Earth Science

Dynamics Explorer

796 tracked publications and 33,320 citations from 1981–2025. Dynamics Explorer 1 and 2. Launched 1981. Life-cycle cost: $421M in 2025 dollars. Active Mission Window September 1, 1981 to March 1, 1993: 478 publications, 52 top-10% credit.

Orbiter · h-index 87 · 79 papers with 100+ citations · prime mission ended 1984


Lifetime

Scope Papers published from the first full month after science operations begin through 2 years after the mission ends. Citations are counted through the third calendar year after each paper appears. Methods Papers published from the first full month after science operations begin through 2 years after the prime mission ends. Citations are counted through the third calendar year after each paper appears. Methods Every tracked publication to date, with every citation to date. Methods

Key measures

Active Mission Window · papers September 1, 1981 to March 1, 1993
Tracked publicationsTracked publications: peer-reviewed research papers we found for the mission. The list may not be complete. Methods478
CitationsCitations received by the tracked publications in the selected scope. The two windowed scopes count each paper’s citations only within its citation window. Methods4,273
Mean citations per publicationMean citations: total citations divided by tracked publications in the selected scope. One blockbuster paper can lift it. Methods8.9
Median citations per publicationMedian citations: the middle paper’s citation count in the selected scope; half the papers have more, half fewer. A single blockbuster sways it less than the mean. Methods6
Uncited publicationsUncited publications: papers with no citations in the selected scope. Methods77 (16%)
Top-10% creditTop 10%: among the 10% most-cited papers from this division’s missions, ranked against papers published around the same time. A paper naming several missions is split evenly among the missions in this division that claim it, so counts can be fractional. Methods52 · 1.3% of division
Top-1% creditTop 1%: among the 1% most-cited papers from this division’s missions within the selected window. Not adjusted for publication year. A paper naming several missions is split evenly among the missions in this division that claim it, so counts can be fractional. Methods2 · 0.52% of division
Lifetime indices · every tracked publication to date, in any scope
h-indexh-index: the largest h such that h papers have at least h citations each. It only grows with time, so older missions score higher. Methods87
g-indexg-index: the largest g for which the g most-cited papers together hold at least g² citations. Like the h-index, but it lets the most-cited papers count for more. Methods144
m-index, as of October 4, 2026m-index: a mission’s h-index divided by the years since its first peer-reviewed paper. It falls every 1 January even when nothing else changes, so it belongs to the date shown; it also discounts the long operating life that larger missions paid for. Methods1.9
toritori (total research impact, from ADS): for every paper citing one of the mission’s papers, 1 divided by the citing paper’s reference count times the cited paper’s author count, summed, with self-citations removed. It favors citations from papers with short reference lists and from outside the mission’s own authors. Computed over the tracked citation graph, which can be slightly incomplete. Methods403
riqriq (research impact quotient): 1,000 times the square root of tori, divided by the years since the mission’s first paper. A rate, not a total, so it does not keep growing with age the way the h-index and tori do. Methods446

Tracked publications

  1. MSIS-86 thermospheric model

    Hedin, Alan E., 1987, JGR

    1,478 citations

  2. Empirical high-latitude electric field models

    Heppner, J. P., 1987, JGR

    924 citations

  3. EUVAC: A solar EUV flux model for aeronomic calculations

    Richards, P. G., 1994, JGR

    836 citations

  4. Revised global model of thermosphere winds using satellite and ground-based observations

    Hedin, A. E., 1991, JGR

    566 citations

  5. Models of high-latitude electric potentials derived with a least error fit of spherical harmonic coefficients

    Weimer, D. R., 1995, JGR

    391 citations

  6. A model of the near magnetosphere with a dawn-dusk asymmetry 2. Parameterization and fitting to observations

    Tsyganenko, N. A., 2002, JGRA

    377 citations

  7. F layer ionization patches in the polar caps

    Weber, E. J., 1984, JGR

    312 citations

  8. Electrostatic hiss and the beam driven electron acoustic instability in the dayside polar cusp

    Tokar, R. L., 1984, GeoRL

    280 citations

  9. Polar views of the Earth's aurora with Dynamics Explorer

    Frank, L. A., 1982, GeoRL

    268 citations

  10. Energetic auroral and polar ion outflow at DE 1 altitudes: Magnitude, composition, magnetic activity dependence, and long-term variations

