Transverse flow under oscillating stimulation in helical square ducts with cochlea-like geometrical curvature and torsion

IF 2.5 3区 工程技术 Q2 MECHANICS European Journal of Mechanics B-fluids Pub Date : 2024-07-05 DOI:10.1016/j.euromechflu.2024.07.001
N.C. Harte , D. Obrist , M. Caversaccio , G.P.R. Lajoinie , W. Wimmer
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Abstract

The cochlea, situated within the inner ear, is a spiral-shaped, liquid-filled organ responsible for hearing. The physiological significance of its shape remains uncertain. Previous research has scarcely addressed the occurrence of transverse flow within the cochlea, particularly in relation to its unique shape. This study aims to investigate the impact of the geometric features of the cochlea on fluid dynamics by characterizing transverse flow induced by harmonically oscillating axial flow in square ducts with curvature and torsion resembling human cochlear anatomy. We examined four geometries to investigate curvature and torsion effects on axial and transverse flow components. Twelve frequencies from 0.125 Hz to 256 Hz were studied, covering infrasound and low-frequency hearing, with mean inlet velocity amplitudes representing levels expected for normal conversation or louder situations. Our simulations show that torsion contributes significantly to transverse flow in unsteady conditions, and that its contribution increases with increasing oscillation frequency. Curvature alone has a small effect on transverse flow strength, which decreases rapidly with increasing frequency. Strikingly, the combined effect of curvature and torsion on transverse flow is greater than expected from a simple superposition of the two effects, especially when the relative contribution of curvature alone becomes negligible. These findings may be relevant to understanding physiological processes in the cochlea, including metabolite transport and wall shear stress. Further studies are needed to investigate possible implications for cochlear mechanics.

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具有类似耳蜗的几何曲率和扭转的螺旋方形管道在振荡刺激下的横向流动
耳蜗位于内耳内,是一个螺旋形的充满液体的器官,负责听觉。其形状的生理意义仍不确定。以往的研究很少涉及耳蜗内横向流动的发生,尤其是与其独特形状的关系。本研究旨在研究耳蜗的几何特征对流体动力学的影响,方法是描述谐振轴向流在具有类似人类耳蜗解剖结构的弯曲和扭转的方形管道中引起的横向流。我们研究了四种几何形状,以探讨曲率和扭转对轴向和横向流动成分的影响。我们研究了从 0.125 Hz 到 256 Hz 的 12 个频率,涵盖了次声和低频听力,平均入口速度振幅代表了正常谈话或更大音量情况下的预期水平。我们的模拟结果表明,在非稳态条件下,扭转对横向流动的影响很大,而且其影响随着振荡频率的增加而增大。曲率本身对横向流动强度的影响较小,但会随着频率的增加而迅速减小。令人震惊的是,曲率和扭转对横向流动的综合影响比简单叠加两种影响所预期的要大,尤其是当曲率单独的相对影响变得可以忽略不计时。这些发现可能与了解耳蜗的生理过程有关,包括代谢物运输和壁剪应力。还需要进一步的研究来探究其对耳蜗力学的可能影响。
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来源期刊
CiteScore
5.90
自引率
3.80%
发文量
127
审稿时长
58 days
期刊介绍: The European Journal of Mechanics - B/Fluids publishes papers in all fields of fluid mechanics. Although investigations in well-established areas are within the scope of the journal, recent developments and innovative ideas are particularly welcome. Theoretical, computational and experimental papers are equally welcome. Mathematical methods, be they deterministic or stochastic, analytical or numerical, will be accepted provided they serve to clarify some identifiable problems in fluid mechanics, and provided the significance of results is explained. Similarly, experimental papers must add physical insight in to the understanding of fluid mechanics.
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