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Scale-Up Challenges in Chemical Engineering: The Role of ChemicalEngineers in the 21st Century
Plan Our activities The challenges for chemicalengineers A systematicapproach Industrialexamples
At a glance Pilot & scale up
Whyischemical engineering becomingcritical in thiscentury
Accessibility of the feedstock
Complexity of the feedstock
Complexity of the feedstock
Process design iseasy…
The model approach Lab Pilot Model -Fluidizationvelocities -Mass transfer coefficients -Pressure drops -MIXING -Bubbling/spargers -Entrainment -Foaming -Controllability/stability -Nozzles locations -Diffusion -Tray locations -Separationefficiencies -Product samples Conservation equations Constitutives equations Set boundary conditions Set operating conditions -Reactionkinetics -Heat of reactions -Equilibriumcurves -Mass transfercoeff. -Solubilityisotherms -Activity coefficients -Heat of solutions -Diffusivity coefficients -Operating temp/press -Rheology 𝑃𝐷𝐸/𝑂𝐷𝐸  
Heattransfer in pyrolisiskiln No mixing Heat conduction 𝑑𝑇𝑑𝑡−𝑘𝐶𝑝𝜌𝛻2𝑇=0   𝑇∞   Boundary conditions 𝑆1   𝑘𝛻𝑇=𝑅 on 𝑆1   𝑘𝛻𝑇=0 on 𝑆2   𝑆2   𝑅=𝜎𝑆1(𝑇∞4−𝑇𝑆14)   𝛿   𝑇∞   𝑇0     𝑇   𝛿  
Lowtemperature canola protein extraction –extracting value fromlow value streams Oil: 1$/kg Meal: 0,20$/kg Meal: 0,20$/kg Oil: 1$/kg Isolates: 8 $/kg
Model application in process design– Phosporusremoval The Biodome Existingprocess Fish farms Packedbedreactor Phosphorus + water Water
The mechanisminvestigated 𝑃+𝑆𝑐−𝑟𝑃𝑃−𝑆𝑐   1) Adsorption of Phosphorus ,[object Object]
Adsorption rate (−𝑟𝑃)2) Reaction of phosphoruswith lime to formhydroxylapatite   6𝑃𝑂43−+10𝐶𝑎2++2𝑂𝐻−−𝑟𝑃𝐶𝑎10𝑃𝑂46∗6(𝑂𝐻)2   Development of the model for 1-dimensional transientisothermalpackedbedreactor (no volume change) 𝑑𝐶𝑝𝑑𝑡=𝐹𝑉(𝐶𝑝,0−𝐶𝑝)+𝑟𝑝   Resolution 𝑟𝑝=−𝑘𝐶𝑝𝛼𝐶𝐶𝑎𝑂𝛽   𝑘=𝑘0exp−𝐴𝑅𝑇  
Conclusion – Process design challenges Variability of the feedstock Need to extract value fromwastestreams Cost and variability of energy sources Environmentalregulations Water, air Rapid time to market Requiresqualifiedchemicalengineers AND a systematicprocess design approach
Scale-Up Challenges in Chemical Engineering: The Role of ChemicalEngineers in the 21st Century
Model application in process design: New processfeasibility - bioreactors Wheyproteinconcentrate Candy waste Ethanol Enzymes Yeasts Wheyproteins
The mechanisminvestigated Β-Galactosidase Lactose Glucose Galactose Yeast EtOH -13% Distillation/ Molecularsieves EtOH -200 proof
The scale change impacts   In Gulliver's travel  the hero arrives in a world with very tiny people. Can a scaled down human being can survive? Then he arrives in a world with giants. Can a scaled up human being survive ?
The scale change impacts  Ants can support 10 times their own weight Water strider can walk on water but not a man
The scale change relations Scalerelationships – withgeometricalsimilarities Several implications in fluidmechanics, heattransfer and mass transfer.