    Yau, A. W., 1985, JGR

    263 citations

  11. The theta aurora

    Frank, L. A., 1986, JGR

    262 citations

  12. Geocoronal imaging with Dynamics Explorer

    Rairden, R. L., 1986, JGR

    246 citations

  13. A proposed production model of rapid subauroal ion drifts and their relationship to substorm evolution

    Anderson, P. C., 1993, JGR

    240 citations

  14. The ionospheric signatures of rapid subauroral ion drifts

    Anderson, P. C., 1991, JGR

    237 citations

  15. The cleft ion fountain

    Lockwood, M., 1985, JGR

    235 citations

  16. Auroral hiss, Z mode radiation, and auroral kilometric radiation in the polar magnetosphere: DE 1 observations

    Gurnett, D. A., 1983, JGR

    231 citations

  17. Path-integrated growth of electrostatic waves: The generation of terrestrial myriametric radiation

    Horne, R. B., 1989, JGR

    230 citations

  18. IMF B_{y}-dependent plasma flow and Birkeland currents in the dayside magnetosphere 1. Dynamics Explorer observations

    Burch, J. L., 1985, JGR

    217 citations

  19. A new source of suprathermal O⁺ ions near the dayside polar cap boundary

    Lockwood, M., 1985, JGR

    209 citations

  20. Correlated low-frequency electric and magnetic noise along the auroral field lines

    Gurnett, D. A., 1984, JGR

    204 citations

How we found these papers

We searched NASA’s Astrophysics Data System (ADS) for peer-reviewed articles naming Dynamics Explorer in the title, abstract or keywords; standard filters drop articles that are not peer-reviewed and magazine pieces. SciX is ADS’s current interface.

((=abs:("Dynamics Explorer" OR "Dynamics Explorers") OR ((=abs:("DE 1" OR "DE 2" OR "DE-1" OR "DE-2") OR abs:(DE1 OR DE2)) AND =abs:(magnetosphere OR magnetospheres OR magnetospheric OR ionosphere OR ionospheres OR ionospheric OR thermosphere OR thermospheric OR aurora OR auroras OR aurorae OR auroral OR plasmasphere OR plasmaspheric OR plasmapause OR geocorona OR geocoronal OR cusp OR substorm OR substorms OR dayglow OR airglow OR "polar cap") NOT (abs:(nonmigrating OR "non-migrating" OR Mars OR Martian OR DE3) OR =abs:("DE 3" OR "DE-3"))))) AND property:refereed AND doctype:article AND pubdate:[1981-09 TO 2040-01] AND NOT bibstem:("A&R" OR "AIASJ" OR "AeAm" OR "AirSp" OR "AsNow" OR "AsUAI" OR "AvWST" OR "C&E" OR "C&T" OR "CAPJ" OR "E&S" OR "ENews" OR "IrAJ" OR "JCos" OR "JRASC" OR "LAstr" OR "MNSSA" OR "Met" OR "NewSc" OR "Orion" OR "PhT" OR "PhTea" OR "PhuZ" OR "PhyOJ" OR "PhyW" OR "PlR" OR "SciAm" OR "SpFl" OR "ZemVs")

Open in SciX

Removed after review (3)

  1. The radiation belts of Jupiter at 13 and 22cm. II. The asymmetries and the magnetic field. Jupiter radio study; "DE" here is a declination angle, not Dynamics Explorer. Decision 🤖
  2. Global ionospheric models in three dimensions from GPS measurements: Numerical simulation Spanish-language ionosphere modelling paper; "de" is a Spanish word, not Dynamics Explorer. Decision 🤖
  3. Redshift drift in a pressure-gradient cosmology Cosmology paper; names the Cosmic Dynamics Explorer spectrograph, not NASA's Dynamics Explorer. Decision 🤖