用于视觉,触觉和音频呈现的体积显示器
Ryuji Hirayama1, Diego Martinez Plasencia2, Nobuyuki Masuda3
1School of Engineering and Informatics, University of Sussex, Brighton, UK. r.hirayama@sussex.ac.uk.
Nature
|November 15, 2019
概括
研究人员开发了一种使用单一声学原理创建3D视觉,听觉和触觉内容的多模式声学陷显示器 (MATD). 这种新的显示器为先进的应用提供了高速的粒子处理.
科学领域:
- 全息和显示技术
- 声学操纵和悬浮
- 多式传感接口
背景情况:
- 目前的体积显示器提供视觉3D内容,但缺乏触觉和听觉功能.
- 现有技术如全息和镜片镜片的速度和功能都受到限制.
- 之前的方法无法同时产生视觉,听觉和触觉反.
研究的目的:
- 引入一种新型的多式音响陷显示器 (MATD),能够同时进行三维视觉,听觉和触觉输出.
- 证明使用声度测量作为体积显示器的唯一操作原理.
- 为了实现高速度的粒子处理,
主要方法:
- 一个粒子的声学捕获用于体积显示.
- 用RGB光照明被捕获的粒子以控制颜色.
- 时间复杂化,振幅调节和相位最小化,同时提供听觉和触觉反.
主要成果:
- MATD系统成功地同时提供视觉,听觉和触觉内容.
- 粒子速度达到8.75m/s (垂直) 和3.75m/s (水平).
- 与现有的光学和声学方法相比,证明了优越的粒子操纵能力.
结论:
- 多模式声显示器 (MATD) 是体积显示技术的重大进步.
- 声使一个单一的原则系统为丰富的,多式的3D内容提供.
- 这项技术在计算制造和生物医学等领域具有非接触,高速物质操纵的潜力.
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