Common dimensionless groups – the chemicalengineer’sapproach

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Scale Up Challenges in Chemical Engineering: The Role of Chemical Engineers in the 21st Century

  • 1. Scale-Up Challenges in Chemical Engineering: The Role of ChemicalEngineers in the 21st Century
  • 2. Plan Our activities The challenges for chemicalengineers A systematicapproach Industrialexamples
  • 3. At a glance Pilot & scale up
  • 6. Complexity of the feedstock
  • 7. Complexity of the feedstock
  • 9. The model approach Lab Pilot Model -Fluidizationvelocities -Mass transfer coefficients -Pressure drops -MIXING -Bubbling/spargers -Entrainment -Foaming -Controllability/stability -Nozzles locations -Diffusion -Tray locations -Separationefficiencies -Product samples Conservation equations Constitutives equations Set boundary conditions Set operating conditions -Reactionkinetics -Heat of reactions -Equilibriumcurves -Mass transfercoeff. -Solubilityisotherms -Activity coefficients -Heat of solutions -Diffusivity coefficients -Operating temp/press -Rheology 𝑃𝐷𝐸/𝑂𝐷𝐸  
  • 10. Heattransfer in pyrolisiskiln No mixing Heat conduction 𝑑𝑇𝑑𝑡−𝑘𝐶𝑝𝜌𝛻2𝑇=0   𝑇∞   Boundary conditions 𝑆1   𝑘𝛻𝑇=𝑅 on 𝑆1   𝑘𝛻𝑇=0 on 𝑆2   𝑆2   𝑅=𝜎𝑆1(𝑇∞4−𝑇𝑆14)   𝛿   𝑇∞   𝑇0     𝑇   𝛿  
  • 11. Lowtemperature canola protein extraction –extracting value fromlow value streams Oil: 1$/kg Meal: 0,20$/kg Meal: 0,20$/kg Oil: 1$/kg Isolates: 8 $/kg
  • 12. Model application in process design– Phosporusremoval The Biodome Existingprocess Fish farms Packedbedreactor Phosphorus + water Water
  • 13.
  • 14. Adsorption rate (−𝑟𝑃)2) Reaction of phosphoruswith lime to formhydroxylapatite   6𝑃𝑂43−+10𝐶𝑎2++2𝑂𝐻−−𝑟𝑃𝐶𝑎10𝑃𝑂46∗6(𝑂𝐻)2   Development of the model for 1-dimensional transientisothermalpackedbedreactor (no volume change) 𝑑𝐶𝑝𝑑𝑡=𝐹𝑉(𝐶𝑝,0−𝐶𝑝)+𝑟𝑝   Resolution 𝑟𝑝=−𝑘𝐶𝑝𝛼𝐶𝐶𝑎𝑂𝛽   𝑘=𝑘0exp−𝐴𝑅𝑇  
  • 15. Conclusion – Process design challenges Variability of the feedstock Need to extract value fromwastestreams Cost and variability of energy sources Environmentalregulations Water, air Rapid time to market Requiresqualifiedchemicalengineers AND a systematicprocess design approach
  • 16. Scale-Up Challenges in Chemical Engineering: The Role of ChemicalEngineers in the 21st Century
  • 17.
  • 18. Model application in process design: New processfeasibility - bioreactors Wheyproteinconcentrate Candy waste Ethanol Enzymes Yeasts Wheyproteins
  • 19. The mechanisminvestigated Β-Galactosidase Lactose Glucose Galactose Yeast EtOH -13% Distillation/ Molecularsieves EtOH -200 proof
  • 20. The scale change impacts In Gulliver's travel  the hero arrives in a world with very tiny people. Can a scaled down human being can survive? Then he arrives in a world with giants. Can a scaled up human being survive ?
  • 21. The scale change impacts Ants can support 10 times their own weight Water strider can walk on water but not a man
  • 22. The scale change relations Scalerelationships – withgeometricalsimilarities Several implications in fluidmechanics, heattransfer and mass transfer.
  • 23. Common dimensionless groups – the chemicalengineer’sapproach