Please wait a minute...
大学物理实验, 2022, 35(3): 124-130     https://doi.org/10.14139/j.cnki.cn22-1228.2022.03.026
  本期目录 | 过刊浏览 | 高级检索 |
Unity 内嵌 Matlab 子程序实现迈克尔逊干涉仪虚拟仿真实验中的干涉动态演示
邓 莉1,孙 可 1 ,刘金梅1,吴平颐 2* ,景培书1,刘梓谊 1 ,李成渊1
1.华东师范大学 物理与电子科学学院,上海 200241; 2.华东师范大学 教师教育实验教学中心,上海 200241
Dynamic Demonstration of Interference in Michelso Interferometer Virtual Simulation Experiment by Unity Embedded Matlab Subroutine
DENG Li1,SUN Ke 1 ,LIU Jinmei1,WU Pingyi 2* ,JING Peishu1,LIU Ziyi 1 ,LI Chengyuan1 *
下载:  PDF (8566KB) 
输出:  BibTeX | EndNote (RIS)      
摘要 

利用 MATLAB 软件对实验过程中的等倾干涉、等厚干涉的动态演变进行了动态仿真模拟。采用 Unity 软件创建迈克尔逊干涉仪虚拟仿真实验场景,内嵌 MATLAB 子程序,通过调节动臂实现迈克尔逊干涉仪虚拟仿真实验中等倾干涉条纹的吞吐,等倾干涉转化为等厚干涉以及白光干涉等动态实验过程。该干涉变化的演示过程直观、形象,增强了使用者与迈克尔逊干涉虚拟仿真实验间的交互性。

服务
把本文推荐给朋友
加入引用管理器
E-mail Alert
RSS
作者相关文章
邓 莉
孙 可
刘金梅
吴平颐
景培书
刘梓谊
李成渊
关键词:  MATLAB  迈克尔逊干涉仪  Unity  虚拟仿真实验     
Abstract: 

Michelson interferometer is an important instrument for measuring spectrum and material properties,which can directly demonstrate equal inclination interference,equal thickness interference and their mutual transformation. The dynamic evolution of equal inclination interference and equal thickness interference is simulated by MATLAB software.The virtual simulation experiment scene of Michelson interferometer is created by unity software. The MATLAB subroutine is embedded in the scene. By adjusting the boom,the moderate inclination interference fringes can be processed,and the equal inclination interference can be transformed into equal thickness interference and white light interference.The demonstration process of the interference change is intuitive and visual,which enhances the interaction between the user and Michelson interference virtual simulation experiment.

