Size effects in out-of-plane bending in elastic honeycombs fabricated using additive manufacturing : modeling and experimental results
Size effects in out-of-plane bending stiffness of honeycomb cellular materials were studied using analytical mechanics of solids modeling, fabrication of samples and mechanical testing. Analysis predicts a positive size-effect relative to continuum model predictions in the flexure stiffness of a ho...
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ndltd-UTEXAS-oai-repositories.lib.utexas.edu-2152-ETD-UT-2011-12-45652015-09-20T17:05:07ZSize effects in out-of-plane bending in elastic honeycombs fabricated using additive manufacturing : modeling and experimental resultsMikulak, James KevinSize effectsOut-of-plane bendingElastic bendingAdditive manufacturingSelective laser sinteringHoneycombsMechanics of solidsNylon 12PA12Bending stiffnessMechanical testingCellular solidsCellular foamsFoamsSquare-celled honeycombsHexagonal-celled honeycombsElasticitySize effects in out-of-plane bending stiffness of honeycomb cellular materials were studied using analytical mechanics of solids modeling, fabrication of samples and mechanical testing. Analysis predicts a positive size-effect relative to continuum model predictions in the flexure stiffness of a honeycombed beam loaded in out-of-plane bending. A method of determining the magnitude of that effect for several different methods of constructing or assembling square-celled and hexagonal-celled materials, using both single-walled and doubled-walled construction methods is presented. Hexagonal and square-celled honeycombs, with varying volume fractions were fabricated in Nylon 12 using Selective Laser Sintering. The samples were mechanically tested in three-point and four point-bending to measure flexure stiffness. The results from standard three-point flexure tests, did not agree with predictions based on a mechanics of solids model for either square or hexagonal-celled samples. Results for four-point bending agreed with the mechanics of solids model for the square-celled geometries but not for the hexagonal-celled geometries. A closed form solution of an elasticity model for the response of the four-point bending configuration was developed, which allows interpretation of recorded displacement data at two points and allows separation the elastic bending from the localized, elastic/plastic deformation that occurs between the loading rollers and the specimen’s surface. This localized deformation was significant in the materials tested. With this analysis, the four-point bending data agreed well with the mechanics of solids predictions.text2012-02-06T21:31:48Z2012-02-06T21:31:48Z2011-122012-02-06December 20112012-02-06T21:32:06Zthesisapplication/pdfhttp://hdl.handle.net/2152/ETD-UT-2011-12-45652152/ETD-UT-2011-12-4565eng |
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English |
format |
Others
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Size effects Out-of-plane bending Elastic bending Additive manufacturing Selective laser sintering Honeycombs Mechanics of solids Nylon 12 PA12 Bending stiffness Mechanical testing Cellular solids Cellular foams Foams Square-celled honeycombs Hexagonal-celled honeycombs Elasticity |
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Size effects Out-of-plane bending Elastic bending Additive manufacturing Selective laser sintering Honeycombs Mechanics of solids Nylon 12 PA12 Bending stiffness Mechanical testing Cellular solids Cellular foams Foams Square-celled honeycombs Hexagonal-celled honeycombs Elasticity Mikulak, James Kevin Size effects in out-of-plane bending in elastic honeycombs fabricated using additive manufacturing : modeling and experimental results |
description |
Size effects in out-of-plane bending stiffness of honeycomb cellular materials were studied using analytical mechanics of solids modeling, fabrication of samples and mechanical testing. Analysis predicts a positive size-effect relative to continuum model predictions in the flexure stiffness of a honeycombed beam loaded in out-of-plane bending. A method of determining the magnitude of that effect for several different methods of constructing or assembling square-celled and hexagonal-celled materials, using both single-walled and doubled-walled construction methods is presented. Hexagonal and square-celled honeycombs, with varying volume fractions were fabricated in Nylon 12 using Selective Laser Sintering. The samples were mechanically tested in three-point and four point-bending to measure flexure stiffness. The results from standard three-point flexure tests, did not agree with predictions based on a mechanics of solids model for either square or hexagonal-celled samples. Results for four-point bending agreed with the mechanics of solids model for the square-celled geometries but not for the hexagonal-celled geometries. A closed form solution of an elasticity model for the response of the four-point bending configuration was developed, which allows interpretation of recorded displacement data at two points and allows separation the elastic bending from the localized, elastic/plastic deformation that occurs between the loading rollers and the specimen’s surface. This localized deformation was significant in the materials tested. With this analysis, the four-point bending data agreed well with the mechanics of solids predictions. === text |
author |
Mikulak, James Kevin |
author_facet |
Mikulak, James Kevin |
author_sort |
Mikulak, James Kevin |
title |
Size effects in out-of-plane bending in elastic honeycombs fabricated using additive manufacturing : modeling and experimental results |
title_short |
Size effects in out-of-plane bending in elastic honeycombs fabricated using additive manufacturing : modeling and experimental results |
title_full |
Size effects in out-of-plane bending in elastic honeycombs fabricated using additive manufacturing : modeling and experimental results |
title_fullStr |
Size effects in out-of-plane bending in elastic honeycombs fabricated using additive manufacturing : modeling and experimental results |
title_full_unstemmed |
Size effects in out-of-plane bending in elastic honeycombs fabricated using additive manufacturing : modeling and experimental results |
title_sort |
size effects in out-of-plane bending in elastic honeycombs fabricated using additive manufacturing : modeling and experimental results |
publishDate |
2012 |
url |
http://hdl.handle.net/2152/ETD-UT-2011-12-4565 |
work_keys_str_mv |
AT mikulakjameskevin sizeeffectsinoutofplanebendinginelastichoneycombsfabricatedusingadditivemanufacturingmodelingandexperimentalresults |
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1716822366504353792 |