Analytical and Computational Modeling of Relaxation Times for Non-Newtonian Fluids

Fluids Pub Date : 2024-07-20 DOI:10.3390/fluids9070165
Sheldon Wang, Dalong Gao, Alexandria Wester, Kalyb Beaver, Kuwin Wyke
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Abstract

With the availability of efficient and sophisticated finite element analysis (FEA) and computational fluid dynamics (CFD) tools, engineering designs are becoming more software-driven and simulation-based. However, the insights relevant to engineering designs tend to be hidden within massive temporal and spatial data produced with full-fledged three-dimensional simulations. In this paper, we present a preliminary study of the controlled intermittent dispensing of a typical non-Newtonian glue employed in the manufacturing of electric vehicles (EVs). The focus of the study is on the scaling issues derived from different computational and analytical models of interest and importance to the precision control of this non-Newtonian fluid, the lowest dynamic viscosity of which at extremely high shear rates is nearly four million times that of water. More specifically, the abrupt change of the inlet pressure with a constant outlet or ambient pressure and various modeling strategies for transient viscous internal flow with both Newtonian and non-Newtonian fluids are modeled and compared. The analytical and computational results of the developing Newtonian fluid, i.e., water, are derived and computed for validation and verification purposes before the actual applications to the developing non-Newtonian fluid. The concept of a well-established relaxation time before the onset of the steady solution for Newtonian fluids has been validated with both analytical and computational approaches before its expansion and adoption to non-Newtonian fluids with complex rheological behaviors. Other issues attributed to transient operations and precision controls of non-Newtonian fluid delivery involve the pressure pulse and pressure wave propagation within the flexible pipe with compressible or almost incompressible non-Newtonian fluids with a constant pressure at the outlet and a constant mass flow rate or average axial velocity at the inlet, which will be addressed in a separate paper.
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非牛顿流体松弛时间的分析和计算模型
随着高效、复杂的有限元分析(FEA)和计算流体动力学(CFD)工具的出现,工程设计正变得越来越以软件驱动和模拟为基础。然而,与工程设计相关的洞察力往往隐藏在全面三维模拟产生的大量时空数据中。在本文中,我们对电动汽车(EV)制造中使用的典型非牛顿胶的受控间歇点胶进行了初步研究。研究的重点在于从不同的计算和分析模型中得出的缩放问题,这些模型对于精确控制这种非牛顿流体具有重要意义,因为这种流体在极高剪切速率下的最低动态粘度几乎是水的 400 万倍。更具体地说,对牛顿流体和非牛顿流体在出口或环境压力不变的情况下进口压力的突然变化以及瞬态粘性内部流动的各种建模策略进行了建模和比较。在实际应用于发展中的非牛顿流体之前,对发展中的牛顿流体(即水)的分析和计算结果进行了推导和计算,以进行验证和确认。牛顿流体稳定解开始前的既定弛豫时间概念已通过分析和计算方法进行了验证,然后将其扩展并应用于具有复杂流变行为的非牛顿流体。与非牛顿流体输送的瞬态运行和精确控制有关的其他问题涉及压力脉冲和压力波在柔性管道内的传播,这些流体为可压缩或几乎不可压缩的非牛顿流体,出口压力恒定,入口质量流量或平均轴向速度恒定。
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