Department of Earth, Planetary, and Space Sciences
Parent: UCLA
eScholarship stats: Breakdown by Item for November, 2024 through February, 2025
Item | Title | Total requests | Download | View-only | %Dnld |
---|---|---|---|---|---|
403071pz | Thickness of the crust of Mercury from geoid‐to‐topography ratios | 113 | 9 | 104 | 8.0% |
5ck322xw | Electron Crescent Distributions as a Manifestation of Diamagnetic Drift in an Electron‐Scale Current Sheet: Magnetospheric Multiscale Observations Using New 7.5 ms Fast Plasma Investigation Moments | 112 | 2 | 110 | 1.8% |
5jx2s2sm | Heat transfer by rapidly rotating Rayleigh–Bénard convection | 101 | 9 | 92 | 8.9% |
1qp6d98w | Microbial Community Response to Simulated Petroleum Seepage in Caspian Sea Sediments | 89 | 7 | 82 | 7.9% |
1v0549nf | Rotating thermal convection in liquid gallium: multi-modal flow, absent steady columns | 89 | 16 | 73 | 18.0% |
62k0726h | Mechanics of inner core super‐rotation | 87 | 4 | 83 | 4.6% |
83j959mc | Δ 13 CH 3 D and Δ 12 CH 2 D 2 signatures of methane aerobically oxidized by Methylosinus trichosporium with implications for deciphering the provenance of methane gases | 83 | 8 | 75 | 9.6% |
8hz43445 | High Arctic wetting reduces permafrost carbon feedbacks to climate warming | 83 | 11 | 72 | 13.3% |
0f86k0q7 | The influence of temperature and seawater carbonate saturation state on <sup>13</sup>C–<sup>18</sup>O bond ordering in bivalve mollusks | 81 | 4 | 77 | 4.9% |
31r7q1j8 | Tornado-like vortices in the quasi-cyclostrophic regime of Coriolis-centrifugal convection | 80 | 6 | 74 | 7.5% |
3m22m0rx | Polar and mid-latitude vortices and zonal flows on Jupiter and Saturn | 80 | 11 | 69 | 13.8% |
5ch2w82q | Influence of methane seepage on isotopic signatures in living deep-sea benthic foraminifera, 79° N | 80 | 1 | 79 | 1.3% |
02w1x7nc | Thermal evidence for Taylor columns in turbulent rotating Rayleigh-Benard convection | 79 | 2 | 77 | 2.5% |
37d352q9 | Unravelling the large-scale circulation modes in turbulent Rayleigh-Bénard convection (a) Contribution to the Focus Issue Turbulent Thermal Convection edited by Mahendra Verma and Jörg Schumacher. | 79 | 2 | 77 | 2.5% |
3m11w73f | Boundary layer control of rotating convection systems | 79 | 14 | 65 | 17.7% |
8rr3m49z | Insufficient Evidence of Purported Lunar Effect on Pollination in Ephedra | 79 | 7 | 72 | 8.9% |
1b7778b5 | Ideas and perspectives: A strategic assessment of methane and nitrous oxide measurements in the marine environment | 77 | 1 | 76 | 1.3% |
2m86n9zw | Local heating of radiation belt electrons to ultra-relativistic energies | 77 | 1 | 76 | 1.3% |
47j2c0qj | Thermal evidence for Taylor columns in turbulent rotating Rayleigh-Bénard convection | 77 | 4 | 73 | 5.2% |
6qz5k7jn | Axisymmetric simulations of libration-driven fluid dynamics in a spherical shell geometry | 77 | 7 | 70 | 9.1% |
2td732sd | Benthic Dinitrogen Fixation Traversing the Oxygen Minimum Zone Off Mauritania (NW Africa) | 76 | 1 | 75 | 1.3% |
14x4s6kp | Sulfur's impact on core evolution and magnetic field generation on Ganymede | 75 | 2 | 73 | 2.7% |
1mj2r8jn | Experimental pub crawl from Rayleigh–Bénard to magnetostrophic convection | 75 | 2 | 73 | 2.7% |
