7 ms·
Nice, but very wrong. This describes the case of a plane suddenly appearing in mid-air and starting to make noise, something, planes rarely do (maybe in the Ber
by bernulli 4y ago
Nice, but very wrong. This describes the case of a plane suddenly appearing in mid-air and starting to make noise, something, planes rarely do (maybe in the Bermuda triangle). It's like thunder after lightning, or seeing a ball fly before hearing it being kicked when you're far away.
The aircraft, however, is flying for a long time, certainly it was flying and making noise much earlier than when it is passing the observer. As long as it flies subsonically, i.e. sound outpaces the aircraft - which is the case for every single commercial plane - the sound may be able to reach you much much earlier than the plane: As an example, take an aircraft flying with 100 m/s directly towards you. With every second flying, the sound will gain another 200 m distance relative to the aircraft (speed of sound ~300 m/s).
If you're 100km away, the aircraft will reach you after 1000s, the sound has reached you after 333s, i.e. ahead of the aircraft. If you're 200km away, the aircraft will reach you after 2000s and the sound has reached you after 667s.
So, how come it sounds like the sound of the plane is behind the plane? It's got to do with sound attenuation in the atmosphere and your hearing threshold.
So, it's not at all like in the article.
Somewhat minor nitpicks:
- The aircraft is drawn to essentially fly with Mach 1, i.e. at the speed of sound, as the position of the plane relative to the wave does not linearly increase with time. Essentially all airplanes you see are flying subsonically (unless you're in the military).
- "If the plane was moving very slowly, it wouldn’t outpace its sound by much." That's completely wrong. "very slow" aircraft are much slower than their sound, and all commercial aircraft still are slower than their sound, all of them are outpaced by their sound rather than the other way around.
[Edit: typos & math]
- Deritio 4y agoIsn't that only correct if the plain is heading towards you? The article states that the sound of the plane is not were you hear it. At least this is true
- bernulli 4y agoUse the construction the author is using, i.e. the emanating sound waves, but you'll have to start them where it all starts, i.e. at take-off, and not simply appearing right next to you. Then, correct the drawing by having the plane move slower than the sound waves. The first sound you should be hearing as observer will be the take-off (if you could hear it) at the airport, and the aircraft will be wherever it is afterwards.
- korantu 4y agoSuppose observer just woke up / heard plane that is passing overhead. Very reasonable assumption, as the plane might have taken off thousands of miles away, and will land thousands of miles away in the other direction. In this case, no point talking about takeoff sound, as it is not detectable already at these distances. Humans can detect reasonably well which direction the sound comes from. This direction will not match the direction they observe the airplane at. The article is describing the mismatch between plane real position and the plane position we would detect if we were just listening to it.
- krisoft 4y ago> you'll have to start them where it all starts, i.e. at take-off If we are nitpicking about minor details: the sound of a powered airplane doesn’t start at take-off but at engine start, often minutes before take-off.
- kqr 4y ago> So, how come it sounds like the sound of the plane is behind the plane? It's got to do with sound attenuation in the atmosphere and your hearing threshold. Wait, does it have to be that complicated? A plane flying X feet above you ought to make the same noise as a plane flying X/2 feet above you, except at 1/4 of the volume, and lagging by something like twice as much (meh trigonometry was never my forte). What am I missing?
- bernulli 4y agoSo why don't you hear the sound when it all begins, right at take-off? That should be the first sound to reach you, no?
- kqr 4y agoI would assume you do, only it's so far away and your ears aren't powerful enough on their own to make it out. (If it can even be picked up over the other background noise.)
- bernulli 4y agoPrecisely, "sound attenuation in the atmosphere and your hearing threshold".
- bernulli 4y agoFor another thought experiment: if you cannot hear that original first sound on take-off, which one can you hear? 10 miles from you? 1 mile from you? That will be the virtual first sound to you, determined by how much weaker the sound has become on its trip through the atmosphere, and how that relates to your hearing threshold. But it will not always and exactly be at the point where the plane has reached its closest point to you (as in the article).
