7 ms·
Leaky pipes can be better for moving water
- sebmellen 5y agoVery neat concept. Love to see biomimicry in action. More great stuff available at https://biomimicry.org/ https://biomimicry.org/. And for anyone wondering — these pipes don't leak water, they leak air and other gasses. Title is a tad bit confusing.
- bobthechef 5y agoWasn't sure why they called biology "chaotic". Complex, yes, but chaotic? No. More like "we don't understand it".
- Robotbeat 5y ago“Chaotic” may be an appropriate term. I mean, “Chaos Theory” (using a very technical definition of the word “chaos” which is only serving as an analogy here) deals with systems that are understandable and somewhat predictable in the near term but with a certain amount of a particular kind of complexity that makes it totally unpredictable in the long term. Even when you understand that he fundamental, reductionist physics. A simple pendulum is predictable over the near and far term. A double pendulum, on the other hand, is “chaotic,” and fundamentally not predictable in the long term, even though all the relevant fundamental physical laws are known. I think “chaos” is a good word describing something which is in between the fully predictable and the purely random.
- phaemon 5y agoThere possibly is great stuff there, but after having dismissed the third popup in roughly as many seconds, I gave up and hit the back button. I've no idea why websites do this. No one wants it.
- ravenstine 5y agoThose 3 clicks to close the popups probably were seen as more "engagement". ;)
- anonytrary 5y agoIs this making use of Bernoulli's principle to avoid busted pipes? Small holes in the pipe when water is running would not leak since σ > p for high speeds and small area. When water is not running, the water leaks out due to increased pressure and avoids potential busted frozen pipes. Although I don't see how this maintains water quality if the pipes are underground.
- pjerem 5y agoFrozen underground pipes are rarely a problem. The temperature underground rapidly approches ~15°C independently of the current weather. So no need to make holes in your underground pipe :)
- anonytrary 5y agoTrue! So I wonder how this works for above-ground pipes. If the water is sitting in some U-pipe would it not just leak out because its velocity is zero? Or are the holes so small that the σ > p even at rest?
- necovek 5y agoThe pipes described here do not leak water: the holes are so tiny that the surface tension does not let water spill out. They let air molecules reach the water though. In the abstract they mention how this could be useful in cooling systems and such (iow, you are unlikely to use this for drinking water).
- AstralStorm 5y agoThey will leak chlorine or iodine gas from water if that's used for disinfection. Assuming something won't get into water via the pores... Even in a cooling system contamination can be a problem regardless of how good the biocide is.
- lurquer 5y agoBasically, a paper towel, sponge, wick, or most any woven fabric. I bet the ‘3D microstructures’ in a typical woven super Shammy are smaller. Slow day at the lab? Publish or perish, I suppose.
- pjerem 5y agoThe point here is that you can build complex 3D structure to have an exchange surface with gases bigger of orders of magnitude than with a sponge or a towel.
- lovich 5y agoI thought the bigger point was that they could control the cells that liquids seep through. If your goal was to soak up the most liquid for the least cost then paper towels seem like a superior solution. This innovation looks like it’s superior when you have goals like “put 1 cm saw of water in this exact path”
- 1-6 5y agoInteresting, the principles presented in this video seem microfluidic but it also relies on the surface tension of water so I wonder wonder what realm this belongs under.
- boublepop 5y agoIt belongs under microfluidics. I don’t understand like you would make it sound like that field doesn’t deal with surface tension of water, that’s one of the most central elements of microfluidics.
- high_priest 5y agoAnq then a sinkhole happens
- failwhaleshark 5y agoAnd also: Giardia Legionella Norovirus Shigella Campylobacter Copper Salmonella Hepatitis A Cryptosporidium E. coli, excess fluoride (tie) https://www.cdc.gov/healthywater/drinking/public/water_diseases.html https://www.cdc.gov/healthywater/drinking/public/water_disea...
- jstanley 5y agoCopper?
- engineer_22 5y agoAt high levels copper is toxic. USEPA requires drinking water systems to test for copper at endpoints.
- failwhaleshark 5y agoBioavailable copper, I assume. Copper pipes should scale over.
- jstanley 5y agoSure, but how would this kind of pipe promote the formation of copper?
- edge17 5y agoIs 3d printing a 1mm wide cube really something you need "one of the most advanced" 3d printers for? Can't we get better resolution than that with hobby grade hardware?
- failwhaleshark 5y agoBut it's the most expensive machine that goes "Bing!" in-case the director walks by. My Prusa can print a 1mm cube. Is the complaint that the resolution of hobby machines aren't good enough or that it's using a thermonuclear rocket launcher to squash an ant?
- s1artibartfast 5y agoIm assuming you mean your Prusa can print a solid 1mm cube with rounded edges, which is very different than a lattice structure with an overall 1mm size
- failwhaleshark 5y agoAbsolutely. Then no. :) I wish I had a 4000 lasers plaid-mode FDM printer able to work in titanium, PLA, ASA, styrofoam, carbon nanotubes, steel, copper, wood, concrete, borosilicate, and EPDM at micrometers.
