4π
=0
(A2.8),
π
(π + ) (ππ − π) = π
ππ
{ π π2π
which has the same solution (A2.4) and (A2.5).
A3. Numerical calculations for water produce the following result
ππ€ = 0.56
m6 βPa
(A3.1).
mole2
m3
3.1 β 10−5 mole
ππ€ =
A4. From equations (A1.4) and (A3.2) it is found that
(A3.2).
π
ππ€ = √π = 3.7 β 10−10 m ≈ 4 β 10−10 m
3
π΄
(A4.1).
Part B. Properties of gas and liquid
B1. Using the inequality ππΊ β« π, the van der Waals equation of state can be written as
(π0 +
π
π2πΊ
) ππΊ = π
π
(B1.1),
which has the following solutions
π
π
4ππ0
0
π
2 π2
ππΊ = 2π (1 ± √1 −
)
(B1.2).
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Smaller root in (B1.2) gives the volume in an unstable state on the rising branch of the van der Waals
isotherm. The volume of gas is given by the larger root, since at π = 0 an expression for the volume of an
ideal gas should be obtained, i.e.
π
π
4ππ0
0
π
2 π2
ππΊ = 2π (1 + √1 −
)
For given values of the parameters the value
ππ0
(π
π)2
(B1.3).
ππ0
(π
π)2
= 5.8 β 10−3 . It can therefore be assumed that
βͺ 1, then (B1.3) takes the form
ππΊ ≈
ππ
π
π
(1 − 2 02 )
π0
π
π
=
π
π
π
− π
π
π0
(B1.4).
B2. For an ideal gas
π
π
π0
ππΊ0 =
(B2.1),
hence,
βπ
( π πΊ) =
πΊ0
ππΊ0 −ππΊ
ππΊ0
1
= 2 ( 1 − √1 −
4ππ0
2 2)
π
π
≈
ππ0
π
2 π2
= 0.58%.
B3. Mechanical stability of a thermodynamic system is in power provided that
ππ
( ) < 0.
ππ
π
(B2.2)
(B3.1)
The minimum volume, in which the matter can still exist in the gaseous state, corresponds to a point
in which
ππ
ππΊπππ → (ππ) = 0
(B3.2).
π
Using the van der Waals equation of state (B3.2) is written as
ππ
π
π
2π
( ) =−
2+ 3 = 0
ππ
(π−π)
π
π
From (B3.2) and (B3.3), and with the help of ππΊπππ β« π, it is found that
2π
ππΊπππ = π
π
Thus,
ππΊ
ππΊπππ
2
=
π
2 π 2
2ππ0
= 86
(B3.3).
(B3.4).
(B3.5).
B4. Using the inequality π βͺ π/π , the van der Waals equation of state is written as
π
2 (ππΏ − π) = π
π,
ππΏ
(B4.1)
whose solution is
π
ππΏ = 2π
π (1 ± √1 −
4ππ
π
)
π
(B4.2).
In this case, the smaller root should be taken, since at π → 0 the liquid volume ππΏ = π must be
obtained according to (B4.1), i.e.
π
ππΏ = 2π
π (1 − √1 −
4ππ
π
)
π
≈ π (1 +
ππ
π
).
π
(B4.3).
B5. Since (B4.3) gives the volume of the one mole of water its mass density is easily found as
π
π
π
2 kg
ππΏ = π =
(B5.1).
ππ
π ≈ π = 5.8 β 10 m3
πΏ
π(1+ π )
B6. In accordance with (B4.3) the volume thermal expansion coefficient is derived as
1 βπ
ππ
ππ
πΌ = π βππΏ = π+ππ
π ≈ π = 4.6 β 10−4 Π−1
πΏ
(B6.1).
B7. The heat, required to convert the liquid to gas, is used to overcome the intermolecular forces that create
negative pressure π/π 2 , therefore,
π π
1
1
πΈ = πΏπ ≈ ∫π πΊ π 2 ππ = π (π − π )
(B7.1),
πΏ
and using ππΊ β« ππΏ , (B7.1) yields
π
πΏ = ππ =
πΏ
πΏ
π
ππ
π
ππ(1+
)
π
π
πΊ
J
≈ ππ = 1.0 β 106 kg
(B7.2).
