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Quantitative Acoustic Emission During Additive Manufacturing and Frictional Behavior of Heterogeneous Interfaces
Quantitative Acoustic Emission During Additive Manufacturing and Frictional Behavior of He...
Quantitative Acoustic Emission During Additive Manufacturing and Frictional Behavior of Heterogeneous Interfaces

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자료유형  
 학위논문 서양
최종처리일시  
20260202105304
ISBN  
9798273307179
DDC  
550
저자명  
Song, Jun Young.
서명/저자  
Quantitative Acoustic Emission During Additive Manufacturing and Frictional Behavior of Heterogeneous Interfaces
발행사항  
[Sl] : Cornell University, 2025
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2025
형태사항  
207 p
주기사항  
Source: Dissertations Abstracts International, Volume: 87-07, Section: B.
주기사항  
Advisor: McLaskey, Gregory.
학위논문주기  
Thesis (Ph.D.)--Cornell University, 2025.
초록/해제  
요약This dissertation investigates acoustic emission (AE) monitoring as a unified framework for characterizing failure processes across material systems and scales. Through controlled laboratory experiments of additive manufacturing and laboratory earthquake experiments, AE sensors are shown to distinguish between slow and rapid stress transfer processes, enabling signal identification, quantification, and localization.In additive manufacturing, AE monitoring differentiated tensile cracking from thermal expansion and powder effects, while porosity produced no detectable signals during laser spot welding. Using a calibration technique that uses a ball impact as a reference source, estimated crack sizes agreed with observations from scanning electron microscope images.Laboratory earthquake experiments investigated frictional heterogeneity using meter-scale Polymethyl methacrylate (PMMA) blocks in a biaxial testing machine. On frictionally heterogeneous faults, velocity-weakening (VW) regions with bare PMMA surfaces produced seismic slip, whereas velocity-strengthening (VS) regions coated with Teflon tape exhibited stable, aseismic slip. A single VW patch surrounded by VS regions exhibited systematic transitions: aseismic slip, periodic slip, and non-periodic slip, as identified through AE sensors.To create a more heterogeneous and realistic fault system, multiple VW patches separated by VS barriers were implemented. This fault configuration produced complex seismicity including foreshocks, mainshocks, and aftershocks. Varying the loading rate illuminated an inverse trend to fault healing (i.e., an increase in seismic magnitude over time) due to variations in VS barrier effectiveness with loading rate. Foreshock sequences, identified from the hypocenters determined by AE signals, and quasi-dynamic earthquake simulations both exhibited bidirectional migration with back-propagation velocities about ten times faster than the main propagation velocity, resembling Rapid Tremor Reversals in subduction zones.Fluid injection experiments using Teflon tape to confine flow revealed two migration mechanisms: pressure-diffusion-driven migration at slow injection rate or low-viscosity fluid, and volume-driven migration at fast injection rate or high-viscosity fluid. Poroelastic modeling reproduced experimental observations by coupling pressure-dependent permeability with fault opening.Together, these results demonstrate AE monitoring's capability to bridge material science and geophysics, providing insights into failure mechanisms from microstructural defects to earthquake dynamics across vastly different temporal and spatial scales.
일반주제명  
Geophysics
일반주제명  
Industrial engineering
일반주제명  
Fluid mechanics
키워드  
Acoustic emission
키워드  
Additive manufacturing
키워드  
Fault healing
키워드  
Heterogeneous faults
키워드  
Induced seismicity
키워드  
Laboratory earthquake
기타저자  
Cornell University Civil and Environmental Engineering
기본자료저록  
Dissertations Abstracts International. 87-07B.
전자적 위치 및 접속  
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MARC

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■1001  ▼aSong,  Jun  Young.
■24510▼aQuantitative  Acoustic  Emission  During  Additive  Manufacturing  and  Frictional  Behavior  of  Heterogeneous  Interfaces
■260    ▼a[Sl]▼bCornell  University▼c2025
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2025
■300    ▼a207  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  87-07,  Section:  B.
