Solid Rocket Motor Internal Ballistics Simulation Using Three-Dimensional Grain Burnback
Моделирование внутренней баллистики твердотопливного маршевого двигателя с учетом трехмерного сгорания сердечника
2007-04-24
SCID: 54.1/7tghn3zp
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dynamic burningerosive burningminimum distance functionsolid rocket motor internal ballisticsthree-dimensional grain burnback
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Abstract (AI)
Internal ballistics simulations of solid rocket motors have been conducted with the propellant grain???s 3-D burning surface geometry described by a new minimum distance function approach and the internal flowfield represented by 1-D, time-dependent, single-phase compressible flow equations. The combustion model includes erosive burning and unsteady, dynamic burning corresponding to transient energy storage in the heated surface layer of the propellant. The integrated internal ballistics code (Rocballist) is used to investigate the role of these two burning rate augmenting mechanisms in solid rocket motor performance. Two tactical motors are used as test cases. Results indicate that dynamic burning can be the dominant factor in producing a short-duration ignition pressure spike in low-L???? motors, particularly if the L=D ratio is not too large and the port cross section is nonrestrictive (e.g., center perforated grain). However, when L=D is large and the port cross section is noncircular in the aft section (aft fins/slots), erosive burning can take over in dominating the burning rate to the extent that an otherwise progressive pressure-time trace becomes regressive/neutral. That is, erosive burning can effectively prolong the initial pressure spike in some star-aft motors. The results also show that with sufficiently accurate models of dynamic burning and erosive burning, it is reasonable to expect reliable internal ballistics predictions with suitable simplified flowfield models, thereby realizing significant reductions in computation time compared with 3-D, multiphase reacting flow simulations.
Key Findings
1
A new minimum distance function method describes 3-D propellant grain burnback and is integrated into internal ballistics simulations.
2
Accurate models of dynamic and erosive burning combined with simplified 1-D time-dependent flowfield models can yield reliable internal ballistics predictions with much lower computational cost than full 3-D multiphase reacting flow simulations.
3
Dynamic burning can dominate and produce a short-duration ignition pressure spike in low-L/D motors with nonrestrictive port cross sections (e.g., center-perforated grain).
4
The combustion model includes both erosive burning and unsteady dynamic burning from transient energy storage in the heated surface layer.
5
When L/D is large and the aft port cross section is noncircular (aft fins/slots), erosive burning can dominate and convert a progressive pressure-time trace to regressive/neutral, prolonging the initial pressure spike in some star-aft motors.
Research Object
Solid rocket motor internal ballistics system (propellant grain 3-D burnback and internal flowfield of tactical motors)
Research Subject
Effects of dynamic burning and erosive burning (due to 3-D grain burnback and simplified 1-D compressible flow) on burning rate augmentation and pressure-time behavior (ignition spike, progressive/regressive/neutral traces) in solid rocket motors
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2007-04-24
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