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"NASA Technical Reports Server (NTRS) 19950019377: The Coupling Of Fluids, Dynamics, And Controls On Advanced Architecture Computers" and the language of the book is English.


“NASA Technical Reports Server (NTRS) 19950019377: The Coupling Of Fluids, Dynamics, And Controls On Advanced Architecture Computers” Metadata:

  • Title: ➤  NASA Technical Reports Server (NTRS) 19950019377: The Coupling Of Fluids, Dynamics, And Controls On Advanced Architecture Computers
  • Author: ➤  
  • Language: English

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  • Internet Archive ID: NASA_NTRS_Archive_19950019377

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"NASA Technical Reports Server (NTRS) 19950019377: The Coupling Of Fluids, Dynamics, And Controls On Advanced Architecture Computers" Description:

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This grant provided for the demonstration of coupled controls, body dynamics, and fluids computations in a workstation cluster environment; and an investigation of the impact of peer-peer communication on flow solver performance and robustness. The findings of these investigations were documented in the conference articles.The attached publication, 'Towards Distributed Fluids/Controls Simulations', documents the solution and scaling of the coupled Navier-Stokes, Euler rigid-body dynamics, and state feedback control equations for a two-dimensional canard-wing. The poor scaling shown was due to serialized grid connectivity computation and Ethernet bandwidth limits. The scaling of a peer-to-peer communication flow code on an IBM SP-2 was also shown. The scaling of the code on the switched fabric-linked nodes was good, with a 2.4 percent loss due to communication of intergrid boundary point information. The code performance on 30 worker nodes was 1.7 (mu)s/point/iteration, or a factor of three over a Cray C-90 head. The attached paper, 'Nonlinear Fluid Computations in a Distributed Environment', documents the effect of several computational rate enhancing methods on convergence. For the cases shown, the highest throughput was achieved using boundary updates at each step, with the manager process performing communication tasks only. Constrained domain decomposition of the implicit fluid equations did not degrade the convergence rate or final solution. The scaling of a coupled body/fluid dynamics problem on an Ethernet-linked cluster was also shown.

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