Repository logo
Log In(current)
  1. Home
  2. Colleges & Schools
  3. Graduate School
  4. Masters Theses
  5. Ultrafast Laser Micromachining Studies of Borosilicate Substrates Using Various Fluid Immersion Media to Characterize Cavitation Damage
Details

Ultrafast Laser Micromachining Studies of Borosilicate Substrates Using Various Fluid Immersion Media to Characterize Cavitation Damage

Date Issued
August 1, 2024
Author(s)
Allman, John  
Advisor(s)
Trevor M. Moeller
Additional Advisor(s)
Trevor M. Moeller
Brian K. Canfield
Lino Costa
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/33095
Abstract

The discovery of fluid cavitation and the invention of the laser changed their respective fields of study permanently. Over the past 70 years, cavitation has become more widely understood, and laser technology has advanced drastically. The combination of these two is a narrow field of study, and an even more-focused concept is the tailoring of specific laser-machining immersion fluids to enhance or suppress cavitation damage on a substrate. In this work, a study involving low vapor pressure fluids (LVPFs) such as ionic liquids (ILs) for ultrafast laser immersion micromachining was performed. ILs are conductive, molten salts. These chemicals exhibit exceptionally low vapor pressure, which is theorized to make them good candidates for immersion machining. The results of the experiments conducted in this Thesis suggest that LVPFs help to mitigate damage from fluid cavitation during ultrafast laser machining. More specifically, it was determined that LVPFs in general appear to mitigate the damage to a substrate surface. Other physical properties of the immersion fluids tested in these experiments were also considered, including density and viscosities (both kinematic and dynamic), and how these properties also affect cavitation damage to a substrate surface. A total of eight fluids were tested in this paper, whereby the surface roughness of a borosilicate glass substrate was examined, as well as the cross section of the features made by laser ablation. Additionally, the ability of each fluid to modify the effective focal range relative to the substrate surface, where material may still be removed from the substrate, was studied. It was determined from these experiments that ILs may offer specialized, functional immersion alternatives to the most commonly used fluids (water or air) due to their ability to reduce surface damage from cavitation and, compared to air, reduce the amount of ejecta that resolidifies onto the substrate surface during laser machining.

Subjects

Ultrafast Lasers

Cavitation

Ionic Liquids

Low Vapor Pressure Fl...

Micromachining

Disciplines
Fluid Dynamics
Optics
Other Physics
Degree
Master of Science
Major
Aerospace Engineering
Embargo Date
August 15, 2025
File(s)
Thumbnail Image
Name

Ultrafast_Laser_Micromachining_Studies_of_Borosilicate_Substrates_Using_Various_Fluid_Immersion_Media_to_Characterize_Cavitation_Damage.docx

Size

13.07 MB

Format

Microsoft Word XML

Checksum (MD5)

8c65a7e5153cbfe3c3a985fa8601b247

Thumbnail Image
Name

auto_convert.pdf

Size

2.76 MB

Format

Adobe PDF

Checksum (MD5)

ffb41192b5b4e3038bd0c704615bb8e5


University Libraries

1015 Volunteer Boulevard
Knoxville, TN 37996
865-974-4351

Map & Directions
Donate to the Libraries
  • About
  • John C. Hodges Society
  • Speaking Volumes magazine
  • Outreach
  • Directory
  • Employment
  • Policies
  • Library Intranet
University of Tennessee power T logo

The University of Tennessee, Knoxville
Knoxville, Tennessee 37996
865-974-1000

Events
A-Z
Apply
Privacy
Map
Directory
Give to UT
Accessibility

Built with DSpace-CRIS software - Extension maintained and optimized by 4Science