基于 Mathematica 的偏振光现象动态仿真
商紫怡,于巾荔,陈映君,周兴玉 ∗ ,洪许海
辽宁师范大学 物理与电子技术学院,辽宁 大连 116029
Dynamic Simulations of Polarized Light Phenomena Based on Mathematica
SHANG Ziyi,YU Jinli,CHEN Yingjun,ZHOU Xingyu* ,HONG Xuhai
摘要
借助于 Mathematica 软件强大的图形绘制功能、动画合成功能和程序设计功能,基于相关波动光学公式和定律,针对几种典型的偏振光现象做了精确的态仿真,所开发的系列动画形象生动,非常有助于学生增加对偏振光现象的认识、深化对偏振光规律的理解。 本研究为光学课程增添了丰富多彩的教学资源,同时也充分展现了Mathematica 软件强大的物理教学资源开发能力。
关键词:
Mathematica
偏振光现象
动态仿真
物理教学资源开发
Abstract:
With the help of the powerful plotting, animating, and programming functionalities of theMathematica software,and based on relevant formulas and laws of wave optics, several typical polarized lightphenomena have been accurately and dynamically simulated.The series of animations developed in this studyare vivid, intuitional, and thus very helpful for students to increase their knowledge of polarized lightphenomena and deepen their understanding of polarized light laws.This study adds colorful teaching resourcesto the optics course and also fully demonstrates the powerful capability of the Mathematica software to developphysics teaching resources.
Key words:
Mathematica
polarized light phenomena
dynamic simulation
development of physics teachingresources
出版日期: 2023-06-25
发布日期: 2023-06-25
整期出版日期: 2023-06-25
文章支持信息: 支持信息下载
引用本文:
商紫怡, 于巾荔, 陈映君, 周兴玉, 洪许海. 基于 Mathematica 的偏振光现象动态仿真
[J]. 大学物理实验, 2023, 36(3): 95-101.
SHANG Ziyi, YU Jinli, CHEN Yingjun, ZHOU Xingyu, HONG Xuhai. Dynamic Simulations of Polarized Light Phenomena Based on Mathematica
. Physical Experiment of College, 2023, 36(3): 95-101.
链接本文:
http://dawushiyan.jlict.edu.cn/CN/10.14139/j.cnki.cn22-1228.2023.03.019
或
http://dawushiyan.jlict.edu.cn/CN/Y2023/V36/I3/95
[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