A special‐purpose computer for molecular dynamics: GRAPE‐2A
- 1 October 1994
- journal article
- research article
- Published by Wiley in Proteins-Structure Function and Bioinformatics
- Vol. 20 (2) , 139-148
- https://doi.org/10.1002/prot.340200204
Abstract
Molecular dynamics simulations have been extensively used in research of proteins. Since these simulations are quite computer intensive, their acceleration is of main interest of the research. In molecular dynamics simulations, almost all computing time is consumed in calculating the forces between particles, e.g., Coulomb and van der Waals forces. We have designed and built GRAPE-2A (GRAvity PipE 2A), a special-purpose computer for use in simulations of classical many-body systems. GRAPE-2A calculates forces exerted on a particle from the other particles. GRAPE-2A can calculate force of an arbitrary functional form of a central force. The host computer, which is connected to GRAPE-2A through the VME bus, performs other calculations such as time integration. The peak speed of GRAPE-2A is 180 Mflops. We can also stimulate systems with periodic boundary conditions by the Ewald method, using GRAPE-2A and another special-purpose computer, WINE (Wave space INtegrator for the Ewald method).Keywords
This publication has 10 references indexed in Scilit:
- Molecular dynamics simulations of proteins in aqueous solution without the truncation of long-range Coulomb interactionsPublished by Elsevier ,1993
- Molecular Dynamics Simulations of Proteins in Water Without the Truncation of Long-range Coulomb InteractionsMolecular Simulation, 1992
- FASTRUN: A special purpose, hardwired computer for molecular simulationProteins-Structure Function and Bioinformatics, 1991
- A special purpose computer for molecular dynamics calculationsJournal of Computational Physics, 1990
- A special-purpose computer for gravitational many-body problemsNature, 1990
- Free Energy Via Molecular Simulation: Applications to Chemical and Biomolecular SystemsAnnual Review of Biophysics, 1989
- A new force field for molecular mechanical simulation of nucleic acids and proteinsJournal of the American Chemical Society, 1984
- Constant pressure molecular dynamics for molecular systemsMolecular Physics, 1983
- Dynamics of folded proteinsNature, 1977
- Die Berechnung optischer und elektrostatischer GitterpotentialeAnnalen der Physik, 1921