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Field curvature correction method for ultrashort throw ratio projection optics design using an odd polynomial mirror surface

机译:使用奇多项式镜面的超短投射比投影机光学设计的场曲校正方法

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This paper presents a field curvature correction method of designing an ultrashort throw ratio (TR) projection lens for an imaging system. The projection lens is composed of several refractive optical elements and an odd polynomial mirror surface. A curved image is formed in a direction away from the odd polynomial mirror surface by the refractive optical elements from the image formed on the digital micro-mirror device (DMD) panel, and the curved image formed is its virtual image. Then the odd polynomial mirror surface enlarges the curved image and a plane image is formed on the screen. Based on the relationship between the chief ray from the exit pupil of each field of view (FOV) and the corresponding predescribed position on the screen, the initial profile of the freeform mirror surface is calculated by using segments of the hyperbolic according to the laws of reflection. For further optimization, the value of the high-order odd polynomial surface is used to express the freeform mirror surface through a least-squares fitting method. As an example, an ultrashort TR projection lens that realizes projection onto a large 50 in. screen at a distance of only 510 mm is presented. The optical performance for the designed projection lens is analyzed by ray tracing method. Results show that an ultrashort TR projection lens modulation transfer function of over 60% at 0.5 cycles/mm for all optimization fields is achievable with f-number of 2.0, 126° full FOV, <1% distortion, and 0.46 TR. Moreover, in comparing the proposed projection lens' optical specifications to that of traditional projection lenses, aspheric mirror projection lenses, and conventional short TR projection lenses, results indicate that this projection lens has the advantages of ultrashort TR, low f-number, wide full FOV, and small distortion.
机译:本文提出一种场曲率校正方法,该方法设计用于成像系统的超短投射比(TR)投影透镜。投影透镜由几个折射光学元件和一个奇数多项式镜面组成。通过在数字微镜器件(DMD)面板上形成的图像,通过折射光学元件在远离奇数多项式镜面的方向上形成弯曲图像,并且形成的弯曲图像是其虚像。然后,奇数多项式镜面会放大曲面图像,并在屏幕上形成平面图像。根据每个视场(FOV)出射光的主光线与屏幕上相应的预定位置之间的关系,根据双曲线的定律,使用双曲线分段计算自由曲面镜面的初始轮廓。反射。为了进行进一步优化,高阶奇数多项式曲面的值用于通过最小二乘拟合法来表示自由形式的镜面。作为示例,提出了一种超短TR投影镜头,该镜头可以在仅510毫米的距离上投影到50英寸的大屏幕上。通过光线追踪法分析了所设计的投影透镜的光学性能。结果表明,对于所有优化场,在0.5的f值,126°的全视场角,<1%的畸变和0.46 TR的情况下,对于所有优化场,都可以实现超过60%的超短TR投影透镜调制传递函数。此外,通过将所提出的投影透镜的光学规格与传统投影透镜,非球面镜投影透镜和传统短TR投影透镜的光学规格进行比较,结果表明该投影透镜具有超短TR,低f值,全宽的优点。 FOV,且失真小。

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