Catela Miguel, Liang Dawei, Vistas Cláudia R, Garcia Dário, Costa Hugo, Tibúrcio Bruno D, Almeida Joana
Center of Physics and Technological Research (CEFITEC), Department of Physics, Faculty of Science and Technology, NOVA University of Lisbon, 2829-516 Caparica, Portugal.
Micromachines (Basel). 2022 Oct 4;13(10):1670. doi: 10.3390/mi13101670.
We report a significant numerical improvement in multi-rod laser efficiency, with an enhanced solar tracking error compensation capacity for a heliostat-parabolic system. The solar laser head was composed of a fused silica conical lens and a single conical pump cavity ensuring multiple passes through four 4.55 mm diameter, 15 mm length Nd:YAG rods. 0.76° tracking error width at 10% laser power loss, and total multimode laser power variation of 0.05% at ±0.1° solar tracking error and 0.30% at ±0.2° solar tracking error were numerically calculated, being 1.27, 74.80 and 21.63 times, respectively, more than the experimental record in solar tracking error compensation capacity attained with a dual-rod side-pumping horizontal prototype pumped by the same heliostat-parabolic system. Additionally, the end-side-pumping configuration of the four-rod solar laser-enabled 43.7 W total multimode solar laser power, leading to 24.7 W/m collection efficiency and 2.6% solar-to-laser power conversion efficiency, being 1.75 and 1.44 times, respectively, more than that experimentally obtained from the dual-rod side-pumping prototype. The significant improvement in solar tracking error compensation capacity with a highly efficient end-side-pumping configuration is meaningful because it reduces the cost of high-precision trackers for solar laser applications.
我们报告了多棒激光效率在数值上的显著提高,以及定日镜 - 抛物面系统增强的太阳跟踪误差补偿能力。太阳能激光头由一个熔融石英圆锥透镜和一个单圆锥泵浦腔组成,确保光束多次穿过四根直径4.55毫米、长度15毫米的Nd:YAG棒。通过数值计算得出,在激光功率损失10%时跟踪误差宽度为0.76°,在太阳跟踪误差为±0.1°时总多模激光功率变化为0.05%,在太阳跟踪误差为±0.2°时为0.30%,分别比由同一套定日镜 - 抛物面系统泵浦的双棒侧泵浦水平原型在太阳跟踪误差补偿能力方面的实验记录高出1.27倍、74.80倍和21.63倍。此外,四棒太阳能激光器的端侧泵浦配置实现了43.7瓦的总多模太阳能激光功率,产生了24.7瓦/米的收集效率和2.6%的太阳能到激光功率转换效率,分别比双棒侧泵浦原型的实验值高出1.75倍和1.44倍。具有高效端侧泵浦配置的太阳跟踪误差补偿能力的显著提高具有重要意义,因为它降低了太阳能激光应用中高精度跟踪器的成本。