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Title: Evaluation of ion collection area in Faraday probes

Journal Article · · Review of Scientific Instruments
DOI:https://doi.org/10.1063/1.3449541· OSTI ID:22053759
 [1];  [2]
  1. Spacecraft Branch, Propulsion Directorate, Air Force Research Laboratory, Edwards AFB, California 93524 (United States)
  2. Department of Aerospace Engineering, Plasmadynamics and Electric Propulsion Laboratory, University of Michigan, Ann Arbor, Michigan 48109 (United States)

A Faraday probe with three concentric rings was designed and fabricated to assess the effect of gap width and collector diameter in a systematic study of the diagnostic ion collection area. The nested Faraday probe consisted of two concentric collector rings and an outer guard ring, which enabled simultaneous current density measurements on the inner and outer collectors. Two versions of the outer collector were fabricated to create gaps of 0.5 and 1.5 mm between the rings. Distribution of current density in the plume of a low-power Hall thruster ion source was measured in azimuthal sweeps at constant radius from 8 to 20 thruster diameters downstream of the exit plane with variation in facility background pressure. A new analytical technique is proposed to account for ions collected in the gap between the Faraday probe collector and guard ring. This method is shown to exhibit excellent agreement between all nested Faraday probe configurations, and to reduce the magnitude of integrated ion beam current to levels consistent with Hall thruster performance analyses. The technique is further studied by varying the guard ring bias potential with a fixed collector bias potential, thereby controlling ion collection in the gap. Results are in agreement with predictions based on the proposed analytical technique. The method is applied to a past study comparing the measured ion current density profiles of two Faraday probe designs. These findings provide new insight into the nature of ion collection in Faraday probe diagnostics, and lead to improved accuracy with a significant reduction in measurement uncertainty.

OSTI ID:
22053759
Journal Information:
Review of Scientific Instruments, Vol. 81, Issue 6; Other Information: (c) 2010 American Institute of Physics; Country of input: International Atomic Energy Agency (IAEA); ISSN 0034-6748
Country of Publication:
United States
Language:
English