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Numerical Simulation about Orthogonal Single Frequency Dithering Technique used in Tilt Control of Fiber Laser Array

机译:关于光纤激光器阵列倾斜控制的正交单频抖动技术的数值模拟

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Beam combination of fiber laser array is an effective technique contributed to improve the brightness of fiber lasers. In order to realize high-efficiency CBC, challenges like phase distortion (mainly including piston and tilt phase aberrations) should be taken into consideration. Resent years, tilt phase aberrations control has been come true by adaptive fiber optics collimator using the stochastic parallel gradient descent (SPGD) algorithm. However, the convergence rate of tilt control system still cannot satisfy the needs of practical application. In order to increase the tilt control bandwidth, a new idea is put forward that applying the orthogonal single frequency dithering (OSFD) technique into tilt control, and numerical simulation has been completed. A hexagonal laser array with 7 elements has been simulated, and each element has a pair of initial tilt angles in horizontal and vertical direction. The initial tilt angles comply with normal distribution. In the same condition, tilt phase control has been realized through SPGD and OSFD individually, and the convergence steps (defined as the iteration steps that improve the normalized PIB above 0.9) with appropriate parameters are respectively about 20 (SPGD) and 7 (OSFD). Furthermore, tilt phase control of large number hexagonal array is simulated, and the results are as follows: for 19/37 elements, the least convergence steps are about 80/160(SPGD) and 19/55(OSFD). Comparing with SPGD algorithm, it is obvious that the OSFD has higher convergence rate and greater potential for tilt control application in large number coherent fiber laser array.
机译:光纤激光器阵列的光束组合是一种有效的技术,有助于提高纤维激光器的亮度。为了实现高效的CBC,应考虑相位变形(主要包括活塞和倾斜相位像差)的挑战。怨恨岁月,使用随机平行梯度下降(SPGD)算法,通过自适应光纤准直器实现倾斜相位像差控制。然而,倾斜控制系统的收敛速率仍然无法满足实际应用的需求。为了增加倾斜控制带宽,提出了一种新的思路,以将正交单频抖动(OSFD)技术应用于倾斜控制,并且已经完成了数值模拟。已经模拟了具有7个元件的六边形激光阵列,并且每个元件具有水平和垂直方向的一对初始倾斜角度。初始倾斜角度符合正态分布。在同一条件下,通过单独的SPGD和OSFD实现倾斜相位控制,并且收敛步骤(定义为具有适当参数的归一化PIB以上的迭代步骤)分别是约20(SPGD)和7(OSFD) 。此外,模拟了大数六方阵列的倾斜相位控制,结果如下:对于19/37元件,最少收敛步骤约为80/160(SPGD)和19/55(OSFD)。与SPGD算法相比,显然OSFD在大数相干光纤激光器阵列中具有更高的收敛速率和倾斜控制应用的更大潜力。

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