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B8. Consider some water of volume π. To make a monolayer of thickness π out of it, the following work
must be done
π΄ = 2ππ
(B8.1).
Fabrication of the monomolecular layer may be interpreted as the evaporation of an equivalent
volume of water which requires the following amount of heat
π = πΏπ
(B8.2),
where the mass is given by
π = πππ
(B8.3).
Using (A4.1a), (B5.1) and (B7.2), one finally gets
π
N
π = 2π2 ππ€ = 0.12 β 10−2 m
(B8.4).
Part Π‘. Liquid-gas systems
C1. It follows from the Maxwell rule that
π
∫π πΊ π(π)ππ = π0 (ππΊ − ππΏ )
πΏ
Evaluation of the integral leads to the following equation for determining π0
π
π
π
∫π πΊ (π−π −
πΏ
π
π −π
π2
1
1
) ππ = π
π ln ( ππΊ−π) + π (π − π ) = π0 (ππΊ − ππΏ )
πΏ
πΊ
πΏ
(C1.1).
(C1.2).
Using the inequalities π, ππΏ βͺ ππΊ and formulas (B2.1) and (B4.3), this equation is simplified to
π
π π
π
π
π ln (
) − = π
π
(C1.3).
π π2 π
π
π
0
(C1.3) is simply rearranged as
ln π0 = ln
π
π2
π
− ππ
π − 1
(C1.4).
Consequently, expressions for π΄ and π΅ are obtained as follows
π
π΄ = ln (π2 ) − 1
(C1.5),
π
π΅ = − ππ
C2. Collecting formulas (C1.4), (C1.5) and (C1.6), the vapor pressure is found as
π
π0 = 2
= 6.2 β 105 Pa
π
π exp(ππ
π+1)
(C1.6).
(C2.1).
C3. At equilibrium, the pressure in the liquid and gas should be equal at all depths. The pressure π in the
fluid at the depth β is related to the pressure of saturated vapor above the flat surface by
π = π0 + ππΏ πβ
(C3.1).
The surface tension creates additional pressure defined by the Laplace formula as
2π
βππΏ = π
(C3.2).
The same pressure π in the fluid at the depth β depends on the vapor pressure πβ over the curved
liquid surface and its radius of curvature as
2π
π = πβ + π
(C3.3).
Furthermore, the vapor pressure at different heights are related by
πβ = π0 + ππ πβ
(C3.4).
Solving (C3.1)-( C3.4), it is found that
2π
β = (π −π )ππ
(C3.5).
πΏ
π
Hence, the pressure difference sought is obtained as
2π ππ
2π π
βππ = πβ − π0 = ππ πβ = π π −π
≈ π ππ .
πΏ
π
πΏ
(C3.6).
Note that the vapor pressure over the convex surface of the liquid is larger than the pressure above
the flat surface.
C4. Let ππ be vapor pressure at a temperature ππ, and ππ − βππ be vapor pressure at a temperature ππ −
βππ. In accordance with B4, when the ambient temperature falls by an amount of βππ the saturated vapor
pressure changes by an amount
π
βππ = ππ ππ
π 2 βππ
(C4.1).
π
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In accordance with the Thomson formula obtained in part C3, the pressure of saturated vapor above
the droplet increases by the amount of βππ . While a droplet is small in size, the vapor above its surface
remains unsaturated. When a droplet has grown up to a certain minimum size, the vapor above its surface
turns saturated.
Since the pressure remains unchanged, the following condition must hold
ππ − βππ + βππ = ππ
(C4.2).
Assuming the vapor is almost ideal gas, its density can be found as
ππ
ππ = π
ππ βͺ ππΏ
(C4.3).
π
From equations (C4.1)-( C4.3), (B5.1) and (C3.6) one finds
2π πππ
πβπ
= ππ 2π
π π
π
ππ
ππ
π
(C4.4).
Thus, it is finally obtained that
π=
2ππ 2 ππ
πβππ
= 1.5 β 10−8 m
(C4.5).
