Design of honeycomb mesostructures for crushing energy absorption (Record no. 21130)

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fixed length control field a
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control field OSt
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control field 20240603160450.0
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fixed length control field 240603b xxu||||| |||| 00| 0 eng d
040 ## - CATALOGING SOURCE
Original cataloging agency AIKTC-KRRC
Transcribing agency AIKTC-KRRC
100 ## - MAIN ENTRY--PERSONAL NAME
9 (RLIN) 23583
Author Schultz, Jesse
245 ## - TITLE STATEMENT
Title Design of honeycomb mesostructures for crushing energy absorption
250 ## - EDITION STATEMENT
Volume, Issue number Vol.134(7), Jul
260 ## - PUBLICATION, DISTRIBUTION, ETC.
Place of publication, distribution, etc. New York
Name of publisher, distributor, etc. ASME
Year 2012
300 ## - PHYSICAL DESCRIPTION
Pagination 1-9p.
520 ## - SUMMARY, ETC.
Summary, etc. This paper presents the energy absorption properties of hexagonal honeycomb structures of varying cellular geometries under high speed in-plane crushing. While the crushing responses in terms of energy absorption and densification strains have been extensively researched and reported, a gap is identified in the generalization of honeycombs with contr’olled and varying geometric parameters. This paper addresses this gap through a series of finite element (FE) simulations where the cell angle and the inclined wall thickness, are varied while maintaining a constant mass of the honeycomb structure. A randomly filled, nonrepeating design of experiments (DOEs) is generated to determine the effects of these geometric parameters on the output of energy absorbed and a statistical sensitivity analysis is used to determine the parameters significant for the crushing energy absorption of honeycombs. It is found that while an increase in the inclined wall thickness enhances the energy absorption of the structure, increases in either the cell angle or ratio of cell angle to inclined wall thickness have adverse effects on the output. Finally, the optimization results suggest that a cellular geometry with a positive cell angle and a high inclined wall thickness provides for maximum energy absorption, which is verified with a 6% error when compared to a FE simulation.
650 #0 - SUBJECT ADDED ENTRY--TOPICAL TERM
9 (RLIN) 4626
Topical term or geographic name entry element Mechanical Engineering
700 ## - ADDED ENTRY--PERSONAL NAME
9 (RLIN) 23584
Co-Author Griese, David
773 0# - HOST ITEM ENTRY
Title Journal of mechanical design
Place, publisher, and date of publication New York ASME
856 ## - ELECTRONIC LOCATION AND ACCESS
URL https://asmedigitalcollection.asme.org/mechanicaldesign/article-abstract/134/7/071004/409664/Design-of-Honeycomb-Mesostructures-for-Crushing?redirectedFrom=fulltext
Link text Click here
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Koha item type Articles Abstract Database
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          School of Engineering & Technology School of Engineering & Technology Archieval Section 2024-06-03 2024-0698 2024-06-03 2024-06-03 Articles Abstract Database
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