JOURNAL ARTICLE

Hydrodynamic Energy Harvesting Using an Ionic Polymer-Metal Composite Stack for Underwater Applications

Arvind KrishnaswamyD. Roy Mahapatra

Year: 2010 Journal:   Volume 5: Energy Systems Analysis, Thermodynamics and Sustainability; NanoEngineering for Energy; Engineering to Address Climate Change, Parts A and B Pages: 1435-1439

Abstract

Ionic Polymer Metal Composites (IPMCs) are a class of Electro-Active Polymers (EAPs) consisting of a base polymer (usually Nafion), sandwiched between thin films of electrodes and an electrolyte. Apart from fuel cell like proton exchange process in Nafion, these IPMCs can act both as an actuator and a sensor. Typically, IPMCs have been known for their applications in fuel cell technology and in artificial muscles for robots. However, more recently, sensing properties of IPMC have opened up possibilities of mechanical energy harvesting. In this paper, we consider a bi-layer stack of IPMC membranes where fluid flow induced cyclic oscillation allows collection of electronic charge across a pair of functionalized electrode on the surface of IPMC layers/stacks. IPMCs work well in hydrated environment; more specifically, in presence of an electrolyte, and therefore, have great potential in underwater applications like hydrodynamic energy harvesting. Hydrodynamic forces produce bending deformation, which can induce transport of cations via polymer chains of the base polymer of Nafion or PTFE. In our experimental set-up, the deformation is induced into the array of IPMC membranes immersed in electrolyte by water waves caused by a plunger connected to a stepper motor. The frequency and amplitude of the water waves is controlled by the stepper motor through a micro-controller. The generated electric power is measured across a resistive load. Few orders of magnitude increase in the harvested power density is observed. Analytical modeling approach used for power and efficiency calculations are discussed. The observed electro-mechanical performance promises a host of underwater energy harvesting applications.

Keywords:
Materials science Nafion Polymer Electroactive polymers Electrolyte Composite material Proton exchange membrane fuel cell Electrode Nanotechnology Membrane Chemistry

Metrics

2
Cited By
0.00
FWCI (Field Weighted Citation Impact)
0
Refs
0.09
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Sensor and Energy Harvesting Materials
Physical Sciences →  Engineering →  Biomedical Engineering
Dielectric materials and actuators
Physical Sciences →  Engineering →  Biomedical Engineering
Modular Robots and Swarm Intelligence
Physical Sciences →  Engineering →  Mechanical Engineering

Related Documents

JOURNAL ARTICLE

Energy harvesting from underwater torsional vibrations of a patterned ionic polymer metal composite

Youngsu ChaLinfeng ShenMaurizio Porfiri

Journal:   Smart Materials and Structures Year: 2013 Vol: 22 (5)Pages: 055027-055027
JOURNAL ARTICLE

Underwater energy harvesting from vibrations of annular ionic polymer metal composites

Youngsu ChaShervin AbdolhamidiMaurizio Porfiri

Journal:   Proceedings of SPIE, the International Society for Optical Engineering/Proceedings of SPIE Year: 2015 Vol: 9431 Pages: 94310B-94310B
JOURNAL ARTICLE

Underwater energy harvesting from a turbine hosting ionic polymer metal composites

Filippo CelliniJason PoundsSean D. PetersonMaurizio Porfiri

Journal:   Smart Materials and Structures Year: 2014 Vol: 23 (8)Pages: 085023-085023
JOURNAL ARTICLE

Laboratory Research on Energy Harvesting of Ionic Polymer Metal Composite

Janusz KwaśniewskiIreneusz DominikFilip Kaszuba

Journal:   Diffusion and defect data, solid state data. Part B, Solid state phenomena/Solid state phenomena Year: 2013 Vol: 208 Pages: 134-139
© 2026 ScienceGate Book Chapters — All rights reserved.