Huibo Shao , Lingyun Wang , Chun Wang , Xin Yu , Yunting Gui , Guangxi Li
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引用次数: 0
Abstract
Infrared target simulation technology plays a vital role in testing the anti-jamming ability and target recognition ability of infrared guided equipment. However, the current method of designing the illumination system for infrared target simulators leads to low uniformity and energy utilization. To this end, this paper proposes an illumination optical system design method based on the principles of vector diffraction and polarization beam-splitting to improve the uniformity and energy utilization of the infrared target simulator illumination system. By constructing a two-dimensional diffraction grating model, the optimal incidence angle of the DMD and its corresponding diffraction efficiency are calculated by combining the vector diffraction theory. By introducing the optimization strategy of beam-splitting film thickness and the number of layers, the design of the polarization beam-splitting prism is improved, which enhances energy utilization and successfully verifies its effectiveness. The experimental results demonstrate that the illumination system of the long-wave infrared target simulator designed based on this method achieves an irradiation uniformity of 96.62% and an average value of energy utilization of 32.13%, which effectively solves the problems of poor irradiation uniformity and serious energy loss of the illumination optical system.
期刊介绍:
The Journal covers the entire field of infrared physics and technology: theory, experiment, application, devices and instrumentation. Infrared'' is defined as covering the near, mid and far infrared (terahertz) regions from 0.75um (750nm) to 1mm (300GHz.) Submissions in the 300GHz to 100GHz region may be accepted at the editors discretion if their content is relevant to shorter wavelengths. Submissions must be primarily concerned with and directly relevant to this spectral region.
Its core topics can be summarized as the generation, propagation and detection, of infrared radiation; the associated optics, materials and devices; and its use in all fields of science, industry, engineering and medicine.
Infrared techniques occur in many different fields, notably spectroscopy and interferometry; material characterization and processing; atmospheric physics, astronomy and space research. Scientific aspects include lasers, quantum optics, quantum electronics, image processing and semiconductor physics. Some important applications are medical diagnostics and treatment, industrial inspection and environmental monitoring.