This invention relates to a portable retroreflectometer for measuring the optical characteristics in multiple-angle point and annular geometry of retroreflective materials as typically used to male highway signs and safety markers. Unlike conventional reflection plane mirrors which reflect incident light back toward the source only if the incident light beam is perpendicular to the mirror surface, retroreflective materials reflect a non-perpendicular incident beam back toward the source. Elevated highway signs and markers illuminated by vehicle headlights can thus be seen and understood by a driver (whose eyes are positioned above the illuminating headlights) of the vehicle. The retroreflectometer enables verification of the optical characteristics of new signs and markers, and also the level of degradation of retroreflectivity of a worn, weathered, dirty, or otherwise partially obscured sign or marker.
A portable retroreflectometer instrument for measuring the characteristics of light reflected from a retroreflective surface of a road sign, marker, or similar surface to verify that incident light from vehicle headlights is visable to a driver positioned above the headlights. The instrument measures the intensity and characteristics of two or more annular bands of retroreflected light, and provides display and storage of the resulting data, and information on the condition of the retroreflective surface.
These geometric relations are well known (see, e.g., U.S. Pat. No. 6,166,813-Roberts, the disclosure of which, for brevity, is incorporated herein by reference) in the prior art. The need for measurements of multiple observation angles is dictated by the variable vertical spacing between the vehicle headlights, and the driver's eyes. This spacing is relatively small in a conventional passenger automobile, but larger in an SUV or truck where the driver is seated higher the road, resulting in a larger observation angle.
For example, certain U.S. measurement standards require measurements of retroreflective surfaces at observation angles of 0.2 and 0.5 degrees, with an entrance angle of 4 degrees. European standards vary somewhat, an entrance angle of 5 degrees, and an observation angle of 0.33 degrees being typical. The instrument of this invention can accommodate all of these requirements.
Retroreflected inner-and-outer annular beams 35 and 36 pass through clear annular measurement areas 37 and 38 of a definition aperture. Inner annular beam 35 passes through a transparent plate 39 to a detector field lens 40 to be focused on a detector 41 which converts light intensity to an electrical current. Outer beam 36 is deflected 90 degrees by an annular mirrored surface 42 on plate 39 to a detector field lens 43 to be focused on a similar detector 44.
In an alternative embodiment, a spectral selection filter 47 can be interposed between either or both of the detector field lenses and the detectors to enable measurement of photometric or colorimetric values. Additional filters, typified by filter 48, can be selectively thus interposed by a filer selection mechanism 49 with an operator control 50. The light source and filter combinations preferably match CIE/ISO Illuminate A standard for spectral power distribution in the visible spectrum of 380-740 nanometers wavelength. The light source filter, and detector combination preferably meets this standard convolved with CIE 1931 Standard Photometric Observer function. The filters enable a detection response matching the spectral response of human eyes.
A peripheral portion of the retroreflected light with a centerline 51A illuminates a colorimetric detector 51B (an RGB Tri Color Sensor photodiode S8752 as marketed by Hamamatasu Photonics KK is suitable) which delivers to a current-to-voltage amplifier 51C three signals representing the intensities of red, blue, and green portions of the retroreflected spectral distribution. The output of amplifier 51C is delivered to microprocessor 50, enabling generation of a correction factor representing the color of the retroreflective sheet material.
Current outputs from detectors 41, 44 and the colorimetric detector are delivered to detector current-to-voltage amplifiers 52, the outputs of which are delivered to a microprocessor 53 with associated controls, memory, power supply and analog-to-digital converter. The microprocessor is coupled to user-interface and visual-display components 54. Preferably, the microprocessor is also coupled to a global position sensor 55, and a bar-code reader 56. Sensor 55 enables recordation of the location of the sign or marker being measured. Reader 56 detects and stores a bar code unique to each sign or marker as typically displayed on a back surface of the retroreflective material.
The system is not restricted to simultaneous measurement of two annular areas of illumination, and additional annular areas can be formed and measured by addition of the components described above.
Internal components of instrument 60 are shown in
The instrument internal components are best seen in
The focused light beam with a centerline 82 impinges on a retroreflective surface 83 being measured, and at an entrance angle 84. The retroreflected collimated beam of about one-inch diameter returns via first and second mirrors 79 and 80 to pass straight through beam-splitter 77 and an optional photometric filter assembly 86, and then through an annular definition aperture 87. This aperture defines at least two annular areas of retroreflected illumination, typically at observation angles of 0.2 and 0.5 degrees.
The smaller illuminated annular beam is deflected 90-degrees upwardly along a centerline 88 by a small central mirror 89 on an otherwise transparent panel 90 to a first detector field lens 91 which focuses the beam on a first detector 92 which converts light intensity to an electrical current as described above. The larger illuminated annular beam with a centerline 94 passes straight through transparent panel 90 and a second detector field lens 95 to a second detector 96. As already described, the detector current signals are converted to voltages, digitized, and delivered to a microprocessor for display, storage, averaging, and the like. The instrument is not limited to measurement of two annular areas of retroreflected light, and additional areas can be measured by modifying annular definition aperture 87, and adding additional field lenses and detectors.
Further instrument components depicted in
There has been described a versatile instrument for measuring intensity of retroreflected light in multiple annular areas of illumination. The instrument broadly comprises an optical system for illuminating a retroreflective surface and focusing the retroreflected light into annular zones for measurement, and an electronics system (microprocessor with storage detectors and digitizers, GPS and bar-code components, touchscreen and controls, etc.) enabling display, averaging, and storage of intensity levels, sign position and identification, and the like. Spot measurements can of course be made if desired by modifying the aperture which defines the retroreflected light reaching the detectors.
This application is a National Phase Patent Application of International Application number PCT/US2006/07034, filed on Feb. 27, 2006, which claims priority of Provisional U.S. Patent Application No. 60/656,210, filed Feb. 25, 2005.
| Filing Document | Filing Date | Country | Kind | 371c Date |
|---|---|---|---|---|
| PCT/US2006/007034 | 2/27/2006 | WO | 00 | 9/3/2008 |
| Publishing Document | Publishing Date | Country | Kind |
|---|---|---|---|
| WO2006/091968 | 8/31/2006 | WO | A |
| Number | Name | Date | Kind |
|---|---|---|---|
| 4368982 | Van Arnam et al. | Jan 1983 | A |
| 4373819 | Pallotta | Feb 1983 | A |
| 4721389 | Dejaiffe | Jan 1988 | A |
| 5410407 | Zielinski et al. | Apr 1995 | A |
| 6055490 | Dunne | Apr 2000 | A |
| 6166813 | Roberts | Dec 2000 | A |
| 6212480 | Dunne | Apr 2001 | B1 |
| 6618132 | Vann | Sep 2003 | B1 |
| 6674878 | Retterath et al. | Jan 2004 | B2 |
| 6891960 | Retterath et al. | May 2005 | B2 |
| 6946643 | Fayfield | Sep 2005 | B1 |
| 7030365 | Langland | Apr 2006 | B2 |
| 20020186865 | Retterath et al. | Dec 2002 | A1 |
| 20040156531 | Retterath et al. | Aug 2004 | A1 |
| 20050088742 | Fujiwara et al. | Apr 2005 | A1 |
| 20050249378 | Retterath et al. | Nov 2005 | A1 |
| Number | Date | Country | |
|---|---|---|---|
| 20090116018 A1 | May 2009 | US |
| Number | Date | Country | |
|---|---|---|---|
| 60656210 | Feb 2005 | US |