Language:
English
繁體中文
Help
回圖書館首頁
手機版館藏查詢
Login
Back
Switch To:
Labeled
|
MARC Mode
|
ISBD
Design and Optimization of the Perio...
~
Anurakparadorn, Kanat.
Linked to FindBook
Google Book
Amazon
博客來
Design and Optimization of the Periodic Porous Polymer Composite Metamaterial Electromagnetic Absorbers.
Record Type:
Electronic resources : Monograph/item
Title/Author:
Design and Optimization of the Periodic Porous Polymer Composite Metamaterial Electromagnetic Absorbers./
Author:
Anurakparadorn, Kanat.
Published:
Ann Arbor : ProQuest Dissertations & Theses, : 2024,
Description:
173 p.
Notes:
Source: Dissertations Abstracts International, Volume: 85-07, Section: B.
Contained By:
Dissertations Abstracts International85-07B.
Subject:
Electromagnetics. -
Online resource:
https://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=30988400
ISBN:
9798381387513
Design and Optimization of the Periodic Porous Polymer Composite Metamaterial Electromagnetic Absorbers.
Anurakparadorn, Kanat.
Design and Optimization of the Periodic Porous Polymer Composite Metamaterial Electromagnetic Absorbers.
- Ann Arbor : ProQuest Dissertations & Theses, 2024 - 173 p.
Source: Dissertations Abstracts International, Volume: 85-07, Section: B.
Thesis (Ph.D.)--University of Michigan, 2024.
This item must not be sold to any third party vendors.
This dissertation addresses the imperative need for affordable Electromagnetic Interference (EMI) shielding materials in the era of burgeoning wireless technology. The goal is to mitigate the vulnerability of electronic devices to undesirable incoming radiation. Ideally, these materials should provide protection by absorbing a broad spectrum of frequencies and be insensitive to the polarization and angle of incidence of the impinging fields. The research introduces next-generation EM absorbers, comprising composite materials in a periodic porous structure. These absorbers leverage the concept of metamaterials, focusing on enhancing EM resonances within the absorber structures to meet multiple user-specified objectives.Polymer-based composites exhibit a promising capacity to customize EM intrinsic properties by adjusting the concentration and micromorphology of each constituent. Initial designs of fundamental polymer-based composites are tailored to meet specific application requirements, serving as a foundational benchmark for subsequent meta-structure designs. The emphasis is placed on meticulous consideration of composition, dispersion, and micromorphology to achieve desired electrical permittivity and magnetic permeability. Composites, comprising polylactic acid, graphene-based materials as conductive fillers, and CoFe2O4 as a magnetic constituent, are designed and fabricated to fulfill commercial requirements. Additionally, the surface modification of CoFe2O4 with oleic acid and polyethylene glycol demonstrates improved dispersion quality, particularly when a high volume fraction is introduced into the composite system. The resultant composite, fabricated through the solution mixing method, achieves a maximum reflection loss (RL) of -38 dB at 0.63 GHz, with an operational frequency bandwidth (BW) at -20 dB for an absorber thickness of 2.3 mm. In comparison, the composite compounded via a twin-screw extruder, offering enhanced production capabilities, yields a maximum RL of -21 dB with a BW at -20 dB of 0.2 GHz at an absorber thickness of 2.0 mm.EM-field-based finite element computational modeling and a Monte-Carlo optimizer are employed to design periodic porous meta-structures using the specified composites. Multi-objective functions, focused on maximizing RL and BW, guide the optimizer in selecting structures suitable for various applications. The optimizer identifies the most efficient structure as the truncated cone pillar with a Perfect Electric Conductor (PEC) on the top surface, achieved from the 2.3 mm thick absorber in the solution mixed composite. This structure significantly broadens the operation bandwidth at RL of -20 dB from 0.63 GHz to 1.8 GHz. Additionally, the optimizer shows the enhancement of RL for a poorly absorbing composite material produced by a twin-screw extruder, improving from -21 dB to -67 dB for a thickness of approximately 2 mm. This improvement is attributed to metamaterial behavior induced by resonance from the interaction between repeated pores, as confirmed by electric field distribution analysis.This research includes guidelines for metamaterial manufacturing, introducing techniques such as traditional CNC, compression molding, and additive manufacturing. These guidelines can enhance processing parameters and aid in achieving desired absorber structures in future work. The outlined strategy in this research demonstrates the capability to design and produce metamaterial absorbers that enhance absorption performance. These absorbers not only exhibit elevated RL but also encompass additional benefits aligned with user-defined multiple objective functions.
ISBN: 9798381387513Subjects--Topical Terms:
3173223
Electromagnetics.
Subjects--Index Terms:
Metamaterial absorbers
Design and Optimization of the Periodic Porous Polymer Composite Metamaterial Electromagnetic Absorbers.
LDR
:04959nmm a2200409 4500
001
2393579
005
20240318062713.5
006
m o d
007
cr#unu||||||||
008
251215s2024 ||||||||||||||||| ||eng d
020
$a
9798381387513
035
$a
(MiAaPQ)AAI30988400
035
$a
AAI30988400
040
$a
MiAaPQ
$c
MiAaPQ
100
1
$a
Anurakparadorn, Kanat.
