Analysis of artificial gravity paradigms using a mathematical model of spatial orientation

被引:2
|
作者
Vincent, Grant R. [1 ]
Gruber, Jason [2 ]
Newman, Michael C. [3 ]
Clark, Torin K. [1 ]
机构
[1] Univ Colorado, Bioastronaut Lab, Smead Aerosp Engn Sci, Boulder, CO 80309 USA
[2] Innovat Med Solut Grp Labs Inc, Tampa, FL USA
[3] Natl Aerosp Training & Res Ctr, Southampton, Hants, England
关键词
Observer model; Linear sled hybrid AG; Vestibular; Cross-coupled illusion; SHORT-RADIUS CENTRIFUGATION; SENSORY CONFLICT; ROLL TILT; BED REST; ADAPTATION; CORIOLIS; EXERCISE; FORCE; WEIGHTLESSNESS; COUNTERMEASURE;
D O I
10.1016/j.actaastro.2018.09.010
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Artificial gravity (AG) is a promising approach to reduce the physiological deconditioning experienced by astronauts. Here we propose the linear sled hybrid AG system as an alternative to the typical centrifuge approach to creating AG. In this paradigm, the rider is briefly linearly accelerated towards their head, then rotated 180 around, then decelerated. This sequence is repeated creating footward loading during the linear acceleration and deceleration phases, replicating standing upright on Earth, without any gravity gradient or Coriolis forces. The 180 rotation also produces gradient centripetal acceleration, for a "hybrid" approach. We simulated the well validated observer model to predict the rider's orientation perception and potential disorientation in response to these two AG paradigms. Particularly, we simulated head tilts to investigate the cross-coupled illusion. For the centrifuge, as expected, we found head tilts caused the cross-coupled illusion and an illusory sense of tilt. As a novel prediction, we found the head tilt angle and centrifuge spin rate to interact non-linearly, producing an inflection point in the peak perceived tilt of the cross-coupled illusion. We found the linear sled paradigm to be well perceived and, as expected, head tilts did not produce the cross-coupled illusion. While the observer model predicted the linear sled paradigm to not be disorienting, future experimental work is necessary for validation. Comfort and motion sickness feasibility, as well as countermeasure efficacy, should be studied experimentally.
引用
收藏
页码:602 / 610
页数:9
相关论文
共 50 条
  • [41] Analysis and prediction of rockfalls using a mathematical model
    ISMES SpA, Bergamo, Italy
    Int J Rock Mech Min Sci Geomech Abstr, 7 ([d]709-724):
  • [42] Spatial Orientation Using Map Displays: A Model of the Influence of Target Location
    Gunzelmann, Glenn
    Anderson, John R.
    PROCEEDINGS OF THE TWENTY-SIXTH ANNUAL CONFERENCE OF THE COGNITIVE SCIENCE SOCIETY, 2004, : 517 - 522
  • [43] SPATIAL FIBER ORIENTATION ANALYSIS
    Gadek-MOSZCZAK, Aneta
    Tworzydlo, Mariusz
    Romanska, Paulina
    29TH INTERNATIONAL CONFERENCE ON METALLURGY AND MATERIALS (METAL 2020), 2020, : 156 - 161
  • [44] Mathematical working space and paradigms as an analysis tool for the teaching and learning of analysis
    Delgadillo E.M.
    Vivier L.
    ZDM, 2016, 48 (6): : 739 - 754
  • [45] A Spatial Autoregressive Poisson Gravity Model
    Sellner, Richard
    Fischer, Manfred M.
    Koch, Matthias
    GEOGRAPHICAL ANALYSIS, 2013, 45 (02) : 180 - 201
  • [46] The Use of Gravity Model in Spatial Planning
    Kurowska, Krystyna
    Kryszk, Hubert
    Kietlinska, Ewa
    10TH INTERNATIONAL CONFERENCE ENVIRONMENTAL ENGINEERING (10TH ICEE), 2017,
  • [47] Analysis of Keynes's Mathematical Model-Effect of Spatial Factors
    Kulikov, A. N.
    Kulikov, D. A.
    Radin, M. A.
    LOBACHEVSKII JOURNAL OF MATHEMATICS, 2022, 43 (06) : 1345 - 1357
  • [48] Construction and Analysis of a Mathematical Model of Spatial and Temporal Characteristics of Traffic Flows
    Fedotkin, M. A.
    Fedotkin, A. M.
    Kudryavtsev, E. V.
    AUTOMATIC CONTROL AND COMPUTER SCIENCES, 2014, 48 (06) : 358 - 367
  • [49] MATHEMATICAL ANALYSIS OF AN IN-HOST MODEL OF VIRAL DYNAMICS WITH SPATIAL HETEROGENEITY
    Pankavich, Stephen
    Parkinson, Christian
    DISCRETE AND CONTINUOUS DYNAMICAL SYSTEMS-SERIES B, 2016, 21 (04): : 1237 - 1257
  • [50] Spatial Gravity Analysis of the Cascadia Subduction Zone using Satellite Data
    Hanatan, A.
    Hartantyo, E.
    Niasari, S. W.
    INTERNATIONAL CONFERENCE ON THEORETICAL AND APPLIED PHYSICS, 2018, 1011