Orbiting microgravity facilities are microgravity platforms that are real or true. This microgravity is not mimicked. The orbiting microgravity platforms are the:
· manned
orbiting systems
· unmanned
satellites
An example of
the manned orbiting systems is the International Space Station (ISS) that
accommodates man for living and working (e.g. experimental) purposes. The
panels on the ISS are large solar panels to power it (Figure 1). The ISS is
based on partnership amongst many space agencies: NASA of USA, CSA of Canada,
ESA of European countries, Roscosmos of Russia and JAXA of Japan. Russian MIR
space station is another of this type. These platforms orbit at about 400 km altitude; supply
gravity force (g) of up to 10-5
to 10-6; experiment in diverse fields of research are possible; the
duration of the experiments can range from months to years as the microgravity
supply is constant; the limitation is the high cost.
Figure 1: The International Space Station. Source:
Tarantola, A. (2022). https://en.wikipedia.org/wiki/Small_satellite#/media/File:Estcube-1_2012-12-27.jpg
Due to the limited access (scarceness
and high cost) to manned orbiting systems, unmanned miniaturizing and
automating experiments are designed called autonomous microgravity laboratory satellites. These are called SmallSats
(Figure 2). This does not require human intervention. This type of laboratory
operates as Nanosatellites or CubeSats that are controlled by users on the
ground by proprietary software that are installable on laptops and smart phones.
The data and experimental results are normally transmitted to the
ground-station. The flying of microgravity experiments as a stand-alone
automatic satellites occur at above 300 km altitude; supply gravity force (g) of 10-5
to 10-6; experiments on plants, microbes and chemical
reactions are possible; the
duration of the experiments can range from weeks to years as the microgravity
supply is constant; the limitation is that launch opportunities are limited.
Figure 2. A Nanosatellite. Source: Wikipedia
(2023). https://golden.com/wiki/Nanosatellite-NMV8DXY
The benefits of the
access to these platforms cannot be overemphasized over the socioeconomic
benefits of the experiments.
Further reading
Oluwafemi, F.A.,
Neduncheran, A., 2022. Analog and simulated microgravity platforms for life
sciences research: Their individual capacities, benefits and limitations.
Advances in Space Research. https://doi.org/10.1016/j.asr.2022.01.007.
Oluwafemi, F.A.,
Neduncheran, A., 2021. Real and simulated microgravity platforms: Their
individual capacities, benefits and limitations. 71st International
Astronautical Congress (IAC) – The CyberSpace Edition, 12-14 October, 2020.
IAC-20-A2,5,10,x56924.
Tarantola, A.
(2022). https://en.wikipedia.org/wiki/Small_satellite#/media/File:Estcube-1_2012-12-27.jpg
Wikipedia (2023). Small satellites. https://golden.com/wiki/Nanosatellite-NMV8DXY

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