40f8c0s7 | Chorus intensity modulation driven by time‐varying field‐aligned low‐energy plasma | 75 | 2 | 73 | 2.7% |
5bm6n165 | On the theory of core-mantle coupling | 75 | 14 | 61 | 18.7% |
73m7x0zq | Nitrogen fixation in sediments along a depth transect through the Peruvian oxygen minimum zone | 75 | 1 | 74 | 1.3% |
8fx1f8cz | Predominance of ECH wave contribution to diffuse aurora in Earth's outer magnetosphere | 72 | 6 | 66 | 8.3% |
0t18v5vf | Accelerating functional materials discovery Insights from geological sciences, data-driven approaches, and computational advances | 69 | 63 | 6 | 91.3% |
7w78r8q4 | Strong zonal winds from thermal convection in a rotating spherical shell | 69 | 2 | 67 | 2.9% |
8xq8z0g8 | Superfast precipitation of energetic electrons in the radiation belts of the Earth | 68 | 3 | 65 | 4.4% |
9jt5d84b | Convection-driven kinematic dynamos at low Rossby and magnetic Prandtl numbers: Single mode solutions | 68 | 0 | 68 | 0.0% |
94r5r998 | OSS (Outer Solar System): a fundamental and planetary physics mission to Neptune, Triton and the Kuiper Belt | 67 | 1 | 66 | 1.5% |
5b65v425 | Temperature limits to deep subseafloor life in the Nankai Trough subduction zone | 66 | 28 | 38 | 42.4% |
7361k8c5 | Anomalous rotation of the inner core and the toroidal magnetic field | 66 | 3 | 63 | 4.5% |
7xq1k8rq | Libration‐driven flows in ellipsoidal shells | 66 | 1 | 65 | 1.5% |
7sr6v0fw | Regimes of Coriolis-Centrifugal Convection | 64 | 0 | 64 | 0.0% |
26p4c1cd | Convective heat transfer and the pattern of thermal emission on the gas giants | 60 | 2 | 58 | 3.3% |
6mh8b2t5 | Shape model and surface properties of the OSIRIS-REx target Asteroid (101955) Bennu from radar and lightcurve observations | 58 | 15 | 43 | 25.9% |
0gk963r3 | New Perspectives on Ancient Mars | 56 | 41 | 15 | 73.2% |
97s3x12h | Rotating convective turbulence in Earth and planetary cores | 53 | 36 | 17 | 67.9% |
6g8384vk | Evaporation induced <sup>18</sup>O and <sup>13</sup>C enrichment in lake systems: A global perspective on hydrologic balance effects | 48 | 35 | 13 | 72.9% |
27p899qf | Experiments on Rayleigh–Bénard convection, magnetoconvection and rotating magnetoconvection in liquid gallium | 47 | 18 | 29 | 38.3% |
6gg8t63n | Methanogenic Hydrocarbon Degradation: Evidence from Field and Laboratory Studies | 45 | 12 | 33 | 26.7% |
3x07r0k2 | Water Reservoirs in Small Planetary Bodies: Meteorites, Asteroids, and Comets | 44 | 5 | 39 | 11.4% |
9r11s5p6 | Brines at high pressure and temperature: Thermodynamic, petrologic and geochemical effects | 41 | 16 | 25 | 39.0% |
18j8b3nz | First observations of core-transiting seismic phases on Mars | 40 | 2 | 38 | 5.0% |
0cs6n74d | Systemic racial disparities in funding rates at the National Science Foundation | 39 | 4 | 35 | 10.3% |
3z11n3n5 | Ryugus nucleosynthetic heritage from the outskirts of the Solar System. | 38 | 3 | 35 | 7.9% |
11b387sn | Dehydration melting and the relationship between granites and granulites | 37 | 23 | 14 | 62.2% |
5r77d626 | The effects of bathymetry on the long-term carbon cycle and CCD. | 37 | 3 | 34 | 8.1% |
Note: Due to the evolving nature of web traffic, the data presented here should be considered approximate and subject to revision. Learn more.