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Aeropropulsive Design Optimization of a High-Bypass Turbofan Engine
Aeropropulsive Design Optimization of a High-Bypass Turbofan Engine
Aeropropulsive Design Optimization of a High-Bypass Turbofan Engine

상세정보

자료유형  
 학위논문 서양
최종처리일시  
20260202103639
ISBN  
9798314873397
DDC  
629.1
저자명  
Lamkin, Andrew H. R.
서명/저자  
Aeropropulsive Design Optimization of a High-Bypass Turbofan Engine
발행사항  
[Sl] : University of Michigan, 2025
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2025
형태사항  
175 p
주기사항  
Source: Dissertations Abstracts International, Volume: 86-11, Section: B.
주기사항  
Advisor: Martins, Joaquim R. R. A.
학위논문주기  
Thesis (Ph.D.)--University of Michigan, 2025.
초록/해제  
요약The design of modern aircraft propulsion systems is an inherently multidisciplinary process. However, current state-of-the-art design methods are disconnected across company silos with limited communication between disciplines. This fragmentation drives sequential optimization processes that rely on manual or gradient-free methods, yielding suboptimal designs. Propulsion original equipment manufacturers (OEM) typically develop optimized thermodynamic cycle decks and geometries independently before transferring them to airframe OEM. The airframe OEM then attempts to minimize airframe-propulsion interference drag with a fixed propulsion system. This disconnected approach lacks coupled multidisciplinary effects and compromises system-level performance. Aeropropulsive design optimization considers the interactions between aerodynamics, thermodynamics, and geometry simultaneously. High-fidelity simulation of these coupled physics presents significant computational challenges, particularly for complete flow path analysis. Mixed-fidelity aeropropulsive methods utilize a range of modeling fidelities to represent the multidisciplinary system. In our case, we use a mixed-fidelity method to couple a high-fidelity aerodynamic solver with a zero-dimensional thermodynamic cycle model. Combined with gradient-based optimization, mixed-fidelity approaches are computationally efficient and can accommodate design spaces with many variables and constraints. Connecting aerodynamic and propulsion disciplines requires careful treatment of the passing of information between models. In this dissertation, we develop a novel hybrid aeropropulsive coupling method for turbofan engines with approaches for both the fan and core propulsion models. We then apply this coupling method to a single-point optimization of a high-bypass turbofan engine with 40 design variables and 135 constraints. The optimizer converges below the target optimality and feasibility tolerances in 128 iterations, with a wall time of 3 hours and 38 minutes on 160 cores. We optimize designs at 25 fan pressure and bypass ratio combinations to demonstrate efficiency, robustness, and optimal mixed-fidelity design trends. All cases converge in under 3 hours and the optimal trends adhere to expected results from literature and zero-dimensional cycle models. The ability to converge and validate 25 design points is a milestone for the robustness and utility of our mixed-fidelity aeropropulsive optimization approach. The validation study shows that the method over-predicts core thrust by 20% due to thermodynamic equation of state differences between the propulsion and aerodynamic models. We demonstrate that this discrepancy is less that 1% when the underlying thermodynamic models are consistent. The new coupling methods are a significant advancement in aeropropulsive optimization capability and enable the efficient design of tightly integrated propulsion systems. The next step is to extend the single-point optimization to a multipoint optimization problem. The multipoint problem considers the engine performance at multiple operating conditions, such as sea-level-static, rolling take off, top-of-climb, and cruise. This is a first of its kind application of mixed-fidelity aeropropulsive optimization to a multipoint problem for a turbofan engine. The results of this study show the potential for future multipoint optimization studies and the importance of considering the full operating envelope of the engine.
일반주제명  
Aerospace engineering
일반주제명  
Aeronomy
일반주제명  
Fluid mechanics
키워드  
Multidisciplinary design optimization
키워드  
Computational fluid dynamics
키워드  
Aeropropulsive design optimization
기타저자  
University of Michigan Aerospace Engineering
기본자료저록  
Dissertations Abstracts International. 86-11B.
전자적 위치 및 접속  
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MARC

