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Aspen Physical Property System - Physical Property Models

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If TRNSWT/4 is This equation is used And this parameter is<br />

used<br />

0 Stiel-Thodos —<br />

102 DIPPR KVDIP<br />

301 PPDS KVPDS<br />

401 IK-CAPE KVPO<br />

503 NIST ThermoML<br />

polynomial<br />

Stiel-Thodos<br />

The Stiel-Thodos equation is:<br />

Where:<br />

3 Transport <strong>Property</strong> <strong>Models</strong> 277<br />

KVTMLPO<br />

�i *,v (p = 0) can be obtained from the General Pure Component Vapor<br />

Viscosity model.<br />

Cpi *,ig is obtained from the General Pure Component Ideal Gas Heat Capacity<br />

model.<br />

R is the universal gas constant.<br />

Parameter<br />

Name/Element<br />

Symbol Default MDS Lower<br />

Limit<br />

Upper<br />

Limit<br />

MW M i — — 1.0 5000.0 —<br />

DIPPR Vapor Thermal Conductivity<br />

The DIPPR equation for vapor thermal conductivity is:<br />

Linear extrapolation of �i *,v versus T occurs outside of bounds.<br />

Units<br />

(Other DIPPR equations may sometimes be used. See Pure Component<br />

Temperature-Dependent Properties for details.)<br />

The DIPPR equation is used in PCES when estimating vapor thermal<br />

conductivity.<br />

Parameter<br />

Name/Element<br />

Symbol Default MDS Lower<br />

Limit<br />

Upper<br />

Limit<br />

Units<br />

KVDIP/1 C 1i — x — — THERMAL<br />

CONDUCTIVITY<br />

KVDIP/2 C 2i 0 x — — —<br />

KVDIP/3, 4 C 3i, C 4i 0 x — — TEMPERATURE †<br />

KVDIP/5 — 0 x — — —<br />

KVDIP/6 C 6i 0 x — — TEMPERATURE<br />

KVDIP/7 C 7i 1000 x — — TEMPERATURE<br />

† If any of C2i through C4i are non-zero, absolute temperature units are<br />

assumed for C1i through C4i. Otherwise, all coefficients are interpreted in user

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