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Ilk (2010), after analyzing production (rate) data from shale gas wells, developed a power-law model and a method of applying the model that arbitrarily switched from the power-law decline behavior to an exponential decline behavior.
The production data were carefully analyzed to identify the flow regimes and understand the overall decline behavior.
The effects of operating conditions were found to have a significant effect on the flux decline behavior and onset of gel layer formation.
Experimental results show that operating conditions have significant effect on the onset of cake formation as well as on the flux decline behavior.
During ultrafiltration enzyme pre-treated apple juice, the flux decline behavior is modeled using Hermia's approach for constant pressure dead-end filtration laws.
Although the study of Arps (1970) is completely empirical, its simplicity and the fact that it requires no knowledge of reservoir or well parameters make its use widespread in the upstream petroleum industry, particularly for production prediction and estimating reserves from production decline behavior.
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This work is important to understand the transient pressure and rate decline behaviors of hydraulic fractured vertical wells with finite conductivity in shale gas reservoirs.
The model developed well described the pressure rising behaviors in constant flux filtration and the flux decline behaviors in constant pressure filtration.
The results obtained in this paper have important significance to understand the transient pressure and rate decline behaviors of multi-fractured horizontal well in this reservoir.
Good agreement between the simulation results and experimental data is achieved, demonstrating that the model accurately captures voltage decline behaviors due to accumulated Li2O2 in the air electrode.
The pressure rising behaviors in constant flux filtration were examined under different filtration rate and solid mass fraction conditions, and the flux decline behaviors in constant pressure filtration were examined under different pressure and solid mass fraction conditions.
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