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Overcoming the Limits of Methane Bioconversion: Computational Tools for the Industrialization of Polyhydroxybutyrate (PHB) from Methane
Overcoming the Limits of Methane Bioconversion: Computational Tools for the Industrializat...
Overcoming the Limits of Methane Bioconversion: Computational Tools for the Industrialization of Polyhydroxybutyrate (PHB) from Methane

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자료유형  
 학위논문 서양
최종처리일시  
20260209102835
ISBN  
9798311950572
DDC  
000
저자명  
Meraz, Jorge Luis.
서명/저자  
Overcoming the Limits of Methane Bioconversion: Computational Tools for the Industrialization of Polyhydroxybutyrate (PHB) from Methane
발행사항  
[Sl] : Stanford University, 2023
발행사항  
Ann Arbor : ProQuest Dissertations & Theses, 2023
형태사항  
143 p
주기사항  
Source: Dissertations Abstracts International, Volume: 86-12, Section: B.
주기사항  
Advisor: Criddle, Craig.
학위논문주기  
Thesis (Ph.D.)--Stanford University, 2023.
초록/해제  
요약Humanity's dependency on fossil-derived products has led to global pollution across our land, water, and air environments. In particular, petroleum-based plastic pollution is pervasive across all environments, with significant contributions to global oceanic plastic pollution and greenhouse gas emissions. Current trends in conventional fossil carbon-based plastics manufacturing continue polluting at an alarming rate, requiring sustainable alternatives to chemical-based plastics. Sustainable material needs, both in quantity and quality, can be met via use of biological organisms. Methanotrophic organisms are a promising biotechnology that can address environmental concerns of plastics pollution and greenhouse gas emissions. Methanotrophs grow by consuming a potent greenhouse gas, methane, as their sole source of carbon and energy. As these organisms grow, they can eventually transform excess methane into a biodegradable plastic, polyhydroxybutyrate (PHB). PHB has similar material properties to conventional chemical-based plastics, showing promise as a replacement to fossil fuel-derived plastics. Using methane as a carbon feedstock for PHB is attractive due to its relative abundance, low-cost, and climate mitigation potential. Methane has a global warming potential that is over 20 times that of carbon dioxide (CO2), removing it before it enters the atmosphere is essential mitigate continued climate change impacts. This dissertation investigates the potential of methanotrophic PHB production via a critical review and a series of computational studies that include equilibrium, dynamic, and techno-economic analysis (TEA) models.This thesis comprises 3 research chapters that synthesize and evaluate the potential of methane based PHB production. Chapter 2 highlights methane's potential as a feedstock, synthesizing current trends in engineered systems that utilize or have the potential to utilize methane effectively as a substrate. In addition, chapter 2 summarizes methanotrophic organisms' metabolic diversity and broad range of observed microbial kinetic parameters (e.g., specific growth rate, yield). Finally, in chapter 2, using fundamentals of biotechnology and chemical engineering, an equilibrium model is developed to assess rate limitations of methanotrophic growth across a range of observed mass transfer and volumetric consumption rates. Next, in Chapter 3, a dynamic first principles PHB accumulation model is developed. The model considers physical, chemical, and biological kinetics of a methanotrophic bioreactor and is used to evaluate PHB productivity and energy efficiency considering a broad range of bioreactor operating conditions. Chapter 4 is techno-economic analysis model that investigates how the design of industrial scale bioreactor systems impact PHB cost, in addition to considering the social cost of carbon (SCC) from the PHB production process. The model is used to analyze cost and SCC impacts considering various physical design approaches that include the size of the fermenter, the rate of mixing, whether the system is pressurized, and the size and type of centrifuge and dryer. Additionally, the model incorporates the process impacts of methanotrophic microbial kinetics. Together, these research chapters highlight the potential of methane and methanotrophs as a robust technology platform that can produce sustainable, biodegradable alternatives to chemical-based plastics, while mitigating the release of a potent greenhouse gas.
일반주제명  
Energy efficiency
일반주제명  
Greenhouse gases
일반주제명  
Alternative energy
일반주제명  
Computational chemistry
일반주제명  
Chemical engineering
기타저자  
Stanford University.
기본자료저록  
Dissertations Abstracts International. 86-12B.
전자적 위치 및 접속  
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MARC

