Optimizing freeform lenses for extended sources with algorithmic differentiable ray tracing and truncated hierarchical B-splines

Journal Article (2024)
Author(s)

A.N.M. Heemels (TU Delft - ImPhys/Adam group)

Bart De Koning (TU Delft - ImPhys/Adam group, Student TU Delft)

M. Möller (TU Delft - Numerical Analysis)

Aurèle J.L. Adam (TU Delft - ImPhys/Adam group)

Research Group
ImPhys/Adam group
DOI related publication
https://doi.org/10.1364/OE.515422
More Info
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Publication Year
2024
Language
English
Research Group
ImPhys/Adam group
Issue number
6
Volume number
32
Pages (from-to)
9730-9746
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Abstract

We propose a method for optimizing the geometry of a freeform lens to redirect the light emitted from an extended source into a desired irradiance distribution. We utilize a gradient-based optimization approach with MITSUBA 3, an algorithmic differentiable non-sequential ray tracer that allows us to obtain the gradients of the freeform surface parameters with respect to the produced irradiance distribution. To prevent the optimizer from getting trapped in local minima, we gradually increase the number of degrees of freedom of the surface by using Truncated Hierarchical B-splines (THB-splines) during optimization. The refinement locations are determined by analyzing the gradients of the surface vertices. We first design a freeform using a collimated beam (zero-etendue source) for a complex target distribution to demonstrate the method’s effectiveness. Then, we demonstrate the ability of this approach to create a freeform that can project the light of an extended Lambertian source into a prescribed target distribution.