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前往火星旅行时体位性不耐受的计算模型

Computational modeling of orthostatic intolerance for travel to Mars.

作者信息

van Loon Lex M, Steins Anne, Schulte Klaus-Martin, Gruen Russell, Tucker Emma M

机构信息

College of Health and Medicine, Australian National University, Canberra, ACT, Australia.

出版信息

NPJ Microgravity. 2022 Aug 9;8(1):34. doi: 10.1038/s41526-022-00219-2.

Abstract

Astronauts in a microgravity environment will experience significant changes in their cardiopulmonary system. Up until now, there has always been the reassurance that they have real-time contact with experts on Earth. Mars crew however will have gaps in their communication of 20 min or more. In silico experiments are therefore needed to assess fitness to fly for those on future space flights to Mars. In this study, we present an open-source controlled lumped mathematical model of the cardiopulmonary system that is able simulate the short-term adaptations of key hemodynamic parameters to an active stand test after being exposed to microgravity. The presented model is capable of adequately simulating key cardiovascular hemodynamic changes-over a short time frame-during a stand test after prolonged spaceflight under different gravitational conditions and fluid loading conditions. This model can form the basis for further exploration of the ability of the human cardiovascular system to withstand long-duration space flight and life on Mars.

摘要

处于微重力环境中的宇航员,其心肺系统会发生显著变化。到目前为止,一直令人安心的是他们能与地球上的专家进行实时联系。然而,执行火星任务的宇航员在通信上会有20分钟或更长时间的间隔。因此,需要进行计算机模拟实验,以评估未来前往火星的太空飞行人员的飞行适应性。在本研究中,我们提出了一种开源的心肺系统集中控制数学模型,该模型能够模拟关键血流动力学参数在暴露于微重力后对主动站立试验的短期适应性变化。所提出的模型能够在不同重力条件和液体负荷条件下,充分模拟长期太空飞行后站立试验期间短时间内关键心血管血流动力学的变化。该模型可为进一步探索人类心血管系统承受长期太空飞行和火星生活的能力奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/dc37/9363491/1fab5ef45380/41526_2022_219_Fig1_HTML.jpg

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