Engineering topics
Sarracino, Alex
Publications and source records attributed to Sarracino, Alex.
Optical Thomson Scattering to characterize Low-density Plasma on Mykonos
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Ultrafast Surface Phosphor Thermometry for Pulsed-power and Hostile Environments
Modern concepts for next generation pulsed power (NGPP) are slated to deliver up to ten times the energy of Z today. An increase of this magnitude is concerning insofar that Z currently exhibits sizable amounts of inner magnetically insulated transmission line (MITL) loss current on the order of 5-10%. Loss phenomenon in these systems are complex and electrode heating and subsequent thermal desorption are a leading cause. Rapid heat-driven thermal desorption of contaminants scales as the square of the current. Therefore, even a modest doubling of drive current would yield an ~ 4X in non-linear surface electrode heating, quickening thermal desorption-based current loss. Exacerbating these physics is a current inability to measure ultra fast heating rates (>20°C/ns), which are paramount to benchmarking and code validation critical to NGPP design – as an empirical approach is not viable. Therefore, Ultrafast Photoluminescent Surface Heating Optical Thermometry (UP-SHOT) was developed as a new diagnostic for measurement of GHz-scale electrode heating. The discovery of UP-SHOT leveraged expertise in Engineering Science, Material Science, Pulsed-Power, and the Center for Integrated Nanotechnologies. This report includes information on: 1) The preparation of zinc oxide (ZnO) films, characterization, post-deposition treatments 2) Time-resolved photoluminescence at elevated temperatures and thermographic sensitivity
Tailored Metallic Coatings: Controlling the Surface Heating and Outgassing Rates of Conductors
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Developing the ability to inform and tailor aerosol deposition coatings using laser induced particle impact testing
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Exploring the Role of Bulk Hydrogen Diffusion in Vacuum Power Flow
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Development and Preliminary Experiments on a Uniform Field Test fixture for Power Flow Experiments
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Ultrafast Phosphor Surface Heating Optical Thermometry (UP-SHOT)
Presentation for the OPTICA Laser Applications to Chemical Security and Environmental Analysis
Elastic wave suppression through additively manufactured petal lattice metamaterials
Lattice-core sandwich structure metamaterials are lightweight alternatives to monolithic materials that can present better mechanical, thermal, and energy dampening performance. Manufacturing lattice metamaterials to follow curved surfaces can pose a challenge, as the lattices rely on their geometric orientation to the substrate for their mechanical properties. This work rationally designed a lattice structure where the surface is broken up into “petals” connected to the underlying lattice, which localizes the petals’ impact response. This design opens a pathway for implementation of lattice-core sandwich structures onto complex surface geometries. These petal structures were evaluated for their energy absorption efficiency experimentally by utilizing pressure waves generated with nanosecond lasers and computationally via finite element modeling. The lattice structures exhibited a two-orders-of-magnitude decrease in transmitted pressure compared to their constituent steel at equivalent mass. Furthermore, localizing energy absorption into petal structures provided a 44% reduction in peak load compared to a continuous “single-petal” design.
Dynamic high pressure phase transformation of ZrW 2 O 8
Phase transformations under high strain rates (dynamic compression) are examined in situ on ZrW 2 O 8 , a negative thermal expansion ternary ceramic displaying polymorphism. Amorphization, consistent with prior quasi-static measurements, was observed at a peak pressure of 3.0 GPa under dynamic conditions, which approximate those expected during fabrication. Evidence of partial amorphization was observed at lower pressure (1.8 GPa) that may be kinetically restrained by the short (<~150 ns) time scale of the applied high pressure. The impact of kinetics of pressure-induced amorphization from material fabrication methods is briefly discussed.
Dynamic compression induced phase transitions of ZrW2O8, (Cu0.2Co0.2Mg0.2Ni0.2Zn0.2)O, and (La0.2Ce0.2Pr0.2Sm0.2Y0.2)2O3
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