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Aspen Physical Property System - Physical Property Models

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Parameter Name/Element Symbol Default<br />

CIGTC/1 a 1i 178.11<br />

CIGTC/2 a 2i 620.31<br />

CIGTC/3 a 3i 80.93<br />

CIGTC/4 a 4i 44.95<br />

CIGTC/5 a 5i -5153.0<br />

Revised IGT Correlation (Perry's, 7th ed., equation 27-7):<br />

Parameter Name/Element Symbol Default<br />

CIGT2/1 a 1i 146.58<br />

CIGT2/2 a 2i 568.78<br />

CIGT2/3 a 3i 29.4<br />

CIGT2/4 a 4i -6.58<br />

CIGT2/5 a 5i -51.53<br />

User Input Value of Heat Combustion<br />

Parameter Name/Element Symbol Default<br />

HCOMB � ch i d 0<br />

Standard Heat of Formation Correlations<br />

There are two standard heat of formation correlations for the HCOALGEN<br />

model:<br />

� Heat of combustion-based<br />

� Direct<br />

Heat of Combustion-Based Correlation: This is based on the assumption that<br />

combustion results in complete oxidation of all elements except sulfatic sulfur<br />

and ash, which are considered inert. The numerical coefficients are<br />

combinations of stoichiometric coefficients and heat of formation for CO2,<br />

H2O, HCl, and NO2 at 298.15K:<br />

For example, the complete oxidation of hydrogen is based on the reaction<br />

, since the stable phase of water at 298.15 K is<br />

liquid, the heat of vaporization at 298.15 K is needed in the conversion. The<br />

numerical coefficient of is calculated by:<br />

302 4 Nonconventional Solid <strong>Property</strong> <strong>Models</strong>

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