Ultraviolet digital holographic microscopy (DHM) of micron-scale particles from shocked Sn ejecta

Author:

Guildenbecher Daniel R.ORCID,McMaster Anthony,Corredor Andrew12,Malone Bob1,Mance Jason3,Rudziensky Emma2,Sorenson Danny1,Danielson Jeremy2,Duke Dana L.2

Affiliation:

1. Los Alamos Operations

2. Los Alamos National Laboratory

3. Special Technologies Laboratory

Abstract

A cloud of very fast, O(km/s), and very fine, O(µm), particles may be ejected when a strong shock impacts and possibly melts the free surface of a solid metal. To quantify these dynamics, this work develops an ultraviolet, long-working distance, two-pulse Digital Holographic Microscopy (DHM) configuration and is the first to replace film recording with digital sensors for this challenging application. A proposed multi-iteration DHM processing algorithm is demonstrated for automated measures of the sizes, velocities, and three-dimensional positions of non-spherical particles. Ejecta as small as 2 µm diameter are successfully tracked, while uncertainty simulations indicate that particle size distributions are accurately quantified for diameters ≥4 µm. These techniques are demonstrated on three explosively driven experiments. Measured ejecta size and velocity statistics are shown to be consistent with prior film-based recording, while also revealing spatial variations in velocities and 3D positions that have yet to be widely investigated. Having eliminated time-consuming analog film processing, the methodologies proposed here are expected to significantly accelerate future experimental investigation of ejecta physics.

Funder

U.S. Department of Energy

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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