$0
(orcid)0000-0002-1831-5655
$3
3763050
245
1 0
$a
Design and Optimization of the Periodic Porous Polymer Composite Metamaterial Electromagnetic Absorbers.
260
1
$a
Ann Arbor :
$b
ProQuest Dissertations & Theses,
$c
2024
300
$a
173 p.
500
$a
Source: Dissertations Abstracts International, Volume: 85-07, Section: B.
500
$a
Advisor: Taub, Alan.
502
$a
Thesis (Ph.D.)--University of Michigan, 2024.
506
$a
This item must not be sold to any third party vendors.
520
$a
This dissertation addresses the imperative need for affordable Electromagnetic Interference (EMI) shielding materials in the era of burgeoning wireless technology. The goal is to mitigate the vulnerability of electronic devices to undesirable incoming radiation. Ideally, these materials should provide protection by absorbing a broad spectrum of frequencies and be insensitive to the polarization and angle of incidence of the impinging fields. The research introduces next-generation EM absorbers, comprising composite materials in a periodic porous structure. These absorbers leverage the concept of metamaterials, focusing on enhancing EM resonances within the absorber structures to meet multiple user-specified objectives.Polymer-based composites exhibit a promising capacity to customize EM intrinsic properties by adjusting the concentration and micromorphology of each constituent. Initial designs of fundamental polymer-based composites are tailored to meet specific application requirements, serving as a foundational benchmark for subsequent meta-structure designs. The emphasis is placed on meticulous consideration of composition, dispersion, and micromorphology to achieve desired electrical permittivity and magnetic permeability. Composites, comprising polylactic acid, graphene-based materials as conductive fillers, and CoFe2O4 as a magnetic constituent, are designed and fabricated to fulfill commercial requirements. Additionally, the surface modification of CoFe2O4 with oleic acid and polyethylene glycol demonstrates improved dispersion quality, particularly when a high volume fraction is introduced into the composite system. The resultant composite, fabricated through the solution mixing method, achieves a maximum reflection loss (RL) of -38 dB at 0.63 GHz, with an operational frequency bandwidth (BW) at -20 dB for an absorber thickness of 2.3 mm. In comparison, the composite compounded via a twin-screw extruder, offering enhanced production capabilities, yields a maximum RL of -21 dB with a BW at -20 dB of 0.2 GHz at an absorber thickness of 2.0 mm.EM-field-based finite element computational modeling and a Monte-Carlo optimizer are employed to design periodic porous meta-structures using the specified composites. Multi-objective functions, focused on maximizing RL and BW, guide the optimizer in selecting structures suitable for various applications. The optimizer identifies the most efficient structure as the truncated cone pillar with a Perfect Electric Conductor (PEC) on the top surface, achieved from the 2.3 mm thick absorber in the solution mixed composite. This structure significantly broadens the operation bandwidth at RL of -20 dB from 0.63 GHz to 1.8 GHz. Additionally, the optimizer shows the enhancement of RL for a poorly absorbing composite material produced by a twin-screw extruder, improving from -21 dB to -67 dB for a thickness of approximately 2 mm. This improvement is attributed to metamaterial behavior induced by resonance from the interaction between repeated pores, as confirmed by electric field distribution analysis.This research includes guidelines for metamaterial manufacturing, introducing techniques such as traditional CNC, compression molding, and additive manufacturing. These guidelines can enhance processing parameters and aid in achieving desired absorber structures in future work. The outlined strategy in this research demonstrates the capability to design and produce metamaterial absorbers that enhance absorption performance. These absorbers not only exhibit elevated RL but also encompass additional benefits aligned with user-defined multiple objective functions.
590
$a
School code: 0127.
650
4
$a
Electromagnetics.
$3
3173223
650
4
$a
Engineering.
$3
586835
650
4
$a
Materials science.
$3
543314
653
$a
Metamaterial absorbers
653
$a
Multiple objective functions
653
$a
Electromagnetic Interference
653
$a
Graphene
653
$a
Metamaterials
653
$a
Polymer composites
690
$a
0794
690
$a
0607
690
$a
0537
710
2
$a
University of Michigan.
$b
Materials Science and Engineering.
$3
3281089
773
0
$t
Dissertations Abstracts International
$g
85-07B.
790
$a
0127
791
$a
Ph.D.
792
$a
2024
793
$a
English
856
4 0
$u
https://pqdd.sinica.edu.tw/twdaoapp/servlet/advanced?query=30988400
based on 0 review(s)
Location:
ALL
電子資源
Year:
Volume Number:
Items
1 records • Pages 1 •
1
Inventory Number
Location Name
Item Class
Material type
Call number
Usage Class
Loan Status
No. of reservations
Opac note
Attachments
W9501899
電子資源
11.線上閱覽_V
電子書
EB
一般使用(Normal)
On shelf
0
1 records • Pages 1 •
1
Multimedia
Reviews
Add a review
and share your thoughts with other readers
Export
pickup library
Processing
...
Change password
Login