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According to in-situ experimental conditions in supersonic combustion, the correlations between the values of emission intensity ratio of H/O, H/N and the equivalence ratio of premixed kerosene/air mixture in different gas pressures was established.
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To reduce the uncertainty, fracture pressures were established by various methods such as Hubbert and Willis method and Matthews and Kelly method from predicted pore pressures.
In each hemisphere, a flow of air between the tropical high pressures and the intertropical low pressures is established.
An early warning criterion system which includes stress, water temperature and water pressure was established.
The relationship between the maximum wind speed and the minimum central pressure was established through second-order polynomial fitting.
Initially, the evolution of effective stresses with pore pressure was established based on in-situ piezometer measurements of an instrumented site, and laboratory data.
The normalized stress-strain relationship considering the influence of freeze-thaw cycling as well as confining pressure was established and can predict the stress-strain relation well compared with the experimental data.
A power relationship between the shear wave velocity and applied confining pressure was established in laboratory tests to evaluate the average stress state of constructed aggregate layers by using shear wave transducers.
Finally, a mathematical model of two-phase relative permeability considering the dynamic capillary pressure was established.
Secondly, a mathematical model of two-phase relative permeability considering the dynamic capillary pressure was established.
Then a two-phase flow model considering the dynamic capillary pressure was established to analyze the influence of dynamic capillary pressure on water saturation distribution.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com