ASTM C770-1998(2008) Standard Test Method for Measurement of Glass Stress&8212 Optical Coefficient《玻璃应力&8212测量的标准试验方法 光学系数》.pdf
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1、Designation: C 770 98 (Reapproved 2008)Standard Test Method forMeasurement of Glass StressOptical Coefficient1This standard is issued under the fixed designation C 770; the number immediately following the designation indicates the year oforiginal adoption or, in the case of revision, the year of la
2、st 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 procedures for determining thestress-optical coefficient of glass, which is used in photoelastic
3、analyses. In Procedure A the optical retardation is determinedfor a glass fiber subjected to uniaxial tension. In Procedure Bthe optical retardation is determined for a beam of glass ofrectangular cross section when subjected to four-point bending.In Procedure C, the optical retardation is measured
4、for a beamof glass of rectangular cross-section when subjected to uniaxialcompression.1.2 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 establish appro-priate safety and health practices a
5、nd determine the applica-bility of regulatory limitations prior to use.2. Referenced Documents2.1 ASTM Standards:2C 336 Test Method for Annealing Point and Strain Point ofGlass by Fiber ElongationC 598 Test Method for Annealing Point and Strain Point ofGlass by Beam BendingE 218 Method for Radiochem
6、ical Determination ofCesium-137 in Aqueous Solutions (ChloroplatinateMethod)33. Significance and Use3.1 Stress-optical coefficients are used in the determinationof stress in glass. They are particularly useful in determiningthe magnitude of thermal residual stresses for annealing orpre-stressing (te
7、mpering) glass.As such, they can be importantin specification acceptance.4. Apparatus4.1 Stressing Equipment and Polarimeter:4.1.1 Procedure A Figs. 1 and 2 illustrate a polarimeteremploying a quarter-wave plate and rotatable analyzer,4de-scribed in Test Method F 218. The quarter-wave plate shall be
8、designed for the wavelength of the light being used. Thepolarizing axes of the polarizer and analyzer shall be set atright angles to each other with each being located at an angleof 45 with the horizontal and vertical. The analyzer, however,shall be mounted in a rotatable mount having a scale gradua
9、tedon either side from 0 to 180. The quarter-wave plate shall befixed to give maximum extinction when the polarizer andanalyzer are crossed at right angles; that is, when its polarizingaxes are set at 45 and 135 to the horizontal and vertical. Inplace of the immersion cell E, a means of supporting a
10、ndloading a glass specimen shall be provided, either in air (Fig.3(a) or in an immersion liquid (Fig. 3(b). In this arrangementthe optical elements of the polarimeter between light sourceand telescope have been reversed and a large scale graduated in2-nm divisions is employed with the rotatable anal
11、yzer I.4.1.1.1 Fig. 3 illustrates the fiber-stressing and opticalarrangement used in Procedure A. Figure 3(a) shows the fibermounted vertically, positioned, and supported by two brasscollars with swivel handles so that the kilogram weight may beapplied to load the fiber.Alight shield having entrance
12、 and exitslits surrounds the fiber providing a degree of collimation to thelight passing through the fiber and also helping to eliminatestray light.4.1.1.2 In Fig. 3(b) the fiber is stressed while immersed in aliquid which matches the refractive index of the fiber. Thisarrangement provides more sati
13、sfactory viewing of the fiber.4.1.2 Procedure B:4.1.2.1 The apparatus for the beam-bending procedure isshown in Fig. 4(a). Radiation from a white-light source passesthrough the following components and in this sequence: adiffusing plate, an adjustable aperture, a polarizer whose axis isat 45 to the
14、vertical, the glass specimen, a Babinet compen-sator, a polarizer whose axis is at 90 to that of the firstpolarizer, and a telescope of modest power.1This test method is under the jurisdiction of ASTM Committee C14 on Glassand Glass Products and is the direct responsibility of Subcommittee C14.04 on
15、Physical and Mechanical Properties.Current edition approved April 1, 2008. Published December 2008. Originallyapproved in 1973. Last previous edition approved in 2003 as C 770 98 (2003).2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceas
16、tm.org. For Annual Book of ASTMStandards volume information, refer to the standards Document Summary page onthe ASTM website.3Withdrawn. The last approved version of this historical standard is referencedon www.astm.org.4Goranson and Adams, “Measurement of Optical Path Differences,” Journal ofFrankl
17、in Institute, Vol 216, 1933, p. 475.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.4.1.2.2 The loading scheme is shown in Fig. 4(b). Metalfixtures shall be provided to subject the specimen to four-pointbending. A support span of 115
18、 mm and a moment arm, a, of45 mm are recommended. Dimensions within 5 % of thesevalues are acceptable. Symmetrical loading is essential, andrequires careful centering of the upper loading block. The knifeedges shall be finished to approximately 5-mm radius. Loadingcan be accomplished through a yoke,
19、 which rests in a V-groovein the upper loading block, and a weight pan as shown.However, any convenient loading scheme at the center of theupper block may be used.4.1.2.3 A Babinet compensator is positioned so as to pro-duce vertical fringes (Fig. 4(c). The neutral fringe must fallnear the center of
20、 the support span. Recommended fringespacing is 1000 6 200 nm of retardation per centimeter. Inactual practice the compensator is placed very close to thespecimen inside the loading yoke.4.1.2.4 A telescope is mounted in a rotating collar equippedwith an angular scale which can be read to 0.1 by a v
21、ernier.The cross hairs in the eyepiece are used to measure the tiltangle of the neutral fringe as shown in Fig. 4(c). An 80-mmobjective lens and 103 eyepiece are adequate components forthe telescope.4.1.2.5 The adjustable aperture is set at the smallest diam-eter that permits suitable viewing. As wi
22、th the fiber apparatus,this provides some collimation and helps to eliminate straylight.4.1.3 Procedure C:4.1.3.1 Polarimeter as described in Test Method F 218.4.1.3.2 Force application frame, shown in Fig. 5 mustinclude:a) A strain-gage load cell and load cell indicator, capable ofmeasuring the for
23、ce applied within 1 % accuracy.b) Hydraulic or mechanical means of applying constantforce and maintaining the force during the measuring time.c) Swivel-mounted loading blocks, offering at least twodegrees of swivel freedom, to avoid the loading on the edge.4.2 Micrometer Caliper, for measuring speci
24、men dimen-sions to 0.0025 mm (0.0001 in.).4.3 Weights that are known to an accuracy of 61%.5. Test Specimen5.1 Procedure A:5.1.1 Select a mass of the glass to be tested that has goodoptical quality with no heavy cords or striae. By conventionallamp-working methods, draw 0.6 to 0.9 m (2 to 3 ft) of f
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