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Aspen Physical Property System - Physical Property Models

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You must provide parameters for the Sato-Riedel model. This model is used<br />

for the calculation of the thermal conductivity of solvent mixtures.<br />

Parameter<br />

Symbol Default Lower Upper Units<br />

Name/Element<br />

Limit Limit<br />

CHARGE z 0.0 — — —<br />

IONRDL a 0.0 — — †<br />

† THERMAL CONDUCTIVITY, MOLE-VOLUME<br />

The behavior of this model can be changed using option codes (these codes<br />

apply to the Vredeveld mixing rule).<br />

Option Option Description<br />

Code Value<br />

1 0 Do not check ratio of KL max / KL min<br />

3 Transport <strong>Property</strong> <strong>Models</strong> 273<br />

1 Check ratio. If KL max / KL min > 2, set exponent to 1,<br />

overriding option code 2.<br />

2 0 Exponent is -2<br />

1 Exponent is 0.4<br />

2 Exponent is 1. This uses a weighted average of liquid thermal<br />

conductivities.<br />

General Pure Component Liquid Thermal<br />

Conductivity<br />

The <strong>Aspen</strong> <strong>Physical</strong> <strong>Property</strong> <strong>System</strong> has several submodels for calculating<br />

pure component liquid thermal conductivity. It uses parameter TRNSWT/3 to<br />

determine which submodel is used. See Pure Component Temperature-<br />

Dependent Properties for details.<br />

If TRNSWT/3 is This equation is used And this parameter is used<br />

0 Sato-Riedel —<br />

100 DIPPR KLDIP<br />

301 PPDS KLPDS<br />

401 IK-CAPE KLPO<br />

503 NIST ThermoML<br />

polynomial<br />

KLTMLPO<br />

510 NIST PPDS8 equation KLPPDS8<br />

Sato-Riedel<br />

The Sato-Riedel equation is (Reid et al., 1987):<br />

Where:<br />

Tbri = Tbi / Tci<br />

Tri = T / Tci

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