ABS 128-2006 GUIDANCE NOTES ON PROPULSION SHAFTING ALIGNMENT《轴系队列推进指南说明》.pdf
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1、 Guidance Notes on Propulsion Shafting Alignment GUIDANCE NOTES ON PROPULSION SHAFTING ALIGNMENT APRIL 2006 (Updated February 2014 see next page) American Bureau of Shipping Incorporated by Act of Legislature of the State of New York 1862 Copyright 2006 American Bureau of Shipping ABS Plaza 16855 No
2、rthchase Drive Houston, TX 77060 USA Updates February 2014 consolidation includes: April 2006 version plus Corrigenda/Editorials ABSGUIDANCE NOTES ON PROPULSION SHAFTING ALIGNMENT .2006 iii Foreword Foreword The mission of the American Bureau of Shipping (ABS) is to serve the public interest, as wel
3、l as the needs of its clients, by promoting the security of life, property and the natural environment primarily through the development and verification of standards for the design, construction and operational maintenance of marine-related facilities. The Rules and Guides on which classification i
4、s predicated are established from theoretical and empirical principles of naval architecture, marine engineering and other engineering principles that have proven satisfactory by service experience and systematic analysis. The classification Rules are not intended to address every single aspect of t
5、he vessel design, but rather to indicate the minimum set of criteria which will ensure safety and functionality of all vital components of the vessel, and at the same time provide sufficient space to the industry to accommodate their practices and technologies with minimum constraints from regulator
6、y bodies. However, in situations where the complexity of the problem results in conflicting interpretation of regulations and when the consequence of this disparity results in damage to the equipment and affects vessels safety, additional regulation clarification and guidance may be necessary. The c
7、ase of shaft alignment is an example of where ABS has noticed the need to provide a more detailed explanation on alignment design and practices, which has resulted in the development of the subject Guidance Notes. These Guidance Notes have been developed primarily to clarify the subject matter for A
8、BS field inspectors and design review engineers to ensure consistency of the survey and plan approval process. Moreover, the subject guidelines may help the industry to improve its approach towards shaft alignment analyses and procedures. Additionally, ABS has developed state of the art analytical t
9、ools primarily for the purpose of engineering analysis and design. The ABS shaft alignment program, combined with alignment optimization software, is capable of analyzing complex propulsion installations and, when used as design tool, may provide an optimal solution to the alignment problem. We welc
10、ome your feedback. Comments or suggestions can be sent electronically to rsdeagle.org. iv ABSGUIDANCE NOTES ON PROPULSION SHAFTING ALIGNMENT .2006 Table of Contents GUIDANCE NOTES ON PROPULSION SHAFTING ALIGNMENT CONTENTS SECTION 1 Introduction 1 1 Propulsion Shaft Alignment . 1 2 Objective . 2 3 Th
11、e Alignment Problem 3 3.1 Solution to Alignment Problem 4 3.2 Analytical Support 4 4 Modern Vessel Design 5 5 Rule Requirements . 5 SECTION 2 Shaft Alignment Design and Review 7 1 General . 7 2 Review vs. Design 7 3 Review 8 3.1 Plans and Particulars Required . 8 3.2 Shaft Alignment Model . 9 3.3 Sc
12、ope of Calculation 9 3.4 Results Verification 10 3.5 Documenting the Review . 17 4 Design . 18 4.1 General 18 4.2 Stern Tube Bearing 18 4.3 Stern Tube Bearing Contact Modeling . 22 4.4 Crankshaft Modeling 27 4.5 Applying a Partial Equivalent Model of the Crankshaft 31 4.6 Engine Bearing Misalignment
