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Article

Determination of Solubilities of n-Alkanes (nC38, nC40, nC44, nC48 and nC50) in n-Heptane, n-Nonane and n-Dodecane Using the DSC Method

1
PetroChina Tarim Oilfield Company, Korla 841000, China
2
R&D Center for Ultra Deep Complex Reservoir Exploration and Development, CNPC, Korla 841000, China
3
Research Center for Ultra Deep Complex Reservoir Exploration and Development in Xinjiang Uyghur Autonomous Region, Korla 841000, China
4
Xinjiang Key Laboratory of Ultra Deep Oil and Gas, Korla 841000, China
5
National Key Laboratory of Oil and Gas Reservoir Geology and Exploration, Southwest Petroleum University, Chengdu 610500, China
*
Author to whom correspondence should be addressed.
Processes 2026, 14(8), 1207; https://doi.org/10.3390/pr14081207
Submission received: 4 March 2026 / Revised: 5 April 2026 / Accepted: 6 April 2026 / Published: 9 April 2026
(This article belongs to the Section Petroleum and Low-Carbon Energy Process Engineering)

Abstract

Wax deposition occurs to varying degrees in most oil and gas wells. The basic data of existing wax precipitation prediction models are mainly single-component wax experimental data based on the melting process of wax crystals during heating, which is quite different from the cooling crystallization process of wax in oil and gas production. Moreover, the published solubility test data of binary n-alkanes are mainly concentrated in the range of nC10–nC36, leaving existing thermodynamic models without available data for predicting the behavior of high-carbon alkanes. Based on the idea of wax crystallization and precipitation during cooling, this study experimentally determined the solid–liquid equilibrium solubilities of high-carbon n-alkanes (nC38, nC40, nC44, nC48 and nC50) with different concentrations in n-heptane, n-nonane and n-dodecane, as well as the crystallization parameters of pure substances, by using a DSC instrument. This effectively fills the gap in the basic physical property data of long-chain alkanes (more than nC36) and the cooling process in existing studies. In addition, we measured the crystallization parameters of pure high-carbon n-alkanes (nC38, nC40, nC44, nC48 and nC50) during cooling, including crystallization temperature, transition temperature, crystallization enthalpy and transition enthalpy under cooling conditions. The experimental data are in good agreement with the solubility predicted by the ideal solution model for the cooling process, with an average absolute percentage error of less than 10% and average solubility deviation generally within 0.078 mol%. This indicates that the ideal solution model has good accuracy for predicting the precipitation of n-alkane wax and n-alkane solvents. This study provides basic data for the prediction theory of paraffin precipitation.
Keywords: differential scanning calorimetry; solid–liquid equilibrium; precipitation temperature; melting enthalpy; crystallization enthalpy differential scanning calorimetry; solid–liquid equilibrium; precipitation temperature; melting enthalpy; crystallization enthalpy

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MDPI and ACS Style

Zhou, J.; Pan, Z.; Zhang, Y.; Wu, H.; Wu, G.; Liu, J. Determination of Solubilities of n-Alkanes (nC38, nC40, nC44, nC48 and nC50) in n-Heptane, n-Nonane and n-Dodecane Using the DSC Method. Processes 2026, 14, 1207. https://doi.org/10.3390/pr14081207

AMA Style

Zhou J, Pan Z, Zhang Y, Wu H, Wu G, Liu J. Determination of Solubilities of n-Alkanes (nC38, nC40, nC44, nC48 and nC50) in n-Heptane, n-Nonane and n-Dodecane Using the DSC Method. Processes. 2026; 14(8):1207. https://doi.org/10.3390/pr14081207

Chicago/Turabian Style

Zhou, Jianping, Zhaocai Pan, Yu Zhang, Hongjun Wu, Guang Wu, and Jianyi Liu. 2026. "Determination of Solubilities of n-Alkanes (nC38, nC40, nC44, nC48 and nC50) in n-Heptane, n-Nonane and n-Dodecane Using the DSC Method" Processes 14, no. 8: 1207. https://doi.org/10.3390/pr14081207

APA Style

Zhou, J., Pan, Z., Zhang, Y., Wu, H., Wu, G., & Liu, J. (2026). Determination of Solubilities of n-Alkanes (nC38, nC40, nC44, nC48 and nC50) in n-Heptane, n-Nonane and n-Dodecane Using the DSC Method. Processes, 14(8), 1207. https://doi.org/10.3390/pr14081207

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