■500    ▼aAdvisor:  McLaskey,  Gregory.
■5021  ▼aThesis  (Ph.D.)--Cornell  University,  2025.
■520    ▼aThis  dissertation  investigates  acoustic  emission  (AE)  monitoring  as  a  unified  framework  for  characterizing  failure  processes  across  material  systems  and  scales.  Through  controlled  laboratory  experiments  of  additive  manufacturing  and  laboratory  earthquake  experiments,  AE  sensors  are  shown  to  distinguish  between  slow  and  rapid  stress  transfer  processes,  enabling  signal  identification,  quantification,  and  localization.In  additive  manufacturing,  AE  monitoring  differentiated  tensile  cracking  from  thermal  expansion  and  powder  effects,  while  porosity  produced  no  detectable  signals  during  laser  spot  welding.  Using  a  calibration  technique  that  uses  a  ball  impact  as  a  reference  source,  estimated  crack  sizes  agreed  with  observations  from  scanning  electron  microscope  images.Laboratory  earthquake  experiments  investigated  frictional  heterogeneity  using  meter-scale  Polymethyl  methacrylate  (PMMA)  blocks  in  a  biaxial  testing  machine.  On  frictionally  heterogeneous  faults,  velocity-weakening  (VW)  regions  with  bare  PMMA  surfaces  produced  seismic  slip,  whereas  velocity-strengthening  (VS)  regions  coated  with  Teflon  tape  exhibited  stable,  aseismic  slip.  A  single  VW  patch  surrounded  by  VS  regions  exhibited  systematic  transitions:  aseismic  slip,  periodic  slip,  and  non-periodic  slip,  as  identified  through  AE  sensors.To  create  a  more  heterogeneous  and  realistic  fault  system,  multiple  VW  patches  separated  by  VS  barriers  were  implemented.  This  fault  configuration  produced  complex  seismicity  including  foreshocks,  mainshocks,  and  aftershocks.  Varying  the  loading  rate  illuminated  an  inverse  trend  to  fault  healing  (i.e.,  an  increase  in  seismic  magnitude  over  time)  due  to  variations  in  VS  barrier  effectiveness  with  loading  rate.  Foreshock  sequences,  identified  from  the  hypocenters  determined  by  AE  signals,  and  quasi-dynamic  earthquake  simulations  both  exhibited  bidirectional  migration  with  back-propagation  velocities  about  ten  times  faster  than  the  main  propagation  velocity,  resembling  Rapid  Tremor  Reversals  in  subduction  zones.Fluid  injection  experiments  using  Teflon  tape  to  confine  flow  revealed  two  migration  mechanisms:  pressure-diffusion-driven  migration  at  slow  injection  rate  or  low-viscosity  fluid,  and  volume-driven  migration  at  fast  injection  rate  or  high-viscosity  fluid.  Poroelastic  modeling  reproduced  experimental  observations  by  coupling  pressure-dependent  permeability  with  fault  opening.Together,  these  results  demonstrate  AE  monitoring's  capability  to  bridge  material  science  and  geophysics,  providing  insights  into  failure  mechanisms  from  microstructural  defects  to  earthquake  dynamics  across  vastly  different  temporal  and  spatial  scales.
■590    ▼aSchool  code:  0058.
■650  4▼aGeophysics
■650  4▼aIndustrial  engineering
■650  4▼aFluid  mechanics
■653    ▼aAcoustic  emission
■653    ▼aAdditive  manufacturing
■653    ▼aFault  healing
■653    ▼aHeterogeneous  faults
■653    ▼aInduced  seismicity
■653    ▼aLaboratory  earthquake
■690    ▼a0373
■690    ▼a0467
■690    ▼a0204
■690    ▼a0546
■71020▼aCornell  University▼bCivil  and  Environmental  Engineering.
■7730  ▼tDissertations  Abstracts  International▼g87-07B.
■790    ▼a0058
■791    ▼aPh.D.
■792    ▼a2025
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17360102▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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