ASTM B808-2010 Standard Test Method for Monitoring of Atmospheric Corrosion Chambers by Quartz Crystal Microbalances《水晶微量天平监测大气腐蚀室的标准试验方法》.pdf
《ASTM B808-2010 Standard Test Method for Monitoring of Atmospheric Corrosion Chambers by Quartz Crystal Microbalances《水晶微量天平监测大气腐蚀室的标准试验方法》.pdf》由会员分享,可在线阅读,更多相关《ASTM B808-2010 Standard Test Method for Monitoring of Atmospheric Corrosion Chambers by Quartz Crystal Microbalances《水晶微量天平监测大气腐蚀室的标准试验方法》.pdf(4页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: B808 10Standard Test Method forMonitoring of Atmospheric Corrosion Chambers by QuartzCrystal Microbalances1This standard is issued under the fixed designation B808; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the y
2、ear 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 monitors the reactivity of a gaseoustest environment in which metal surfaces (for example, ele
3、c-trical contacts, assembled printed wiring boards, and so forth)and other materials subject to pollutant gas attack undergoaccelerated atmospheric corrosion testing. This test method isapplicable to the growth of adherent corrosion films whosetotal corrosion film thickness ranges from a few atomicm
4、onolayers to approximately a micrometre.1.2 The test method provides a dynamic, continuous, in-situ, procedure for monitoring the corrosion rate in corrosionchambers; the uniformity of corrosion chambers; and thecorrosion rate on different surfaces. Response time in the orderof seconds is possible.1
5、.3 With the proper samples, the quartz crystal microbal-ance (QCM) test method can also be used to monitor theweight loss from a surface as a result of the desorption ofsurface species (that is, reduction of an oxide in a reducingatmosphere). (Alternative names for QCM are quartz crystaloscillator,
6、piezoelectric crystal oscillator, or thin-film evapora-tion monitor.)1.4 This test method is not sufficient to specify the corrosionprocess that may be occurring in a chamber, since a variety ofpollutant gases and environments may cause similar weightgains.1.5 This test method is generally not appli
7、cable to testenvironments in which solid or liquid particles are deposited onthe surface of the quartz crystal.1.6 The values stated in SI units are to be regarded asstandard. The values in parentheses are for information only.1.7 This standard does not purport to address all of thesafety concerns,
8、if any, associated with its use. It is theresponsibility of the user of this standard to become familiarwith all hazards including those identified in the appropriateMaterial Safety Data Sheet (MSDS) for this product/materialas provided by the manufacturer, to establish appropriatesafety and health
9、practices, and determine the applicability ofregulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2B810 Test Method for Calibration of Atmospheric Corro-sion Test Chambers by Change in Mass of Copper Cou-pons3. Summary of Test Method3.1 A single crystal of quartz has various
10、 natural resonantfrequencies depending on the crystals size and shape. Thedecrease in natural frequency is linearly proportional to thecrystal mass and the mass of well-bonded surface films. Forcrystals with reactive metal films on the surface (usuallydriving electrodes), the mass of the crystal/met
11、al film increasesas the metal oxidizes or forms other compounds with gasesadsorbed from the atmosphere.3,4Thus, by measuring the rateof resonant frequency change, a rate of corrosion is measured.Non-adherent corrosion films, particles, and droplets yieldambiguous results.Areview of theory and applic
12、ations is givenin Lu and Czanderna.5See Appendix X1 for discussion of thequantitative relationship between frequency change and masschange.3.2 The chamber environmental uniformity and corrosionrate can be measured by placing matching quartz crystals withmatching reactive metal films at various locat
13、ions in thechamber. If the chamber and corrosion rate have been stan-dardized, the corrosion rate on various surface materials thathave been deposited on the quartz crystal can be determined.4. Significance and Use4.1 Corrosion film growth with thicknesses varying from amonolayer of atoms up to 1 m
14、can readily be measured on acontinuous, real-time, in-situ, basis with QCMs.1This test method is under the jurisdiction of ASTM Committee B02 onNonferrous Metals and Alloys and is the direct responsibility of SubcommitteeB02.11 on Electrical Contact Test Methods.Current edition approved Oct. 1, 2010
15、. Published October 2010. Originallyapproved in 1997. Last previous edition approved in 2005 as B808 05. DOI:10.1520/B0808-10.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volume information,
16、 refer to the standards Document Summary page onthe ASTM website.3King, W. H. Jr., Analytical Chemistry, Vol 36, 1964, p. 173.4Karmarkar, K. H. and Guilbaut, G. G., Analytical Chemistry Acta, Vol 75,1975, p. 111.5Lu, C. and Czanderna, A. W. Eds., Applications of Piezoelectric QuartzCrystal Microbala
17、nces, Elsevier, c 1984.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.4.2 The test results obtained for this test method areinfluenced by various factors, including geometrical effects,temperature, humidity, film thickness, film mat
18、erials, electrodeconditions, gases in the corrosion chamber, atmospheric pres-sure, and so forth. Calibration of coated crystals and instru-mentation and reproducible crystal operating conditions arenecessary for consistent results.5. Apparatus5.1 Apparatus can be a simple series circuit of crystal
19、(withelectrodes and sensing film), oscillator (typically 6 MHz) andfrequency counter (610-Hz accuracy and stability), as sche-matically shown in Fig. 1.5.2 Commercial, Thin-Film Monitors,6incorporating thosefunctions that read out thicknesses or weight gain are alsoavailable and acceptable after the
20、y have been calibrated.5.3 Microbalance, with an accuracy of 62 g is needed forcalibration procedures.5.4 Recording Devices or Computers are needed for real-time, continuous measurements.76. Materials6.1 Crystals shall be of the AT5cut variety with a resonantfrequency in the MHz range and matched to
21、 the frequencymeasuring apparatus used. Quartz crystal surfaces shall bepolished to a surface finish with an arithmetical mean devia-tion, Ra, of less than 0.1 m. With this surface finish, the crystalappears optically transparent to the human eye.86.2 Electrodes, used to drive the crystals resonant
22、fre-quency, can be made from any electrically conducting materialand usually are a metal film evaporated on the quart crystalsurface. The material under study or being used to calibrate thesystem may be the same as or different than the electrodematerial. If the two materials are different, the pote
23、ntialcorrosion of the electrodes shall be accounted for during thedesign and subsequent experiments. Depending on the materi-als under test, the QCMs can have copper, silver, nickel, zinc,gold, etc. electrodes. The preferred method of deposition is byevaporation for a high purity, smooth surface. If
24、 sublayers areused to enhance the adhesion of the final electrode, they shouldbe covered by the final electrode material so that less than 1 %of the metallic area is of exposed sublayer material. Because ofthe fragility of the metal electrode there should be multiple(three or more), spring-loaded co
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