This paper presents the qualification of the light weight Phenolic Impregnated Carbon Ablators (PICA) as the forebody heatshield for the Stardust Discovery Class Mission. The Stardust spacecraft will be launched in early 1999 and fly by Comet Wild-2 to collect cometary and interstellar dust and return them back to earth in the Sample Return Capsule (SRC). This earth re-entry will be the fastest to date, at 12.6 km/s, and therefore requires a heatshield that can withstand very high heating rates and stagnation pressures, as well as provide the necessary insulation to the vehicle structure. The PICA material was developed as part of the Lightweight Ceramic Ablators program at NASA Ames Research Center, and was baselined as the forebody heatshield because of its low density and superior ablation and thermal performance at severe aerothermodynamic conditions. Under a Small Business Innovative Research (SBIR) program with NASA Ames, Fiber Materials, Inc. developed a process to manufacture a single-piece PICA heatshield for the forebody of the SRC, along with witness material for the fabrication of the test models. The test models were fabricated and instrumented by the staff of Lockheed Martin Astronautics in Denver, Colorado. Full body preliminary aerothermal CFD calculations were performed at NASA Ames to determine the heating and stagnation pressure conditions. The Heat shield sizing was also performed at NASA Ames by using a new material response code that accounts for the highly porous characteristics of the PICA material. The ablation and thermal performance of PICA was qualified in the NASA Ames Interaction Heating Arc Jet Facility. A total of 24 models and four test conditions were used to qualify PICA at the predicted peak heat flux, heat load, shear, and stagnation pressure conditions. Surface and in-depth temperatures were measured using optical pyrometers and thermocouples. Surface recession was measured by using a template and a height gage. Several models were tested to evaluate repair procedures, and two models were cold soaked in liquid nitrogen, prior th testing, to investigate the effect of the cold space environment on the performance of the material. In addition, material cored from a demonstration single-piece heatshield was tested to verify that the PICA process can be successfully completed on a large, complex heatshield shape.


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    Titel :

    PICA Forebody Heatshield Qualification for the Stardust Discovery Class Mission


    Beteiligte:
    Tran, Huy K. (Autor:in) / Johnson, Christine E. (Autor:in) / Hsu, Ming-Ta (Autor:in) / Smith, Marnell (Autor:in) / Dill, Harry (Autor:in) / Rasky, Daniel J. (Autor:in)

    Kongress:

    32nd AIAA Thermophysics Conference ; 1997 ; Atlanta, GA, United States


    Erscheinungsdatum :

    1996-01-01


    Medientyp :

    Aufsatz (Konferenz)


    Format :

    Keine Angabe


    Sprache :

    Englisch


    Schlagwörter :


    Post-Flight Evaluation of Stardust Sample Return Capsule Forebody Heatshield Material

    Stackpoole, Mairead / Sepka, Steve / Cozmuta, Ioana et al. | AIAA | 2008


    Post-Flight Evaluation of Stardust Sample Return Capsule Forebody Heatshield Material

    Stackpoole, M. / Sepka, S. / Cozmuta, I. et al. | British Library Conference Proceedings | 2008


    Qualification of the forebody heatshield of the Stardust's Sample Return Capsule

    Tran, Huy / Johnson, Christine / Hsu, Ming-Ta et al. | AIAA | 1997


    The NASA STARDUST Discovery Mission

    Duxbury, T. C. | NTRS | 1997


    The NASA Discovery STARDUST Mission

    Duxbury, T. | NTRS | 2000