Open Photonics: An integrated approach for building a 3D-printed motorized rotation

被引:0
|
作者
Toschke, Yannic [1 ]
Klenen, Jan [1 ]
Imlau, Mirco [1 ]
机构
[1] Osnabrueck Univ, Dept Phys, D-49076 Osnabruck, Germany
来源
HARDWAREX | 2024年 / 20卷
关键词
Rotation stage; Optomechanics; Optical components; Photonics; Optics; 3D-printing;
D O I
10.1016/j.ohx.2024.e00577
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In the context of experimental optics- and photonics-research, motorized, high-precision rotation stages are an integral part of almost every laboratory setup. Nevertheless, their availability in the laboratory is limited due to the relatively high acquisition costs in the range of several 1000<euro> and is often supplemented by manual rotation stages. If only a single sample is to be analyzed repeatedly at two different angles or the polarization of a laser source is to be rotated, this approach is understandable. Yet, in the context of automation and the associated gain in measurement time, cost-effective and precise rotation stages designed for the use of optics are lacking. We present a low-cost alternative of a motorized high precision rotation stage system. The design is based on a combination of 3D-printed components, which form the monolithic mechanical framework, and a stepper motor controlled by an ESP32 based microcontroller. By coupling the motor and rotation unit via a toothed belt, backlash is minimized and at the same time high positioning accuracy can be achieved. Finally, the implementation of remote procedure calls for serial communication and the utilization of a physical home switch and incremental encoder complete the desired feature set of an integrated system for laboratory setups. The total costs can thus be reduced to less than 100<euro> without significantly restricting the performance criteria.
引用
收藏
页数:19
相关论文
共 50 条
  • [21] 3D-printed microneedles with open groove channels for liquid extraction
    Leng, Fang
    Zheng, Mengjia
    Xu, Chenjie
    EXPLORATION, 2021, 1 (03):
  • [22] 3D-printed minimalists
    Gross, Heinz
    Gross, Sebastian
    Nobrega, Miguel J.
    Vidal, Joao P.O.
    Kunststoffe International, 2019, 109 (1-2): : 40 - 43
  • [23] Open source 3D-printed 1000 mu L micropump
    Bravo-Martinez, Jorge
    HARDWAREX, 2018, 3 : 110 - 116
  • [24] A 3D-Printed Integrated Handheld Biosensor for the Detection of Vibrio parahaemolyticus
    Xu, Yuancong
    Zhang, Qian
    Li, Yunyi
    Pang, Xiaoxu
    Cheng, Nan
    FOODS, 2024, 13 (11)
  • [25] 3D-printed microfluidic manipulation device integrated with magnetic array
    Jie Wu
    Yiwen Cui
    Shouhu Xuan
    Xinglong Gong
    Microfluidics and Nanofluidics, 2018, 22
  • [26] 3D-printed concentrators for tracking-integrated CPV modules
    Apostoleris, Harry
    Leland, Julian
    Chiesa, Matteo
    Stefancich, Marco
    NONIMAGING OPTICS: EFFICIENT DESIGN FOR ILLUMINATION AND SOLAR CONCENTRATION XIII-COMMEMORATING THE 50TH ANNIVERSARY OF NONIMAGING OPTICS, 2016, 9955
  • [27] 3D-PRINTED THERMOPLASTICS
    不详
    ADVANCED MATERIALS & PROCESSES, 2021, 179 (04): : 9 - 9
  • [28] 3D-printed ceramics
    Button, Keith (buttonkeith@gmail.com), 1600, AIAA International (58):
  • [29] Methods for Measuring the Orientation and Rotation Rate of 3D-printed Particles in Turbulence
    Cole, Brendan C.
    Marcus, Guy G.
    Parsa, Shima
    Kramel, Stefan
    Ni, Rui
    Voth, Greg A.
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2016, (112):
  • [30] A 3D-Printed Computer
    Shirmohammadli, Vahideh
    Bahreyni, Behraad
    ADVANCED INTELLIGENT SYSTEMS, 2023, 5 (08)