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■020    ▼a9798314873397
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■035    ▼a(MiAaPQ)umichrackham006097
■040    ▼aMiAaPQ▼cMiAaPQ
■0820  ▼a629.1
■1001  ▼aLamkin,  Andrew  H.  R.
■24510▼aAeropropulsive  Design  Optimization  of  a  High-Bypass  Turbofan  Engine
■260    ▼a[Sl]▼bUniversity  of  Michigan▼c2025
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2025
■300    ▼a175  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  86-11,  Section:  B.
■500    ▼aAdvisor:  Martins,  Joaquim  R.  R.  A.
■5021  ▼aThesis  (Ph.D.)--University  of  Michigan,  2025.
■520    ▼aThe  design  of  modern  aircraft  propulsion  systems  is  an  inherently  multidisciplinary  process.  However,  current  state-of-the-art  design  methods  are  disconnected  across  company  silos  with  limited  communication  between  disciplines.  This  fragmentation  drives  sequential  optimization  processes  that  rely  on  manual  or  gradient-free  methods,  yielding  suboptimal  designs.  Propulsion  original  equipment  manufacturers  (OEM)  typically  develop  optimized  thermodynamic  cycle  decks  and  geometries  independently  before  transferring  them  to  airframe  OEM.  The  airframe  OEM  then  attempts  to  minimize  airframe-propulsion  interference  drag  with  a  fixed  propulsion  system.  This  disconnected  approach  lacks  coupled  multidisciplinary  effects  and  compromises  system-level  performance.  Aeropropulsive  design  optimization  considers  the  interactions  between  aerodynamics,  thermodynamics,  and  geometry  simultaneously.  High-fidelity  simulation  of  these  coupled  physics  presents  significant  computational  challenges,  particularly  for  complete  flow  path  analysis.  Mixed-fidelity  aeropropulsive  methods  utilize  a  range  of  modeling  fidelities  to  represent  the  multidisciplinary  system.  In  our  case,  we  use  a  mixed-fidelity  method  to  couple  a  high-fidelity  aerodynamic  solver  with  a  zero-dimensional  thermodynamic  cycle  model.  Combined  with  gradient-based  optimization,  mixed-fidelity  approaches  are  computationally  efficient  and  can  accommodate  design  spaces  with  many  variables  and  constraints.  Connecting  aerodynamic  and  propulsion  disciplines  requires  careful  treatment  of  the  passing  of  information  between  models.  In  this  dissertation,  we  develop  a  novel  hybrid  aeropropulsive  coupling  method  for  turbofan  engines  with  approaches  for  both  the  fan  and  core  propulsion  models.  We  then  apply  this  coupling  method  to  a  single-point  optimization  of  a  high-bypass  turbofan  engine  with  40  design  variables  and  135  constraints.  The  optimizer  converges  below  the  target  optimality  and  feasibility  tolerances  in  128  iterations,  with  a  wall  time  of  3  hours  and  38  minutes  on  160  cores.  We  optimize  designs  at  25  fan  pressure  and  bypass  ratio  combinations  to  demonstrate  efficiency,  robustness,  and  optimal  mixed-fidelity  design  trends.  All  cases  converge  in  under  3  hours  and  the  optimal  trends  adhere  to  expected  results  from  literature  and  zero-dimensional  cycle  models.  The  ability  to  converge  and  validate  25  design  points  is  a  milestone  for  the  robustness  and  utility  of  our  mixed-fidelity  aeropropulsive  optimization  approach.  The  validation  study  shows  that  the  method  over-predicts  core  thrust  by  20%  due  to  thermodynamic  equation  of  state  differences  between  the  propulsion  and  aerodynamic  models.  We  demonstrate  that  this  discrepancy  is  less  that  1%  when  the  underlying  thermodynamic  models  are  consistent.  The  new  coupling  methods  are  a  significant  advancement  in  aeropropulsive  optimization  capability  and  enable  the  efficient  design  of  tightly  integrated  propulsion  systems.  The  next  step  is  to  extend  the  single-point  optimization  to  a  multipoint  optimization  problem.  The  multipoint  problem  considers  the  engine  performance  at  multiple  operating  conditions,  such  as  sea-level-static,  rolling  take  off,  top-of-climb,  and  cruise.  This  is  a  first  of  its  kind  application  of  mixed-fidelity  aeropropulsive  optimization  to  a  multipoint  problem  for  a  turbofan  engine.  The  results  of  this  study  show  the  potential  for  future  multipoint  optimization  studies  and  the  importance  of  considering  the  full  operating  envelope  of  the  engine.
■590    ▼aSchool  code:  0127.
■650  4▼aAerospace  engineering
■650  4▼aAeronomy
■650  4▼aFluid  mechanics
■653    ▼aMultidisciplinary  design  optimization
■653    ▼aComputational  fluid  dynamics
■653    ▼aAeropropulsive  design  optimization
■690    ▼a0538
■690    ▼a0367
■690    ▼a0204
■71020▼aUniversity  of  Michigan▼bAerospace  Engineering.
■7730  ▼tDissertations  Abstracts  International▼g86-11B.
■790    ▼a0127
■791    ▼aPh.D.
■792    ▼a2025
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17358069▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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