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Replicative manufacturing of complex lighting optics by non-isothermal glass molding

机译:非等温玻璃模塑复杂照明光学复杂制造

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The advantages of LED lighting, especially its energy efficiency and the long service life have led to a wide distribution of LED technology in the world. However, in order to make fully use of the great potential that LED lighting offers, complex optics are required to distribute the emitted light from the LED efficiently. Nowadays, many applications use polymer optics which can be manufactured at low costs. However, due to ever increasing luminous power, polymer optics reach their technological limits. Due to its outstanding properties, especially its temperature resistance, resistance against UV radiation and its long term stability, glass is the alternative material of choice for the use in LED optics. This research is introducing a new replicative glass manufacturing approach, namely non-isothermal glass molding (NGM) which is able to manufacture complex lighting optics in high volumes at competitive prices. The integration of FEM simulation at the early stage of the process development is presented and helps to guarantee a fast development cycle. A coupled thermo-mechanical model is used to define the geometry of the glass preform as well as to define the mold surface geometry. Furthermore, simulation is used to predict main process outcomes, especially in terms of resulting form accuracy of the molded optics. Experiments conducted on a commercially available molding machine are presented to validate the developed simulation model. Finally, the influence of distinct parameters on important process outcomes like form accuracy, surface roughness, birefringence, etc. is discussed.
机译:LED照明的优点,尤其是其能效和长期使用寿命导致了世界上LED技术的广泛分布。然而,为了充分利用LED照明优惠的巨大潜力,需要复杂的光学器件来有效地从LED分发发射的光。如今,许多应用使用聚合物光学器件,可以以低成本制造。然而,由于发光功率不断增加,聚合物光学达到其技术限制。由于其优异的性能,尤其是其耐温性,抗紫外线辐射的耐受性及其长期稳定性,玻璃是LED光学器件中使用的替代材料。该研究正在推出一种新的复制玻璃制造方法,即非等温玻璃模制(NGM),其能够以竞争力的价格在高卷中制造复杂的照明光学。提出了在过程开发的早期阶段的FEM模拟集成,并有助于保证快速的开发周期。耦合的热机械模型用于定义玻璃预制件的几何形状,以及限定模具表面几何形状。此外,模拟用于预测主要过程结果,尤其是在所得到的模塑光学器件的形式精度方面。提出在市售的成型机上进行的实验以验证开发的仿真模型。最后,讨论了表现精度,表面粗糙度,双折射等的重要过程结果的不同参数的影响。

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