大学物理 ›› 2025, Vol. 44 ›› Issue (6): 81-.doi: 10.16854/j.cnki.1000-0712. 240387

• 大学生园地 • 上一篇    下一篇

声速测量虚拟仿真实验中物理模型的探讨

叶锦国,杨 静,朱千越,王增旭,李永涛,李 斌   

  1. 1. 南京邮电大学教育科学与技术学院,江苏 南京210003;2. 南京邮电大学理学院,江苏 南京210003
  • 收稿日期:2024-08-26 修回日期:2024-10-04 出版日期:2025-07-15 发布日期:2025-08-09
  • 作者简介:叶锦国(2003—),男,浙江温州人,南京邮电大学教育科学与技术学院2021级本科生.
  • 基金资助:
    江苏省高等教育学会教学改革项目(2023JSJG689)资助;南京邮电大学教学改革研究项目(JG00723JX108)资助

Discussion on the physical model in virtual simulation experiments#br#  for the measurement of sound velocity#br#

YE Jinguo1,YANG Jing1,ZHU Qianyue1,WANG Zengxu2,LI Yongtao2,LI Bin2   

  1. 1. College of Education Science and Technology, Nanjing University of Posts and 
    Telecommunications, Nanjing, Jiangsu 210003, China;
    2. College of Science, Nanjing University of Posts and Telecommunications, Nanjing,Jiangsu 210003, China 
  • Received:2024-08-26 Revised:2024-10-04 Online:2025-07-15 Published:2025-08-09

摘要:

基于声速测量实验现象和测量数据,提出了一个共振频率拟合模型和声波在发生端和接收端多次反射叠加形成干涉的声波的锥面传播衰减物理模型.根据以上模型推导声压幅度和相位公式,编写程序并且根据实测数据进行了拟合和验证,获得了必要参数.结果表明锥面波模型无论是在共振干涉法还是相位比较法的实验数据与推导的公式都较好的符合,拟合获得的参数为声速测量饰演的教学和虚拟仿真系统的搭建提供了理论指导.


关键词: 声速测量, 虚拟仿真, 物理实验, 锥面声波

Abstract: Based on the experimental phenomena and measurement data of sound speed, a resonance frequency fitting model and a physical model of sound wave cone-shaped propagation attenuation formed by multiple reflections and superposition of sound waves at the source and receiver ends are proposed. According to the above models, the formulas for sound pressure amplitude and phase are derived, and a program is written and verified with actual measured data, obtaining the necessary parameters. The results show that the cone wave model is well consistent with the experimental data of both the resonance interference method and the phase comparison method, and the derived parameters provide theoretical guidance for the teaching of sound speed measurement and the construction of virtual simulation systems.


Key words: sound speed measurement, virtual simulation, physical experiment, conical sound wave