Exact(1)
While therefore being central to the work, the modeling component raises the following concerns: 1) Model descriptions: The presentation in Supplementary file 1, section 2 is partially incomplete and it contains errors that may impact the overall conclusions (for detailed assessment, the authors should provide models and experimental data in appropriate numerical exchange formats).
Similar(59)
In this paper, the authors describe a common, second phase of numerical simulation: the exchange of solution efficiency for model enhancement.
In numerical simulators, fluid exchange between a well and reservoir can be specified using a spectrum of approaches that vary from totally ignoring the reservoir conditions to fully considering reservoir conditions and well processes.
A 3D numerical model of proton exchange membrane fuel cell (PEMFC) with the installation of baffle plates is developed.
This work establishes three-dimensional transient numerical models of proton exchange membrane fuel cells (PEMFCs) with different cathode flow field designs.
Recent experimental and numerical investigations on proton exchange membrane fuel cells (PEMFCs) emphasize water management as a critical factor in the design of robust, high efficiency systems.
Diffusive gradients in thin films (DGT) technique has been newly designed for the identification of formation mechanisms of "internal phosphorus (P -loading" and the numerical simulation of P -loading andDGtheedimenumericalace in Lake Dianchi.
Numerical simulation shows charge exchange neutral impacts produce a delta-v on objects on the order of 3.8 x 10−11 m/s at a distance of 1 km from the center of the expelled gas in a 1,000 km orbit.
Numerical simulation of cation exchange and mineral precipitation/dissolution reactions using the multiphase reactive geochemical transport code TOUGHREACT has provided important insight into the distribution of 90Sr among layers of geologic strata in a complex vadose zone at the U. S. Department of Energy's Idaho National Laboratory.
The experimental technique can be used for validation of other analytical solutions, numerical models and heat-exchange engineering designs based on metal foam and similar porous media.
The discrepancies considering the heat exchanged between numerical results and experimental data are under 15% in most cases for all these components except the condenser, where the discrepancies are higher.
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