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Three-dimensional computations are presented using a multiphase, nonequilibrium mass transfer model, which show the effect of well placement and geometry on containment of the dissolved LNAPL plume and the dissolution of the NAPL phase.
The model will be applied on a real example, and we shall present some of the results obtained by our model which show how it facilitates a better use of assets and a significant reduction in the use of fuel, therefore allowing a more environmentally friendly service.
Comparing with cumulative productions of a hydraulically-fractured horizontal well in Xinjiang Oilfield Company, the difference is 95 m3 for heterogeneous model but raises to 1750 m3 for homogeneous model, which show heterogeneous model have better predicting ability and two-zone assumption has enough accuracy in application.
In particular, the paper illustrates two applications of a VCB model, which show the model capabilities of simulating TRVs due to opening/closing operation, namely the switching of large electrical motors and the switching of cables collecting offshore wind farms (OWFs).
Although such a dramatic rise in temperature may seem unlikely in the near term, such conditions are possible based on paleoclimate data and a new computer model, which show that the ice sheet has collapsed multiple times in the past.
This is further supported by the results from the culicine model which show that including only the mating function will result in much lower worm breakpoint prevalence thresholds (Fig. 2B).
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Prediction accuracy is compared with the conventional statistical model, which shows poorer performance on average.
The proposed concept was compared with reported simulation results from a diffusion model which showed reasonable fit with data.
This approach is first applied to a very simple model, which shows the basic viability of the method.
The results are supported by applying a two-phase numerical model which shows good agreement with the analytical approach.
The proposal is quantitatively assessed by an agent-based computer model, which shows significant reductions in total times for evacuation.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com