Comparative Assessment of Property Correlations for LiNO3/NH3 Solution in Absorption Chiller Modeling

Accurate thermodynamic property correlations are crucial for the modeling and performance analysis of absorption refrigeration systems. For the ammonia/lithium nitrate (LiNO3/NH3) working pair (a promising fluid for sustainable cooling) several correlations have been proposed in the literature. This study presents a comparative assessment of existing correlations for LiNO3/NH3 across five key thermodynamic properties (vapor-liquid equilibrium, density, dynamic viscosity, specific heat capacity and enthalpy) and, for enthalpy specifically, by quantifying through a dedicated case study and sensitivity analysis how the resulting discrepancies propagate to the performance predictions of a single-effect absorption cycle. For equilibrium pressure, significant discrepancies are identified at low ammonia mass fractions (x ≈ 0.3), where predictions can vary by 20–50%. Density and specific heat capacity correlations show good agreement with experimental data (<6% deviation), whereas a significant divergence (>90% in some cases) is found for dynamic viscosity, raising concerns about the reliability of available models. The impact of selecting different solution enthalpy correlations on cycle performance was evaluated through a case study, revealing excellent agreement between all these correlations, with overall robust Coefficient of Performance (COP) and main heat exchanger duties (deviations < 2%). Furthermore, sensitivity analysis shows that the thermal power in the absorber and desorber is driven primarily by the refrigerant’s enthalpy flow (79–97%), with the solution’s enthalpy flow playing a significantly smaller role. This work underscores the importance of carefully selecting property correlations and provides practical guidance to improve the accuracy and reliability of simulations for LiNO3/NH3 absorption systems. To prevent implementation errors, we recommend that future correlation studies include brief validation tables with sample calculations to verify unit consistency and sign conventions.

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Journal
Applied Sciences
Published
2026-09-16
DOI
https://doi.org/10.3390/app16189200
Primary Topic
Thermodynamic and Exergetic Analyses of Power and Cooling Systems
Type
article
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article

Comparative Assessment of Property Correlations for LiNO3/NH3 Solution in Absorption Chiller Modeling

Nolwenn Le Pierrès, Kokouvi Edem N’Tsoukpoe, Mame Sokhna Thiane Seck
Applied Sciences
Thermodynamic and Exergetic Analyses of Power and Cooling Systems
article

Comparative Assessment of Property Correlations for LiNO3/NH3 Solution in Absorption Chiller Modeling

Nolwenn Le Pierrès, Kokouvi Edem N’Tsoukpoe, Mame Sokhna Thiane Seck
article en

Abstract

Accurate thermodynamic property correlations are crucial for the modeling and performance analysis of absorption refrigeration systems. For the ammonia/lithium nitrate (LiNO3/NH3) working pair (a promising fluid for sustainable cooling) several correlations have been proposed in the literature. This study presents a comparative assessment of existing correlations for LiNO3/NH3 across five key thermodynamic properties (vapor-liquid equilibrium, density, dynamic viscosity, specific heat capacity and enthalpy) and, for enthalpy specifically, by quantifying through a dedicated case study and sensitivity analysis how the resulting discrepancies propagate to the performance predictions of a single-effect absorption cycle. For equilibrium pressure, significant discrepancies are identified at low ammonia mass fractions (x ≈ 0.3), where predictions can vary by 20–50%. Density and specific heat capacity correlations show good agreement with experimental data (<6% deviation), whereas a significant divergence (>90% in some cases) is found for dynamic viscosity, raising concerns about the reliability of available models. The impact of selecting different solution enthalpy correlations on cycle performance was evaluated through a case study, revealing excellent agreement between all these correlations, with overall robust Coefficient of Performance (COP) and main heat exchanger duties (deviations < 2%). Furthermore, sensitivity analysis shows that the thermal power in the absorber and desorber is driven primarily by the refrigerant’s enthalpy flow (79–97%), with the solution’s enthalpy flow playing a significantly smaller role. This work underscores the importance of carefully selecting property correlations and provides practical guidance to improve the accuracy and reliability of simulations for LiNO3/NH3 absorption systems. To prevent implementation errors, we recommend that future correlation studies include brief validation tables with sample calculations to verify unit consistency and sign conventions.

Applied SciencesVol. 16(18)
Centre National de la Recherche Scientifique (FR), International Institute for Water and Environmental Engineering (BF), Université Savoie Mont Blanc (FR)
Responsible consumption and production
Openalex Percentile: Top 20%
Thermodynamic and Exergetic Analyses of Power and Cooling Systems
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