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Process Design and Analysis of a Cryogenic Freeze-Out Heat Exchanger for Helium Purification
Process Design and Analysis of a Cryogenic Freeze-Out Heat Exchanger for Helium Purificati...
Process Design and Analysis of a Cryogenic Freeze-Out Heat Exchanger for Helium Purification

상세정보

자료유형  
 학위논문 서양
최종처리일시  
20250211153023
ISBN  
9798342746427
DDC  
536
저자명  
Kroll, Duncan.
서명/저자  
Process Design and Analysis of a Cryogenic Freeze-Out Heat Exchanger for Helium Purification
발행사항  
[Sl] : Michigan State University, 2024
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2024
형태사항  
191 p
주기사항  
Source: Dissertations Abstracts International, Volume: 86-05, Section: B.
주기사항  
Advisor: Engeda, Abraham.
학위논문주기  
Thesis (Ph.D.)--Michigan State University, 2024.
초록/해제  
요약Purification systems are necessary to support commissioning and operation of medium to large-scale cryogenic refrigeration systems using various cryogenic working fluids. The present research focuses on helium refrigeration systems that operate at 4.5 K (which is just above the normal boiling point of helium), down to 1.8 K (which requires helium with a vapor pressure of 16 mbar). At these very low temperatures, the presence of any substances except helium (contaminants) will result in solidification. Even trace amounts of these impurities in the process fluid can block and/or change the flow distribution in a refrigerator's heat exchangers and potentially damage rotating equipment operating at high speeds. Therefore, helium purifiers for these refrigerators are typically designed for a low level of impurity (i.e., 1-100 ppmv) removal of moisture and air components, since gross impurities are removed during the initial clean-up and commissioning of the system.Purification of the process gas (helium) is typically achieved by molecular sieve adsorption beds at room temperature for moisture removal and liquid nitrogen (LN) cooled activated carbon adsorption bed for air (nitrogen/oxygen/argon) removal. However, past studies and operational experience show that molecular sieves are unable to remove low level moisture contamination effectively. Freeze-out purification has great potential to reliably remove low-level moisture contamination, but requires careful design. Typical commercially available freeze-out purifiers have a much shorter operating time in between regenerations than should be achievable, are not optimized for low pressure operation, and require large amount of utilities like liquid nitrogen. Furthermore, frost formation in a purifier heat exchanger is not well understood. Developing an understanding of this process and studying the design and process parameters that can improve the process for this critical sub-system is the focus of this research.This work begins with an experimental study of a commercially available helium freeze-out purifier. It is tested under practical operating conditions and controlled operating conditions, under different contamination levels and flow capacity imbalances. Auxiliary equipment was designed, fabricated, tested, and operated to achieve controlled and tunable low-level moisture contamination in the helium stream. The performance and moisture capacity of the purifier heat exchanger was characterized. Following the experimental study, a series of theoretical studies were carried out. First, a heat and mass transfer model on an isothermal surface was developed to establish a base-level understanding of frost formation and relate to the existing literature. This model was used to study the effects of gas pressure, wall temperature difference, reduced temperature differential, absolute humidity, and carrier gas on the frost growth and mass transfer. A simplified estimation to predict frost thickness was developed and found to be accurate within 1%. Second, this model was extended to a heat exchanger surface. This model was validated using test data and used to study the effects of flow imbalance and inlet moisture contamination level. Through this study, it was found that flow mal-distribution within the heat exchanger caused a significant rift between many of the experimental results and the simulation results. Third, in order to eliminate the effects of flow mal-distribution and reduce utility usage, a novel purifier design is studied. It considers a coiled finned-tube design to maximize surface area for heat exchange and mass collection. An initial exergy analysis was done to determine a reasonable reference design geometry. The effects of fin density and heat exchanger mandrel diameter on frost formation and heat exchanger performance were studied. It was found that the novel purifier can hold approximately as much frost as the commercially available purifier, while using significantly less nitrogen for cooling.
일반주제명  
Thermodynamics
일반주제명  
Fluid mechanics
일반주제명  
Mechanical engineering
키워드  
Cryogenics
키워드  
Freeze-out
키워드  
Frost formation
키워드  
Heat exchangers
키워드  
Helium purification
키워드  
Mass transfer
기타저자  
Michigan State University Mechanical Engineering - Doctor of Philosophy
기본자료저록  
Dissertations Abstracts International. 86-05B.
전자적 위치 및 접속  
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MARC

