Труды сотрудников ИВМ СО РАН

w10=
Найдено документов в текущей БД: 7

    Theoretical study of electrolyte transport in nanofiltration membranes with constant surface potential/charge density
/ I. I. Ryzhkov, A. V. Minakov // J. Membr. Sci. - 2016. - Vol. 520. - P515-628, DOI 10.1016/j.memsci.2016.08.004 . - ISSN 0376-7388
Аннотация: The pressure–driven electrolyte transport through nanofiltration membrane pores with constant surface potential or charge density is investigated theoretically. Two approaches are employed in the study. The first one is based on one–dimensional Nernst–Planck equation coupled with electroneutrality, zero current, and Donnan equilibrium conditions. This model is extended to account for interfacial effects by using a smooth approximation of step function for the volume charge density. The second approach is based on two–dimensional Nernst–Planck, Poisson, and Navier–Stokes equations, which are solved in a high aspect ratio nanopore connecting two reservoirs with much larger diameter. The modification of equations on the basis of Slotboom transformation is employed to speed up the convergence rate. The distributions of potential, pressure, ion concentrations and fluxes due to convection, diffusion, and migration in the nanopore and reservoirs are discussed and analyzed. It is found that for constant surface charge density, the convective flux of counter–ions in the nanopore is almost completely balanced by the opposite migration flux, while for constant surface potential, the convective flux is balanced by the opposite diffusion and migration fluxes. The co–ions in the nanopore are mainly transported by diffusion. A particular attention is focused on describing the interfacial effects at the nanopore entrance/exit. Detailed comparison between one– and two–dimensional models is performed in terms of rejection, pressure drop, and membrane potential dependence on the surface potential/charge density, volume flux, ion concentration, and pore radius. A good agreement between these models is found when the Debye length is smaller than the pore radius and the surface potential or charge density are sufficiently low. © 2016 Elsevier B.V.

Scopus,
Смотреть статью,
WOS

Держатели документа:
Institute of Computational Modelling SB RAS, Akademgorodok, Krasnoyarsk, Russian Federation
Siberian Federal University, Svobodny 79, Krasnoyarsk, Russian Federation

Доп.точки доступа:
Minakov, A. V.; Рыжков, Илья Игоревич
621.791.75
С115

    Сварка объемных конструкций из алюминиевых деформируемых сплавов электродами, содержащими нанопорошки
[Текст] : статья / Н. А. Тестоедов [и др.] // Решетневские чтения. - 2016. - Т. 1, № 20. - С. 159-161 . - ISSN 1990-7702
   Перевод заглавия: WELDING OF THREE-DIMENSIONAL DESIGNS OF WROUGHT ALUMINUM ALLOYS WITH ELECTRODES CONTAINING NANOPOWDERS
УДК

Аннотация: Сварка объемной конструкции из листов алюминиевого деформируемого сплава АМг6 электродами, содержащими нанопорощки (НП) химических соединений, приводит к измельчению структуры сварного шва, в результате чего повышаются его механические свойства. При этом прочность металла в области сварного шва при сварке электродами, содержащими НП BN, составляет 333 МПа, LaB<sub>6</sub> - 338 МПа и TiCN - 345 МПа, что соответственно выше на 4,1; 5,6 и 7,8 %, чем имеют образцы из сплава АМг6 (320 МПа), сваренные по стандартной технологии электродом из этого же сплава.
Welding three-dimensional structures from sheets of aluminum alloys AMg6 with electrodes containing nanopores (NP) chemical compounds leads to the refinement of the structure of the weld, resulting in higher mechanical properties. The strength of the metal in the region of the weld when welding with electrodes containing NP BN, is 333 MPa, LaB6 - 338 MPa, and a TiCN - 345 MPa, respectively, higher by 4,1; 5,6; and 7,8% have samples of alloy AMg6 (320 MPa) welded by standard techniques electrode of the same alloy.

РИНЦ

Держатели документа:
АО «Информационные спутниковые системы» имени академика М. Ф. Решетнёва», Сибирский государственный аэрокосмический университет имени академика М. Ф. Решетнева
Сибирский государственный аэрокосмический университет им. акад. М.Ф. Решетнева
Федеральный исследовательский центр "Красноярский научный центр Сибирского отделения Российской академии наук

Доп.точки доступа:
Тестоедов, Н.А.; Testoedov N.A.; Крушенко, Генрих Гаврилович; Krushenko G.G.; Двирный, В.В.; Dvirniy V.V.; Двирный, Г.В.; Dvirniy G.V.

    The study of ion transport mechanisms in selective nanopores
[Text] : abstract / I. I. Ryzhkov, A. V. Minakov, D. V. Lebedev // Book of Abstract PERMEA & MELPRO Conference : book of abstracts. - Prague, 2016. - P62



Доп.точки доступа:
Minakov, A.V.; Минаков, Андрей Викторович; Lebedev, D.V.; Рыжков, Илья Игоревич

    Induced-Charge Enhancement of the Diffusion Potential in Membranes with Polarizable Nanopores
/ I. I. Ryzhkov [et al.] // Phys. Rev. Lett. - 2017. - Vol. 119, Is. 22. - Ст. 226001, DOI 10.1103/PhysRevLett.119.226001. - Cited References:31. - This work is supported by the Russian Science Foundation, Project No. 15-19-10017. . - ISSN 0031-9007. - ISSN 1079-7114
РУБ Physics, Multidisciplinary

Аннотация: When a charged membrane separates two salt solutions of different concentrations, a potential difference appears due to interfacial Donnan equilibrium and the diffusion junction. Here, we report a new mechanism for the generation of a membrane potential in polarizable conductive membranes via an induced surface charge. It results from an electric field generated by the diffusion of ions with different mobilities. For uncharged membranes, this effect strongly enhances the diffusion potential and makes it highly sensitive to the ion mobilities ratio, electrolyte concentration, and pore size. Theoretical predictions on the basis of the space charge model extended to polarizable nanopores fully agree with experimental measurements in KCl and NaCl aqueous solutions.

WOS,
Смотреть статью,
Scopus

Держатели документа:
Inst Computat Modelling SB RAS, Fed Res Ctr KSC SB RAS, Akademgorodok 50, Krasnoyarsk 660036, Russia.
Siberian Fed Univ, Svobodny 79, Krasnoyarsk 660041, Russia.

Доп.точки доступа:
Ryzhkov, I. I.; Lebedev, D. V.; Solodovnichenko, V. S.; Shiverskiy, A. V.; Simunin, M. M.; Russian Science Foundation [15-19-10017]

    On the origin of membrane potential in membranes with polarizable nanopores
/ I. I. Ryzhkov [et al.] // J. Membr. Sci. - 2018. - Vol. 549. - P616-630, DOI 10.1016/j.memsci.2017.11.073. - Cited References:69. - This work is supported the Russian Science Foundation, Project 15-19-10017. The physicochemical analysis of materials was carried out on the equipment of Krasnoyarsk Scientific Center of Shared Facilities SB RAS. . - ISSN 0376-7388. - ISSN 1873-3123
РУБ Engineering, Chemical + Polymer Science

Аннотация: We report a new mechanism for the generation of membrane potential in polarizable nanoporous membranes separating electrolytes with different concentrations. The electric field generated by diffusion of ions with different mobilities induces a non-uniform surface charge, which results in charge separation inside the nanopore. The corresponding Donnan potentials appear at the pore entrance and exit leading to a dramatic enhancement of membrane potential in comparison with an uncharged non-polarizable membrane. At high concentration contrast, the interaction between electric field and uncompensated charge at a low concentration side results in the development of electrokinetic vortices. The theoretical predictions are based on the Space-Charge model, which is extended to nanopores with polarizable conductive surface for the first time. This model is validated against full Navier-Stokes, Nernst-Planck, and Poisson equations, which are solved in a high aspect ratio nanopore connecting two reservoirs. The experimental measurements of membrane potential of dielectric and conductive membranes in KCl and NaCl aqueous solutions confirm the theoretical results. The membranes are prepared from Nafen nanofibers with similar to 10 nm in diameter and modified by depositing a conductive carbon layer. It is shown theoretically that the membrane potential enhancement becomes greater with decreasing the electrolyte concentration and pore radius. A high sensitivity of membrane potential to the ratio of ion diffusion coefficients is demonstrated. The described phenomenon may find applications in precise determination of ion mobilities, electrochemical and bio-sensing, as well as design of nanofluidic and bioelectronic devices.

WOS,
Смотреть статью,
Scopus

Держатели документа:
Fed Res Ctr KSC SB RAS, Inst Computat Modelling SB RAS, Akademgorodok 50-44, Krasnoyarsk 660036, Russia.
Siberian Fed Univ, Svobodny 79, Krasnoyarsk 660041, Russia.

Доп.точки доступа:
Ryzhkov, Ilya I.; Lebedev, Denis V.; Solodovnichenko, Vera S.; Minakov, Andrey V.; Simunin, Mikhail M.; Russian Science Foundation [15-19-10017]
532.711 + 66.081.6
T44

    Theoretical Study of Electrolyte Diffusion throughPolarizable Nanopores
[Text] : статья / Ilya I. Ryzhkov, Anton S. Vyatkin, Andrey V. Minakov // Журнал Сибирского федерального университета. Серия: Математика и физика. - 2018. - Т. 11, № 4. - P494-504, DOI 10.17516/1997-1397-2018-11-4-494-504 . - ISSN 1997-1397
   Перевод заглавия: Теоретическое исследование диффузии электролитов через поляризуемые нанопоры
УДК

Аннотация: The diffusion of binary aqueous electrolytes through nanopores with dielectric as well as conductive surface is investigated theoretically on the basis of Space-Charge model. The latter is extended to the case of polarizable nanopore wall. It is shown that the diffusion of ions with different mobilities generates the electric field, which induces non-uniform surface charge in a polarizable nanopore. It results in charge separation inside the pore and leads to a dramatic enhancement of membrane potential in comparison witha non-polarizable nanopore. Thecalculations areperformed for three aqueous electrolytesbased on KCl, NaCl, and LiOH. The influence of electrolyte type and concentration difference applied across the pore on the ion transport and membranepotential is discussed and analyzed.
Проведено теоретическое исследование диффузии бинарных электролитов через нанопоры с диэлектрической,а также проводящей поверхностью на основе модели пространственного заряда. Данная модель обобщена наслучай поляризумой стенки порыспостоянным потенциалом. Показано, что диффузия ионовсразличными подвижностями приводитк возникновениюэлектрического поля, которое индуцирует неравномерное распределение заряда на поверхности проводящей поры. Это вызывает разделение заряда внутри поры и приводит к значительному увеличению мембранного потенциала по сравнению сослучаемдиэлектрической поры. Проведенырасчеты для трех типов водных электролитов на основе KCl, NaCl и LiOH. Исследовано влияние типа электролитаитрансмембраннойразности концентрацийна перенос ионовимембранный потенциал.

РИНЦ

Держатели документа:
Institute of Computational Modelling SB RAS
Institute of Engineering Physics and Radio Electronics Siberian Federal University
Siberian Federal University

Доп.точки доступа:
Ryzhkov, Ilya I.; Рыжков, Илья Игоревич; Vyatkin, Anton S.; Вяткин Антон С.; Minakov, Andrey V.; Минаков Андрей В.

    Experimental study of membrane potential in membranes with conductive polarizable nanopores
[Text] : доклад, тезисы доклада / Anton Vyatkin [et al.] // Ion Transport in Organic and Inorganic Membranes : Conference Proceedings. - Краснодар : BestPrint, 2018. - P319-320 . - ISBN 978-5-9906777-8-4


РИНЦ,
Источник статьи

Держатели документа:
Institute of Computational Modeling, Federal Research Center KSC SB RAS, Krasnoyarsk, Russia?
Siberian Federal University, Krasnoyarsk, Russia,

Доп.точки доступа:
Vyatkin, Anton; Kucheryavyj, Valerij; Simunin, Mikhail; Ryzhkov, Ilya; International Conference "Ion Transport in Organic and Inorganic Membranes"(2018 ; 21.05 - 26.05 ; Krasnodar)
Нет сведений об экземплярах (Источник в БД не найден)