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DME-enhanced waterflood (DEW), indicated in Fig. 1, has a totally different transport mechanism compared to water and other gas flooding due to the unique characteristics of DME.
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The dew point indicates the air's water content.
Compositional modeling and simulation of the DEW process indicated the unique solubility effect of DME on EOR performance.
Contrarily, it increased with time since the previous dew event indicating that dissolution of dust particles may have a substantial contribution to the chemical composition of dew.
a, c Green, blue and red lines indicate temperature, dew point temperature and potential temperature, respectively.
The results of the simulations indicated that cooling (dew point and wet bulb) effectiveness and energy efficiency are largely dependent on the dimensions of the airflow passages, air velocity and working-to-intake-air ratio, and less dependent on the temperature of the feed water.
The experimental results indicate that the dew point effectiveness and the wet bulb effectiveness vary in the range of 62 85% and 92 120%, respectively with inlet air temperature variation from 25to4545 °C at different humidity ratio ranging from 11 g/kg to 19g/kg.
A high relative humidity indicates that the dew point is closer to the current air temperature.
The results indicated that the proposed measurement system was feasible for the frequency extraction of the resonant dew point sensor.
By passing humidified air with a specific dew point through the capacitor cavity, the capacitance is shown to increase with dew point increases indicating water sorption is occurring.
The modeling results confirm the experimental results, and both methods indicate that significant productivity loss can occur in retrograde gas condensate reservoirs when the flowing bottom-hole pressure falls below dew point pressure.
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