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The effective dynamic conductivity of Ge quantum dot layer was determined by measuring the transmission coefficient spectra of heterostructures grown on Si 001) substrates.
A new model of dynamic conductivity fracture with pressure-dependent permeability has been established, which has the same form as the model of dynamic conductivity fracture with non-Darcy flow.
The frequency dependence of the dynamic conductivity at different delay times is analyzed in term of Drude-Smith model.
The measurements of the terahertz dynamic conductivity and absorptivity of Ge/Si heterostructures at room and cryogenic temperatures (down to 5 K) have been performed using the spectrometer based on backward-wave oscillators (BWO) as radiation sources.
Thus, the solution procedure of a dynamic conductivity fracture with non-Darcy flow can be introduced to obtain the distributions of dimensionless pressure, flow rate and fracture conductivity along the fracture.
The main objective of this study is to develop a new semi-analytical model in Laplace domain to reveal the mechanism of fluid flow in a dynamic conductivity fracture with pressure-dependent permeability under constant wellbore pressure condition.
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With the production of hydrocarbons from reservoirs, fractures will gradually close, resulting in dynamic conductivities along the fracture.
A dynamic thermal conductivity test setup was devised and thermal conductivity measurements were performed on both nanofluids.
In addition, a dynamic thermal conductivity setup was developed and used to measure the thermal conductivity performance of the nanofluids.
Figure 3 Dynamic thermal conductivity data.
In this study, a flow cell experimental setup (Figure 1) was used for the evaluation of dynamic thermal conductivity of the nanofluids.
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