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■006m          o    d                
■007cr#unu||||||||
■020    ▼a9798311950572
■035    ▼a(MiAaPQ)AAI31974590
■035    ▼a(MiAaPQ)Stanfordcj243cb1824
■040    ▼aMiAaPQ▼cMiAaPQ
■0820  ▼a000
■1001  ▼aMeraz,  Jorge  Luis.
■24510▼aOvercoming  the  Limits  of  Methane  Bioconversion:  Computational  Tools  for  the  Industrialization  of  Polyhydroxybutyrate  (PHB)  from  Methane
■260    ▼a[Sl]▼bStanford  University▼c2023
■260  1▼aAnn  Arbor▼bProQuest  Dissertations  &  Theses▼c2023
■300    ▼a143  p
■500    ▼aSource:  Dissertations  Abstracts  International,  Volume:  86-12,  Section:  B.
■500    ▼aAdvisor:  Criddle,  Craig.
■5021  ▼aThesis  (Ph.D.)--Stanford  University,  2023.
■520    ▼aHumanity's  dependency  on  fossil-derived  products  has  led  to  global  pollution  across  our  land,  water,  and  air  environments.  In  particular,  petroleum-based  plastic  pollution  is  pervasive  across  all  environments,  with  significant  contributions  to  global  oceanic  plastic  pollution  and  greenhouse  gas  emissions.  Current  trends  in  conventional  fossil  carbon-based  plastics  manufacturing  continue  polluting  at  an  alarming  rate,  requiring  sustainable  alternatives  to  chemical-based  plastics.  Sustainable  material  needs,  both  in  quantity  and  quality,  can  be  met  via  use  of  biological  organisms.  Methanotrophic  organisms  are  a  promising  biotechnology  that  can  address  environmental  concerns  of  plastics  pollution  and  greenhouse  gas  emissions.  Methanotrophs  grow  by  consuming  a  potent  greenhouse  gas,  methane,  as  their  sole  source  of  carbon  and  energy.  As  these  organisms  grow,  they  can  eventually  transform  excess  methane  into  a  biodegradable  plastic,  polyhydroxybutyrate  (PHB).  PHB  has  similar  material  properties  to  conventional  chemical-based  plastics,  showing  promise  as  a  replacement  to  fossil  fuel-derived  plastics.  Using  methane  as  a  carbon  feedstock  for  PHB  is  attractive  due  to  its  relative  abundance,  low-cost,  and  climate  mitigation  potential.  Methane  has  a  global  warming  potential  that  is  over  20  times  that  of  carbon  dioxide  (CO2),  removing  it  before  it  enters  the  atmosphere  is  essential  mitigate  continued  climate  change  impacts.  This  dissertation  investigates  the  potential  of  methanotrophic  PHB  production  via  a  critical  review  and  a  series  of  computational  studies  that  include  equilibrium,  dynamic,  and  techno-economic  analysis  (TEA)  models.This  thesis  comprises  3  research  chapters  that  synthesize  and  evaluate  the  potential  of  methane  based  PHB  production.  Chapter  2  highlights  methane's  potential  as  a  feedstock,  synthesizing  current  trends  in  engineered  systems  that  utilize  or  have  the  potential  to  utilize  methane  effectively  as  a  substrate.  In  addition,  chapter  2  summarizes  methanotrophic  organisms'  metabolic  diversity  and  broad  range  of  observed  microbial  kinetic  parameters  (e.g.,  specific  growth  rate,  yield).  Finally,  in  chapter  2,  using  fundamentals  of  biotechnology  and  chemical  engineering,  an  equilibrium  model  is  developed  to  assess  rate  limitations  of  methanotrophic  growth  across  a  range  of  observed  mass  transfer  and  volumetric  consumption  rates.  Next,  in  Chapter  3,  a  dynamic  first  principles  PHB  accumulation  model  is  developed.  The  model  considers  physical,  chemical,  and  biological  kinetics  of  a  methanotrophic  bioreactor  and  is  used  to  evaluate  PHB  productivity  and  energy  efficiency  considering  a  broad  range  of  bioreactor  operating  conditions.  Chapter  4  is  techno-economic  analysis  model  that  investigates  how  the  design  of  industrial  scale  bioreactor  systems  impact  PHB  cost,  in  addition  to  considering  the  social  cost  of  carbon  (SCC)  from  the  PHB  production  process.  The  model  is  used  to  analyze  cost  and  SCC  impacts  considering  various  physical  design  approaches  that  include  the  size  of  the  fermenter,  the  rate  of  mixing,  whether  the  system  is  pressurized,  and  the  size  and  type  of  centrifuge  and  dryer.  Additionally,  the  model  incorporates  the  process  impacts  of  methanotrophic  microbial  kinetics.  Together,  these  research  chapters  highlight  the  potential  of  methane  and  methanotrophs  as  a  robust  technology  platform  that  can  produce  sustainable,  biodegradable  alternatives  to  chemical-based  plastics,  while  mitigating  the  release  of  a  potent  greenhouse  gas.
■590    ▼aSchool  code:  0212.
■650  4▼aEnergy  efficiency
■650  4▼aGreenhouse  gases
■650  4▼aAlternative  energy
■650  4▼aComputational  chemistry
■650  4▼aChemical  engineering
■690    ▼a0542
■690    ▼a0219
■690    ▼a0363
■71020▼aStanford  University.
■7730  ▼tDissertations  Abstracts  International▼g86-12B.
■790    ▼a0212
■791    ▼aPh.D.
■792    ▼a2023
■793    ▼aEnglish
■85640▼uhttp://www.riss.kr/pdu/ddodLink.do?id=T17365837▼nKERIS▼z이  자료의  원문은  한국교육학술정보원에서  제공합니다.

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