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Design-for-manufacture of a varifocal rotation optics

机译:变焦旋转光学器件的制造设计

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This paper presents the design of a novel varifocal freeform optics consisting of two lens bodies each with a helical-type surface structure of azimuthally varying curvatures. This arrangement allows for tuning the optical refraction power by means of a mutual rotation of the lens bodies around the optical axis. Thus, the refraction power can be tuned continuously in a defined range. The shape of the helical-type surfaces is formed by a change in curvature subject to the azimuthal angle α. At the transition of the azimuthal angle from α = 27π to α = 0, a surface discontinuity appears. Since this discontinuity will seriously affect the imaging quality, it has to be obscured. In the initial state, i.e. zero-degree rotation, the curvatures of the opposing surfaces result in a specific refraction power, which is constant over the entire circular aperture. Rotating one of the lens bodies by an angle Φ around the optical axis will change the opposing curvatures and result in a change of refraction power. Two circular sectors with different tunable optical refraction powers are formed, thus resulting in a tunable bifocal optics. Obscuring the minor sector will result in a tunable monofocal rotation optics. In contrast to conventional tunable lens systems, where additional space for axial or lateral lens movement has to be allocated in design, rotation optics allowing for a more compact design. A simulative performance analysis of the rotation optics in dependence of the maximum rotation angle will be presented as well as an approach to design-for-manufacture.
机译:本文介绍了一种新颖的可变焦自由曲面光学器件的设计,该光学器件由两个镜体组成,每个镜体均具有一个螺旋角型曲率的螺旋型表面结构。这种布置允许借助于透镜主体绕光轴的相互旋转来调节光学屈光力。因此,可以在限定的范围内连续地调节屈光力。螺旋型表面的形状由曲率的变化形成,该曲率的变化取决于方位角α。在从α=27π到α= 0的方位角过渡处,出现了表面不连续性。由于这种不连续会严重影响成像质量,因此必须将其遮盖住。在初始状态,即零度旋转中,相对表面的曲率导致特定的屈光力,该屈光力在整个圆形孔径上是恒定的。围绕光轴旋转透镜主体之一角度Φ将改变相反的曲率,并导致屈光力的变化。形成具有不同的可调光折光力的两个圆形扇区,从而导致可调双焦点光学器件。遮盖次要扇区将导致可调节的单焦点旋转光学器件。与传统的可调镜头系统不同,在设计中必须为轴向或横向镜头移动分配额外的空间,而旋转光学系统则允许更紧凑的设计。将介绍取决于最大旋转角度的旋转光学系统的模拟性能分析,以及一种针对制造设计的方法。

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