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Optical systems for high-power laser applications: principles and design aspects

机译:用于高功率激光应用的光学系统:原理和设计方面

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摘要

Starting from the optical properties of laser beams, the requirements of optical systems for manipulating laser radiation in industrial applications are derived. The relevant parameters, relations to the diffraction limit and the state-of-the-art design techniques are discussed. The three important types of lasers for use in industrial materials processing operate at wavelengths ranging from the infrared (10.6 μm, CO2 laser; 1.06 μm, Nd:YAG) to the ultraviolet region (excimer lasers). Each wavelength range is associated with specific design challenges. The scarcity of suitable refractive materials for the 10 μm wavelength range and the ultraviolet below 300 nm is a major constraint. Reflective systems are used widely at the longer wavelength, but some designs suffer from coma. The 1.06 μm radiation from the Nd:YAG laser can make use of many well-developed optical means for handling visible light. Energy transport by optical fibres is commonly used. Optical systems for excimer laser applications are specific in that they image a mask onto a workpiece, and use the high photon energy and the high definition possible with the short wavelength for precision micro-machining.
机译:从激光束的光学特性出发,得出了在工业应用中操纵激光辐射的光学系统的要求。讨论了相关参数,与衍射极限的关系和最新设计技术。用于工业材料加工的三种重要类型的激光器在从红外线(10.6μm,CO2激光; 1.06μm,Nd:YAG)到紫外区域(准分子激光器)的波长范围内工作。每个波长范围都与特定的设计挑战相关。对于10μm波长范围的合适折射材料的稀缺性和低于300 nm的紫外线是主要的限制因素。反射系统在较长的波长下被广泛使用,但是某些设计会出现昏迷。 Nd:YAG激光器发出的1.06μm辐射可以利用许多成熟的光学手段来处理可见光。通常使用通过光纤的能量传输。准分子激光应用的光学系统的特殊之处在于,它们将掩模成像到工件上,并利用短波长的高光子能量和高清晰度进行精密微加工。

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