A multiphysics model for triboelectric nanogenerator design with explicit surface roughness representation

Fuente: arXiv
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Main Authors: Sanglap, MD Tanzib Ehsan, Perris, Jack, Mukherjee, Rudra, Kumar, Charchit, Kaczmarczyk, Lukasz, Pearce, Chris J., Mulvihill, Daniel M., Shvarts, Andrei G.
Format: Preprint
Published: 2026
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author Sanglap, MD Tanzib Ehsan
Perris, Jack
Mukherjee, Rudra
Kumar, Charchit
Kaczmarczyk, Lukasz
Pearce, Chris J.
Mulvihill, Daniel M.
Shvarts, Andrei G.
author_facet Sanglap, MD Tanzib Ehsan
Perris, Jack
Mukherjee, Rudra
Kumar, Charchit
Kaczmarczyk, Lukasz
Pearce, Chris J.
Mulvihill, Daniel M.
Shvarts, Andrei G.
contents The design of triboelectric nanogenerators (TENGs) for efficient energy harvesting requires predictive models that capture the interplay between surface roughness, real contact area, and electrostatic behaviour across diverse tribolayer materials and roughness levels. To address this demand, this paper presents a multiphysics finite element framework that couples mechanical contact analysis with electrostatic simulations, considering exact surface roughness representations rather than idealised statistical approximations. Compared with optical interference microscopy measurements, the framework predicts the real contact area ratio more accurately than analytical models. The proposed approach captures the electrostatic behaviour by scaling the TENG surface charge density with the real contact area ratio between the rough tribolayers, computed for a given mechanical load. This method improves agreement with experiments for open-circuit voltage and capacitance relative to approximate analytical models. To represent the TENG circuit, a time-dependent ordinary differential equation is integrated, enabling evaluation of electrical responses under varying load conditions and elucidating the roles of surface roughness, mechanical load, contact-separation frequency, and resistive load. The framework provides a robust, scalable tool for performance optimisation across dielectric materials, mechanical behaviours, and operating conditions and is readily extendable to other surface-dependent energy-harvesting devices.
format Preprint
id arxiv_https___arxiv_org_abs_2604_01119
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle A multiphysics model for triboelectric nanogenerator design with explicit surface roughness representation
Sanglap, MD Tanzib Ehsan
Perris, Jack
Mukherjee, Rudra
Kumar, Charchit
Kaczmarczyk, Lukasz
Pearce, Chris J.
Mulvihill, Daniel M.
Shvarts, Andrei G.
Computational Physics
Materials Science
Computational Engineering, Finance, and Science
Applied Physics
The design of triboelectric nanogenerators (TENGs) for efficient energy harvesting requires predictive models that capture the interplay between surface roughness, real contact area, and electrostatic behaviour across diverse tribolayer materials and roughness levels. To address this demand, this paper presents a multiphysics finite element framework that couples mechanical contact analysis with electrostatic simulations, considering exact surface roughness representations rather than idealised statistical approximations. Compared with optical interference microscopy measurements, the framework predicts the real contact area ratio more accurately than analytical models. The proposed approach captures the electrostatic behaviour by scaling the TENG surface charge density with the real contact area ratio between the rough tribolayers, computed for a given mechanical load. This method improves agreement with experiments for open-circuit voltage and capacitance relative to approximate analytical models. To represent the TENG circuit, a time-dependent ordinary differential equation is integrated, enabling evaluation of electrical responses under varying load conditions and elucidating the roles of surface roughness, mechanical load, contact-separation frequency, and resistive load. The framework provides a robust, scalable tool for performance optimisation across dielectric materials, mechanical behaviours, and operating conditions and is readily extendable to other surface-dependent energy-harvesting devices.
title A multiphysics model for triboelectric nanogenerator design with explicit surface roughness representation
topic Computational Physics
Materials Science
Computational Engineering, Finance, and Science
Applied Physics
url https://arxiv.org/abs/2604.01119