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ventilation: new example based on fig. 1 from Stewart 1975 (and including data from Kinzer & Gunn 1951) (#1556)
Co-authored-by: Sylwester Arabas <[email protected]>
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docs/bibliography.json

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"https://doi.org/10.1029/JC080i009p01133": {
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"usages": [
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"PySDM/physics/isotope_diffusivity_ratios/stewart_1975.py",
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"PySDM/physics/isotope_kinetic_fractionation_factors/jouzel_and_merlivat_1984.py"
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"PySDM/physics/isotope_kinetic_fractionation_factors/jouzel_and_merlivat_1984.py",
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"examples/PySDM_examples/Stewart_1975/__init__.py",
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"examples/PySDM_examples/Stewart_1975/fig_1.ipynb"
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],
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"label": "Stewart 1975 (J. Geophys. Res. Oceans 80)",
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"title": "Stable isotope fractionation due to evaporation and isotopic exchange of falling waterdrops: Applications to atmospheric processes and evaporation of lakes"
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"examples/PySDM_examples/Gonfiantini_1986/fig_3_1.ipynb",
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"examples/PySDM_examples/Gonfiantini_1986/__init__.py"
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],
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"title": "Environmental isotopes in lake stadies",
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"title": "Environmental isotopes in lake studies",
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"label": "Gonfiantini 1986 (The Terrestrial Environment, B)"
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},
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"https://doi.org/10.1029/JC080i009p01133": {
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"usages": [
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"PySDM/physics/isotope_diffusivity_ratios/stewart_1975.py",
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"PySDM/physics/isotope_kinetic_fractionation_factors/jouzel_and_merlivat_1984.py",
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"examples/PySDM_examples/Stewart_1975/__init__.py",
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"examples/PySDM_examples/Stewart_1975/fig_1.ipynb"
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],
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"title": "Stable Isotope Fractionation Due to Evaporation and Isotopic Exchange of Falling Waterdrops: Applications to Atmospheric Processes and Evaporation of Lakes",
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"label": "Stewart 1975 (J. Geophys. Res.)"
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},
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"https://doi.org/10.1175/1520-0469(1951)008%3C0071:TETATR%3E2.0.CO;2": {
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"usages": [
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"examples/PySDM_examples/Kinzer_And_Gunn_1951/table_1_and_2.py",
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"examples/PySDM_examples/Kinzer_And_Gunn_1951/__init__.py"
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],
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"title": "The Evaporation, Temperature and Thermal Relaxation-Time of Freely Falling Waterdrops",
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"label": "Kinzer & Gunn 1951 (J. Meteor.)"
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},
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"https://doi.org/10.1029/2001JD000470": {
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"usages": [
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"PySDM/physics/constants_defaults.py"
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"""
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Table 1 and 2 from [Kinzer & Gunn 1951]
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(https://doi.org/10.1175/1520-0469(1951)008%3C0071:TETATR%3E2.0.CO;2)
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"""
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"""
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from [Kinzer & Gunn 1951](https://doi.org/10.1175/1520-0469(1951)008%3C0071:TETATR%3E2.0.CO;2)
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Table1 represents factor 4*pi*radius(1 + F*radius/s_prim) for several drop diameters
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and temperatures (0, 10, 20, 40 deg. Celsius).
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Table2 contains factor D(rho_a - rho_b) for the same temperatures as in Table1
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but for different relative humidities (from 10% to 100%).
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"""
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table1 = {
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"Diameter [cm]": (
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0.01,
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0.02,
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0.03,
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0.04,
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0.05,
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0.06,
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0.07,
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0.08,
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0.09,
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0.1,
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0.12,
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0.14,
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0.16,
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0.18,
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0.20,
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0.22,
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0.24,
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0.26,
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0.28,
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0.30,
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0.32,
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0.34,
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0.36,
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0.38,
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0.4,
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0.42,
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0.44,
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),
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"0 [deg C]": (
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0.086,
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0.29,
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0.49,
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0.73,
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1.01,
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1.31,
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1.66,
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2.03,
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2.5,
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2.9,
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3.9,
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4.9,
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6.0,
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7.3,
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8.8,
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10.5,
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12.4,
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14.7,
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17.2,
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20.1,
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23.0,
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27.0,
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31.0,
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35.0,
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0.0,
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0.0,
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0.0,
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),
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"10 [deg C]": (
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0.082,
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0.29,
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0.48,
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0.72,
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0.99,
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1.29,
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1.63,
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2.0,
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2.4,
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2.8,
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3.8,
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4.8,
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5.9,
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7.2,
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8.5,
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10.1,
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12.0,
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14.2,
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16.6,
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19.3,
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22.0,
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26.0,
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30.0,
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34.0,
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0.0,
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0.0,
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0.0,
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),
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"20 [deg C]": (
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0.079,
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0.29,
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0.48,
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0.71,
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0.97,
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1.27,
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1.61,
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1.97,
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2.4,
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2.8,
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3.7,
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4.7,
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5.8,
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7.0,
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8.3,
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9.9,
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11.7,
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13.8,
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16.0,
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18.5,
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21,
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25,
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28,
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32,
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36,
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0,
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0,
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),
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"30 [deg C]": (
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0.079,
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0.28,
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0.47,
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0.7,
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0.96,
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1.25,
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1.58,
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1.94,
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2.3,
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2.7,
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3.6,
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4.6,
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5.7,
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6.9,
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8.1,
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9.6,
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11.3,
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13.3,
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15.4,
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17.8,
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21,
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24,
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27,
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31,
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35,
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39,
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0,
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),
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"40 [deg C]": (
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0.073,
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0.28,
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0.47,
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0.69,
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0.94,
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1.24,
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1.55,
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1.91,
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2.3,
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2.7,
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3.6,
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4.5,
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5.6,
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6.8,
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8.0,
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9.4,
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11.0,
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12.8,
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14.9,
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17.2,
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20,
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23,
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26,
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29,
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33,
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37,
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0,
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),
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}
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table2 = {
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"relative humidity [percent]": (10, 20, 30, 40, 50, 60, 70, 80, 90, 100),
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"0 [deg C]": (0.61, 0.54, 0.48, 0.41, 0.34, 0.27, 0.2, 0.135, 0.067, 0),
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"20 [deg C]": (1.47, 1.29, 1.12, 0.95, 0.78, 0.63, 0.46, 0.31, 0.159, 0),
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"30 [deg C]": (2.06, 1.79, 1.55, 1.32, 1.09, 0.86, 0.64, 0.42, 0.21, 0),
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"40 [deg C]": (2.68, 2.36, 2.05, 1.75, 1.45, 1.15, 0.85, 0.56, 0.28, 0),
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}
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"""
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based on Stewart 1975 (J. Geophys. Res.)
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https://doi.org/10.1029/JC080i009p01133
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fig_1.ipynb:
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.. include:: ./fig_1.ipynb.badges.md
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"""

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