ACS Publications. Most Trusted. Most Cited. Most Read
My Activity
CONTENT TYPES

Figure 1Loading Img

Viscosity of Aqueous CO2 Solutions Measured by Dynamic Light Scattering

View Author Information
Gas Hydrate Research Group, Institute for Energy Utilization, AIST, 2-17-2-1 Tsukisamu-higashi, Toyohira-ku, Sapporo 062-8517, Japan
Cite this: J. Chem. Eng. Data 2003, 48, 5, 1225–1229
Publication Date (Web):June 21, 2003
https://doi.org/10.1021/je034041x
Copyright © 2003 American Chemical Society

    Article Views

    450

    Altmetric

    -

    Citations

    LEARN ABOUT THESE METRICS
    Read OnlinePDF (67 KB)

    Abstract

    The viscosity of water containing dissolved CO2 at pressures up to 5 MPa was measured by a new method based on dynamic light scattering. The accuracy of this method was checked by measuring the temperature dependence of the viscosity of pure water at pressures up to 5 MPa and comparing the results to values in the literature that were determined by other methods. The discrepancy of the measured viscosity of water from the literature was ±6%, which roughly equals the composite uncertainty of this method. The effect of dissolved CO2 on the viscosity was determined as functions of time, temperature, and pressure. The results indicated that the viscosity of the solution increased with increasing CO2 concentration. High viscosities were observed under conditions in which CO2 hydrates can form.

    *

     Corresponding author. Tel:  +81-11-857-8965. Fax:  +81-11-857-8989. E-mail:  [email protected].

    Cited By

    This article is cited by 19 publications.

