2007EosRequires access

Advances in the study of volcanic ash

Jacopo Taddeucci, Piergiorgio Scarlato, Daniele Andronico, Antonio Cristaldi, R. Büttner, Bernd Zimanowski, U. Küppers

Open publisher page 20 citations

Abstract

Every month, small‐scale explosive volcanic eruptions inject more than a million cubic meters of ash into Earth's atmosphere [Simkin and Siebert, 2000]. Of all the troubles caused by this relatively mild volcanic activity, ashfall is by far the longest‐reaching one, mantling the volcano slopes and surroundings with a slippery, heavy, unhealthy, and snow‐like but Sun‐resistant cover. Volcanic ash is composed of pyroclasts (fragments generated and emplaced by explosive eruptions) smaller than 2 millimeters, which are easily transported by wind and have a high surface‐to‐volume ratio. These same features, however, also allow safe collection of the ash away from the volcano. Such pyroclasts bear the signature of the fragmentation and dispersal processes they have experienced during eruption and transport. Thus, volcanic ash provides sample material well suited for studying quasi time correlated eruption dynamics [Taddeucci et al, 2002].

About this research paper

What this paper is about

Every month, small‐scale explosive volcanic eruptions inject more than a million cubic meters of ash into Earth's atmosphere [Simkin and Siebert, 2000]. Of all the troubles caused by this relatively mild volcanic activity, ashfall is by far the longest‐reaching one, mantling the volcano slopes and surroundings with a slippery, heavy, unhealthy, and snow‐like but Sun‐resistant cover. Volcanic ash is composed of pyroclasts (fragments generated and emplaced by explosive eruptions) smaller than 2 millimeters, which are easily transported by wind and have a high surface‐to‐volume ratio. These same features, however, also allow safe collection of the ash away from the volcano. Such pyroclasts bear the signature of the fragmentation and dispersal processes they have experienced during eruption and transport. Thus, volcanic ash provides sample material well suited for studying quasi time correlated eruption dynamics [Taddeucci et al, 2002].

Why it matters

OpenAlex reports 20 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Every month, small‐scale explosive volcanic eruptions inject more than a million cubic meters of ash into Earth's atmosphere [Simkin and Siebert, 2000]. Of all the troubles caused by this relatively mild volcanic activity, ashfall is by far the longest‐reaching one, mantling the volcano slopes and surroundings with a slippery, heavy, unhealthy, and snow‐like but Sun‐resistant cover. Volcanic ash is composed of pyroclasts (fragments generated and emplaced by explosive eruptions) smaller than 2 millimeters, which are easily transported by wind and have a high surface‐to‐volume ratio. These same features, however, also allow safe collection of the ash away from the volcano. Such pyroclasts bear the signature of the fragmentation and dispersal processes they have experienced during eruption and transport. Thus, volcanic ash provides sample material well suited for studying quasi time correlated eruption dynamics [Taddeucci et al, 2002].

Key concepts: Pyroclastic rock, Volcano, Peléan eruption, Explosive eruption, Volcanic ash, Geology, Dense-rock equivalent, Lapilli

Related papers

Back to paper searchBrowse research topicsOriginal source
Advances in the study of volcanic ash — Research Paper | ScholarLens