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Dive into the research topics where Hamid R. Lashgari is active.

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Featured researches published by Hamid R. Lashgari.


Spe Journal | 2016

Development and Application of Electrical-Joule-Heating Simulator for Heavy-Oil Reservoirs

Hamid R. Lashgari; Mojdeh Delshad; Kamy Sepehrnoori; Eric de Rouffignac

In the electrical-Joule-heating process, the reservoirs are heated in situ by dissipation of electrical energy to reduce the viscosity of oil. In principle, electrical current passes through the reservoir fluids mostly because of the electrical conductivity of saturated fluids such as saline water. The flow of electrical current through the reservoir raises the heat in the reservoir and thereby dramatically reduces the oil viscosity. In this process, electrical current can flow between electricalpotential sources (electrodes) in wells, and then electrical energy is dissipated to generate the heat. Therefore, the regions around the electrodes in (or around) the wells are extremely heated. Because the wells act as line sources for the electrical potential, greater heating takes place near the wellbore, causing possible vaporization of water in that region. Because steam has very-low electrical conductivity, it can reduce the efficiency of this process significantly. In this process electrical conductivity plays a very important role. To increase efficiency of this type of heating process, the presence of optimum saline-water saturation is an essential factor. To model the electrical Joule heating in the presence of multiphase-fluid flow, we use three Maxwell classical electromagnetism equations. These equations are simplified and assumed for low frequency to obtain the conservation of the electrical-current equation and Ohm’s law. The conservation of electrical current and Ohm’s law are implemented by use of a finite-difference method in a four-phase chemical-flooding reservoir simulator (UTCHEM 2011.7). The Joule-heating rate caused by dissipation of electrical energy is calculated and added to the energy equation as a source term. The formulation and implementation of electrical heating are validated against a reference analytical solution and verified with a reservoir simulator. A typical-reservoir model is built, and constant electrical potential with alternating current is applied to the model to study the efficiency of the electrical-heating process properly. The efficiency of this process is evaluated in the presence of water-saturated fractures and evaporation effect. Results illustrate that water saturation in the presence of fractures and electrical conductivity of saturated rock have an important effect on the Joule-heating process. The importance of the fractures saturated by saline water and operation of such processes below the boiling point are key findings in this paper to obtain high recovery in comparison with other conventional-thermal-recovery methods.


Fuel | 2015

CO2 injection for enhanced oil recovery in Bakken tight oil reservoirs

Wei Yu; Hamid R. Lashgari; Kan Wu; Kamy Sepehrnoori


Fuel | 2016

A novel method to model and characterize in-situ bio-surfactant production in microbial enhanced oil recovery

Pooneh Hosseininoosheri; Hamid R. Lashgari; Kamy Sepehrnoori


Geothermics | 2014

Double diffusive natural convection of CO2 in a brine saturated geothermal reservoir: Study of non-modal growth of perturbations and heterogeneity effects

Akand W. Islam; Hamid R. Lashgari; Kamy Sephernoori


SPE Low Perm Symposium | 2016

Capillary Pressure Effect on Hydrocarbon Phase Behavior in Unconventional Reservoirs

Yuan Zhang; Hamid R. Lashgari; Yuan Di; Kamy Sepehrnoori


SPE Annual Technical Conference and Exhibition | 2015

Modeling of Low-Tension Surfactant-Gas Flooding Process in a Four-Phase Flow Simulator

Hamid R. Lashgari; Kamy Sepehrnoori; Mojdeh Delshad


annual simulation symposium | 2015

Development of a four-phase chemical-gas model in an IMPEC reservoir simulator

Hamid R. Lashgari; Kamy Sepehrnoori; Mojdeh Delshad; Eric DeRouffignac


Spe Journal | 2017

A Semianalytical Approach To Model Two-Phase Flowback of Shale-Gas Wells With Complex-Fracture-Network Geometries

Ruiyue Yang; Zhongwei Huang; Gensheng Li; Wei Yu; Kamy Sepehrnoori; Hamid R. Lashgari; Shouceng Tian; Xianzhi Song; Mao Sheng


Spe Journal | 2016

A Four-Phase Chemical/Gas Model in an Implicit-Pressure/Explicit-Concentration Reservoir Simulator

Hamid R. Lashgari; Kamy Sepehrnoori; Mojdeh Delshad


SPE/AAPG/SEG Unconventional Resources Technology Conference | 2016

A Semianalytical Method for Modeling Two-phase Flow in Coalbed Methane Reservoirs with Complex Fracture Networks

Ruiyue Yang; Zhongwei Huang; Gensheng Li; Wei Yu; Hamid R. Lashgari; Kamy Sepehrnoori; Zhonghou Shen

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Kamy Sepehrnoori

University of Texas at Austin

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Mojdeh Delshad

University of Texas at Austin

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Gary A. Pope

University of Texas at Austin

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Ruiyue Yang

China University of Petroleum

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Zhongwei Huang

China University of Petroleum

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Haishan Luo

University of Texas at Austin

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Gensheng Li

China University of Petroleum

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