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18.1 SKF Engineering Data, SKF Industries, Inc., Philadelphia, 1979. 18.2 T. A. Harris, Predicting Bearing Reliability, Machine Design, vol. 35, no. 1, Jan. 3, 1963, pp. 129 132. 18.3 Bearing Selection Handbook, rev. ed., The Timken Company, Canton, Ohio, 1986. 18.4 E. N. Bamberger, T. A. Harris, W. M. Kacmarsky, C. A. Moyer, R. J. Parker, J. J. Sherlock, and E. V. Zaretsky, Life Adjustment Factors for Ball and Roller Bearings, ASME, New York, 1971.
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Downloaded from Digital Engineering Library @ McGraw-Hill (www.digitalengineeringlibrary.com) Copyright 2004 The McGraw-Hill Companies. All rights reserved. Any use is subject to the Terms of Use as given at the website.
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Downloaded from Digital Engineering Library @ McGraw-Hill (www.digitalengineeringlibrary.com) Copyright 2004 The McGraw-Hill Companies. All rights reserved. Any use is subject to the Terms of Use as given at the website.
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Source: STANDARD HANDBOOK OF MACHINE DESIGN
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19.1 INTRODUCTION / 19.3 19.2 BEARING AND JOURNAL CONFIGURATIONS / 19.4 19.3 BEARING MATERIALS AND SELECTION CRITERIA / 19.7 19.4 PRESSURE EQUATION FOR A LUBRICATING FILM / 19.13 19.5 JOURNAL BEARING PERFORMANCE / 19.16 19.6 LIQUID-LUBRICATED JOURNAL BEARINGS / 19.20 19.7 GAS-LUBRICATED JOURNAL BEARINGS / 19.43 19.8 HYDROSTATIC JOURNAL BEARING DESIGN / 19.52 REFERENCES / 19.57
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LIST OF SYMBOLS
a af A b C C* D e f Fj h h0 H J k L M Mj Axial-flow land width Pad load coefficient Area Circumferential-flow land width Clearance Specific heat Diameter Eccentricity Coefficient of friction Friction on journal Film thickness Minimum film thickness Dimensionless film thickness Mechanical equivalent of heat Permeability Bearing width Rotor mass at bearing Frictional torque on journal
19.1 Downloaded from Digital Engineering Library @ McGraw-Hill (www.digitalengineeringlibrary.com) Copyright 2004 The McGraw-Hill Companies. All rights reserved. Any use is subject to the Terms of Use as given at the website.
JOURNAL BEARINGS 19.2
BEARINGS AND LUBRICATION
n N p pa p0 pr ps p p P q qf Q Qs R Rb s S t tp T u, v, w U W WR WT x, y, z X Y 1 1 2 3 cav
Number of pads or recesses Revolutions per unit time Pressure Ambient pressure Short-bearing pressure Recess pressure Supply pressure Long-bearing pressure Dimensionless pressure Unit loading Volume flow rate per unit length Flow factor Volume flow rate Side leakage flow rate Radius of journal Radius of bearing = R + C Stiffness Sommerfeld number = ( N/P)(R/C)2 Time Thickness of porous liner Temperature Velocity in x, y, z directions, respectively Velocity of journal Load Load component directed along line of centers Load component normal to line of centers Rectangular coordinates Dimensionless minimum-film-thickness parameter = (h0 /R)[P/(2 N )]1/2 Dimensionless frictional torque parameter = [Mj /(WR)][P/(2 N )]1/2 Porous material slip coefficient Included angle of partial bearing, porous bearing parameter Angle from line of centers to leading edge of partial bearing Circumferential-flow parameter Eccentricity ratio e/c Dimensionless axial dimension = z/(L/2) Angular position measured from line of centers Angular position to leading edge of film Angular position to zero pressure in film Angular position to trailing edge of film Angular position to cavitation boundary
Downloaded from Digital Engineering Library @ McGraw-Hill (www.digitalengineeringlibrary.com) Copyright 2004 The McGraw-Hill Companies. All rights reserved. Any use is subject to the Terms of Use as given at the website.
JOURNAL BEARINGS 19.3
JOURNAL BEARINGS
Bearing number = (6 /pa)(R/C)2 Ratio of heat conduction loss to heat generation rate, reduced bearing number = /6 Dynamic viscosity Density Shear stress Attitude angle Angular velocity Porous bearing parameter
19.1 INTRODUCTION
The design of journal bearings is of considerable importance to the development of rotating machinery. Journal bearings are essential machine components for compressors, pumps, turbines, internal-combustion engines, motors, generators, etc. In its most basic form (Fig. 19.1), a journal bearing consists of a rotatable shaft (the journal) contained within a close-fitting cylindrical sleeve (the bearing). Generally, but not always, the bearing is fixed in a housing. The journal and bearing surfaces are separated by a film of lubricant (liquid or gas) that is supplied to the clearance space between the surfaces. The clearance space is generally quite small (on the order of one-thousandth of the journal radius) and has four major functions:
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