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Exact(12)
The thermal properties of the PLGA/PMEH membrane were determined using a differential scanning calorimeter.
The performance of the microsensors containing three conducting polymers: polyaniline (PANI), polyanisidine (PANIZ), and polypyrrole (PPy) in a membrane were determined.
A dusty gas model was used to successfully predict the permeating flux in both the DCMD and VMD processes, and the mass transfer mechanisms through the membrane were determined.
Diffusion coefficients of counter ions (Cl− and NO3−) in the membrane were determined from a mathematical model based on the Nernst Planck diffusion convection theory: the mean diffusion coefficients in the membrane were obtained by fitting the (conductivity vs. concentration) curves with the Nernst Planck equation.
The diameters of 200 pores of each membrane were determined using the image J software.
Water content and porosity of the membrane were determined in terms of amount of water absorbed by the membrane.
Similar(48)
The permeability of the used membrane was determined experimentally.
The pore size distribution of the membrane was determined.
The performance of the hybrid membrane was determined under dynamic conditions.
The performance of the reference microelectrodes with different ionic liquid content in the membrane was determined.
The physico-chemical of the membrane was determined using SEM, TGA and XRD studies.
More suggestions(15)
surface were determined
envelope were determined
mat were determined
bladder were determined
lining were determined
membrane were analysed
membrane were visualized
membrane were calculated
membrane were placed
membrane were removed
membrane were tested
membrane were formed
membrane was determined
membrane were used
membrane were pressed
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