![]() The issue with diffraction is that it is a fundamental problem to be solved mostly in the acoustic domain. I keep posting about these things mostly for my own education and others interested about the engineering aspects behind them. Recovered from wikipedia.I don't know anything about Car audio, but I can imagine the much greater challenge it can present when one wants to set up a good sound system due the aspects like reflections.Īnyway, I know that the diffraction problem has been beaten to death in the past. Physics / Acoustics / Propagation of sound.In this way, a greater breadth of horizontal coverage and directionality of the sound parallel to the ground is achieved. The correct installation of this type of speaker is done with the short side of the rectangular mouth horizontally and the long side vertically. The shape of the horn is like a rectangular mouth or outlet horn smaller than the wavelengths it emits. However, in the dispersion horn the diaphragm is small and the shape of the diaphragm is what makes the sound amplify, taking advantage of the phenomenon of sound diffraction. It is generally believed that the larger the diaphragm of the horn, the more area it covers. There is a specific horn design that takes advantage of sound diffraction: it is the dispersion horn. Applications of sound diffraction Increased hearing areaįor a speaker to have a large listening area, the width of the speaker must be less than the wavelength of the sound it is emitting. Whales do it too, which also allows them good communication at a distance. Animals that make use of low frequenciesĮlephants emit very low frequency, very long wavelength infrasound waves to communicate with their peers over great distances. In addition, long wavelength low tones attenuate less with distance than short wavelength high frequency sounds. Long-wave ones are diffracted or doubled more than short-wavelengths.įor this reason, in the transversal street, from where the musicians cannot be seen, the acute instruments such as trumpets and violins cannot be heard well, while the drums and bass drums are heard more clearly. However, this effect is not the same for all wavelengths. The reason, as we said before, is that the direction of sound is able to bend and cross the corner, while light travels in a straight line. The band of musicians in the streetĪ band of musicians playing in the street can be heard from a cross street from which the artists cannot be seen. The previous experiment works best in an open space, because it must be taken into account that sound can be reflected off walls and other objects, allowing all tones to be heard even behind the speaker box. This sound shadow is clear for the high frequencies, which cannot be heard behind the speaker, while the bass and part of the mids can be heard because they turn the unit over. The speaker box is itself an obstacle that produces a shadow sound behind her. Behind the box of a speakerĪ loudspeaker or speaker emits a wide range of wavelengths. It's all due to the phenomenon of diffraction. The key in the phenomenon of diffraction is the size of the obstacle in relation to the wavelength: the diffraction is more intense when the obstacle has dimensions comparable to the wavelength.īass sounds have long wavelengths and therefore can surround the door and be heard behind it. This is because light works completely differently - it is an electromagnetic wave. Unlike light, which is also a wave, sound cannot propagate through a vacuum. Sound is precisely a pressure wave that travels through air and also through water and solids. ![]() It is something common to all waves: when the sound wave reaches an opening or an obstacle, the points of its plane become sources and emit other diffracted ones. The sound diffraction is the phenomenon that occurs when sound curves and spreads around an opening or obstacle. Animals that make use of low frequencies.Video: What is Diffraction? - ACOUSTICS Content
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