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Title: An innovative method to build a comprehensive kinetic model for air injection using TGA/DSC experiments

Journal Article · · Fuel
ORCiD logo [1];  [2]
  1. Texas Tech University, Lubbock, TX (United States)
  2. Texas Tech University, Lubbock, TX (United States); Southwest Petroleum University, Chengdu (China)

In order to study the AIP (air injection process), a practical method was developed to obtain the kinetic data for an AIP by matching the simulation model results with the TGA (thermogravimetry analysis) experiments in our previous work. However, one shortcoming for that method is the non-uniqueness of the kinetic data obtained. The other shortcoming is that TGA cannot measure the exothermic characteristics of a crude oil. The enthalpy values of the reactions are crucial for developing a comprehensive kinetic model as the enthalpy represents the heat generation of the chemical reaction and dominants the heat effect during the AIP. Here in this study, an innovative method is proposed to build a comprehensive kinetic model by combining both TGA/DSC (differential scanning calorimetry) experiments and simulation. In the low temperature interval, the distillation dominant stage is differentiated from the LTO (low temperature oxidation) stage by comparing the nitrogen purging TGA experiments and the air purging TGA experiments. Then, the LTO stage is further divided into several sub-divided reaction stages with corresponding temperature intervals by analyzing the TGA/DSC data. The kinetic data are estimated by applying the Arrhenius method to sub-divided reaction stages of the TGA experiments. In order to obtain the enthalpy values for oxidation reactions, the negative heat flow of the distillation process is eliminated by subtracting the nitrogen purging DSC data from the air purging DSC data, and the enthalpy values of corresponding reaction stages are obtained from the subtracted heat flow curve whose area of the exothermic peak represents the enthalpy value of a stage. Moreover, the pseudo components are defined based on the nitrogen purging TGA experiments which are associated with the sub-divided reaction stages defined previously to complete the kinetic model. Finally, the kinetic model is validated with the air purging TGA experiments. This study shows a detailed workflow to build a comprehensive kinetic model for AIP by TGA/DSC experiments. An application to a crude oil is also presented to demonstrate its practicability.

Research Organization:
Texas Tech Univ., Lubbock, TX (United States)
Sponsoring Organization:
USDOE Office of Fossil Energy (FE)
Grant/Contract Number:
FE0024311
OSTI ID:
1538284
Alternate ID(s):
OSTI ID: 1549863
Journal Information:
Fuel, Vol. 210, Issue C; ISSN 0016-2361
Publisher:
ElsevierCopyright Statement
Country of Publication:
United States
Language:
English
Citation Metrics:
Cited by: 31 works
Citation information provided by
Web of Science

References (19)

A new reaction model for low temperature oxidation of heavy oil: Experiments and numerical modeling journal January 2014
Air Injection-Improved Determination of the Reaction Scheme With Ramped Temperature Experiment and Numerical Simulation journal January 2006
Thermal characterization, combustion and kinetics of different origin crude oils journal May 2014
Thermal Study on Light Crude Oil for Application of High-Pressure Air Injection (HPAI) Process by TG/DTG and DTA Tests journal February 2012
Recovery Factors in High-Pressure Air Injection Projects Revisited journal December 2008
A practical method to obtain kinetic data from TGA (thermogravimetric analysis) experiments to build an air injection model for enhanced oil recovery journal October 2017
Air Injection for Enhanced Oil Recovery: In Situ Monitoring the Low-Temperature Oxidation of Oil through Thermogravimetry/Differential Scanning Calorimetry and Pressure Differential Scanning Calorimetry journal June 2015
Exothermicity and oxidation behavior of tight oil with cuttings from the Wolfcamp shale reservoir journal November 2016
Characterizing the Fuel Deposition Process of Crude Oil Oxidation in Air Injection journal October 2015
Case History and Appraisal of the Medicine Pole Hills Unit Air Injection Project journal August 1995
Buffalo Field High-Pressure Air Injection Projects 1977 to 2007: Technical Performance and Operational Challenges journal July 2009
Thermal characteristics and kinetics of crude oils and SARA fractions journal October 2013
Research on oxidation kinetics of tight oil from Wolfcamp field journal May 2016
The ABCs of In-Situ-Combustion Simulations: From Laboratory Experiments to Field Scale journal June 2012
Discussion of thermal experiments’ capability to screen the feasibility of air injection journal May 2017
Chemical Aspects of In-Situ Combustion - Heat of Combustion and Kinetics journal October 1972
Chemical-Reaction Mechanisms That Govern Oxidation Rates During In-Situ Combustion and High-Pressure Air Injection journal March 2016
Effect of shale core on combustion reactions of tight oil from Wolfcamp reservoir journal July 2016
Sensitivity Studies on the Oxidation Behavior of Crude Oil in Porous Media journal October 2012

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