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At least 91 records · Page 5

Applying large solid boosters.

Large solid propellant booster rocket engine performance characteristics and development and operating cost estimates for several manned launched vehicle concepts

COST ESTIMATE

Casting propellant in rocket engine

A method is described for casting a solid propellant in the casing of a rocket engine having a continuous wall with a single opening which is formed by leaves of a material which melt at a temperature of the propellant and with curved edges concentric to the curvature of the spherical casing. The leaves are inserted into the spherical casing through the opening forming a core having a greater width than the width of the single opening and with curved peripheral edges. The cast propellant forms a solid mass and then heated to melt the leaves and provide a central opening with radial projecting flutes.

Roach, J. E.

Experimental research and design planning in the field of liquid-propellant rocket engines conducted between 1934 - 1944 by the followers of F. A. Tsander

The development of the following Liquid-Propellant Rocket Engines (LPRE) is reviewed: (1) an alcohol-oxygen single-firing LPRE for use in wingless and winged rockets, (2) a similar multifiring LPRE for use in rocket gliders, (3) a combined solid-liquid propellant rocket engine, and (4) an aircraft LPRE operating on nitric acid and kerosene.

Dushkin, L. S.

SOLID PROPELLANT BOOSTERS FOR MANNED SPACE FLIGHT

Within the past year, large solid propellant rocket motors have become very prominent in discussions of possible launch vehicles for manned space flight. This is partly due to active promotion by the solid propellant rocket industry. The role that large solid rockets may play in space launching vehicles is also indicated, however, by the results of numerous analyses and vehicle studies that have been made in the past two years by government and other unbiased agencies. The promise of the large solid rocket motor has been further substantiated by major development accomplishments which have been achieved in the past year. The purpose of this paper is to review some of the reasons for the dramatic entry of large solid propellant boosters into the manned space flight field, to assess their present position, and to discuss some areas where need for further work is indicated.

Booster

PAYLOAD SEPARATION AND THRUST TERMINATION IN A SOLID-PROPELLANT ROCKET MOTOR

A command method for thrust reduction and/or thrust termination of a solid-propellant rocket motor-called project Shavetail-was demonstrated successfully in flight by Jet Propulsion Laboratory. Thrust reduction is achieved by the separation of a portion of the nozzle to increase the throat area. The chamber pressure is lowered and motor continues to burn at a vernier level of thrust. At any time before motor burnout, upon command from guidance, thrust cancellation and motor separation from the payload are achieved by opening an orifice in the head end of the motor.

VELOCITY

The Dynamics of Solid Propellant Rocket Motors

From the point of view of dynamics, a solid propellant rocket motor is a unique structure in that it is composed of a substantial mass of propellant material case-bonded to a relatively massless, thin-walled cylinder. The mechanical properties of the propellant are such that it contributes little to the stiffness of the composite structure but it does contribute to the dynamic characteristics of the structure because of its mass. Furthermore, due to the viscoelastic character of the propellant, it can be expected to provide considerable damping to the system. At this point in the development of the art of design of solid propellant rocket motors there are no clear-cut or well-founded methods to evaluate quantitatively the contributions of the propellant to the dynamic responses of the composite structure. It is clear that unless such methods are devised, it will be difficult to arrive at accurate missile designs. In this paper a survey of the dynamic problems of solid propellant rocket motors is presented starting from the simplest model thereof and proceeding, step-by-step, to the consideration of more sophisticated and realistic models. The consideration is restricted to infinitesimal deformations of propellant grains with linear mechanical properties. Substantial progress has been achieved towards the solution of many important dynamical problems. We shall attempt to summarize the pertinent developments and indicate along which lines we feel future study should proceed. A few illustrative solutions are included in areas wherein progress has been substantial.

DYNAMIC RESPONSE

LOW PRESSURE ROCKET EXTINCTION

Rocket extinction in vacuum environment, using regressive grains to determine low pressure limit for any propellant formation

ROCKET FIRING

Rocket-motor spin-test apparatus

Rocket motor spin test apparatus capable of subjecting solid rocket motors to dynamic spin or roll environments encountered in flight

FLIGHT TEST INSTRUMENT