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the claim
The ISS primary electrical power distribution system operates at approximately 160 volts DC.
the verdict
SUPPORTED
the evidence backs this
refutedsupported
the weight of evidence
2 sources for · 0 against

Peer-reviewed literature documenting the architecture of the International Space Station confirms that the US-built system incorporates a 160-volt DC primary network connected to the solar arrays.

Evidence for · 2
2000 · cited by 0
The electrical power system developed for the International Space Station (ISS) represents the largest space-based power system ever designed and, consequently, has driven some key technology aspects and operational challenges. The full US built system consists of a 160 Volt DC primary network, and a more tightly regulated 120 Volt DC secondary network. Additionally, the US system interfaces with the 28 Volt system in the Russian segment. The international nature of the Station has resulted in modular converters, switchgear, outlet panels, and other components being built by different countries, with the associated interface challenges. This paper provides details of the architecture and unique hardware developed for the Space Station, and examines the opportunities it provides for further long-term space power technology development, such as lithium-ion batteries and flywheel energy storage systems.
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The analysis

rails:sufficiency:supported:for=2+0p:against=0+0p | v55:sufficiency

More for · 1
2001 · cited by 0
The International Space Station (ISS) will be the largest, highest power spacecraft placed in orbit. Because of this the design of the electrical power system diverged markedly from previous systems. The solar arrays will operate at 160 V and the power distribution voltage will be 120 V. The structure is grounded to the negative side of the solar arrays so under the right circumstances it is possible to drive the ISS potential very negative. A plasma contactor has been added to the ISS to provide control of the ISS structure potential relative to the ambient plasma. The ISS requirement is that the ISS structure not be greater than 40 V positive or negative of local plasma. What are the ramifications of operating large structures with such high voltage power systems? The application of a plasma contactor on ISS controls the potential between the structure and the local plasma, preventing degrading effects. It is conceivable that there can be situations where the plasma contactor might be non-functional. This might be due to lack of power, the need to turn it off during some of the build-up sequences, the loss of functionality for both plasma contactors before a replacement can be installed, similar circumstances. A study was undertaken to understand how important it is to have the contactor functioning and how long it might be off before unacceptable degradation to ISS could occur. The details of interaction effects on spacecraft have not been addressed until driven by design.
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  1. The architecture of the electric power system of the International Space Station and its application as a platform for power technology developmentpeer-reviewedno side taken
  2. ISS and space environment interactions without operating plasma contactorpeer-reviewedno side taken
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