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■035    ▼a(MiAaPQ)AAI31632851
■040    ▼aMiAaPQ▼cMiAaPQ
■0820  ▼a536
■1001  ▼aKroll,  Duncan.▼0(orcid)0000-0003-3958-6558
■24510▼aProcess  Design  and  Analysis  of  a  Cryogenic  Freeze-Out  Heat  Exchanger  for  Helium  Purification
■260    ▼a[Sl]▼bMichigan  State  University▼c2024
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2024
■300    ▼a191  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  86-05,  Section:  B.
■500    ▼aAdvisor:  Engeda,  Abraham.
■5021  ▼aThesis  (Ph.D.)--Michigan  State  University,  2024.
■520    ▼aPurification  systems  are  necessary  to  support  commissioning  and  operation  of  medium  to  large-scale  cryogenic  refrigeration  systems  using  various  cryogenic  working  fluids.  The  present  research  focuses  on  helium  refrigeration  systems  that  operate  at  4.5  K  (which  is  just  above  the  normal  boiling  point  of  helium),  down  to  1.8  K  (which  requires  helium  with  a  vapor  pressure  of  16  mbar).  At  these  very  low  temperatures,  the  presence  of  any  substances  except  helium  (contaminants)  will  result  in  solidification.  Even  trace  amounts  of  these  impurities  in  the  process  fluid  can  block  and/or  change  the  flow  distribution  in  a  refrigerator's  heat  exchangers  and  potentially  damage  rotating  equipment  operating  at  high  speeds.  Therefore,  helium  purifiers  for  these  refrigerators  are  typically  designed  for  a  low  level  of  impurity  (i.e.,  1-100  ppmv)  removal  of  moisture  and  air  components,  since  gross  impurities  are  removed  during  the  initial  clean-up  and  commissioning  of  the  system.Purification  of  the  process  gas  (helium)  is  typically  achieved  by  molecular  sieve  adsorption  beds  at  room  temperature  for  moisture  removal  and  liquid  nitrogen  (LN)  cooled  activated  carbon  adsorption  bed  for  air  (nitrogen/oxygen/argon)  removal.  However,  past  studies  and  operational  experience  show  that  molecular  sieves  are  unable  to  remove  low  level  moisture  contamination  effectively.  Freeze-out  purification  has  great  potential  to  reliably  remove  low-level  moisture  contamination,  but  requires  careful  design.  Typical  commercially  available  freeze-out  purifiers  have  a  much  shorter  operating  time  in  between  regenerations  than  should  be  achievable,  are  not  optimized  for  low  pressure  operation,  and  require  large  amount  of  utilities  like  liquid  nitrogen.  Furthermore,  frost  formation  in  a  purifier  heat  exchanger  is  not  well  understood.  Developing  an  understanding  of  this  process  and  studying  the  design  and  process  parameters  that  can  improve  the  process  for  this  critical  sub-system  is  the  focus  of  this  research.This  work  begins  with  an  experimental  study  of  a  commercially  available  helium  freeze-out  purifier.  It  is  tested  under  practical  operating  conditions  and  controlled  operating  conditions,  under  different  contamination  levels  and  flow  capacity  imbalances.  Auxiliary  equipment  was  designed,  fabricated,  tested,  and  operated  to  achieve  controlled  and  tunable  low-level  moisture  contamination  in  the  helium  stream.  The  performance  and  moisture  capacity  of  the  purifier  heat  exchanger  was  characterized.  Following  the  experimental  study,  a  series  of  theoretical  studies  were  carried  out.  First,  a  heat  and  mass  transfer  model  on  an  isothermal  surface  was  developed  to  establish  a  base-level  understanding  of  frost  formation  and  relate  to  the  existing  literature.  This  model  was  used  to  study  the  effects  of  gas  pressure,  wall  temperature  difference,  reduced  temperature  differential,  absolute  humidity,  and  carrier  gas  on  the  frost  growth  and  mass  transfer.  A  simplified  estimation  to  predict  frost  thickness  was  developed  and  found  to  be  accurate  within  1%.  Second,  this  model  was  extended  to  a  heat  exchanger  surface.  This  model  was  validated  using  test  data  and  used  to  study  the  effects  of  flow  imbalance  and  inlet  moisture  contamination  level.  Through  this  study,  it  was  found  that  flow  mal-distribution  within  the  heat  exchanger  caused  a  significant  rift  between  many  of  the  experimental  results  and  the  simulation  results.  Third,  in  order  to  eliminate  the  effects  of  flow  mal-distribution  and  reduce  utility  usage,  a  novel  purifier  design  is  studied.  It  considers  a  coiled  finned-tube  design  to  maximize  surface  area  for  heat  exchange  and  mass  collection.  An  initial  exergy  analysis  was  done  to  determine  a  reasonable  reference  design  geometry.  The  effects  of  fin  density  and  heat  exchanger  mandrel  diameter  on  frost  formation  and  heat  exchanger  performance  were  studied.  It  was  found  that  the  novel  purifier  can  hold  approximately  as  much  frost  as  the  commercially  available  purifier,  while  using  significantly  less  nitrogen  for  cooling.
■590    ▼aSchool  code:  0128.
■650  4▼aThermodynamics
■650  4▼aFluid  mechanics
■650  4▼aMechanical  engineering
■653    ▼aCryogenics
■653    ▼aFreeze-out
■653    ▼aFrost  formation
■653    ▼aHeat  exchangers
■653    ▼aHelium  purification
■653    ▼aMass  transfer
■690    ▼a0348
■690    ▼a0204
■690    ▼a0548
■71020▼aMichigan  State  University▼bMechanical  Engineering  -  Doctor  of  Philosophy.
■7730  ▼tDissertations  Abstracts  International▼g86-05B.
■790    ▼a0128
■791    ▼aPh.D.
■792    ▼a2024
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17164618▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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