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Williamsen, Joel E.

Publications and source records attributed to Williamsen, Joel E..

Orbital Debris Shape and Orientation Effects on Ballistic Limits

The SPHC hydrodynamic code was used to evaluate the effects of orbital debris particle shape and orientation on penetration of a typical spacecraft dual-wall shield. Impacts were simulated at near-normal obliquity at 12 km/sec. Debris cloud characteristics and damage potential are compared with those from impacts by spherical projectiles. Results of these simulations indicate the uncertainties in the predicted ballistic limits due to modeling uncertainty and to uncertainty in the impactor orientation.

Evans, Steven W.

Enhanced Whipple Shield

A hypervelocity impact (HVI) Whipple Shield and a method for shielding a wall from penetration by high velocity particle impacts where the Whipple Shield is comprised of spaced apart inner and outer metal sheets or walls with an intermediate cloth barrier arrangement comprised of ceramic cloth and high strength cloth which are interrelated by ballistic formulae.

Crews, Jeanne L.

Pressure wall patch

A rigid patch body for placing over a damaged portion (hole) of an external wall of a pressurized vessel, such as a space vehicle or a habitat, is discussed. The rigid patch body allows an astronaut to make temporary repairs to the pressurized vessel from the exterior of the vessel, which enables more permanent repairs to be made from the interior of the vessel. The pressure wall patch of the present invention includes a floor surrounded by four side members. Each side member includes a threaded screw for anchoring the patch body to the external wall of the pressurized vessel and a recess in its lower surface for supporting an inflatable bladder for surrounding the damaged portion (hole) of the external wall to seal the area surrounding the damaged portion. This allows the vessel to be repressurized. The floor of the rigid patch body supports a source of gas that is connected to the gas supply valve and a gas supply gauge in communication with the gas supply valve and the inflatable bladder.

Williamsen, Joel E.

Orbital debris risk analysis and survivability enhancement for Freedom Station manned modules

This paper briefly reviews how 'probability of penetration' analyses are currently performed at NASA, and discusses extension of this procedure to a 'probability of loss' analysis through identifying penetration hazards and failure modes. It goes on to discuss alternatives for increasing crew safety through redesign and/or augmentation of interior manned module systems, and describes an elementary analysis maximizing crew safety considering one identified penetration-induced failure mode (depressurization) and one interior design factor (number of hatches open).

Williamsen, Joel E.

Freedom Station wall design using hydrodynamic modelling

The paper outlines selected outputs from an ongoing Marshall Space Flight Center/US Army Corps of Engineers parametric study of the effects of meteoroid/space debris impacts on Space Station Freedom module wall protection structures. The advantages and limitations of HULL hydrocode computer simulation are discussed, and examples of meteoroid/ debris impacts on various wall structural designs are presented. Trends in the terminal effects of particle sizes, velocities, shapes, and impact angles upon structural design parameters (wall and bumper thickness and spacing) are summarized and depicted through selected simulation runs. Throughout the paper, proposed structural modifications to the baseline module protection structure will be examined which are capable of mitigating damage from particle impacts.

Williamsen, Joel E.

Shielding requirements for the Space Station habitability modules

The design, analysis, development, and tests of the total meteoroid/debris protection system for the Space Station Freedom habitability modules, such as the habitation module, the laboratory module, and the node structures, are described. Design requirements are discussed along with development efforts, including a combination of hypervelocity testing and analyses. Computer hydrocode analysis of hypervelocity impact phenomena associated with Space Station habitability structures is covered and the use of optimization techniques, engineering models, and parametric analyses is assessed. Explosive rail gun development efforts and protective capability and damage tolerance of multilayer insulation due to meteoroid/debris impact are considered. It is concluded that anticipated changes in the debris environment definition and requirements will require rescoping the tests and analysis required to develop a protection system.

Avans, Sherman L.

Assessment of external tank for heavy lift launch vehicle tankage

A new Heavy Lift Launch Vehicle (HLLV) will be required to lift future heavy payloads scheduled for launch in the mid to late 1990s. This report describes a study conducted at Martin Marietta which evaluated the use of an External Tank (ET) from the National Space Transportation System (NSTS) as a cryogenic, expendable upper stage for the HLLV. Design requirement changes necessary to adopt the existing ET to the HLLV mission were identified and an upper stage design configuration was defined which made maximum use of existing ET hardware and tooling. Performance improvements that could be achieved by substituting advance aluminum alloys (Aluminum-Lithium) in the tankage design were also determined. Using an upper stage design derived from the ET provides the advantages of using proven hardware, existing manufacturing facilities and existing tooling.

Hansen, Lawrence L.