Repository logo
Log In(current)
  1. Home
  2. Colleges & Schools
  3. Graduate School
  4. Masters Theses
  5. Particle Trajectories in Wall-Normal and Tangential Rocket Chambers
Details

Particle Trajectories in Wall-Normal and Tangential Rocket Chambers

Date Issued
August 1, 2011
Author(s)
Katta, Ajay
Advisor(s)
Joseph Majdalani
Additional Advisor(s)
Trevor M. Moeller
Christian G. Parigger
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/46564
Abstract

The focus of this study is the prediction of trajectories of solid particles injected into either a cylindrically- shaped solid rocket motor (SRM) or a bidirectional vortex chamber (BV). The Lagrangian particle trajectory is assumed to be governed by drag, virtual mass, Magnus, Saffman lift, and gravity forces in a Stokes flow regime. For the conditions in a solid rocket motor, it is determined that either the drag or gravity forces will dominate depending on whether the sidewall injection velocity is high (drag) or low (gravity). Using a one-way coupling paradigm in a solid rocket motor, the effects of particle size, sidewall injection velocity, and particle-to-gas density ratio are examined. The particle size and sidewall injection velocity are found to have a greater impact on particle trajectories than the density ratio. Similarly, for conditions associated with a bidirectional vortex engine, it is determined that the drag force dominates. Using a one-way particle tracking Lagrangian model, the effects of particle size, geometric inlet parameter, particle-to-gas density ratio, and initial particle velocity are examined. All but the initial particle velocity are found to have a significant impact on particle trajectories. The proposed models can assist in reducing slag retention and identifying fuel injection configurations that will ensure proper confinement of combusting droplets to the inner vortex in solid rocket motors and bidirectional vortex engines, respectively.

Subjects

Multiphase flow

Solid rocket motor

Bidirectional vortex ...

Runge–Kutta method

Lagrangian particle t...

Matched asymptotic ex...

Disciplines
Propulsion and Power
Degree
Master of Science
Major
Aerospace Engineering
Embargo Date
December 1, 2011
File(s)
Thumbnail Image
Name

Ajay_katta___MS_thesis_final.docx

Size

11.63 MB

Format

Microsoft Word XML

Checksum (MD5)

06cccf0d4450d582490fbb0054dc04f2

Thumbnail Image
Name

KattaAjaydissertation.pdf

Size

758.66 KB

Format

Adobe PDF

Checksum (MD5)

266c41d678c1e3401898c0290e3b2bd9


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