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Updated: Jul 25, 2026

Potentiodynamic Corrosion Testing
Published on: September 4, 2016
Biological induced corrosion of materials II: new test methods and experiences from MIR station
R Klintworth1, H J Reher, A N Viktorov
1Daimler-Benz Aerospace AG, Raumfahrt-Infrastruktur, Bremen, Germany.
Abstract:
During previous long-term manned missions, more than 100 species of microorganisms have been identified on surfaces of materials (bacteria and fungi). Among them were potentially pathogenic ones (saprophytes) which are capable of active growth on artificial substrates, as well as technophilic bacteria and fungi causing damages (destruction and degradation) to various materials (metals and polymers), resulting in failures and disruptions in the functioning of equipment and hardware. Aboard a space vehicle some microclimatic parameters are optimal for microorganism growth: the atmospheric fluid condensate with its specific composition, chemical and/or anthropogenic contaminants (human metabolic products, etc.) all are stimulating factors for the development of bacteria and mould fungi on materials of the interior and equipment of an orbital station during its operational phase(s). Especially Russian long-term missions (SALYUT, MIR) [correction of SALJUT] have demonstrated that uncontrolled interactions of microorganisms with materials will ultimately lead to the appearance of technological and medical risks, significantly influencing safety and reliability characteristics of individual as well as whole systems and/or subsystems. For a first conclusion, it could be summarized, that countermeasures and anti-strategies focusing on Microbial Contamination Management (MCM) for the International Space Station (ISS, next long-term manned mission) at least require a new materials test approach. Our respective concept includes a combined aging/biocorrosion test sequence. It is represented here, as well as current status of MCM program, e.g. continuous monitoring (microbiological analyses), long-term disinfection, frequent cleaning methods, mathematical modeling of ISS, etc.
Insights
Microbial contamination on spacecraft materials poses risks to equipment and crew health. New material testing strategies are essential for effective Microbial Contamination Management (MCM) on the International Space Station (ISS).
Area of Science:
- Spacecraft environmental science
- Materials science
- Microbiology
Background:
- Over 100 microbial species, including pathogens and material-degrading fungi and bacteria, have been found on spacecraft surfaces during long-term missions.
- Spacecraft microclimates, including condensate and contaminants, promote microbial growth on interior materials and equipment.
- Past missions (e.g., SALYUT, MIR) highlight technological and medical risks from uncontrolled microbial interactions, impacting system safety and reliability.
Purpose of the Study:
- To address the need for enhanced Microbial Contamination Management (MCM) strategies for the International Space Station (ISS).
- To propose a novel materials testing approach for evaluating microbial resistance in space environments.
- To present a combined aging and biocorrosion test sequence for assessing material-microbe interactions.
Main Methods:
- Development of a combined aging and biocorrosion test sequence for materials.
- Continuous monitoring through microbiological analyses.
- Implementation of long-term disinfection and frequent cleaning protocols.
- Mathematical modeling of microbial contamination on the ISS.
Main Results:
- Identified over 100 microbial species on spacecraft materials, including potentially pathogenic and technophilic types.
- Demonstrated that spacecraft conditions actively stimulate microbial growth on artificial substrates.
- Highlighted significant technological and medical risks associated with microbial contamination in space.
Conclusions:
- Current Microbial Contamination Management (MCM) for the ISS requires a new materials testing approach.
- A combined aging/biocorrosion test sequence is proposed to mitigate risks.
- Ongoing MCM efforts include continuous monitoring, disinfection, cleaning, and mathematical modeling.
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