Lin Y, Kessler T J, Lawrence G N
Appl Opt. 1994 Jul 20;33(21):4781-91. doi: 10.1364/AO.33.004781.
Inertial confinement fusion requires propagation of high-intensity, pulse-shaped IR and UV laser beams through long air paths. Such beams are subject to energy losses and decreased beam quality as a result by stimulated rotational Raman scattering (SRRS). In this paper we describe how quantum fluctuations, stimulated Raman amplification, diffraction propagation, and optical aberrations interact during the propagation of short, high-power laser pulses using a four-dimensional (4-D) model of the optical beams and the medium. The 4-D model has been incorporated into a general optical-propagation computer program that allows the entire optical system to be modeled and that is implemented on high-end personal computers, workstations, and supercomputers. The numerical model is used to illustrate important phenomena in the evolution of the optical beams. In addition, the OMEGA Upgrade laser system is used as a design case to illustrate the various considerations for inertial confinement fusion laser design.
惯性约束聚变要求高强度、脉冲状的红外和紫外激光束在长空气路径中传播。由于受激旋转拉曼散射(SRRS),此类光束会出现能量损失和光束质量下降的情况。在本文中,我们描述了量子涨落、受激拉曼放大、衍射传播和光学像差在短脉冲高功率激光脉冲传播过程中是如何通过光束和介质的四维(4-D)模型相互作用的。该4-D模型已被纳入一个通用的光传播计算机程序中,该程序可对整个光学系统进行建模,并可在高端个人计算机、工作站和超级计算机上运行。该数值模型用于阐释光束演化过程中的重要现象。此外,OMEGA升级激光系统被用作一个设计案例,以说明惯性约束聚变激光设计的各种考量因素。