13、 33 4.7 Bearing Clearance . 33 4.8 Bearing Elasticity . 34 4.9 Bearing Wear Down . 35 4.10 Gear Meshes . 36 TABLE 1 Influence Coefficient Matrix . 13 FIGURE 1 Directly Coupled Propulsion Shafting Example . 8 FIGURE 2 Bearing Reactions . 14 FIGURE 3 Nodal Slope and Deflection Curve 15 ABSGUIDANCE NOT
14、ES ON PROPULSION SHAFTING ALIGNMENT .2006 v FIGURE 4 Diesel Engine Output Flange Allowable Shear Force and Bending Moment . 16 FIGURE 5 Tail Shaft Bearing Evaluation Program . 17 FIGURE 6 Ideal Contact Area on the Bearing Exerted by Shaft (Misalignment Angle Zero) 19 FIGURE 7 Tail Shaft Bearing Cont
15、act as a Function of Alignment Design . 21 FIGURE 8 Crankshaft Outline 27 FIGURE 9 Crankshaft Equivalent Model for Shaft Alignment . 28 FIGURE 10 FE Model of Half of the Crank . 29 FIGURE 11 Defining Equivalent Model 30 FIGURE 12 Reduced Crankshaft Model 2 M/E Bearings Only . 32 FIGURE 13 Reduced Cr
16、ankshaft Model 4 M/E Bearings 32 FIGURE 14 ABS Bearing Evaluation Interface. 35 FIGURE 15 Gear Driven Propulsion Equal Gear Shaft Bearing Reactions 0.21 mrad Gear Misalignment Angle . 36 FIGURE 16 Gear Driven Propulsion Uneven Gear Shaft Bearing Reactions Zero Misalignment Angle at Gear Wheel . 37 S
17、ECTION 3 Shaft Alignment Procedure . 38 1 General . 38 2 Shaft Alignment Procedure . 38 3 Sighting Through (Boresighting) . 39 3.1 Piano Wire Application 41 4 Slope Boring Bearing Inclination 42 5 Engine Bedplate Pre-sagging . 45 6 Sag and Gap . 46 6.1 Theoretical Background. 46 7 Reactions Measurem
18、ent . 48 8 Bearing-Shaft Misalignment Measurement . 48 9 Shaft Eccentricity 49 10 Intermediate Bearing Offset Adjustment . 50 10.1 System with Forward S/T Bearing . 51 10.2 System with No Forward S/T Bearing . 53 10.3 Which Solution to Adopt 55 11 Diesel Engine Alignment . 55 11.1 Crankshaft Deflect
19、ions 56 12 FAQ Problems and Solution 58 TABLE 1 Influence Coefficient Matrix System with Forward Stern Tube Bearing . 52 TABLE 2 Influence Coefficient Matrix System without Forward Stern Tube Bearing . 54 FIGURE 1 Example of Optical/Laser Sighting Through . 40 FIGURE 2 Piano Wire Application 41 vi A
20、BSGUIDANCE NOTES ON PROPULSION SHAFTING ALIGNMENT .2006 FIGURE 3 Slope Boring Arrangement 43 FIGURE 4 Slope Boring Machine . 43 FIGURE 5 Bearing Inclination . 44 FIGURE 6 Bedplate Sagging Measurement Using Piano Wire 45 FIGURE 7 Flange Arrangement in Sag and Gap Analysis . 47 FIGURE 8 Stern Tube Bea
21、ring Contact Condition Evaluation Sample Analysis . 49 FIGURE 9 System Sensitivity to Intermediate Shaft Bearing Offset Change with Forward Stern Tube Bearing . 52 FIGURE 10 Bearing Reactions for Design Offset with Forward Stern Tube Bearing . 53 FIGURE 11 System Sensitivity to Intermediate Shaft Be
22、aring Offset Change without Forward Stern Tube Bearing 54 FIGURE 12 Bearing Reactions for Design Offset without Forward Stern Tube Bearing . 55 FIGURE 13 Crankshaft Installation in the Engine 57 FIGURE 14 Diesel Engine Bearing Damage due to Edge Loading . 58 FIGURE 15 Bearing Reactions for a Dry Doc
23、k Alignment with Intentionally Unloaded Second Main Engine Bearing . 59 FIGURE 16 Deflection Curve and Bearing Offset for Dry Dock Condition, which Resulted in Intentionally Unloaded Second Main Engine Bearing . 59 FIGURE 17 Bearing Reactions for a Waterborne Vessel Rectified by Hull Deflections and
24、 Bedplate Sag. 60 FIGURE 18 Total Vertical Offset at the Bearings Including Prescribed Displacements, Hull Deflection Estimate and Bedplate Sag 60 FIGURE 19 Vessel in Dry Dock 62 FIGURE 20 Vessel Waterborne Hull Deflections Affect the Propulsion . 62 FIGURE 21 Vessel Waterborne Engine Sag Applied 63
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