

Author: Adam Till Julian Liao Guangyue Petersen Jan Geier Sebastian Finke Benedikt Wierach Peter Kwade Arno Wiedemann Martin
Publisher: MDPI
E-ISSN: 1996-1073|11|2|335-335
ISSN: 1996-1073
Source: Energies, Vol.11, Iss.2, 2018-02, pp. : 335-335
Disclaimer: Any content in publications that violate the sovereignty, the constitution or regulations of the PRC is not accepted or approved by CNPIEC.
Abstract
Multifunctionalization of fiber-reinforced composites, especially by adding energy storage capabilities, is a promising approach to realize lightweight structural energy storages for future transport vehicles. Compared to conventional energy storage systems, energy density can be increased by reducing parasitic masses of non-energy-storing components and by benefitting from the composite meso- and microarchitectures. In this paper, the most relevant existing approaches towards multifunctional energy storages are reviewed and subdivided into five groups by distinguishing their degree of integration and their scale of multifunctionalization. By introducing a modified range equation for battery-powered electric aircrafts, possible range extensions enabled by multifunctionalization are estimated. Furthermore, general and aerospace specific potentials of multifunctional energy storages are discussed. Representing an intermediate degree of structural integration, experimental results for a multifunctional energy-storing glass fiber-reinforced composite based on the ceramic electrolyte Li1.4Al0.4Ti1.6(PO4)3 are presented. Cyclic voltammetry tests are used to characterize the double-layer behavior combined with galvanostatic charge–discharge measurements for capacitance calculation. The capacitance is observed to be unchanged after 1500 charge–discharge cycles revealing a promising potential for future applications. Furthermore, the mechanical properties are assessed by means of four-point bending and tensile tests. Additionally, the influence of mechanical loads on the electrical properties is also investigated, demonstrating the storage stability of the composites.
Related content


By Huo Peipei Zhao Peng Wang Yin Liu Bo Yin Guangchao Dong Mingdong
Energies, Vol. 11, Iss. 1, 2018-01 ,pp. :


Flywheel Energy Storage for Automotive Applications
By Hedlund Magnus Lundin Johan de Santiago Juan Abrahamsson Johan Bernhoff Hans
Energies, Vol. 8, Iss. 10, 2015-09 ,pp. :


Correction: Energy Resources in the Future
Energies, Vol. 3, Iss. 5, 2010-05 ,pp. :


Energy Resources in the Future
Energies, Vol. 3, Iss. 4, 2010-04 ,pp. :


By Gao Pu-Xian Shimpi Paresh Gao Haiyong Liu Caihong Guo Yanbing Cai Wenjie Liao Kuo-Ting Wrobel Gregory Zhang Zhonghua Ren Zheng Lin Hui-Jan
International Journal of Molecular Sciences, Vol. 13, Iss. 6, 2012-06 ,pp. :