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首页> 外文期刊>Journal of Computing and Information Science in Engineering >Reverse Engineering and Geometric Optimization for Resurrecting Antique Saxophone Sound Using Micro-Computed Tomography and Additive Manufacturing
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Reverse Engineering and Geometric Optimization for Resurrecting Antique Saxophone Sound Using Micro-Computed Tomography and Additive Manufacturing

机译:使用微计算机断层扫描和增材制造技术恢复古董萨克斯风的逆向工程和几何优化

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摘要

The saxophone mouthpiece is an important, sound generating component of this instrument. The structure of mouthpiece has undergone several design changes since its invention by Adolphe Sax in the mid-18th century. Very few antique mouthpieces survived through the years, and unfortunately, those available are not playable on modern saxophones due to geometric discrepancies. This paper investigates the possibility of using three-dimensional (3D) X-ray tomography and 3D printing combined with solid modeling and reverse engineering concepts to bring back the sound of saxophones as intended by its inventor. We have imaged the interior and exterior of an extant mouthpiece nondestructively using 3D X-ray tomography, and used solid modeling and reverse engineering along with sound testing, to optimize the geometry of a mouthpiece that is faithful to its original design and yet playable on a modern saxophone. To perform sound testing of our design iterations, 3D printed prototypes have been used and proven to generate sufficient sound quality for testing. We have successfully obtained the optimized geometry after a series of iterations that taught us valuable lessons about modeling for 3D printing and correlating geometric features of a mouthpiece to its sound quality. Though the developed principles are applied to saxophone mouthpieces, the present work can be readily extended to various musical instruments that have evolved through time, particularly woodwind instruments and instruments with mouthpieces.
机译:萨克斯管是该乐器重要的发声组件。自18世纪中叶Adolphe Sax发明烟嘴以来,烟嘴的结构经历了几次设计更改。这些年来,幸存的古董笛头很少,而且由于几何上的差异,无法在现代萨克斯管上播放。本文研究了将三维(3D)X射线断层扫描和3D打印与实体建模和逆向工程概念相结合以将萨克斯风的声音带回其发明人的意图的可能性。我们使用3D X射线断层扫描对现有烟嘴的内部和外部进行了无损成像,并使用了实体建模和逆向工程以及声音测试,以优化烟嘴的几何形状,使其忠实于其原始设计,并且可以在烟斗上播放现代萨克斯管。为了对我们的设计迭代进行声音测试,已使用3D打印原型并证明其可以产生足够的声音质量进行测试。经过一系列迭代,我们成功地获得了优化的几何形状,这些教训教给我们关于3D打印建模以及将烟嘴的几何特征与其音质相关联的宝贵经验。尽管已开发的原理被应用于萨克斯管吹嘴,但是本发明可以很容易地扩展到随时间发展的各种乐器,特别是木管乐器和带有吹嘴的乐器。

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  • 来源
    《Journal of Computing and Information Science in Engineering》 |2017年第3期|034501.1-034501.6|共6页
  • 作者单位

    Mechanical Engineering Department, Manhattan College, Riverdale, NY, United States;

    Mechanical Engineering Department, Manhattan College, Riverdale, NY, United States;

    Mechanical Engineering Department, Manhattan College, Riverdale, NY, United States;

    Mechanical Engineering Department, Manhattan College, Riverdale, NY, United States;

    Mechanical Engineering Department, Manhattan College, Riverdale, NY, United States;

    Biomedical Engineering Department, University of Connecticut, Storrs, CT, United States;

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  • 正文语种 eng
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