    1. Ali Aminian, Bahman ZareNezhad. Predicting the Shear Viscosity of Carbonated Aqueous Amine Solutions and Their Blends by Using an Artificial Neural Network Model. Energy & Fuels 2020, 34 (12) , 16389-16400. https://doi.org/10.1021/acs.energyfuels.0c03081
    2. Mark McBride-Wright, Geoffrey C. Maitland, and J. P. Martin Trusler . Viscosity and Density of Aqueous Solutions of Carbon Dioxide at Temperatures from (274 to 449) K and at Pressures up to 100 MPa. Journal of Chemical & Engineering Data 2015, 60 (1) , 171-180. https://doi.org/10.1021/je5009125
    3. Shuqiang Gao,, Walter G. Chapman, and, Waylon House. NMR and Viscosity Investigation of Clathrate Hydrate Formation and Dissociation. Industrial & Engineering Chemistry Research 2005, 44 (19) , 7373-7379. https://doi.org/10.1021/ie050464b
    4. Meku Maruyama, Shun Nagayama, Takuma Misawa, Satoshi Takeya, Ryo Ohmura. Thermodynamic stability and characterization of double clathrate hydrate with carbon dioxide + cyclopentane + deuterium oxide. The Journal of Chemical Thermodynamics 2023, 179 , 106998. https://doi.org/10.1016/j.jct.2022.106998
    5. Zahra Sakhaei, Mohammad Salehpour, Masoud Riazi. Carbonated water injection. 2023, 259-294. https://doi.org/10.1016/B978-0-12-822302-4.00009-0
    6. T. Uchida, T. Kubota, R. Tanabe, K. Yamazaki, K. Gohara. Behavior of Stimulus Response Signals in a Rat Cortical Neuronal Network Under Xe Pressure. Neuroscience 2022, 496 , 38-51. https://doi.org/10.1016/j.neuroscience.2022.05.027
    7. Rui Sun, Zhigang Niu, Shaocong Lai. Modeling dynamic viscosities of multi-component aqueous electrolyte solutions containing Li+, Na+, K+, Mg2+, Ca2+, Cl−, SO42− and dissolved CO2 under conditions of CO2 sequestration. Applied Geochemistry 2022, 142 , 105347. https://doi.org/10.1016/j.apgeochem.2022.105347
    8. Yuji Kurotani, Hajime Tanaka. A novel physical mechanism of liquid flow slippage on a solid surface. Science Advances 2020, 6 (13) https://doi.org/10.1126/sciadv.aaz0504
    9. Cleverson Esene, Nima Rezaei, Amer Aborig, Sohrab Zendehboudi. Comprehensive review of carbonated water injection for enhanced oil recovery. Fuel 2019, 237 , 1086-1107. https://doi.org/10.1016/j.fuel.2018.08.106
    10. Svend Tollak Munkejord, Morten Hammer, Sigurd W. Løvseth. CO2 transport: Data and models – A review. Applied Energy 2016, 169 , 499-523. https://doi.org/10.1016/j.apenergy.2016.01.100
    11. Mohammad Ali Ahmadi, Mahdi zeinali Hasanvand, Sara Shokrollahzadeh Behbahani, Alireza Nourmohammad, Akram Vahidi, Mojtaba Amiri, Goodarz Ahmadi. Effect of operational parameters on the performance of carbonated water injection: Experimental and numerical modeling study. The Journal of Supercritical Fluids 2016, 107 , 542-548. https://doi.org/10.1016/j.supflu.2015.07.012
    12. S. C. Ayirala, A. A. Yousef. Injection Water Chemistry Requirement Guidelines for IOR/EOR. 2014https://doi.org/10.2118/169048-MS
    13. Mahdi zeinali Hasanvand, Mohammad Ali Ahmadi, Seyed Reza Shadizadeh, Reza Behbahani, Farzaneh Feyzi. Geological storage of carbon dioxide by injection of carbonated water in an Iranian oil reservoir: A case study. Journal of Petroleum Science and Engineering 2013, 111 , 170-177. https://doi.org/10.1016/j.petrol.2013.09.008
    14. Rin Yun. Thermophysical Properties of CO 2 and CO 2 -Hydrate Mixture and In-Tube Heat Transfer Characteristics. Korean Journal of Air-Conditioning and Refrigeration Engineering 2013, 25 (5) , 233-239. https://doi.org/10.6110/KJACR.2013.25.5.233
    15. T. Uchida, S. Suzuki, Y. Hirano, D. Ito, M. Nagayama, K. Gohara. Xenon-induced inhibition of synchronized bursts in a rat cortical neuronal network. Neuroscience 2012, 214 , 149-158. https://doi.org/10.1016/j.neuroscience.2012.03.063
    16. Hailong Li, Øivind Wilhelmsen, Yuexia Lv, Weilong Wang, Jinyue Yan. Viscosities, thermal conductivities and diffusion coefficients of CO2 mixtures: Review of experimental data and theoretical models. International Journal of Greenhouse Gas Control 2011, 5 (5) , 1119-1139. https://doi.org/10.1016/j.ijggc.2011.07.009
    17. J. HU, O. SARI, P. HOMSY. INVESTIGATION OF THERMO-PHYSICAL AND FLOW PROPERTIES OF CO 2 HYDRATE SLURRY. International Journal of Air-Conditioning and Refrigeration 2011, 19 (03) , 213-229. https://doi.org/10.1142/S2010132511000582
    18. Tsutomu Uchida, Masafumi Nagayama, Kazutoshi Gohara. Trehalose solution viscosity at low temperatures measured by dynamic light scattering method: Trehalose depresses molecular transportation for ice crystal growth. Journal of Crystal Growth 2009, 311 (23-24) , 4747-4752. https://doi.org/10.1016/j.jcrysgro.2009.09.023
    19. Geoffrey R. Akien, Martyn Poliakoff. A critical look at reactions in class I and II gas-expanded liquids using CO2 and other gases. Green Chemistry 2009, 11 (8) , 1083. https://doi.org/10.1039/b904097h

    Pair your accounts.

    Export articles to Mendeley

    Get article recommendations from ACS based on references in your Mendeley library.

    Pair your accounts.

    Export articles to Mendeley

    Get article recommendations from ACS based on references in your Mendeley library.

    You’ve supercharged your research process with ACS and Mendeley!

    STEP 1:
    Click to create an ACS ID

    Please note: If you switch to a different device, you may be asked to login again with only your ACS ID.

    Please note: If you switch to a different device, you may be asked to login again with only your ACS ID.

    Please note: If you switch to a different device, you may be asked to login again with only your ACS ID.

    MENDELEY PAIRING EXPIRED
    Your Mendeley pairing has expired. Please reconnect