Preliminary analysis of liquid equilibrium configurations and disturbances of a vehicle motion due to liquid sloshing in space.
Liquid equilibrium configurations and disturbances of vehicle motion due to liquid sloshing in space
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Liquid equilibrium configurations and disturbances of vehicle motion due to liquid sloshing in space
Liquid equilibrium configurations and disturbances of vehicle motion due to liquid sloshing in space
Liquid sloshing in scale model Centaur liquid hydrogen tank
Sloshing liquid natural frequencies change in cylindrical shell by movable devices, considering immersed thin elastic plate effect
Liquid sloshing at simulated low gravity in rigid cylindrical tank, noting analytical model and experimental results
Dimensional analysis applied to simulation of liquid sloshing
The destabilizing effect of the liquid on attitude nutation stability was determined from an extensive series of inorbit tests. The liquid slosh driving frequency ratio (rotor nutation frequency/rotor spin rate) was varied over the range of 0.58 to 0.70 for the tests by rotating the spacecraft antenna platform at different rates in inertial space. A rotor mounted accelerometer sensed the spacecraft nutation. The observed time constant for the nutation angle increase or decrease was corrected for the stabilizing contribution of the platform mounted pendulum dampers to yield the net destabilizing dedamping contribution from the liquid slosh. The in orbit tests show two unexpected maxima in the dedamping contribution at driving frequency ratios that vary with the propellant loading. The rotor nutation frequency at the maxima was about one-third of the lowest mode liquid slosh frequency given by ground test data for unspun tanks, and thus did not correspond to a simple resonance of the liquid. Ground tests with spinning systems produced the same maxima, but the phenomenon is not yet understood.
Low gravity liquid sloshing in rigid cylindrical tank
Liquid sloshing cylindrical tank with elastic bottom for investigating surface tension effect at liquid gas interface of partly filled container
Liquid sloshing in 45-deg sector compartmented cylindrical tanks
Coupled oscillations of sloshing liquid in elastic rectangular and cylindrical tank, noting frequency changes due to level and container configuration
Coupled oscillations of sloshing liquid in elastic rectangular and cylindrical tank, noting frequency changes due to level and container configuration
Low gravity liquid sloshing in arbitrary asisymmetric tank performing translational oscillations
The SPHERES Slosh Experiment (SSE) is a free floating experimental platform developed for the acquisition of long duration liquid slosh data aboard the International Space Station (ISS). The data sets collected will be used to benchmark numerical models to aid in the design of rocket and spacecraft propulsion systems. Utilizing two SPHERES Satellites, the experiment will be moved through different maneuvers designed to induce liquid slosh in the experiment's internal tank. The SSE has a total of twenty-four thrusters to move the experiment. In order to design slosh generating maneuvers, a parametric study with three maneuvers types was conducted using the General Moving Object (GMO) model in Flow-30. The three types of maneuvers are a translation maneuver, a rotation maneuver and a combined rotation translation maneuver. The effectiveness of each maneuver to generate slosh is determined by the deviation of the experiment's trajectory as compared to a dry mass trajectory. To fully capture the effect of liquid re-distribution on experiment trajectory, each thruster is modeled as an independent force point in the Flow-3D simulation. This is accomplished by modifying the total number of independent forces in the GMO model from the standard five to twenty-four. Results demonstrate that the most effective slosh generating maneuvers for all motions occurs when SSE thrusters are producing the highest changes in SSE acceleration. The results also demonstrate that several centimeters of trajectory deviation between the dry and slosh cases occur during the maneuvers; while these deviations seem small, they are measureable by SSE instrumentation.
The problem of liquid slosh in spinning containers represents an important factor in an analytical assessment of the destabilizing energy dissipation in dual spin spacecraft. The solution of the governing equations in this problem is involved due to the occurrence of the Coriolis term. Pfeiffer (1974) introduced the concept of homogeneous vorticity. Although the assumption is valid for completely filled ellipsoidal cavities, it is only an approximation for a partially filled cavity. On the basis of the results of a stability analysis, it appears that the assumption of homogeneous vorticity may be true for filling volumes more than 55%, while for lesser volumes this assumption cannot possibly be true, even approximately. Great care should then be taken in using Pfeiffer's model in flow problems involving intrinsic resonances.
Liquid propellant sloshing in a cylindrical quarter tank and its effect on spacecraft stability
Liquid sloshing and dynamics in rocket propellant tanks annotated bibliography with abstracts
Mathematical model using Euler-Lagrange equation to investigate liquid slosh effects on rendezvous dynamics