Suppr超能文献

地面及微重力热测试的流固动力学

Fluid-structural dynamics of ground-based and microgravity caloric tests.

作者信息

Kassemi M, Oas J G, Deserranno Dimitri

机构信息

National Center for Microgravity Research, NASA Glenn Research Center, 21000 Brookpark Rd, MS110-3, Cleveland, OH 44135, USA.

出版信息

J Vestib Res. 2005;15(2):93-107.

Abstract

Microgravity caloric tests aboard the 1983 SpaceLab1 mission produced nystagmus results with an intensity comparable to those elicited during post- and pre- flight tests, thus contradicting the basic premise of Barany's convection hypothesis for caloric stimulation. In this work, we present a dynamic fluid structural analysis of the caloric stimulation of the lateral semicircular canal based on two simultaneous driving forces for the endolymphatic flow: natural convection driven by the temperature-dependent density variation in the bulk fluid and expansive convection caused by direct volumetric displacement of the endolymph during the thermal irrigation. Direct numerical simulations indicate that on earth, the natural convection mechanism is dominant. But in the microgravity environment of orbiting spacecraft, where buoyancy effects are mitigated, expansive convection becomes the sole mechanism for producing cupular displacement. A series of transient 1 g and microgravity case studies are presented to delineate the differences between the dynamics of the 1 g and microgravity endolymphatic flows. The impact of these different flow dynamics on the endolymph-cupula fluid-structural interactions is also analyzed based on the time evolutions of cupular displacement and velocity and the transcupular pressure differences.

摘要

1983年“太空实验室1号”任务中的微重力热试验产生的眼球震颤结果,其强度与飞行后和飞行前试验期间引发的结果相当,因此与巴兰尼热刺激对流假说的基本前提相矛盾。在这项工作中,我们基于内淋巴流动的两种同时驱动力,对内耳外侧半规管的热刺激进行了动态流体结构分析:由主体流体中与温度相关的密度变化驱动的自然对流,以及热灌注期间内淋巴直接体积位移引起的膨胀对流。直接数值模拟表明,在地球上,自然对流机制占主导地位。但在轨道航天器的微重力环境中,浮力效应减弱,膨胀对流成为产生壶腹位移的唯一机制。本文给出了一系列瞬态1g和微重力案例研究,以描述1g和微重力内淋巴流动动力学之间的差异。还基于壶腹位移和速度的时间演变以及跨壶腹压力差,分析了这些不同流动动力学对内淋巴-壶腹流体-结构相互作用的影响。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验