000 02163cam a22003498i 4500
001 u4764
003 SIRSI
005 20250825175014.0
008 210908s2022 njuad 001 0 eng c
020 _a9781119810964
_q(hardback)
020 _z9781119810971
_q(ePDF)
020 _z9781119810988
_q(epub)
020 _a9781119810995
_q(obook)
040 _aDLC
_beng
_erda
_cDLC
082 0 0 _a532.5
_223/eng/20211108
245 0 0 _aFlow-induced vibration handbook for nuclear and process equipment /
_c[edited by] Michel J. Pettigrew, Colette E. Taylor, Nigel J. Fisher.
250 _aFirst edition.
260 1 _aHoboken, NJ :
_bJohn Wiley & Sons, Inc.,
_c2022.
300 _axix, 471 pages :
_billustrations, charts.
500 _aIncludes index.
505 2 _aFlow considerations / John M. Pietralik, Liberat N. Carlucci, Colette E. Taylor, and Michel J. Pettigrew -- Hydrodynamic mass, natural frequencies and mode shapes / Daniel J. Gorman, Colette E. Taylor, and Michel J. Pettigrew -- Damping of cylindrical structures in single-phase fluids / Michel J. Pettigrew.
520 _a"Flow-induced vibration is the term for the phenomena of vibration and noise that is caused by fluid flow. Excessive flow-induced vibrations can cause fatigue or failure in process and plant equipment, which can in turn lead to operational disruptions, lost production, and costly repairs. Mechanical engineers can help avoid these issues by performing a flow-induced vibration analysis during the design phase of a project. Industries that employ plants with high capital costs, such as the nuclear, power, petrochemical, and aerospace industries, have a particular interest in understanding and mitigating flow-induced vibrations"--
_cProvided by publisher.
650 0 _aHydrodynamics.
650 0 _aPressure vessels
_xFluid dynamics.
650 0 _aPressure vessels
_xVibration.
650 0 _aPiping
_xFluid dynamics.
650 0 _aChemical plants
_xPiping
_xVibration.
650 0 _aNuclear power plants
_xPiping
_xVibration.
700 1 _aPettigrew, M. J.,
_eeditor.
700 1 _aTaylor, Colette E.,
_eeditor.
700 1 _aFisher, N. J.
_q(Nigel John),
_d1959-
_eeditor.
999 _c3328
_d3328