Tailoring energy absorption capacity of CNT forests through application of electric field


Autoria(s): Jagtap, Piyush; Reddy, Siva Kumar; Sharma, Deepak; Kumar, Praveen
Data(s)

2015

Resumo

This study examines the effect of electric field on energy absorption capacity of carbon nanotube forests (CNTFs), comprising of vertically aligned multiwalled carbon nanotubes, under both quasistatic (strain rate, (epsilon) over dot = 10(-3) s(-1)) and dynamic ((epsilon) over dot = similar to 10(3) s(-1)) loading conditions. Under quasistatic condition, the CNTFs were cyclically loaded and unloaded while electric field was applied along the length of carbon nanotube (CNT) either throughout the loading cycle or explicitly during either the loading or the unloading segment. The energy absorbed per cycle by CNTF increased monotonically with electric field when the field was applied only during the loading segment: A 7 fold increase in the energy absorption capacity was registered at an electric field of 1 kV/m whereas no significant change in it was noted for other schemes of electro-mechanical loading. The energy absorption capacity of CNTF under dynamic loading condition also increased monotonically with electric field; however, relative to the quasistatic condition, less pronounced effect was observed. This intriguing strain rate dependent effect of electric field on energy absorption capacity of CNTF is explained in terms of electric field induced strengthening of CNTF, originating from the time dependent electric field induced polarization of CNT. (C) 2015 Elsevier Ltd. All rights reserved.

Formato

application/pdf

Identificador

http://eprints.iisc.ernet.in/52749/1/Car_95_126_2015.pdf

Jagtap, Piyush and Reddy, Siva Kumar and Sharma, Deepak and Kumar, Praveen (2015) Tailoring energy absorption capacity of CNT forests through application of electric field. In: CARBON, 95 . pp. 126-136.

Publicador

PERGAMON-ELSEVIER SCIENCE LTD

Relação

http://dx.doi.org/10.1016/j.carbon.2015.08.005

http://eprints.iisc.ernet.in/52749/

Palavras-Chave #Materials Engineering (formerly Metallurgy) #Instrumentation and Applied Physics (Formally ISU)
Tipo

Journal Article

PeerReviewed