Shock wave formation in the thermosphere by an earthgrazing fireball: Empirical evidence for volatile-enhanced hydrodynamic shielding

Fuente: arXiv
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Main Authors: Silber, Elizabeth A., Vida, Denis, Giannone, Miro Ronac, Shepherd, Jamie, Albert, Sarah, Bowman, Daniel C., Do, Tammy, Campbell-Brown, Margaret, Jenniskens, Peter, Silber, Reynold E.
Format: Preprint
Published: 2026
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author Silber, Elizabeth A.
Vida, Denis
Giannone, Miro Ronac
Shepherd, Jamie
Albert, Sarah
Bowman, Daniel C.
Do, Tammy
Campbell-Brown, Margaret
Jenniskens, Peter
Silber, Reynold E.
author_facet Silber, Elizabeth A.
Vida, Denis
Giannone, Miro Ronac
Shepherd, Jamie
Albert, Sarah
Bowman, Daniel C.
Do, Tammy
Campbell-Brown, Margaret
Jenniskens, Peter
Silber, Reynold E.
contents Hydrodynamic shielding is a theoretically well-established but observationally elusive and experimentally difficult-to-replicate phenomenon with implications that extend far beyond meteor physics. Rare earthgrazing meteoroids with infrasound signatures that penetrate to the ground can be used to probe hydrodynamic shielding that leads to strong shock formation at high altitude. Here, we report the first coordinated optical and multi-station infrasound observations of a centimeter-scale earthgrazing fireball that generated sustained cylindrical line shock at thermospheric altitudes near 92 km. The event was recorded by numerous optical stations and three infrasound arrays, allowing trajectory reconstruction, ablation behavior, acoustic source localization, and shock characteristics. Optical observations indicate early mechanical erosion and ablation/evaporation at exceptionally low dynamic pressure, consistent with a cometary or a porous, volatile-bearing CM chondritic object. Independent infrasound detections localize shock generation to multiple points along a 164 km trajectory segment near perigee. Weak-shock modeling yields a consistent blast radius of ~30 m, implying an acoustic-equivalent source size far exceeding the physical dimensions of the ~45 g nucleus. We demonstrate that classical gas dynamics and ablation-driven hydrodynamic shielding alone cannot account for these observations under ambient thermospheric conditions. We show that volatile release provides the additional flow-field density enhancement required to amplify hydrodynamic shielding, reduce the effective local Knudsen number, and sustain a shock envelope capable of radiating detectable infrasound. These results demonstrate that small, volatile-rich meteoroids can transiently establish continuum-like flow in rarefied environments.
format Preprint
id arxiv_https___arxiv_org_abs_2605_29150
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Shock wave formation in the thermosphere by an earthgrazing fireball: Empirical evidence for volatile-enhanced hydrodynamic shielding
Silber, Elizabeth A.
Vida, Denis
Giannone, Miro Ronac
Shepherd, Jamie
Albert, Sarah
Bowman, Daniel C.
Do, Tammy
Campbell-Brown, Margaret
Jenniskens, Peter
Silber, Reynold E.
Earth and Planetary Astrophysics
Atmospheric and Oceanic Physics
Geophysics
Space Physics
Hydrodynamic shielding is a theoretically well-established but observationally elusive and experimentally difficult-to-replicate phenomenon with implications that extend far beyond meteor physics. Rare earthgrazing meteoroids with infrasound signatures that penetrate to the ground can be used to probe hydrodynamic shielding that leads to strong shock formation at high altitude. Here, we report the first coordinated optical and multi-station infrasound observations of a centimeter-scale earthgrazing fireball that generated sustained cylindrical line shock at thermospheric altitudes near 92 km. The event was recorded by numerous optical stations and three infrasound arrays, allowing trajectory reconstruction, ablation behavior, acoustic source localization, and shock characteristics. Optical observations indicate early mechanical erosion and ablation/evaporation at exceptionally low dynamic pressure, consistent with a cometary or a porous, volatile-bearing CM chondritic object. Independent infrasound detections localize shock generation to multiple points along a 164 km trajectory segment near perigee. Weak-shock modeling yields a consistent blast radius of ~30 m, implying an acoustic-equivalent source size far exceeding the physical dimensions of the ~45 g nucleus. We demonstrate that classical gas dynamics and ablation-driven hydrodynamic shielding alone cannot account for these observations under ambient thermospheric conditions. We show that volatile release provides the additional flow-field density enhancement required to amplify hydrodynamic shielding, reduce the effective local Knudsen number, and sustain a shock envelope capable of radiating detectable infrasound. These results demonstrate that small, volatile-rich meteoroids can transiently establish continuum-like flow in rarefied environments.
title Shock wave formation in the thermosphere by an earthgrazing fireball: Empirical evidence for volatile-enhanced hydrodynamic shielding
topic Earth and Planetary Astrophysics
Atmospheric and Oceanic Physics
Geophysics
Space Physics
url https://arxiv.org/abs/2605.29150