DESIGNING AND OPTIMIZING LIGHTGUIDES/ PIPES – TIPS & TRICKS FOR A STREAMLINED PROCESS Presented by : Lambda Research Corporation 25 Porter Rd. Littleton, MA 01460 www.lambdares.com Confidential & Proprietary ‒ Lambda Research Corporation Agenda Ø Setting Specifications for Light Guide/Pipe Design Ø Design Constraints Ø Principles Ø Basics Ø Design Tips Ø Design Basics Ø Example 1 Ø Example 2 Ø Conclusions Confidential & Proprietary ‒ Lambda Research Corporation Setting Specifications for Light Guide/Pipe Design Be careful when selecting your source. Do you have enough LED power to achieve your goal? Set an output specification with the following in mind: Ø Illuminance Ø Efficiency Ø Angular Output Ø Uniformity Ø Luminance & Lit Appearance Confidential & Proprietary ‒ Lambda Research Corporation Design Constraints & Principles Ø Snell’s Law Ø Fresnel Loss Ø Critical Angle and TIR Ø Bending Curvatures Ø Etendue Ø Light Guide Design Basics Ø Single & Multiple LED advantages Ø Top- vs. Side-emitting LEDs Ø Positioning of the LED Ø Add White Powder for Diffuse output Ø Using Textured Surfaces on Input/Output Surfaces Ø Examples Confidential & Proprietary ‒ Lambda Research Corporation Principles - Understanding Snell’s Law One of the most important laws in optics is Snell’s law. This formula describes the interaction of light with a material i.e. glass or plastic for example. When light travels from one material into another it bends or refracts at the boundary. For a ray that enters a material with an incident angle of θi into a material with an index of refraction ni, the angle of refraction θr in a material nr can be defined as: Material Refrac#ve Index, n Air 1.0 Water 1.33 Scho% Bk7 Glass 1.517 Acrylic 1.49207 Table 1 – Refracve indices for common materials at .5461 micron s So for an incident ray entering the water at 45 degree incidence, we can find the refracted angle in the media by using Snell’s law, sin (45) = 1.33 sin(Θr) or (Θr) = 32.117 degrees. Confidential & Proprietary ‒ Lambda Research Corporation Principles - Definition of Fresnel Loss Note this equation has been simplified to apply to only rays normal to the surface. Confidential & Proprietary ‒ Lambda Research Corporation Principles - Critical Angle & TIR TIR occurs when light passes from a medium of high refractive index into a material of lower refractive indices. If the angle of incidence is greater than the critical angle then the light will be reflected. Refracted Light Ray Air Air Media Boundary Incident Critical Ray Light Rays Φ c Rays start in Medium, ni Total Internally Φc = critical angle Reflected Ray T h e c r r ( i 9 t , 0 i t ° c h ) a i . l s S a t i n h n g e c l n e e r s i e i s d n u ( d c 9 e e 0 f s ° i ) n S e n= d e l 1 w l h ’ e s r e l a t w h e t o s : i n θ S c ri/ni wh=eren nr = 1 (ai r) andn ni iθs plastic around 1.5. The critical angle is usually around 42 degrees for most plastics and BK7 glass in the visible wavelengths. Confidential & Proprietary ‒ Lambda Research Corporation Principles – Critical Angle Ø Critical Angle is the incident angle of light, relative to the surface normal, at which TIR occurs Ø Light at an incident angle greater than the Critical Angle is TIR’ed. Light at an angle less than the Critical Angle will be partially reflected and partially refracted out of the light guide/pipe. Ø The Critical Angle varies with the indices of refraction of the light guide/pipe material and the surrounding material (typically Air) Confidential & Proprietary ‒ Lambda Research Corporation Principles – Calculating the Critical Angle θ = 41.7° i θ = 41.9° i Confidential & Proprietary ‒ Lambda Research Corporation Basics – Bending Curvatures Keeping the critical angle in mind is important when curving light around mechanical structures. To keep light contained inside the pipe remember to use gentle curves when possible and remember the critical angle of around 42 degrees to contain large angular emitting LEDs. There will almost always be losses at bends in any light pipe since it is difficult to contain the +/- 90 degree emission of a normal LED. The job is to try and keep as much light as possible from exiting the pipe. Confidential & Proprietary ‒ Lambda Research Corporation