AASHTO T 257-1996 Standard Method of Test for Instrumental Photometric Measurements of Retroreflective Materials and Retroreflective Devices《逆反射材料和逆反射器仪器光度测量的标准测试方法》.pdf
《AASHTO T 257-1996 Standard Method of Test for Instrumental Photometric Measurements of Retroreflective Materials and Retroreflective Devices《逆反射材料和逆反射器仪器光度测量的标准测试方法》.pdf》由会员分享,可在线阅读,更多相关《AASHTO T 257-1996 Standard Method of Test for Instrumental Photometric Measurements of Retroreflective Materials and Retroreflective Devices《逆反射材料和逆反射器仪器光度测量的标准测试方法》.pdf(23页珍藏版)》请在麦多课文档分享上搜索。
1、Standard Method of Test for Instrumental Photometric Measurements of Retroreflective Materials and Retroreflective Devices AASHTO Designation: T 257-96 (2013) American Association of State Highway and Transportation Officials 444 North Capitol Street N.W., Suite 249 Washington, D.C. 20001 TS-4d T 25
2、7-1 AASHTO Standard Method of Test for Instrumental Photometric Measurements of Retroreflective Materials and Retroreflective Devices AASHTO Designation: T 257-96 (2013) 1. SCOPE 1.1. This standard covers procedures for instrumental determinations of photometric characteristics of retroreflective ma
3、terials and retroreflective devices. 1.2. The values stated in SI units are to be regarded as the standard. 2. REFERENCED DOCUMENTS 2.1. ASTM Standards: E184, Standard Practice for Effects of High-Energy Neutron Radiation on the Mechanical Properties of Metallic Materials, E706 (IB) (withdrawn 2002)
4、 E308, Standard Practice for Computing the Colors of Objects by Using the CIE System E809, Standard Practice for Measuring Photometric Characteristics of Retroreflectors E810, Standard Test Method for Coefficient of Retroreflection of Retroreflective Sheeting Utilizing the Coplanar Geometry 3. SIGNI
5、FICANCE AND USE 3.1. This method describes procedures used to measure photometric quantities that relate to the visual perception of retroreflected light. The most significant usage is in the relation of the nighttime vehicle headlamps, retroreflector, and drivers eye geometry. For this reason, the
6、CIE Standard Source A is used to represent a tungsten vehicle headlamp and the receptor has the photopic spectral responsivity at the presentation angle, V(), corresponding to the light-adapted human eye. (See Section 4.2.10.) Although the geometry must be specified by the user, it will, in general,
7、 correspond to the relation between the vehicle headlamp, the retroreflectometer, and the drivers eye position. 4. TERMINOLOGY 4.1. Retroreflective Terms: 4.1.1. retroreflectora surface or device that reflects and returns a relatively high proportion of light in a direction close to the direction fr
8、om which it came. This characteristic is maintained over a wide variation of the angle made by the incident light ray and the normal to the retroreflective surface. 2015 by the American Association of State Highway and Transportation Officials.All rights reserved. Duplication is a violation of appli
9、cable law.TS-4d T 257-2 AASHTO 4.1.2. retroreflective elementone optical unit that by refraction and/or reflection produces the phenomenon of retroreflection. 4.1.3. retroreflective devicea complete device, ready for use, consisting of one or more retroreflective elements (for example, a device cont
10、aining cats eyes, a cube corner device, or a safety retroreflective device). 4.1.4. retroreflective materiala retroreflective material that consists of a thin continuous layer of small retroreflective elements on or very near the exposed surface (for example, retroreflective sheeting, beaded paint,
11、highway sign surfaces, or pavement striping). 4.1.4.1. retroreflective sheetinga retroreflective material preassembled as a thin film ready for use. 4.2. geometric terms(Figures 1 through 3). Figure 1Geometry of Retroreflective Elements Cats Eye ElementSpherical ElementCube Corner Element 2015 by th
12、e American Association of State Highway and Transportation Officials.All rights reserved. Duplication is a violation of applicable law.TS-4d T 257-3 AASHTO Figure 2Pictorial View with the Presentation Angle () Illustrated at 90 Degrees (A presentation angle of 0 degrees is normally used.) Figure 3Pl
13、ane View from above with the Presentation Angle Illustrated at 0 Degrees 4.2.1. reference center (O)the defined center of a retroreflector. 4.2.2. reference axis (ON)the defined axis used to determine the entrance angle in photometric measurements and in practical use. This axis passes through the r
14、eference center (O) (Note 13). PhotoreceptorRSAxis ofIncident LightPresentationAngleViewingAngleObservationAngleOrientation AngleDatumMarkObservationAxisReferenceAxisEntrance AngleEntrancePlaneSourceLateralDistance(d)NPhotoreceptorRSNAxis of Incident LightReceptor Aperture AngleSource Aperture Angle
15、Illumination Distance, DReference CenterRetroreflectorViewingAngleObservationAngleObservation Distance,DEntranceAngleReferenceAngleSourceLateral Distance (d) 2015 by the American Association of State Highway and Transportation Officials.All rights reserved. Duplication is a violation of applicable l
16、aw.TS-4d T 257-4 AASHTO 4.2.3. axis of incident light (OS)the line between the reference center and the center of the exit aperture of the light source. 4.2.4. observation axis (OR)the line between the reference center and the center of the entrance aperture of the photoreceptor. 4.2.5. entrance ang
17、le ()the angle between the reference axis and the axis of incident light. Counterclockwise rotation of the reference axis relative to the axis of incident light is considered positive as shown in Figure 3. Note 1Entrance angles are normally in the range of 0 to 90 degrees. However, negative entrance
18、 angles can be used to indicate a change of 180 degrees in the presentation angle, provided the 0-degree orientation of the datum mark is defined relative to the observation plane. 4.2.6. viewing angle ()the angle between the observation axis and the reference axis. Note 2Since this angle is determi
19、ned by other defined angles, the viewing angle is introduced simply for convenience in defining the specific luminance and the luminance factor. 4.2.7. observation angle (a)the angle between the axis of incident light and the observation axis (“divergence angle” is an obsolete term for this angle).
20、4.2.8. datum markthe mark placed on the sample by the manufacturer which defines the initial (0-degree) orientation position, and from which the orientation angle is measured. 4.2.9. orientation angle ()the angle, when viewed from Point N, through which the sample may be rotated about the reference
21、axis, from the initial 0-degree orientation of the datum mark. The initial 0-degree orientation angle may be defined relative to either the observation plane or the entrance plane. 4.2.9.1. When defined relative to the observation plane, the 0-degree orientation is when the datum mark is in the obse
22、rvation plane and on the same side of the axis of incident light as the photoreceptor. 4.2.9.2. When defined relative to the entrance plane, the 0-degree orientation is when the datum mark is in the entrance plane and on the same side of the axis of incident light as the reference axis. 4.2.10. pres
23、entation angle ()the dihedral angle between the entrance plane formed by the axis of incident light and the reference axis, and the observation plane formed by the axis of incident light and the observation axis. A 0-degree presentation angle is formed when the photoreceptor is placed in the plane f
24、ormed by the axis of incident light and the reference axis, with the receptor on the same side of the source as the reference axis. A presentation angle of 0 degree as shown in Figure 3 is used, unless otherwise specified. Figure 2 shows the presentation angle at plus 90 degrees. 4.2.11. illuminatio
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