
【国外标准】 Standard Test Methods for Determining Area Percentage Porosity in Thermal Sprayed Coatings
本网站 发布时间:
2024-02-28

适用范围:
4.1 TSCs are susceptible to the formation of porosity due to a lack of fusion between sprayed particles or the expansion of gases generated during the spraying process. The determination of area percent porosity is important in order to monitor the effect of variable spray parameters and the suitability of a coating for its intended purpose. Depending on application, some or none of this porosity may be tolerable.4.2 These test methods cover the determination of the area percentage porosity of TSCs. Method A is a manual, direct comparison method utilizing the seven standard images in Figs. 1-7 which depict typical distributions of porosity in TSCs. Method B is an automated technique requiring the use of a computerized image analyzer.FIG. 1 — 0.5 % PorosityFIG. 2 — 1.0 % PorosityFIG. 3 — 2.0 % PorosityFIG. 4 — 5.0 % PorosityFIG. 5 — 8.0 % PorosityFIG. 6 — 10.0 % PorosityFIG. 7 — 15.0 % Porosity4.3 These methods quantify area percent porosity only on the basis of light reflectivity from a metallographically polished cross section. See Guide E1920 for recommended metallographic preparation procedures.4.4 The person using these test methods must be familiar with the visual features of TSCs and be able to determine differences between inherent porosity and oxides. The individual must be aware of the possible types of artifacts that may be created during sectioning and specimen preparation, for example, pullouts and smearing, so that results are reported only on properly prepared specimens. Examples of properly prepared specimens are shown in Figs. 8-10. If there are doubts as to the integrity of the specimen preparation it is suggested that other means be used to confirm microstructural features. This may include energy dispersive spectroscopy (EDS), wavelength dispersive spectroscopy (WDS) or cryogenic fracture of the coating followed by analysis of the fractured surfaces with a scanning electron microscope (SEM).FIG. 8 Ni/Al TSC—500XNOTE 1: V = void, O = oxide, L = linear detachmentFIG. 9 Monel TSC—200XNOTE 1: V = void, G = embedded grit, L = linear detachmentFIG. 10 Alloy 625 TSC—200XNOTE 1: V = void, O = oxide, G = embedded grit1.1 These test methods cover procedures to perform porosity ratings on metallographic specimens of thermal sprayed coatings (TSCs) prepared in accordance with Guide E1920 by direct comparison to standard images and via the use of automatic image analysis equipment.1.2 These test methods deal only with recommended measuring methods and nothing in them should be construed as defining or establishing limits of acceptability for any measured value of porosity.1.3 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibility of the user of this standard to establish appropriate safety, health, and environmental practices and determine the applicability of regulatory limitations prior to use.1.4 This international standard was developed in accordance with internationally recognized principles on standardization established in the Decision on Principles for the Development of International Standards, Guides and Recommendations issued by the World Trade Organization Technical Barriers to Trade (TBT) Committee.
标准号:
ASTM E2109-01(2021)
标准名称:
Standard Test Methods for Determining Area Percentage Porosity in Thermal Sprayed Coatings
英文名称:
Standard Test Methods for Determining Area Percentage Porosity in Thermal Sprayed Coatings标准状态:
Active-
发布日期:
-
实施日期:
出版语种:
- 推荐标准
- ASTM B1-13(2018) Standard Specification for Hard-Drawn Copper Wire
- ASTM B100-20 Standard Specification for Wrought Copper-Alloy Bearing and Expansion Plates and Sheets for Bridge and Other Structural Use
- ASTM B1002-16(2020) Standard Specification for Refined Indium
- ASTM B1003-16(2023) Standard Specification for Seamless Copper Tube for Linesets
- ASTM B1004-16(2022) Standard Practice for Contact Performance Classification of Electrical Connection Systems
- ASTM B1005-17(2023) Standard Specification for Copper-Clad Aluminum Bar for Electrical Purposes (Bus Bar)
- ASTM B1008-18 Standard Test Method for Stress-Strain Testing for Overhead Electrical Conductors
- ASTM B1010/B1010M-19 Standard Specification for Copper-Clad Steel Electrical Conductor for Tracer Wire Applications
- ASTM B1011/B1011M-22 Standard Specification for Cobalt Alloy Spring Wire
- ASTM B1013-22 Standard Specification for High Fluidity (HF) Zinc-Aluminum Alloy Thin Wall Die Castings
- ASTM B1014-20 Standard Specification for Welded Copper and Copper Alloy Condenser and Heat Exchanger Tubes with a Textured Surface(s)
- ASTM B1019-21 Standard Test Method for Determination of Surface Oxides on Copper Rod(for Electrical Purposes)
- ASTM B1020/B1020M-22 Standard Specification for Seamless Nickel Alloy Mechanical Tubing and Hollow Bar
- ASTM B1021-21 Standard Test Method for Peel Resistance of Metal Sheets Joined by High Strength Bonds
- ASTM B1022-22 Standard Specification for Zinc-Aluminum-Magnesium Alloys in Ingot Form for Coating Steel Sheet by the Hot-Dip Process