- s1artibartfast 5y ago>Is 3d printing a 1mm wide cube really something you need "one of the most advanced" 3d printers for? Absolutely! fine features and sharp edges are extremely hard. This is also a fundamental mischaratization of the scale they are working at, as object size /= feature size. the analogy would be images vs pixel. In this case, the image is 1mm, not the pixels I dont have the paper, but the video shows features around 0.25 mm and a x-y resolution of 0.025mm
- Causality1 5y agoIf you're willing to print slowly, those are not notable specs. A $250 Ender has an XY resolution of 0.01mm and 0.15mm nozzles are common.
- cwkoss 5y agoAnyone have an STL or OpenSCAD of this?
- erostrate 5y agoWhere does the potential energy that the water gets when moving up come from?
- ricardo81 5y agoCohesion-tension I think.
- mauli 5y agoMy highly uneducated guess on this would be that the water molecules moving up are cooling down a tiny little bit. Being cooler would then be making it unable for them to climb further when a certain threshold is reached, meaning they would need the surrounding environment to heat it up a little again to allow it to move further.
- akavel 5y agoKinda guessing, but I'd assume from temperature - i.e. chaotic (a.k.a. brownian) motions of the particles resulting in them randomly getting close enough to the enclosure's walls that the surface tension (which from what I see on Wikipedia seems to be basically electric attraction of particles) "glues" them to the wall, and/or to particles that got already "glued" to the wall just moments before. I would suppose "in real life" the resulting cooling is probably basically irrelevant and gets immediately "replenished" from the surroundings, and (again also from what Wikipedia seems to say) the equilibrium seems to be reached vs. gravity, presumably mostly of the "non-glued to walls" part of the water column. I.e. I guess when the freeriding bunch of suckers in the middle of the column pull you down more than the sweet, sexy wall pulls you up... errr, I mean, the sum of the gravity force acting on the water molecules in the middle of the water column equals the sum of the wall-sticking force of all the wall-sticking water molecules (distributed locally through the water-to-water-sticking force of the water molecules).
- yarcob 5y agoAdhesion. The water molecules are attracted to the surface of the structure by adhesive forces. This means that when the water molecules are away from the structure, there is "potential adhesive energy". As the water moves closer to the surface, the "potential adhesive energy" is reduced and turns into gravitational potential energy -- until at some point an equilibrium is reached. The more surface area the liquid can adhere to, the higher it can rise. If this is hard to understand, think of two strong magnets, one lying on a table, and one mounted at a point somewhere above the table. When the two magnets are not touching, there is potential magnetic energy. If you bring the top magnet low enough, at some point the bottom magnet will be pulled up towards the other magnet until it touches, increasing it's potential gravitational energy and minimizing its potential magnetic energy.
- rocqua 5y agoWhat flow rates can this achieve and sustain? If you want to use it for absorption of gasses or heat, presumably you are going to want to move that heat and gas somewhere. Diffusion is quite slow, so I expect you would need flowing water. It might not be all that valuable to have that surface area if you can't also move the water around. I imagine you could have many of these cubes with water flowing past one of their faces. Essentially using Diffusion to move stuff 1mm and using flow once the water is in a real pipe.
- ricardo81 5y agoThe mention of capillary action reminded me of hydro. Would be great for small scale energy production/storage.
- londons_explore 5y agoNeat... But it's really just the same as putting some tissue paper in water and watching the water absorb up the tissue...
- mihaaly 5y agoSuper advanced 3D printing... My mother would buy a sponge instead.
- cableclasper 5y agoReally neat! Heat pipes also utilize capillary action (via wicks) for heat exchange: https://en.wikipedia.org/wiki/Heat_pipe https://en.wikipedia.org/wiki/Heat_pipe
- omginternets 5y agoWhat was the main difficulty, here? It's neat, but I'm not seeing the novelty. Is it the mm-scale capillary action, or the fact that it was done with 3D printing?
- TheRealPomax 5y ago"Yes." The best we've been able to do for capillary action so far has been through machining (e.g. fountainpen feeds) which has no real internal structure and will happily leak all over the place it touches something else, or sintering, which has a microstructure that takes forever to do its thing.
- omginternets 5y agoHuh, I guess this one of those “it looks easier than it is” things. Cool! Thanks for the explanation.
- TheRealPomax 5y agobeing able to create true, 3d cappilary volumes? Ridiculously hard.
- quasarj 5y agoHighly misleading title. Content was interesting, but they never said this was "better for moving water". Rather, they said this was better for heat and gas exchange with water...
- sova 5y agoCould this be used to transport water long distances like an aqueduct?
- mrfusion 5y agoSpeaking of mixing water and gas, I’ve got about a dozen ideas for new designs for humidifiers. Should I pursue that? Patents and such?
- traverseda 5y agoWhy are they better?
- mrfusion 5y agoWell there would be no filter medium to harbor mold or to replace. And with ultrasound it puts minerals and bacteria into the air somewhat. My designs really on natural evaporation with easily cleanable parts.
- deelowe 5y agoOnce niche market familiar with is cigar humidifiers. Mold is a constant concern and all of the solutions on the market today either use ultrasound which works great, but causes the problems you mentioned or silca beads, which are much more cumbersome to work with.