skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Steady detonation propagation in a circular arc: a Detonation Shock Dynamics model

Journal Article · · Journal of Fluid Mechanics
DOI:https://doi.org/10.1017/jfm.2016.597· OSTI ID:1499323

We study the physics of steady detonation wave propagation in a two-dimensional circular arc via a Detonation Shock Dynamics (DSD) surface evolution model. The dependence of the surface angular speed and surface spatial structure on the inner arc radius ($$R_{i}$$), the arc thickness ($$R_{e}-R_{i}$$, where$$R_{e}$$is the outer arc radius) and the degree of confinement on the inner and outer arc is examined. We first analyse the results for a linear$$D_{n}$$–$$\unicode[STIX]{x1D705}$$model, in which the normal surface velocity$$D_{n}=D_{CJ}(1-B\unicode[STIX]{x1D705})$$, where$$D_{CJ}$$is the planar Chapman–Jouguet velocity,$$\unicode[STIX]{x1D705}$$is the total surface curvature and$$B$$is a length scale representative of a reaction zone thickness. An asymptotic analysis assuming the ratio$$B/R_{i}\ll 1$$is conducted for this model and reveals a complex surface structure as a function of the radial variation from the inner to the outer arc. For sufficiently thin arcs, where$$(R_{e}-R_{i})/R_{i}=O(B/R_{i})$$, the angular speed of the surface depends on the inner arc radius, the arc thickness and the inner and outer arc confinement. For thicker arcs, where$$(R_{e}-R_{i})/R_{i}=O(1)$$, the angular speed does not depend on the outer arc radius or the outer arc confinement to the order calculated. It is found that the leading-order angular speed depends only on$$D_{CJ}$$and$$R_{i}$$, and corresponds to a Huygens limit (zero curvature) propagation model where$$D_{n}=D_{CJ}$$, assuming a constant angular speed and perfect confinement on the inner arc surface. Having the normal surface speed depend on curvature requires the insertion of a boundary layer structure near the inner arc surface. This is driven by an increase in the magnitude of the surface wave curvature as the inner arc surface is approached that is needed to meet the confinement condition on the inner arc surface. For weak inner arc confinement, the surface wave spatial variation with the radial coordinate is described by a triple-deck structure. The first-order correction to the angular speed brings in a dependence on the surface curvature through the parameter$$B$$, while the influence of the inner arc confinement on the angular velocity only appears in the second-order correction. For stronger inner arc confinement, the surface wave structure is described by a two-layer solution, where the effect of the confinement on the angular speed is promoted to the first-order correction. We also compare the steady-state arc solution for a PBX 9502 DSD model to an experimental two-dimensional arc geometry validation test.

Research Organization:
Los Alamos National Lab. (LANL), Los Alamos, NM (United States)
Sponsoring Organization:
USDOE (originally DOE/LANL)
DOE Contract Number:
89233218CNA000001
OSTI ID:
1499323
Report Number(s):
LA-UR-16-21352; applab
Journal Information:
Journal of Fluid Mechanics, Vol. 807; ISSN 0022-1120
Publisher:
Cambridge University Press
Country of Publication:
United States
Language:
English

References (14)

Steady-state two-dimensional detonation journal July 1981
Experimental validation of detonation shock dynamics in condensed explosives journal December 2005
Stable detonation wave propagation in rectangular-cross-section curved channels journal February 2012
Modelling detonation of heterogeneous explosives with embedded inert particles using detonation shock dynamics: Normal and divergent propagation in regular and simplified microstructure journal March 2014
An MPI parallel level-set algorithm for propagating front curvature dependent detonation shock fronts in complex geometries journal February 2013
On the structure and accuracy of programmed burn journal April 2006
The Dynamics of Detonation in Explosive Systems journal January 2007
Level Set Methods Applied to Modeling Detonation Shock Dynamics journal July 1996
The shock dynamics of stable multidimensional detonation journal June 1988
Modeling two‐dimensional detonations with detonation shock dynamics journal July 1989
Time-dependent two-dimensional detonation: the interaction of edge rarefactions with finite-length reaction zones journal October 1986
Scaling of detonation velocity in cylinder and slab geometries for ideal, insensitive and non-ideal explosives journal May 2015
Detonation shock dynamics and comparisons with direct numerical simulation journal March 1999
Front shock behavior of stable curved detonation waves in rectangular-cross-section curved channels journal January 2013

Similar Records

A direct comparison of particle-resolved and point-particle methods in decaying turbulence
Journal Article · Wed Jul 04 00:00:00 EDT 2018 · Journal of Fluid Mechanics · OSTI ID:1499323

Direct construction of optimized stellarator shapes. Part 1. Theory in cylindrical coordinates
Journal Article · Sat Dec 01 00:00:00 EST 2018 · Journal of Plasma Physics · OSTI ID:1499323

Particle acceleration in relativistic magnetic flux-merging events
Journal Article · Fri Dec 01 00:00:00 EST 2017 · Journal of Plasma Physics · OSTI ID:1499323

Related Subjects