We report the results of a mechanistic study of energy localization in aHMX (High Melting point eXplosive octahydro-1,3,5,7-tetranitro-1,2,3,5-tetrazocine)/Estane PBX system during dynamic loading. The focus is on the thermal-mechanical response over the strain rate range of 104 – 105 s−1 under different confinement conditions. A recently developed cohesive finite element method is used to track and analyze the contributions to heating from different constituents, interfaces, deformation and fracture mechanisms, and internal friction. In particular, energy dissipations due to viscoelastic deformation, grain fracture, interfacial debonding, and friction along crack faces are quantified as functions of time and overall deformation. The materials analyzed have HMX volume fractions between 0.69 and 0.82. Calculations show that variation in strain rate can significantly affect the spatial distribution but not the overall number of hot spots. Higher confining stresses lead to more intense heating in the binder and more uniform distribution of hot spots. The evolution of hot spots is quantified as a function of loading condition, deformation and microstructural attributes. The microstructure-response relations obtained can be used to assess the initiation sensitivity of energetic composites.

1.
S. J. P.
Palmer
and
J. E.
Field
,
Proc. R. Soc. London, Ser. A
383
,
399
(
1982
).
2.
G. T.
Gray
,
W. R.
Blumenthal
,
D. J.
Idar
, and
C. M.
Cady
, “
Influence of temperature on the high-strain-rate mechanical behavior of PBX 9501
,” in
Shock Compression of Condensed Matter – 1997
, edited by
S. C.
Schmidt
,
D. P.
Dandekar
, and
J. W.
Forbes
(
American Institute of Physics
,
Melville, NY
,
1998
), Vol.
429
, pp.
583
586
.
3.
C. M.
Cady
,
W. R.
Blumenthal
,
G. T.
Gray
, and
D. J.
Idar
,
Polym. Eng. Sci.
46
,
812
(
2006
).
4.
P. J.
Rae
,
S. J. P.
Palmer
,
H. T.
Goldrein
,
J. E.
Field
, and
A. L.
Lewis
Proc. R. Soc. London Ser. A
458
,
2227
(
2002
).
5.
M. R.
Baer
,
Thermochim. Acta
384
,
351
(
2002
).
6.
R. W.
Armstrong
and
W. L.
Elban
,
Mater. Sci. Eng. A
122
,
L1
(
1989
).
7.
S. G.
Bardenhagen
,
M. G.
Stout
, and
G. T.
Gray
,
Mech. Mater.
25
,
235
(
1997
).
8.
W. M.
Trott
,
M. R.
Baer
,
J. N.
Castaneda
,
L. C.
Chhabildas
, and
J. R.
Asay
,
J. Appl. Phys.
101
,
21
(
2007
).
9.
R.
Menikoff
, “
Pore collapse and hot spots in HMX
,” in
Shock Compression of Condensed Matter -2003, Pts 1 and 2, Proceedings
, edited by
M. D.
Furnish
,
Y. M.
Gupta
, and
J. W.
Forbes
(
American Institute of Physics
,
Melville, NY
,
2004
), Vol.
706
, pp.
393
396
.
10.
C. R.
Siviour
,
P. R.
Laity
,
W. G.
Proud
,
J. E.
Field
,
D.
Porter
,
P. D.
Church
,
P.
Gould
, and
W.
Huntingdon-Thresher
,
Proc. R. Soc., Ser. A
464
,
1229
(
2008
).
11.
P. A.
Urtiew
and
C. M.
Tarver
,
Combust. Explos.
41
,
766
(
2005
).
12.
H. L.
Berghout
,
S. F.
Son
,
C. B.
Skidmore
,
D. J.
Idar
, and
B. W.
Asay
,
Thermochim. Acta
384
,
261
(
2002
).
13.
D. J.
Idar
,
R. A.
Lucht
,
J. W.
Straight
,
R. J.
Scammon
,
R. V.
Browning
,
J.
Middleditch
,
J. K.
Dienes
,
C. B.
Skidmore
, and
G. A.
Buntain
, “
Low amplitude insult project: PBX 9501 high explosive violent reaction experiments
,” in
Proceedings of the 11th Detonation Symposium
, edited by
J. M.
Short
and
J. E.
Kennedy
(
Office of Naval Research
,
Arlington, VA
,
1998
), pp.
101
110
.
14.
C. M.
Tarver
,
S. K.
Chidester
, and
A. L.
Nichols
,
J. Phys. Chem.
100
,
5794
(
1996
).
15.
Y.
Hamate
and
Y.
Horie
,
Shock Waves
16
,
125
(
2006
).
16.
P. D.
Peterson
,
J. T.
Mang
,
M. A.
Fletcher
,
B. W.
Olinger
, and
E. L.
Roemer
, “
Influence of pressing parameters on the microstructure, of PBX 9501
,” in
Shock Compression of Condensed Matter -2003, Parts 1 and 2, Proceedings
, edited by
M. D.
Furnish
,
Y. M.
Gupta
, and
J. W.
Forbes
(
American Institute of Physics
,
Melville, NY
,
2004
), vol.
706
, pp.
796
799
.
17.
A.
Barua
and
M.
Zhou
,
Modell. Simul. Mater. Sci. Eng.
19
,
24
(
2011
).
18.
Y.-Q.
Wu
and
F.-L.
Huang
,
Mech. Mater.
41
,
27
(
2009
).
19.
J.
Zhai
,
V.
Tomar
, and
M.
Zhou
,
J. Eng. Mater. Technol. Trans. ASME
,
126
,
179
(
2004
).
20.
E. M.
Mas
and
B. E.
Clements
, “
A viscoelastic model for PBX binders
,” http://lib-www.lanl.gov/la-pubs/00818442.pdf (
1996
).
21.
A.
Barua
and
M.
Zhou
, “
Heating in microstructures of HMX/Estane PBX during dynamic deformation
,”
Shock Compression of Condensed Matter
56
(
6
), (
2011
). http://meetings.aps.org/link/BAPS.2011.SHOCK.Y3.6.
22.
R. K.
Govier
,
G. T.
Gray
, and
W. R.
Blumenthal
,
Metall. Mater. Trans. A
39A
(
3
),
535
(
2008
).
23.
N. K.
Bourne
and
G. T.
Gray
,
J. Appl. Phys.
98
,
123503
(
2005
).
24.
J.
Corley
,
W.
Riedel
,
S.
Hiermaier
,
P.
Weidemaier
, and
M.
Thoma
, “
A combined experimental/computational approach for assessing the high strain rate response of high explosive simulants and other viscoelastic particulate composite materials
,” in
Shock Compression of Condensed Matter-2001, Parts 1 and 2, Proceedings
, edited by
M. D.
Furnish
(
American Institute Physics
,
Melville, NY
,
2002
), vol.
620
, pp.
705
708
.
25.
D. A.
Wiegand
and
B.
Reddingius
,
J. Energ. Mater.
23
,
75
(
2005
).
26.
C. S.
Smith
and
L.
Guttman
,
Trans. AIME
97
,
81
(
1953
).
You do not currently have access to this content.