- kqr 4y agoI think I get what you're saying now. Thanks for taking the time!
- dredmorbius 4y ago> This describes the case of a plane suddenly appearing in mid-air False. > and starting to make noise False > As long as it flies subsonically, i.e. sound outpaces the aircraft... > If you're 100km away, the aircraft will reach you after 1000s... These statements exhibit a fundamental misunderstanding of the phenomenon. It's not that the sound outpaces the aircraft. It's that light from the aircraft (reflected or transmitted, e.g., by landing / navigational lights) travels faster than sound. When light from the aircraft reaches you, the sound is lagging behind the light. At the height of a jet airliner (~FL30, 30,000 feet), light reaches you in 30 microseconds. At the height of a small plane, about 3,000 feet, say, it's 3 microseconds. Sound takes 27 seconds to reach you from the jetliner, and 2.7 seconds to reach you from the small plane. If the jetliner is flying at 600 mph (~mach 0.8, ~515 knot) the aircraft has travelled 4.6 miles (7.4 km) from the position from which its sound was emitted before that sound reaches you. The apparent position indiciated by vision and sound don't match. If the small aircraft is travelling at 122 knots (140 mph) (cruise speed for a Cessna 172), it has travelled about 1/10 mi (0.16 km) before the sound reaches you. That's about 550 feet. Both cases are for when the aircraft its directly overhead. The apparent difference will increase as the aircraft is closer to the horizon (arriving or departing). Again, the visual position and apparent aural position of the aircraft are not the same. You can determine this yourself, if you're outside and hear a jet aircraft flying at altitude. If you look to where the sound appears to be coming from you will not see the aircraft. It is going to be nearly 5 miles further along its path of travel. It can be surprisingly difficult to visually find the aircraft if you've only first heard it. If instead you're watching the sky and first see the aircraft, it will be quite some time, about 30 seconds, before the sound reaches you, and that sound will seem to be considerably far back along the aircraft's path of travel.
- Elora 4y ago> It's that light from the aircraft travels faster than sound. For all practical purposes we can say the light reaches the observer instantly, whereas the sound takes some (significant by comparison) amount of time. Over such short distances, and when comparing it to something that is so much slower (299,792,458 m/s vs 343 m/s, 874 thousand times faster), there is no point in measuring the infinitesimal time it takes light to travel the distance from the plane to the observer. For the general case presented in the article, at the average cruising altitude and speed mentioned within it, the conclusion is that it takes sound from the plane so much longer to reach the observer than the instantaneous light from the plane, that the actual plane itself has traveled another 2.1km in that time. You are (instantly) seeing the current position of the plane but hearing the sound it emitted 2.1km ago.
- smoyer 4y agoIgnore the idea that the plane and it's sound are in different locations ... The key to understanding this phenomena is that there seems to be a greater discrepancy the further YOU are from the plane. Ignore the planes sound and consider the case where someone on the plane set off a firecracker. When you hear the sound from the firecracker,the plane will have moved away from that point!
- dignick 4y agoUnfortunately, this is very wrong! Why does it have to be a sudden sound? The effect the article describes is the same as eg thunder, except an aircraft is continuously moving and emitting sound. The aircraft in the article is not heading directly towards the observer. It simply takes time for the sound produced at a given moment to reach the observer, but the light from the aircraft travels much faster, which is why the lag is observed. It is not ‘sound attenuation’ or ‘hearing threshold’.
- bernulli 4y ago> "Why does it have to be a sudden sound? The effect the article describes is the same as eg thunder" Well yeah, that's a sudden sound. My point precisely. So why don't you hear from your observation point the airplane (or all airplanes for that matter) as it takes off, which is when it makes its first noise? And by all means, account for a few ms of light movement if that makes you happy.
- dignick 4y ago> Well yeah, that's a sudden sound. My point precisely. But you are saying that isn’t like an aircraft - why? > So why don't you hear from your observation point the airplane (or all airplanes for that matter) as it takes off, which is when it makes its first noise? And by all means, account for a few ms of light movement if that makes you happy. That is attenuation! The aircraft is far enough away that all the energy from the sound is absorbed by the air and objects between observer and aircraft. Attenuation does not affect the speed the sound travels. But when the aircraft is closer to you, the attenuation is lower so you can hear the sound.