Key words:  MATLAB    michelson interferometer    unity    virtual simulation experiment
               出版日期:  2022-06-25      发布日期:  2022-06-25      整期出版日期:  2022-06-25
ZTFLH:  O 4-39  
引用本文:    
邓 莉, 孙 可 , 刘金梅, 吴平颐 , 景培书, 刘梓谊 , 李成渊. Unity 内嵌 Matlab 子程序实现迈克尔逊干涉仪虚拟仿真实验中的干涉动态演示 [J]. 大学物理实验, 2022, 35(3): 124-130.
DENG Li, SUN Ke , LIU Jinmei, WU Pingyi , JING Peishu, LIU Ziyi , LI Chengyuan . Dynamic Demonstration of Interference in Michelso Interferometer Virtual Simulation Experiment by Unity Embedded Matlab Subroutine . Physical Experiment of College, 2022, 35(3): 124-130.
链接本文:  
http://dawushiyan.jlict.edu.cn/CN/10.14139/j.cnki.cn22-1228.2022.03.026  或          http://dawushiyan.jlict.edu.cn/CN/Y2022/V35/I3/124
[1] 杜兴鹏, 陈垲全, 刘汉子, 朱浩天, 陈子阳. 基于改进型迈克尔逊干涉仪的定量相位显微技术 [J]. 大学物理实验, 2022, 35(3): 71-74.
[2] 刘惠萍, 商祥年, 程 凯. 基于 Matlab 的夫琅禾费衍射实验仿真研究 [J]. 大学物理实验, 2022, 35(3): 99-101.
[3] 袁浩洋, 谈 浩 , 李英豪, 谌 利 , 朱丽颖, 刘 泉, 邓海游 , 刘宁亮, 易伟松 . 基于迈克尔逊干涉仪和智能手机定量测量溶液折射率 [J]. 大学物理实验, 2022, 35(3): 94-98.
[4] 王世燕, 袁顺东, 张亚萍, 阮可欣. 虚拟实验平台建设与数值模拟方法在液晶综合实验中的应用及实践研究[J]. 大学物理实验, 2022, 35(2): 1-6.
[5] 曹雨淅, 吴相龙, 陈 凯, 罗 浩. 基于单片机技术的迈克尔逊干涉仪热膨胀系数自动测量处理系统 [J]. 大学物理实验, 2022, 35(2): 94-96.
[6] 席秋颖, 王 旗. 新时代实验教学中心信息化建设[J]. 大学物理实验, 2022, 35(2): 138-142.
[7] 张 磊, 张鸿鑫, 叶力文, 吕思雨. 基于 VirtualLab Fusion 的迈克尔逊干涉仪仿真教学与拓展 [J]. 大学物理实验, 2022, 35(1): 83-88.
[8] 罗松杰, 王孝艳. 利用迈克尔逊干涉仪测量物体表面形貌 [J]. 大学物理实验, 2022, 35(1): 79-82.
[9] 李怀诚, 鲁同所, 李本超, 胡婧, 卫东. 基于Matlab对不同状态下的麦克斯韦速率分布模拟应用 [J]. 大学物理实验, 2020, 33(1): 90-95.
[10] 赵靓. 泊松亮斑的模拟仿真研究 [J]. 大学物理实验, 2020, 33(1): 82-84.
[11] 邓莉, 刘扬, 张汉中, 周科卫, 赵国汝, 魏鸾仪, 钎钎, 黄婉慧, 秦菱泽. 高斯光束的4F光学系统空间滤波效应模拟与实验验证 [J]. 大学物理实验, 2020, 33(1): 10-16.
[1] . [J]. Physical Experiment of College, 2020, 33(1): 0 .
[2] . [J]. Physical Experiment of College, 2020, 33(1): 0 .
[3] WU Ming, ZENG Hong, ZHANG Wenpeng, ZHANG Yuanwei, DAI Zhenbing. Theoretical and Experimental Research of A zimuthal-Radial Pendulum [J]. Physical Experiment of College, 2020, 33(1): 1 -6 .
[4] LIU Weiwei, SUN Qing, LIU Chenglin. Research on Selection of Critical Magnetization Current for Measuring Charge-Mass Ratio of Electron by Magnetron Controlling [J]. Physical Experiment of College, 2020, 33(1): 7 -9 .
[5] DENG Li, LIU Yang, ZHANG Hangzhong, ZHOU Kewei, ZHAO guoru, WEI luanyi. MATLAB simulation of Fourier transform of Gaussian beam and the spatial filtering effects basing on 4F optical imaging system [J]. Physical Experiment of College, 2020, 33(1): 10 -16 .
[6] MA Kun. Experiment Study on the Measuring Young' s Modulus by Stretching [J]. Physical Experiment of College, 2020, 33(1): 17 -20 .
[7] FEI Xianxiang, CHEN Chunlei, WANG Wenhua, SHI Wenqing, HUANG Cunyou. Design of Lens Group Focal Length Measurement System Based on Object-Image Parallax Comparison [J]. Physical Experiment of College, 2020, 33(1): 21 -24 .
[8] LI Chunjiang, LI Luyu, YANG Jinglei, LI Tingrong, XIANG Wenli. A New Method for Simple and Rapid Measurement of Refractive Index [J]. Physical Experiment of College, 2020, 33(1): 25 -28 .
[9] WANG Cuiping, YAO Mengyu, YE Liu, LI Aixia, ZHANG Ziyun, DAI Peng. Progress and Applications of Electron Spin Resonance in Biology [J]. Physical Experiment of College, 2020, 33(1): 29 -33 .
[10] CHEN Yingmo, SHEN Siyi, WANG Jie. Study on the Characteristics of Silicon Photocells [J]. Physical Experiment of College, 2020, 33(1): 34 -36 .
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed