Multiphysics modeling of responsive deformation of dual magnetic-pH-sensitive hydrogel

A magneto-chemo-electro-mechanical model is developed for simulation of the swelling behavior of the dual magnetic-pH-sensitive hydrogel that is placed in an ionic solution. In this work, four physicochemical responsive mechanisms are characterized, such as the magnetization of the hydrogel, the dif...

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Main Authors: Liu, Qimin, Liu, Muyu, Li, Hua, Lam, Kwok-Yan
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2021
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Online Access:https://hdl.handle.net/10356/154535
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1545352021-12-28T00:20:29Z Multiphysics modeling of responsive deformation of dual magnetic-pH-sensitive hydrogel Liu, Qimin Liu, Muyu Li, Hua Lam, Kwok-Yan School of Mechanical and Aerospace Engineering Engineering::Mechanical engineering Multiphysics Model Dual Magnetic-pH-Sensitive Hydrogel A magneto-chemo-electro-mechanical model is developed for simulation of the swelling behavior of the dual magnetic-pH-sensitive hydrogel that is placed in an ionic solution. In this work, four physicochemical responsive mechanisms are characterized, such as the magnetization of the hydrogel, the diffusions of solvent and ions, the ionic polarization, and the nonlinear large deformation of the hydrogel. Moreover, multiple interactions are considered, including the interactions between (i) the fixed charges and the mobile ions, (ii) the polymeric networks and solvent, and (iii) the mobile ions. Furthermore, both the hydrogel and surrounding solution are covered in the computational domain, in which the Maxwell stress is included over the hydrogel-solution interface as an additional mechanical boundary. After the multiphysics model is validated via both theoretical and experimental findings in the open literature, the magnetic, electrochemical, and mechanical performances of the magnetic-pH-sensitive hydrogel are investigated in detail, and the result shows that the abrupt change in magnetic intensity occurs and the edge effect is more pronounced when approaching the hydrogel-solution interface. Furthermore, the smaller maximum magnetic field, the higher pH level, and the longer hydrogel-magnet distance contribute to the larger swelling deformation of the hydrogel. These findings may be employed to systematically design and optimize the dual magnetic-pH-sensitive hydrogel and its relevant devices. Nanyang Technological University This work was supported by Nanyang Technological University through the project [M4081151.050] and NTU Research Scholarships, and by Wuhan University of Technology through the Doctoral Startup Fund [315/40122081]. 2021-12-28T00:20:29Z 2021-12-28T00:20:29Z 2020 Journal Article Liu, Q., Liu, M., Li, H. & Lam, K. (2020). Multiphysics modeling of responsive deformation of dual magnetic-pH-sensitive hydrogel. International Journal of Solids and Structures, 190, 76-92. https://dx.doi.org/10.1016/j.ijsolstr.2019.11.002 0020-7683 https://hdl.handle.net/10356/154535 10.1016/j.ijsolstr.2019.11.002 2-s2.0-85075509715 190 76 92 en M4081151.050 International Journal of Solids and Structures © 2019 Elsevier Ltd. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mechanical engineering
Multiphysics Model
Dual Magnetic-pH-Sensitive Hydrogel
spellingShingle Engineering::Mechanical engineering
Multiphysics Model
Dual Magnetic-pH-Sensitive Hydrogel
Liu, Qimin
Liu, Muyu
Li, Hua
Lam, Kwok-Yan
Multiphysics modeling of responsive deformation of dual magnetic-pH-sensitive hydrogel
description A magneto-chemo-electro-mechanical model is developed for simulation of the swelling behavior of the dual magnetic-pH-sensitive hydrogel that is placed in an ionic solution. In this work, four physicochemical responsive mechanisms are characterized, such as the magnetization of the hydrogel, the diffusions of solvent and ions, the ionic polarization, and the nonlinear large deformation of the hydrogel. Moreover, multiple interactions are considered, including the interactions between (i) the fixed charges and the mobile ions, (ii) the polymeric networks and solvent, and (iii) the mobile ions. Furthermore, both the hydrogel and surrounding solution are covered in the computational domain, in which the Maxwell stress is included over the hydrogel-solution interface as an additional mechanical boundary. After the multiphysics model is validated via both theoretical and experimental findings in the open literature, the magnetic, electrochemical, and mechanical performances of the magnetic-pH-sensitive hydrogel are investigated in detail, and the result shows that the abrupt change in magnetic intensity occurs and the edge effect is more pronounced when approaching the hydrogel-solution interface. Furthermore, the smaller maximum magnetic field, the higher pH level, and the longer hydrogel-magnet distance contribute to the larger swelling deformation of the hydrogel. These findings may be employed to systematically design and optimize the dual magnetic-pH-sensitive hydrogel and its relevant devices.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Liu, Qimin
Liu, Muyu
Li, Hua
Lam, Kwok-Yan
format Article
author Liu, Qimin
Liu, Muyu
Li, Hua
Lam, Kwok-Yan
author_sort Liu, Qimin
title Multiphysics modeling of responsive deformation of dual magnetic-pH-sensitive hydrogel
title_short Multiphysics modeling of responsive deformation of dual magnetic-pH-sensitive hydrogel
title_full Multiphysics modeling of responsive deformation of dual magnetic-pH-sensitive hydrogel
title_fullStr Multiphysics modeling of responsive deformation of dual magnetic-pH-sensitive hydrogel
title_full_unstemmed Multiphysics modeling of responsive deformation of dual magnetic-pH-sensitive hydrogel
title_sort multiphysics modeling of responsive deformation of dual magnetic-ph-sensitive hydrogel
publishDate 2021
url https://hdl.handle.net/10356/154535
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