- bernulli 4y agoBecause an aircraft does not make a sudden noise? At least where I'm from aircraft don't sound like discrete booms. I'm not sure I understand your question. > But when the aircraft is closer to you, the attenuation is lower so you can hear the sound. So we agree after all.
- 4y ago
- roelschroeven 4y agoI feel you're overcomplicating things and/or are describing some different phenomenon. The point isn't the question whether it's the sound, the light or the airplane itself that reaches you first. The question is which direction is the sound coming from. Imagine a plane flying 3 km high, circling around your location in a circle with radius 4 km. In other words, the plane is consistently sqrt(3² + 4²) = 5 km away from you. Let's assume the speed of sound is at a constant 343 m/s in this scenario, so sound takes 5e3 m / (343 m/s) = 14.58 seconds to travel from the plane to you. The direction of the incoming sound that you detect will change all the time, at the same speed as the direction of the plane itself, but it will lag behind. The sound that you hear at each moment is the sound that the plane generated 14.58 seconds before, and you detect it as coming from the location the plane was in at that moment, and not the current time. Your eyes (or a camera, or a radar) detect the plane from one position, your ears (or a directional microphone) detect it from another, older, position. All that is true independently from the speed of the plane, be it subsonic or supersonic (except when the plane is flying very slowly, or if it's a hovering helicopter: in those cases the sound is still delayed, but the location it's from is hardly changed or not at all). Strictly speaking the same happens with the visual image, but since light is so much faster we can neglect the delay it causes in every-day situations like this.
- bernulli 4y agoHaha, yes, you found the one case (which is unrelated to the article) in which sound weakening is not a function of time, as the distance to you stays constant.
- skogsbonde 4y agoThe article is right > So, how come it sounds like the sound of the plane is behind the plane? It's got to do with sound attenuation in the atmosphere and your hearing threshold. > So, it's not at all like in the article. On the contrary it is indeed because of what the article is getting at. It's because the sound emitted by the airplane at one position reaches you significantly later than the light the plane reflects from that position reaches you. Maybe what you're describing is that the sound emitted when the airplane took off reaches you faster than the airplane reaches you which sure, it's correct - but the light still reaches you way way faster. > - "If the plane was moving very slowly, it wouldn’t outpace its sound by much." That's completely wrong. "very slow" aircraft are much slower than their sound, and all commercial aircraft still are slower than their sound, all of them are outpaced by their sound rather than the other way around. Even if the s̶o̶u̶n̶d̶ plane (edit: meant plane) travelled faster than sound, you would still see the airplane passing over you before the sound emitted from the airplane when it passed over you reaches you. Minor nitpick: - As an example, take an aircraft flying with 100 m/s 200 m/s would be a better example as the Boeing 737 (the most common commercial passenger jet) cruises at around 230 m/s
- bernulli 4y ago> "Even if the sound travelled faster than sound [sic] you would still see the airplane passing over you before the sound emitted from the airplane when it passed over you reaches you." Absolutely not. It depends on the Mach number, distance, sound weakening, and your hearing threshold. You cannot hear some crazyman running at you, screaming, until he has passed you? You cannot hear the stereo in some guy's car until after he passed you? You cannot hear a siren of police until the car has passed you? Or are what you describe special magical airplane-only physics?
- skogsbonde 4y agoOops, I mean to write even if the plane travelled faster than sound, not sound travelled faster than sound.
