ASTM D6906-2011a 5000 Standard Test Method for Determination of Titanium Treatment Weight on Metal Substrates by Wavelength Dispersive X-Ray Fluorescence《用波长色散X射线荧光法测定金属基质上钛处理重量的标准.pdf
《ASTM D6906-2011a 5000 Standard Test Method for Determination of Titanium Treatment Weight on Metal Substrates by Wavelength Dispersive X-Ray Fluorescence《用波长色散X射线荧光法测定金属基质上钛处理重量的标准.pdf》由会员分享,可在线阅读,更多相关《ASTM D6906-2011a 5000 Standard Test Method for Determination of Titanium Treatment Weight on Metal Substrates by Wavelength Dispersive X-Ray Fluorescence《用波长色散X射线荧光法测定金属基质上钛处理重量的标准.pdf(3页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D6906 11aStandard Test Method forDetermination of Titanium Treatment Weight on MetalSubstrates by Wavelength Dispersive X-Ray Fluorescence1This standard is issued under the fixed designation D6906; the number immediately following the designation indicates the year oforiginal adoption o
2、r, in the case 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.1. Scope1.1 This test method covers the use of wavelength disper-sive X-ray fluorescence (
3、WDXRF) techniques for determina-tion of the coating weight of titanium treatments on metalsubstrates. These techniques are applicable for determinationof the coating weight as titanium or total coating weight of atitanium containing treatment, or both, on a variety of metalsubstrates.1.2 This standa
4、rd 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 establish appro-priate safety and health practices and determine the applica-bility of regulatory limitations prior to use.2. Summary of Practice2.1 Exci
5、tationThe measurement of titanium treatmentcoating weights by WDXRF methods is based on the combinedinteraction of the titanium coating and the substrate with anintense beam of primary radiation. Since each element fluo-resces at an energy characteristic of the particular element, thisinteraction re
6、sults in the generation of X-rays of definedenergy. The primary radiation may be generated by an X-raytube or derived from a radioisotope.2.2 DetectionThe secondary beam (fluorescent X-rays ofthe elements and scattered radiation) is read by a detector thatcan discriminate between the energy levels o
7、f fluorescingradiations in the secondary beam. The detection system in-cludes the radiation detector with electronics for pulse ampli-fication and pulse counting.2.3 Basic Principle:2.3.1 A relationship exists between the treatment coatingweight and secondary radiation intensity. This relationship i
8、susually linear within the desired coating weights of thetitanium treatments on metal substrates. The measurements arebased on primary standards of known coating weights andinstrument calibration that correlates the secondary radiationintensity with the coating weight quantitatively.2.3.2 The coatin
9、g weight is determined by measurement ofthe fluorescent X-rays of the coating. The detection system isset to count the number of X-rays in an energy region that ischaracteristic of X-rays from the element of interest. Theelement of interest in this practice is titanium.2.3.3 If a linear relationship
10、 exists, the coating weight andnumber of counts of X-rays of a titanium treatment on aparticular substrate can be expressed by a conversion factorthat represents the number of counts for a particular coatingweight unit/unit area. This is usually expressed in mg/ft2ormg/m2of titanium or total coating
11、 weight.2.3.4 The exact relationship between the measured numberof counts and the corresponding coating weight must beestablished for each individual combination of substrate andtitanium-containing treatment. Usually determined by the treat-ment supplier, this relationship is established by using pr
12、imarystandards having known amounts of the same treatment appliedto the same substrate composition as the specimens to bemeasured.2.3.5 Some X-ray apparatuses have a data handling systemwhereby a coating weight versus X-ray counts curve may beestablished within the system for the direct readout of c
13、oatingweight. If such apparatus does not permit the entry of aconversion factor as described in 2.3.3, it is calibrated using abare, untreated specimen and a minimum of three specimenswith known coating weights of the treatment and substratecombination of interest. The coating weight to be measuredm
14、ust be within the range of these known coating weights. Morethan three known specimens must be used if the relationship ofX-ray counts to coating weight is not linear over the range tobe measured. The treatment supplier should be consulted forrecommendations for establishing the curve in the instrum
15、entfor the particular treatment and substrate combination ofinterest.3. Significance and Use3.1 The procedure described in this test method is designedto provide a method by which the coating weight of titaniumtreatments on metal substrates may be determined.1This test method is under the jurisdicti
16、on of ASTM Committee D01 on Paintand Related Coatings, Materials, and Applications and is the direct responsibility ofSubcommittee D01.53 on Coil Coated Metal.Current edition approved June 1, 2011. Published June 2011. Originallyapproved in 2003. Last previous edition approved in 2011 as D6906 - 11.
17、 DOI:10.1520/D6906-11A.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.3.2 This test method is applicable for determination of thetotal coating weight and the titanium coating weight of atitanium-containing treatment.4. Apparatus and
18、 Materials4.1 Measuring Instrument, which is capable of determiningthe coating weights of titanium-containing treatments on metalsubstrates by X-ray fluorescence is required. The treatmentsupplier should be consulted for the suitability of the instru-mentation to be used4.2 Calibration Standard, nec
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