Search results for "Surface response methodology"

showing 2 items of 2 documents

Optimization of electrospraying conditions for the microencapsulation of probiotics and evaluation of their resistance during storage and in-vitro di…

2016

Electrospraying has recently emerged as a novel microencapsulation technique with potential for the protection of probiotics. However, research efforts are still needed to minimize the viability loss observed during the processing of sensitive strains, and to maximize productivity. The aim of the present work was the optimization of the electrospraying conditions for the microencapsulation of a model probiotic microorganism, Lactobacillus plantarum, within a whey protein concentrate matrix. In a pre-optimization step, the convenience of encapsulating fresh culture instead of freeze-dried bacteria was established. Additionally, a surface response methodology was used to study the effect of t…

0301 basic medicineWhey proteinmedicine.medical_treatmentMicroorganismProbioticlaw.invention03 medical and health sciencesProbiotic0404 agricultural biotechnologylawmedicineViability assayFood scienceElectrospraying030109 nutrition & dieteticsbiologyChemistryPrebiotic04 agricultural and veterinary sciencesIn vitro digestionbiology.organism_classification040401 food scienceWhey proteinSurface response methodologyL. plantarumEncapsulationLactobacillus plantarumFood Science
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Design of experiment approach applied to reducing and oxidizing tolerance of anode supported solid oxide fuel cell. Part I: Microstructure optimizati…

2011

The main drawback of Ni/YSZ anode supports for solid oxide fuel cell application is their low tolerance to reducing and oxidizing (RedOx) atmosphere changes, owing to the Ni/NiO volume variation. This work describes a structured approach based on design of experiments for optimizing the microstructure for RedOx stability enhancement. A full factorial hypercube design and the response surface methodology are applied with the variables and their variation range defined as: (1) NiO proportion (40-60 wt% of the ceramic powders), (2) pore-former proportion (0-30 wt% corresponding to 0-64 vol.%), (3) NiO particle size (0.5-8 mu m) and (4) 8YSZ particle size (0.6-9 mu m).

ConductivityMaterials scienceDesign of experimentRenewable Energy Sustainability and the EnvironmentNon-blocking I/OEnergy Engineering and Power TechnologyRedOx stabilityCermetMicrostructureAnodeChemical engineeringSolid oxide fuel cellOxidizing agentCermetsSolid oxide fuel cellNi-YSZ anode supported cellResponse surface methodologyParticle sizeElectrical and Electronic EngineeringPhysical and Theoretical ChemistrySurface response methodologySofc AnodeReduction
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