Related Experiment Video
Updated: Jan 26, 2026

Human Colonoid Monolayers to Study Interactions Between Pathogens, Commensals, and Host Intestinal Epithelium
Published on: April 9, 2019
Hypervelocity collision and water-rock interaction in space preserved in the Chelyabinsk ordinary chondrite
Eizo Nakamura1, Tak Kunihiro1, Tsutomu Ota1
1The Pheasant Memorial Laboratory for Geochemistry and Cosmochemistry, Institute for Planetary Materials, Okayama University.
Abstract:
A comprehensive geochemical study of the Chelyabinsk meteorite reveals further details regarding its history of impact-related fragmentation and melting, and later aqueous alteration, during its transit toward Earth. We support an ∼30 Ma age obtained by Ar-Ar method (Beard et al., 2014) for the impact-related melting, based on Rb-Sr isotope analyses of a melt domain. An irregularly shaped olivine with a distinct O isotope composition in a melt domain appears to be a fragment of a silicate-rich impactor. Hydrogen and Li concentrations and isotopic compositions, textures of Fe oxyhydroxides, and the presence of organic materials located in fractures, are together consistent with aqueous alteration, and this alteration could have pre-dated interaction with the Earth's atmosphere. As one model, we suggest that hypervelocity capture of the impact-related debris by a comet nucleus could have led to shock-wave-induced supercritical aqueous fluids dissolving the silicate, metallic, and organic matter, with later ice sublimation yielding a rocky rubble pile sampled by the meteorite.
More Related Videos
Related Concept Videos
Types Of Collisions - I
Types of Collisions - II
Basic Postulates of Kinetic Molecular Theory: Particle Size, Energy, and Collision
Elastic Collisions: Introduction
Elastic Collisions: Case Study
Collisions in Multiple Dimensions: Introduction

