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    Experimental and Numerical Investigation of Polymer Pore-Clogging in Micromodels

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    SSRN-id4181426 (2).pdf
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    3.134Mb
    Format:
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    Description:
    Preprint
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    Type
    Preprint
    Authors
    Sugar, Antonia cc
    Serag, Maged F. cc
    Buttner, Ulrich
    Fahs, Marwan
    Habuchi, Satoshi cc
    Hoteit, Hussein cc
    KAUST Department
    Ali I. Al-Naimi Petroleum Engineering Research Center (ANPERC)
    Biological and Environmental Science and Engineering (BESE) Division
    Bioscience Program
    Energy Resources and Petroleum Engineering Program
    Microfluidics
    Nanofabrication Core Lab
    Physical Science and Engineering (PSE) Division
    Single-Molecule Spectroscopy and Microscopy Research Group
    Date
    2022-08-04
    Permanent link to this record
    http://hdl.handle.net/10754/680255
    
    Metadata
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    Abstract
    Polymers have been used effectively in the Oil & Gas Industry for a variety of field applications, such as enhanced oil recovery (EOR), well conformance, mobility control, and others. Polymer intermolecular interactions with the porous rock, in particular, formation clogging and the associated alterations to permeability, is a common problem in the industry. In this work, fluorescent polymers and single-molecule imaging are presented for the first time to assess the dynamic interaction and transport behavior of polymer molecules utilizing a microfluidic device. Pore-scale simulations are performed to replicate the experimental observations. The microfluidic chip, also known as a "Reservoir-on-a-Chip" functions as a 2D surrogate to evaluate the flow processes that take place at the pore-scale. The pore-throat sizes of an oil-bearing reservoir rock, which range from 2 to 10 nm, are taken into consideration while designing the microfluidic chip. Using soft lithography, we created the micromodel from polydimethylsiloxane (PDMS). The conventional use of tracers to monitor polymers has a restriction due to the tendency of polymer and tracer molecules to segregate. For the first time, we develop a novel microscopy method to observe the dynamic behavior of polymer pore-clogging and unclogging processes. We provide direct dynamic observations of polymer molecules during their transport within the aqueous phase and their clustering and accumulations. Pore-scale simulations were carried out to simulate the phenomena using a finite-element simulation tool. The simulations revealed a decline in flow conductivity over time within the flow channels that experienced polymer accumulation and retention, which is consistent with the experimental observation of polymer retention. The performed single-phase flow simulations allowed us to assess the flow behavior of the tagged polymer molecules within the aqueous phase. Additionally, both experimental observation and numerical simulations are used to evaluate the retention mechanisms that emerge during flow and how they affect apparent permeability. This work provides new insights to assessing the mechanisms of polymer retention in porous media.
    Citation
    Hoteit, H., Sugar, A., Serag, M., Buttner, U., Fahs, M., & Habuchi, S. (2022). Experimental and Numerical Investigation of Polymer Pore-Clogging in Micromodels. SSRN Electronic Journal. https://doi.org/10.2139/ssrn.4181426
    Sponsors
    The authors would like to express gratitude to King Abdullah University of Science & Technology for funding and supporting this work.
    Publisher
    Elsevier BV
    DOI
    10.2139/ssrn.4181426
    Additional Links
    https://www.ssrn.com/abstract=4181426
    ae974a485f413a2113503eed53cd6c53
    10.2139/ssrn.4181426
    Scopus Count
    Collections
    Nanofabrication Core Lab; Energy Resources and Petroleum Engineering Program; Ali I. Al-Naimi Petroleum Engineering Research Center (ANPERC); Biological and Environmental Science and Engineering (BESE) Division; Preprints; Bioscience Program; Physical Science and Engineering (PSE) Division

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