ASTM D3720-1990(2005) Standard Test Method for Ratio of Anatase to Rutile in Titanium Dioxide Pigments by X-Ray Diffraction《X射线衍射法测定二氧化钛颜料中锐钛和金红石比率的试验方法》.pdf
《ASTM D3720-1990(2005) Standard Test Method for Ratio of Anatase to Rutile in Titanium Dioxide Pigments by X-Ray Diffraction《X射线衍射法测定二氧化钛颜料中锐钛和金红石比率的试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM D3720-1990(2005) Standard Test Method for Ratio of Anatase to Rutile in Titanium Dioxide Pigments by X-Ray Diffraction《X射线衍射法测定二氧化钛颜料中锐钛和金红石比率的试验方法》.pdf(3页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 3720 90 (Reapproved 2005)Standard Test Method forRatio of Anatase to Rutile in Titanium Dioxide Pigments byX-Ray Diffraction1This standard is issued under the fixed designation D 3720; 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 (e) indicates an editorial change since the last revision or reapproval.1. Scope1.1 This test method covers the determination of the ratio ofanatase to rutile in titanium d
3、ioxide pigments. The method isalso applicable to pigment mixtures and pigmented coatingscontaining titanium dioxide.1.2 The values stated in SI units are to be regarded as thestandard. The values given in parentheses are for informationonly.1.3 This standard does not purport to address all of thesaf
4、ety 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. Referenced Documents2.1 ASTM Standards:2D 215 Practice for the Chemical
5、 Analysis of White LinseedOil PaintsD 2371 Test Method for Pigment Content of Solvent-Reducible PaintsD 2698 Test Method for Determination of the PigmentContent of Solvent-Reducible Paints by High Speed Cen-trifugingD 3925 Practice for Sampling Liquid Paints and RelatedPigmented Coatings3. Summary o
6、f Test Method3.1 The X-ray diffraction pattern obtained from a material ischaracteristic of that material. The intensity of a diffractionpeak entirely due to one component of a mixture is dependentupon the amount of that substance in the mixture. To a minorextent the peak intensity of the component
7、is also dependent onthe mass absorption coefficient of other materials present.Since the test method utilizes the ratio of the intensities ofdiffraction peaks of two chemically similar materials, it isexpected that the effects of other constituents will be the samefor both materials.3.2 The intensit
8、y of the diffraction maxima for anatase andrutile is measured by X-ray diffractometry. The intensity of theanatase peak is converted to anatase content relative to rutileand the rutile content is determined by difference.3.3 The X-ray diffraction measurement is made on singlepigments, pigment mixtur
9、es, films of pigmented coatings, andfilms prepared from liquid coatings, if interfering materials arenot present. When interfering materials are present, the pig-ment is separated from the redissolved (or ignited film, or fromthe liquid coating and treated to isolate the titanium dioxide.4. Signific
10、ance and Use4.1 This test method is used by titanium dioxide pigmentmanufacturers and users for process control and productacceptance.5. Interferences5.1 Calcium sulfate interferes, but its effect is eliminated bychemical removal (see Practice D 215). It is desirable to assureby analysis that any re
11、sidual CaSO4is considerably less thanthe level of anatase being sought. The insoluble residue afterremoval of calcium sulfate should be ignited above 700C.Chrome yellow and the valentinite form of antimony trioxidealso interfere if not removed. High amounts of iron renderanalysis difficult due to in
12、creased background (see Note 1).Additives, such as antimony and zinc, and impurities, such asniobium and zirconium, are generally present in solid solutionand thus would not have interfering diffraction peaks. Surfacetreatments such as silica and alumina do not interfere. Extremedifferences in parti
13、cle size between the anatase and rutileportions affect the results.NOTE 1Background scatter due to high iron levels in a sample may bereduced by use of a cobalt or molybdenum target tube in place of thecopper target tube. The background may be eliminated for all practicalpurposes by use of a curved
14、crystal monochromator equipped with agraphite crystal in conjunction with a copper target tube.5.2 In the calculation of converting the ratio to percent it isimplicitly assumed that the sum of anatase and rutile is 100 %,an assumption normally made in TiO2pigment systems. Othermaterials present woul
15、d interfere to the extent that they dilute1This test method is under the jurisdiction of ASTM Committee D01 on Paintand Related Coatings, Materials, and Applications and is the direct responsibility ofSubcommittee D01.31 on Pigment Specifications.Current edition approved July 1, 2005. Published Augu
16、st 2005. Originallyapproved in 1978. Last previous edition approved in 1999 as D 3720 - 90 (1999).2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information, refer to the standards Docu
17、ment Summary page onthe ASTM website.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.the sample. The third polymorphic form of TiO2, brookite,would have such an effect. However, it reportedly does notoccur in commercial titanium diox
18、ide pigments.6. Apparatus6.1 X-Ray DiffractometerThe principle components ofthis instrument are: (a) X-ray generator, (b) copper target X-raytube, (c) goniometer, (d) detector, (e) electronic circuit panel,(f) computer (if used), and (g) strip chart recorder or printer.6.2 Operating ConditionsThe X-
19、ray tube voltage andfilament current and other settings are selected to record X-raydiffraction peaks of weak intensities.6.2.1 Nickel Filter, to remove Cu K beta radiation if amonochromator is not used. Cu K beta radiation will producea diffraction line from the rutile phase of TiO2that appears att
20、he same 2u angle as the anatase analytical line.6.3 Typical Apparatus Conditions:6.3.1 High-Voltage Power SupplySelect X-ray tube volt-age, filament current, and other settings so that 0.1 % anatasegenerates a signal with intensity at least four times the noiselevel.6.3.2 DetectorScintillation detec
21、tor operating at optimumvoltage.6.3.3 Pulse Height AnalyzerSettings will depend on in-strumentation used.6.3.4 SlitsReceiving slit, 0.15; others, 1.6.3.5 Chart Speed, 12.5 mm (12 in.)/min.6.3.6 Goniometer Speed,14 /min, scanning or 0.02 stepswith 4.8 s per step.6.3.7 Time Constant,5.6.3.8 Scanning R
22、ange,2u = 28 to 24.6.3.9 Scale FactorsFor samples of low anatase content ascale factor of 100 counts full scale is normally used for the2u = 26 to 24 range (anatase diffraction maximum), and ascale factor of 5000 counts full scale is normally used for the2u = 28 to 26 range (rutile diffraction maxim
23、um). The scalefactors may be changed depending on the level of anataseexpected in the sample.7. Reagents7.1 Purity of ReagentsUntreated rutile and anatase gradesof titanium dioxide pigments are used to make syntheticstandards for calibration. The crystalline structures of thereagents must be 100 % r
24、utile and 100 % anatase as determinedby examining these materials by X-ray diffraction to assure thispurity.7.2 Mixing ReagentsA series of rutile standards of vary-ing rutile content are prepared to cover the range of interest bythoroughly mixing known amounts of 100 % rutile and 100 %anatase togeth
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