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Add interactions for nitroethane
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2 changed files with 48 additions and 1 deletions
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@ -1,4 +1,4 @@
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name = "UNIFAC"
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uuid = "49c32154-e3b1-44a0-88e7-ff6c176fd7d7"
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authors = ["Thomas A. Christensen II <25492070+MillironX@users.noreply.github.com>"]
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version = "0.1.1"
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version = "0.1.2"
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@ -6,6 +6,30 @@ module UNIFAC
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export unifac
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"""
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unifac(ν, x, T)
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Calculates the activity coefficients of the chemical species described by the
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UNIFAC groups in `ν`, at the liquid mole fractions `x` and temperature `T` in
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Kelvins.
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`ν` is constructed as a 56 x n `Array{Int}`, such that `ν[i,j]` is the number
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of times subgroup `i` appears in molecule `j`.
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# Example
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```julia-repl
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julia> ν = zeros(56, 2);
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julia> ν[1, 1] = 2;
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julia> ν[2, 1] = 1;
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julia> ν[33, 1] = 1;
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julia> ν[1, 2] = 2;
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julia> ν[2, 2] = 5;
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julia> unifac(ν, [0.4 0.6], 308.15)
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1×2 Array{Float64,2}:
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1.133 1.047
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```
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"""
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function unifac(ν, x, T)
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# unifac takes three arguments:
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# ν (that's the Greek lowercase nu) is a 56 x n Integer array where n is the
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@ -14,6 +38,12 @@ function unifac(ν, x, T)
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# x is a 1 x n Float64 array that contains the liquid species mole fractions
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# T is the temperature of the system in Kelvins
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# Most subgroup parameters and interactions are taken from Smith, Van Ness, &
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# Abbott, _Introduction to Chemical Engineering Thermodynamics_, 7th Ed. pp.
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# 791-7. Some subgroup parameters are taken from Dr. Aston's given table, and
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# some of the interactions for those species are taken from
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# http://www.aim.env.uea.ac.uk/aim/info/UNIFACgroups.html
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# Declare the UNIFAC subgroup parameters
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R = Array{Float64}(undef, 56, 1)
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R[1] = 0.9011
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@ -69,6 +99,7 @@ function unifac(ν, x, T)
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a[1:4, 25:27] .= 251.50
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a[1:4, 32:34] .= 255.70
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a[1:4, 41:42] .= 597.00
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a[1:4, 56] .= 661.50
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a[10, 1:4] .= -11.12
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a[10, 12:13] .= 167.00
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@ -78,6 +109,7 @@ function unifac(ν, x, T)
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a[10, 25:27] .= 32.14
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a[10, 32:34] .= 122.80
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a[10, 41:42] .= 212.50
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a[10, 56] = 168.00
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a[12:13, 1:4] .= -69.70
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a[12:13, 10] .= -146.80
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@ -87,6 +119,7 @@ function unifac(ν, x, T)
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a[12:13, 25:27] .= 213.10
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a[12:13, 32:34] .= -49.29
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a[12:13, 41:42] .= 6096.00
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a[12:13, 56] .= 3629.0
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a[15, 1:4] .= 156.40
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a[15, 10] = 89.60
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@ -96,6 +129,7 @@ function unifac(ν, x, T)
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a[15, 25:27] .= 28.06
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a[15, 32:34] .= 42.70
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a[15, 41:42] .= 6.712
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a[15, 56] = 256.5
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a[17, 1:4] .= 300.00
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a[17, 10] = 362.30
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@ -105,6 +139,7 @@ function unifac(ν, x, T)
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a[17, 25:27] .= 540.50
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a[17, 32:34] .= 168.00
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a[17, 41:42] .= 112.60
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a[17, 56] = 220.60
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a[19:20, 1:4] .= 26.79
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a[19:20, 10] .= 140.10
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@ -114,6 +149,7 @@ function unifac(ν, x, T)
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a[19:20, 25:27] .= -103.60
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a[19:20, 32:34] .= -174.20
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a[19:20, 41:42] .= 481.70
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a[19:20, 56] .= 137.50
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a[25:27, 1:4] .= 83.36
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a[25:27, 10] .= 52.13
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@ -123,6 +159,7 @@ function unifac(ν, x, T)
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a[25:27, 19:20] .= 191.10
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a[25:27, 32:34] .= 251.50
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a[25:27, 41:42] .= -18.51
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a[25:27, 56] .= 95.108
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a[32:34, 1:4] .= 65.33
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a[32:34, 10] .= -22.31
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@ -141,6 +178,16 @@ function unifac(ν, x, T)
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a[41:42, 19:20] .= -287.50
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a[41:42, 25:27] .= 38.81
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a[41:42, 32:34] .= -108.50
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a[41:41, 56] .= -0.5150
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a[56, 1:4] .= -32.690
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a[56, 10] .= 10.380
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a[56, 12:13] .= -97.050
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a[56, 15] .= 261.60
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a[56, 17] .= 417.90
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a[56, 19:20] .= -142.60
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a[56, 25:27] .= -94.490
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a[56, 41:42] .= 0.28270
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# Calculate r
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r = zeros(1, size(ν, 2))
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