- bernulli 4y ago
- deleted 4y ago[deleted]
- otras 4y agoLike any general explanation, I think some simplification is helpful :) I may have been assuming that it was clear in the article, but to help show the effect, the diagrams show only the sound emanating from the plane at one instant in time. In reality, the aircraft is continuously moving, and there's a continuously changing "where is the sound coming from" vector. The main idea is that this "where is the sound coming from vector", if you will, may be behind the plane's light vector (which we can just say is the plane's position) if you're some distance away, leading to this oddity. > the sound may be able to reach you much much earlier than the plane I completely agree! I didn't mean to say that a plane's sound is always behind it — it very much depends on the position of the observer. If a plane is flying in any other direction than perfectly perpendicular, the math and the effect will be different. For "If the plane was moving very slowly, it wouldn’t outpace its sound by much.", I meant in the sense that we, as observers, are perceiving the sound. More that the plane's position vector wouldn't outpace the "where is the sound coming from vector" by as much (a smaller X in the diagram, if you will), leading to "where is the plane" being closer to "where is the plane's noise". Going faster than the speed of sound leads to all sorts of very interesting questions, but I don't believe it would affect this in the simple case we're looking at.
- bernulli 4y agoHi Otras, a few things to wrap this up for me, and thank you for your civil answer to a not so civil comment. 1st: I should have made this a 'yes and' rather than a 'no but' comment. It's a well written article with nice illustrations, and you put in the time to do so and share it with the world. Thank you for that! 2nd: Obviously you're right that it's possible to calculate the distance to plane by observing when it passes a certain point and then measuring the time until the sound hits you from that very point. 3rd: My smartassery still stands that "How far behind a plane is its noise?" is a misleading way to frame it - the noise is not behind the plane at all, it's actually significantly ahead of it. But (!), again, I should have made that a 'yes, and' instead, to add a facet to your nice article. Cheers, and hope to read from you again!
- bernulli 4y agoThanks for chiming in! My point is that your one instant in time is completely arbitrary. You do not know where the position is, and you do not know when the sound was emanated. I.e., you cannot calculate anything. Your math would work iff you observe a discrete event where you can tie sound and light - engine blow-up, for example. In all other cases, it means nothing. Again - why don't you hear the sound of the aircraft taking off if speed of sound is the only effect?
- Retric 4y agoThe article is correct, their explanation is poor. When you hear a sound with your eyes closed you can normally locate where it’s coming from. As in close your eyes and snap your fingers. Now suppose someone sets off a bomb some distance from you. You see the explosion or lightning flash etc but it takes a while for sound to show up. For stationary objects it doesn’t really matter you can still locate direction just fine. Aircraft in level flight are also loud enough to be heard at distance sufficient to notice a delay. If the aircraft is flying by you hear sound from exactly one instant, but it like the explosion it was produced in the past. So if you close your eyes and try to locate the aircraft by sound you will point to wherever it was when it produced that sound not where it is right now. The same is true of every sound you hear, but normally distances are short enough and speed are low enough it just doesn’t matter.
- bernulli 4y agoIt's just completely unrelated to why the aircraft passes you before you hear it.
- Retric 4y agoThey never suggested the first time you would hear it was the aircraft was already past you. However, the maximum difference in angle between it’s current location and the location the sound comes from is just after it flew past you.
- bernulli 4y agoThe title is "How far behind a plane is its noise?" It's not. It's ahead of the aircraft.
- Retric 4y agoThe noise is always pointing behind the aircraft or any moving object due to lag. Light also encodes the direction to an objects past location, even though light is always moving faster than the object.
- icehawk 4y agoBut it's not talking about the aircraft itself. The article is talking about the comparison of the visual image of the aircraft and the sound coming from the aircraft: "You can hear the loud engines, and your ears tell you it should be in one place, but your eyes tell you it’s clearly well ahead of its noise." What time the aircraft passes the observer is irrelevant (if you Ctrl+F for pass in the original article, it's not there) and the correct calculations for an aircraft traveling 100m/s would be: If you're 100km away, the image of the plane will reach you after 1.20 milliseconds (100km / speed of light in air), and the sound will reach you in 333s. (in which the plane now has moved 33.3km and now you're getting an image of a plane 66.7km away.) If you're 200km away, the image of the plane will reach you after 2.40ms and sound will reach you after 667s. The main thing this effect relies on is the ability for an object to move a significant fraction of its size in the time it takes for the sound to reach you.