This is a somewhat confusingly written article about a famously confusing topic. It directly parallels arguments about how sailboats are able to sail. Sails are also airfoils so similar mechanics come into play. Interestingly, because a sail has effectively no thickness, both sides of the sail always have the same length, which immediately calls the Bernoulli argument into question. Sailboats are also interesting bec…
The mysteries of aerodynamic lift
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Re: The mysteries of aerodynamic lift
#92I don't think there is anything mysterious about lift. We can model it very well, we have precise equations that predict the exact results (though we can't solve them) and we know where these equations come from. The fact that I do not understand the equations doesn't mean there is anything mysterious behind it. There might be some artistry with regards to actually designing the aerodynamic shapes. We have no way of…
Wouldn’t you say something that has an equation that works but no theory of why is mysterious? Mysterious doesn’t mean magical, it just means there’s an unexplained gap in what we understand, which is the case.
Anything could be said to be mysterious to somebody, there will always be somebody that has no knowledge to somebody. This way you can title anything as "mysterious" but it is not very useful (unless you count to bait clicks).
Re: The mysteries of aerodynamic lift
#93Earlier quoted context omitted.
Yes, and in rotating-wing configurations (e.g., helicopters), the lift is basically calculated using the momentum of the column of air being forced downward + the momentum of the chassis. By accelerating air downward in a column below the rotating wingspan, the column of air gains a net negative momentum (downward), necessitating a net positive (upward) momentum to the chassis to keep the system's momentum conserved.…
Sure, that's just momentum conservation. But how do you know how much downward momentum the column of air has?
Assuming the plane/helicopter didn't accelerate up or down and assuming there's no wind.
Re: The mysteries of aerodynamic lift
#94Earlier quoted context omitted.
> There's the big square sailed ones which always have to move downwind. Actually, that's not true. Square rigged "pirate-style" ships are more efficient when sailing downwind compared to fore-and-aft style sailboats, but they can still sail just fine close-hauled (into the wind) or on a reach (perpendicular). There are some efficiency pros and cons to both styles, but they all have the same aerodynamic capabilities.…
Well said, and I just want to add some detail about how square-rigged ships are able to sail close-hauled: They typically (or maybe always?) have "staysails", which run fore-and-aft between the masts, which works mostly like the main triangular sail you think of with a simple sailboat (with the exception that, as far as I know, these staysails aren't on a boom that can change its angle relative to the ship). These ar…
This isn't quite right, as split fore and aft rigs existed that solved this problem. I suspect it is more that power replaced sail for crossing oceans and square sails make little sense for coastal work so they had already switched to fore and aft rigs (with a few notable exceptions, such as Humberkeels in the north of England).
Re: The mysteries of aerodynamic lift
#95This is a somewhat confusingly written article about a famously confusing topic. It directly parallels arguments about how sailboats are able to sail. Sails are also airfoils so similar mechanics come into play. Interestingly, because a sail has effectively no thickness, both sides of the sail always have the same length, which immediately calls the Bernoulli argument into question. Sailboats are also interesting bec…
There is no viscosity in solar wind, yet the solar sail is expected to work.
EDIT: s/solar wind/solar radiation/
Re: The mysteries of aerodynamic lift
#96Unfortunately, the author has fallen into the very trap that he is trying to explain. If you were to measure the velocity and pressure fields around the wing of an airplane flying inverted, you would find that they conform to Bernoulli (so long as the airplane is flying slowly enough that compressibility is not an issue, which is another source of complication.)
What the author is doing here is to accept some bogus, hand-waving arguments for why the airflow velocity changes around the wing, such as the equal transit-time 'theory', which is, quite simply, false. To answer that question, you need the Navier-Stokes equations (which are the application of Newton's laws to a viscous fluid), or some realistic approximation.
You may find this more informative:
https://fermatslibrary.com/s/how-airplanes-fly-a-physical-de...
Re: The mysteries of aerodynamic lift
#97Earlier quoted context omitted.
> There's the big square sailed ones which always have to move downwind. Actually, that's not true. Square rigged "pirate-style" ships are more efficient when sailing downwind compared to fore-and-aft style sailboats, but they can still sail just fine close-hauled (into the wind) or on a reach (perpendicular). There are some efficiency pros and cons to both styles, but they all have the same aerodynamic capabilities.…
> The main reasons square-rigged ships fell out of fashion, as far as I know, are mostly logistically. True, but it gets more complicated than that. For fast long-distance commercial travel they were replaced by the steam and later diesel propulsion, which both a) were faster and b) required less crew (so were logistically superior). On the other hand, where sailing is still used (and that's mainly sport and leisure)…
I think that only really applies when the sails were set from aloft. I'm familiar with square-rigged cargo vessels of around 60ft in the UK that were crewed by 2.
Re: The mysteries of aerodynamic lift
#98This is a somewhat confusingly written article about a famously confusing topic. It directly parallels arguments about how sailboats are able to sail. Sails are also airfoils so similar mechanics come into play. Interestingly, because a sail has effectively no thickness, both sides of the sail always have the same length, which immediately calls the Bernoulli argument into question. Sailboats are also interesting bec…
> the fundamental reason airfoils in boats and places work the way they do requires viscosity There is no viscosity in solar wind, yet the solar sail is expected to work. EDIT: s/solar wind/solar radiation/
Re: The mysteries of aerodynamic lift
#99Earlier quoted context omitted.
Yeah. There are two kinds of sailboats. There's the big square sailed ones which always have to move downwind. Then there are the triangular sailed ones, which can move in any direction except for right into the wind. (Maybe a 30 degree on each side dead zone). The square sailed boats can't move faster than the wind, as they just rely on the air pushing on the sail to move with the wind. That's also how the triangula…
> There's the big square sailed ones which always have to move downwind. Actually, that's not true. Square rigged "pirate-style" ships are more efficient when sailing downwind compared to fore-and-aft style sailboats, but they can still sail just fine close-hauled (into the wind) or on a reach (perpendicular). There are some efficiency pros and cons to both styles, but they all have the same aerodynamic capabilities.…
Some numbers from Wikipedia:
In 1902, the Preussen, famously huge square rigged ship launched with a crew complement of 45-49 while the contemporary Thomas W. Lawson, schooner rigged and even bigger, got by with 16-18.
https://en.wikipedia.org/wiki/Preussen_(ship) https://en.wikipedia.org/wiki/Thomas_W._Lawson_(ship)