ASTM D8128-17 Standard Guide for Monitoring Failure Mode Progression in Industrial Applications with Rolling Element Ball Type Bearings.pdf
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1、Designation: D8128 17Standard Guide forMonitoring Failure Mode Progression in IndustrialApplications with Rolling Element Ball Type Bearings1This standard is issued under the fixed designation D8128; the number immediately following the designation indicates the year oforiginal adoption or, in the c
2、ase of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.INTRODUCTIONOil analysis is a part of condition based maintenance programs. Despite being widely used
3、 forseveral decades, there is no systematic approach in selecting oil tests based on failure mode analysis.Most users select tests primarily based on oil degradation criteria, minimizing the potential fordetecting surface damage and limiting the potential benefits of the oil analysis program. This g
4、uideprovides justification for oil analysis in industrial applications from a failure standpoint to include bothrolling element bearing wear and fluid deterioration.1. Scope1.1 This guide approaches oil analysis from a failure stand-point and includes both the rolling element ball type bearingwear a
5、nd fluid deterioration in industrial application.1.2 This guide pertains to improving equipment reliability,reducing maintenance costs and enhancing the condition-basedmaintenance program primarily for industrial machinery byapplying analytical methodology to oil analysis program forthe purpose of d
6、etecting specific failure modes.1.3 This guide reinforces requirements for appropriateassembly, operation within the original design envelope as wellas the need for condition-based and time-based maintenance.1.4 This guide covers the principles of Failure Mode andEffect Analysis (FMEA) as described
7、in Guide D7874 and itsrelationship to rolling element ball type bearing wear inindustrial application and its fluid deterioration.1.5 This standard does not purport to address all of thesafety concerns, if any, associated with its use. It is theresponsibility of the user of this standard to establis
8、h appro-priate safety, health, and environmental practices and deter-mine the applicability of regulatory limitations prior to use.1.6 This international standard was developed in accor-dance with internationally recognized principles on standard-ization established in the Decision on Principles for
9、 theDevelopment of International Standards, Guides and Recom-mendations issued by the World Trade Organization TechnicalBarriers to Trade (TBT) Committee.2. Referenced Documents2.1 ASTM Standards:2D445 Test Method for Kinematic Viscosity of Transparentand Opaque Liquids (and Calculation of Dynamic V
10、iscos-ity)D664 Test Method for Acid Number of Petroleum Productsby Potentiometric TitrationD1500 Test Method for ASTM Color of Petroleum Products(ASTM Color Scale)D6304 Test Method for Determination of Water in Petro-leum Products, Lubricating Oils, and Additives by Cou-lometric Karl Fischer Titrati
11、onD6595 Test Method for Determination of Wear Metals andContaminants in Used Lubricating Oils or Used HydraulicFluids by Rotating Disc Electrode Atomic Emission Spec-trometryD7042 Test Method for Dynamic Viscosity and Density ofLiquids by Stabinger Viscometer (and the Calculation ofKinematic Viscosi
12、ty)D7414 Test Method for Condition Monitoring of Oxidationin In-Service Petroleum and Hydrocarbon Based Lubri-cants by Trend Analysis Using Fourier Transform Infrared(FT-IR) SpectrometryD7483 Test Method for Determination of Dynamic Viscosityand Derived Kinematic Viscosity of Liquids by Oscillat-ing
13、 Piston ViscometerD7596 Test Method for Automatic Particle Counting andParticle Shape Classification of Oils Using a Direct1This guide is under the jurisdiction of ASTM Committee D02 on PetroleumProducts, Liquid Fuels, and Lubricants and is the direct responsibility of Subcom-mittee D02.96.04 on Gui
14、delines for In-Services Lubricants Analysis.Current edition approved Oct. 1, 2017. Published October 2017. DOI: 10.1520/D8128-17.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume informati
15、on, refer to the standards Document Summary page onthe ASTM website.Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959. United StatesThis international standard was developed in accordance with internationally recognized principles on standardization e
16、stablished in the Decision on Principles for theDevelopment of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.1Imaging Integrated TesterD7685 Practice for In-Line, Full Flow, Inductive Sensor forFerromagnetic and
17、 Non-ferromagnetic Wear Debris De-termination and Diagnostics for Aero-Derivative and Air-craft Gas Turbine Engine BearingsD7690 Practice for Microscopic Characterization of Par-ticles from In-Service Lubricants by Analytical Ferrogra-phyD7874 Guide for Applying Failure Mode and Effect Analy-sis (FM
18、EA) to In-Service Lubricant Testing2.2 ISO Standards:3ISO 4407 Hydraulic Fluid PowerFluid contaminationDetermination of particulate contamination by the count-ing method using an optical microscopeISO 11500 Hydraulic Fluid PowerDetermination of theparticulate contamination level of a liquid sample b
19、yautomatic particle counting using the light-extinctionprincipleISO 16232-7 Road VehiclesCleanliness of components offluid circuitsPart 7: Particle sizing and counting bymicroscopic analysisISO 16700 Microbeam analysisScanning electronmicroscopyGuidelines for calibrating image magnifica-tionISO 2459
20、7 Microbeam analysisScanning electronmicroscopyMethods of evaluating image sharpness3. Terminology3.1 Definitions:3.1.1 bearing failure, nthe termination of the bearingsability to perform its design function.3.1.2 bearing failure initiation, nthe moment a bearingstarts to perform outside of its desi
21、gn function measured byperformance characteristics.3.1.3 causes of failure, nunderlying source(s) for eachpotential failure mode that can be identified and described byanalytical testing.3.1.4 design function, nfunction or task that the system orcomponents should perform.3.1.5 detection ability numb
22、er D, nranking number thatdescribes the ability of a specific fluid test to successfullydetect a failure modes cause or effects.Ascale is used to gradedetection ability numbers.3.1.6 dynamic viscosity , nratio of applied shear stressand the resulting rate of shear.3.1.6.1 DiscussionIt is also someti
23、mes called absoluteviscosity. Dynamic viscosity is a measure of the resistance toflow of the liquid at a given temperature. In SI, the unit ofdynamic viscosity is the Pascalsecond (Pas), often conve-niently expressed as milliPascalsecond (mPas), which has theEnglish system equivalent of the centipoi
24、se (cP).3.1.7 effects of failure, npotential outcome(s) of eachfailure mode on the system or component.3.1.8 elastohydrodynamic lubrication (EHD), na condi-tion where extremely high fluid interface pressure developed inconcentrated rolling element contact causes the viscosity of thelubricant to incr
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