"NASA Technical Reports Server (NTRS) 19910001566: Conjugate (solid/fluid) Computational Fluid Dynamics Analysis Of The Space Shuttle Solid Rocket Motor Nozzle/case And Case Field Joints" - Information and Links:

NASA Technical Reports Server (NTRS) 19910001566: Conjugate (solid/fluid) Computational Fluid Dynamics Analysis Of The Space Shuttle Solid Rocket Motor Nozzle/case And Case Field Joints - Info and Reading Options

"NASA Technical Reports Server (NTRS) 19910001566: Conjugate (solid/fluid) Computational Fluid Dynamics Analysis Of The Space Shuttle Solid Rocket Motor Nozzle/case And Case Field Joints" and the language of the book is English.


“NASA Technical Reports Server (NTRS) 19910001566: Conjugate (solid/fluid) Computational Fluid Dynamics Analysis Of The Space Shuttle Solid Rocket Motor Nozzle/case And Case Field Joints” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 19910001566: Conjugate (solid/fluid) Computational Fluid Dynamics Analysis Of The Space Shuttle Solid Rocket Motor Nozzle/case And Case Field Joints
  • Author: ➤  
  • Language: English

Edition Identifiers:

  • Internet Archive ID: NASA_NTRS_Archive_19910001566

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"NASA Technical Reports Server (NTRS) 19910001566: Conjugate (solid/fluid) Computational Fluid Dynamics Analysis Of The Space Shuttle Solid Rocket Motor Nozzle/case And Case Field Joints" Description:

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Three-dimensional, conjugate (solid/fluid) heat transfer analyses of new designs of the Solid Rocket Motor (SRM) nozzle/case and case field joints are described. The main focus was to predict the consequences of multiple rips (or debonds) in the ambient cure adhesive packed between the nozzle/case joint surfaces and the bond line between the mating field joint surfaces. The models calculate the transient temperature responses of the various materials neighboring postulated flow/leakpaths into, past, and out from the nozzle/case primary O-ring cavity and case field capture O-ring cavity. These results were used to assess if the design was failsafe (i.e., no potential O-ring erosion) and reusable (i.e., no excessive steel temperatures). The models are adaptions and extensions of the general purpose PHOENICS fluid dynamics code. A non-orthogonal coordinate system was employed and 11,592 control cells for the nozzle/case and 20,088 for the case field joints are used with non-uniform distribution. Physical properties of both fluid and solids are temperature dependent. A number of parametric studies were run for both joints with results showing temperature limits for reuse for the steel case on the nozzle joint being exceeded while the steel case temperatures for the field joint were not. O-ring temperatures for the nozzle joint predicted erosion while for the field joint they did not.

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