纳米/埃级通道中材料特性的启发式建模:整合实验观察和MD模拟

IF 2.3 4区 工程技术 Q2 INSTRUMENTS & INSTRUMENTATION
Himanshu Mishra, Ashish Garg
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引用次数: 0

摘要

在本文中,我们提出了一个统一的框架来描述纳米尺度通道内的三个关键原子尺度流体特性-密度,粘度和滑移长度。这些明显偏离体行为的特性可以用简单的幂律模型表示为纳米通道高度的函数。所提出的框架准确地捕获实验和模拟数据,为现有的复杂或不同的模型提供更灵活和可解释的替代方案。我们的模型的主要优点在于它的数学性质。连续性和连续导数确保无缝实施到数值模拟和理论预测,导致更容易理解,稳定和准确的结果。此外,该模型遵循物理原理,随着通道大小的增加,预测收敛到大块属性。此外,与现有的指数模型相比,统一的幂律建模方法具有许多优点。它通过捕获非线性关系和不同的数据曲率提供灵活性,通过物理上有意义的参数提供可解释性,以及与其他函数集成以模拟复杂现象的适应性。它的简单性便于参数估计、模型解释和计算效率。此外,它的鲁棒性使其对异常值和噪声不太敏感,同时保持更少的直接对应于底层物理和标度定律的参数。因此,该模型的简单性、平滑性、物理有效性和通用性使其成为有效设计和优化纳米级器件的重要启发式工具,在广泛的应用中利用理论和模拟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heuristic modeling of material properties in Nano/Angstrom-scale channels: integrating experimental observations and MD simulations

In this paper, we propose a unified framework to describe three key atomic-scale fluid properties-density, viscosity, and slip length-within nanoscale channels. These properties, which deviate significantly from bulk behavior, are expressed using simple power-law models as functions of the nanochannel height. The proposed framework accurately captures experimental and simulation data, providing a more flexible and interpretable alternative to existing complex or disparate models. The key advantage of our model lies in its mathematical properties. Continuity and a continuous derivative ensure seamless implementation into numerical simulations and theoretical predictions, leading to more understandable, stable, and accurate results. Additionally, the model adheres to physical principles, predicting convergence to bulk properties as channel size increases. Further, compared to existing exponential models, the unified power-law modeling approach offers several advantages. It provides flexibility by capturing nonlinear relationships and diverse data curvatures, interpretability through physically meaningful parameters, and adaptability for integration with other functions to model complex phenomena. Its simplicity facilitates easy parameter estimation, model interpretation, and computational efficiency. Moreover, its robustness makes it less sensitive to outliers and noise while maintaining fewer parameters that directly correspond to underlying physics and scaling laws. Hence, the proposed model’s simplicity, smoothness, physical validity, and generality establish it as a significant heuristic tool for the efficient design and optimization of nanoscale devices, utilizing theory and simulations across a wide range of applications.

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来源期刊
Microfluidics and Nanofluidics
Microfluidics and Nanofluidics 工程技术-纳米科技
CiteScore
4.80
自引率
3.60%
发文量
97
审稿时长
2 months
期刊介绍: Microfluidics and Nanofluidics is an international peer-reviewed journal that aims to publish papers in all aspects of microfluidics, nanofluidics and lab-on-a-chip science and technology. The objectives of the journal are to (1) provide an overview of the current state of the research and development in microfluidics, nanofluidics and lab-on-a-chip devices, (2) improve the fundamental understanding of microfluidic and nanofluidic phenomena, and (3) discuss applications of microfluidics, nanofluidics and lab-on-a-chip devices. Topics covered in this journal include: 1.000 Fundamental principles of micro- and nanoscale phenomena like, flow, mass transport and reactions 3.000 Theoretical models and numerical simulation with experimental and/or analytical proof 4.000 Novel measurement & characterization technologies 5.000 Devices (actuators and sensors) 6.000 New unit-operations for dedicated microfluidic platforms 7.000 Lab-on-a-Chip applications 8.000 Microfabrication technologies and materials Please note, Microfluidics and Nanofluidics does not publish manuscripts studying pure microscale heat transfer since there are many journals that cover this field of research (Journal of Heat Transfer, Journal of Heat and Mass Transfer, Journal of Heat and Fluid Flow, etc.).
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