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Design Optimization of Energized Composite Using Simulation and Experimental MethodsAs electric vehicles (EVs) are evolving, innovative technologies like “energized composite” that can store energy in the car's body helps extend its range per charge. The composite's unique ability to function as both structural body panel and charge storage medium stems from its unique pattern design between “electrochemical areas (EcA)” and “epoxy area (EpA)”. Herein, a design optimization study is presented to obtain a balanced ratio between EcA versus EpA to maximize the charge storage ability of the composite while maintaining a decent tensile and bending strength. Simulations using ANSYS software and experimental confirmation using universal testing machines and electrochemical analyzers are used to derive optimum ratios between EcA and EpA. Uniaxial tension test and 3-point bend test have been performed to optimize the tensile and bend strengths, whereas cyclic voltammetry, galvanic charge–discharge, and electrochemical impedance spectroscopy are used to determine the electrochemical performance of various design configurations by modulating the ratios of EcA versus EpA. Overall, the highest achieved energy storage per lamina is 2531 mWh m−2 for a maximum of 81.6% EcA with a tensile strength of 417.73 MPa and bending strength of 263.13 MPa. This study is highly beneficial for EVs and aerospace applications.
Document ID
20220015568
Acquisition Source
Kennedy Space Center
Document Type
Accepted Manuscript (Version with final changes)
Authors
Deepak Pandey
(University of Central Florida Orlando, Florida, United States)
Rajkumar Gurjar
(University of Central Florida Orlando, Florida, United States)
Kowsik Sambath Kumar ORCID
(University of Central Florida Orlando, Florida, United States)
Leaford Nathan Henderson ORCID
(University of Central Florida Orlando, Florida, United States)
Maydenee Maydur Tresa
(University of Central Florida Orlando, Florida, United States)
Luke Roberson ORCID
(Kennedy Space Center Merritt Island, Florida, United States)
AbdulJabbar Mohammed Hussain
(Nissan (United States) Farmington Hills, Michigan, United States)
Nilesh Dale ORCID
(Nissan (United States) Farmington Hills, Michigan, United States)
Jayan Thomas ORCID
(University of Central Florida Orlando, Florida, United States)
Date Acquired
October 17, 2022
Publication Date
October 18, 2022
Publication Information
Publication: Energy Technology
Publisher: Wiley-VCH Verlag /Wiley
Volume: 10
Issue: 12
Issue Publication Date: December 1, 2022
ISSN: 2194-4288
e-ISSN: 2194-4296
Subject Category
Energy Production And Conversion
Composite Materials
Funding Number(s)
WBS: 281500.04.02.06.01
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
energy storage
carbon fiber
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