Design and verification of accurate measurement of human body mass in microgravity environment
Zhang Zhe
Liu Weibo
Xu zhi
Zhang Yan
Guo Jianping
Zhang Yu
Wang Yuan Sheng
Xuan Yong
Gao Yue
Jiang Mi
Abstract:Traditional mass measurement methods are not applicable in microgravity environments,and the main challenge for in-orbit body mass measurement technology based on inertial principles is to address the random errors brought about by the weightless environment.These include additional torques due to shifts in the center of mass,nonlinear accelerations due to non-rigid human bodies,mechanical energy consumption due to organ vibrations,and random vibrations of the measurement device itself.To address the above difficulties,the project proposes a technical scheme based on the principle of linear acceleration,designs and constructs a ground-specific air-floating experimental and simulation platform,studies key data such as motion trajectory,acceleration change,and vibration frequency amplitude during the mass measurement process,and simulates the changes in the center of mass and random vibrations of the human body in a weightless environment.The project has designed an adjustable posture bracket to adapt to changes in the center of mass,enhance body restraint,and greatly reduce shaking;it has also developed an integrated four-bar linkage motion guidance mechanism,high-precision integrated photoelectric distance measurement,and modular motion constant force measurement device to ensure the accurate measurement of acceleration and constant force data.The product has undergone simulation calculations,ground human applicability tests,and in-orbit applicability verification in the space station.Ground test results show that the device achieves a body mass measurement accuracy better than 0.5%,and the dispersion is better than 0.38%;after flight mission verification and evaluation,the in-orbit body mass measurement dispersion is less than 0.4%,which is superior to the SLAMMD,a mass measurement device of the same principle on the International Space Station,and is at the forefront internationally,achieving accurate body mass measurement.
Keywords:microgravity environmenthuman body mass measurementconstant force measurementconstant force mechanismfour-bar linkageposture stabilization brace
Publication Date:2025-02-14
Online Publishing Date:2025-08-15(First online date of this platform, not the publication date of the document)
Space Medicine & Medical Engineering

Space Medicine & Medical Engineering

ISSN:1002-0837
Year, Vol.(Issue):2025,36(1)