Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials

Lattice-based metamaterials, known for their ability to deliver unique acoustic properties such as wave band gaps and direction-dependent phase velocities, are considered promising for noise filtering and acoustic sensor applications. Lattice-based metamaterials’ unique acoustic abilities arise from...

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محفوظ في:
التفاصيل البيبلوغرافية
المؤلف الرئيسي: Shendy, Mohamed (author)
مؤلفون آخرون: Alkhader, Maen (author), Abu-Nabah, Bassam (author), Venkatesh, T.A. (author)
التنسيق: article
منشور في: 2024
الموضوعات:
الوصول للمادة أونلاين:https://hdl.handle.net/11073/25821
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author Shendy, Mohamed
author2 Alkhader, Maen
Abu-Nabah, Bassam
Venkatesh, T.A.
author2_role author
author
author
author_facet Shendy, Mohamed
Alkhader, Maen
Abu-Nabah, Bassam
Venkatesh, T.A.
author_role author
dc.creator.none.fl_str_mv Shendy, Mohamed
Alkhader, Maen
Abu-Nabah, Bassam
Venkatesh, T.A.
dc.date.none.fl_str_mv 2024-11
2025-01-30T05:07:32Z
2025-01-30T05:07:32Z
dc.format.none.fl_str_mv application/pdf
dc.identifier.none.fl_str_mv Shendy, M., Alkhader, M., Abu-Nabah, B. A., & Venkatesh, T. A. (2025, January 23). Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials. https://doi.org/10.5281/zenodo.14725776
https://hdl.handle.net/11073/25821
10.5281/zenodo.14725776
dc.language.none.fl_str_mv en
dc.publisher.none.fl_str_mv American University of Sharjah
dc.relation.none.fl_str_mv 8th International Conference on Smart Materials & Nanotechnology in Engineering (SMN2024)
https://doi.org/10.5281/zenodo.14725776
dc.rights.none.fl_str_mv Attribution 4.0 International
http://creativecommons.org/licenses/by/4.0/
dc.subject.none.fl_str_mv Smart materials
Band gaps
Tunable properties
Finite element analysis
Lattce materials
dc.title.none.fl_str_mv Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials
dc.type.none.fl_str_mv info:eu-repo/semantics/publishedVersion
info:eu-repo/semantics/article
description Lattice-based metamaterials, known for their ability to deliver unique acoustic properties such as wave band gaps and direction-dependent phase velocities, are considered promising for noise filtering and acoustic sensor applications. Lattice-based metamaterials’ unique acoustic abilities arise from their periodic porous structures, allowing them to be realized even when the lattices are made from isotropic materials. The properties of lattice metamaterials are primarily determined by their inner microstructure (i.e., topology and morphology). Consequently, by designing their inner microstructure, it is possible to tune their properties to filter or detect specific frequencies. Varying the topology of lattice metamaterials has been shown to affect their acoustic properties significantly. However, this work focuses on the effect of morphological changes, particularly stretching, on their acoustic properties. Stretching can be achieved by mechanically deforming lattice metamaterials using external forces or by constructing them from active constituents such as piezoelectric materials. The overall goal of this work is to assist in developing lattice metamaterial that can deliver deformation-tunable acoustic properties. This work computationally investigates the effect of stretching strain fields on a hexagonal lattice-based metamaterial. In particular, it examines the effects of small and large strain fields on the frequency band gaps between 100kHz and 1000kHz. Different strain levels are used to determine the sensitivity of frequency band gaps to stretching strains. The results show that the frequency band gaps are insensitive to small strains at low frequencies (~100kHz) but are sensitive to small strains at higher frequencies (~1000kHz). Conversely, large strains significantly affect the frequency band gaps, resulting in the shift, creation, or cancelation of band gaps. The findings demonstrate that actuating lattice-based metamaterial can effectively tune their frequency band gaps.
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identifier_str_mv Shendy, M., Alkhader, M., Abu-Nabah, B. A., & Venkatesh, T. A. (2025, January 23). Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials. https://doi.org/10.5281/zenodo.14725776
10.5281/zenodo.14725776
language_invalid_str_mv en
network_acronym_str aus
network_name_str aus
oai_identifier_str oai:repository.aus.edu:11073/25821
publishDate 2024
publisher.none.fl_str_mv American University of Sharjah
repository.mail.fl_str_mv
repository.name.fl_str_mv
repository_id_str
rights_invalid_str_mv Attribution 4.0 International
http://creativecommons.org/licenses/by/4.0/
spelling Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based MetamaterialsShendy, MohamedAlkhader, MaenAbu-Nabah, BassamVenkatesh, T.A.Smart materialsBand gapsTunable propertiesFinite element analysisLattce materialsLattice-based metamaterials, known for their ability to deliver unique acoustic properties such as wave band gaps and direction-dependent phase velocities, are considered promising for noise filtering and acoustic sensor applications. Lattice-based metamaterials’ unique acoustic abilities arise from their periodic porous structures, allowing them to be realized even when the lattices are made from isotropic materials. The properties of lattice metamaterials are primarily determined by their inner microstructure (i.e., topology and morphology). Consequently, by designing their inner microstructure, it is possible to tune their properties to filter or detect specific frequencies. Varying the topology of lattice metamaterials has been shown to affect their acoustic properties significantly. However, this work focuses on the effect of morphological changes, particularly stretching, on their acoustic properties. Stretching can be achieved by mechanically deforming lattice metamaterials using external forces or by constructing them from active constituents such as piezoelectric materials. The overall goal of this work is to assist in developing lattice metamaterial that can deliver deformation-tunable acoustic properties. This work computationally investigates the effect of stretching strain fields on a hexagonal lattice-based metamaterial. In particular, it examines the effects of small and large strain fields on the frequency band gaps between 100kHz and 1000kHz. Different strain levels are used to determine the sensitivity of frequency band gaps to stretching strains. The results show that the frequency band gaps are insensitive to small strains at low frequencies (~100kHz) but are sensitive to small strains at higher frequencies (~1000kHz). Conversely, large strains significantly affect the frequency band gaps, resulting in the shift, creation, or cancelation of band gaps. The findings demonstrate that actuating lattice-based metamaterial can effectively tune their frequency band gaps.American University of Sharjah2025-01-30T05:07:32Z2025-01-30T05:07:32Z2024-11info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/articleapplication/pdfShendy, M., Alkhader, M., Abu-Nabah, B. A., & Venkatesh, T. A. (2025, January 23). Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials. https://doi.org/10.5281/zenodo.14725776https://hdl.handle.net/11073/2582110.5281/zenodo.14725776en8th International Conference on Smart Materials & Nanotechnology in Engineering (SMN2024)https://doi.org/10.5281/zenodo.14725776Attribution 4.0 Internationalhttp://creativecommons.org/licenses/by/4.0/oai:repository.aus.edu:11073/258212025-01-30T15:09:45Z
spellingShingle Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials
Shendy, Mohamed
Smart materials
Band gaps
Tunable properties
Finite element analysis
Lattce materials
status_str publishedVersion
title Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials
title_full Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials
title_fullStr Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials
title_full_unstemmed Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials
title_short Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials
title_sort Effect of Strain Fields on Frequency Band Gaps of Periodic Lattice-Based Metamaterials
topic Smart materials
Band gaps
Tunable properties
Finite element analysis
Lattce materials
url https://hdl.handle.net/11073/25821