Inspirations and more

  • Random
  • Archive
  • RSS

“Look deep into nature, and then you will understand everything better.”

Albert Einstein

    • #wisdom
    • #wise
    • #Albert Einstein
    • #quote
    • #Genius
    • #nature
    • #inspiring
    • #educational
    • #Einstein
  • 3 months ago
  • 3
  • Permalink
  • Share
    Tweet

“Everything you can imagine, nature has already created.”

Albert Einstein

    • #Albert Einstein
    • #quote
    • #wisdom
    • #wise
    • #Genius
    • #nature
    • #create
    • #inspiring
    • #educational
  • 8 months ago
  • Permalink
  • Share
    Tweet

Alan Turing’s Patterns in Nature, and Beyond

Near the end of his life, the great mathematician Alan Turing wrote his first and last paper on biology and chemistry, about how a certain type of chemical reaction ought to produce many patterns seen in nature.

Called “The Chemical Basis of Morphogenesis,” it was an entirely theoretical work. But in following decades, long after Turing tragically took his own life in 1954, scientists found his speculations to be reality.

First found in chemicals in dishes, then in the stripes and spirals and whorls of animals, so-called Turing patterns abounded. Some think that Turing patterns may actually extend to ecosystems, even to galaxies. That’s still speculation — but a proof published Feb. 11 in Science of Turing patterns in a controlled three-dimensional chemical system are even more suggestion of just how complex the patterns can be.


How Turing Patterns Work

At the heart of any Turing pattern is a so-called reaction-diffusion system. It consists of an “activator,” a chemical that can make more of itself; an “inhibitor,” that slows production of the activator; and a mechanism for diffusing the chemicals.

Many combinations of chemicals can fit this system: What matters isn’t their individual identity, but how they interact, with concentrations oscillating between high and low and spreading across an area. These simple units then suffice to produce very complex patterns.


Proving Their Existence

Even though what appeared to be Turing patterns were immediately evident in nature, it wasn’t easy to be sure they were produced by reaction-diffusion systems, rather than some other mechanism.

The breakthrough came during the 1980s, when chemists were able to produce Turing patterns in the laboratory, on thin slabs of gel. In these controlled systems, the reactions could be closely followed, simulated on computers and unambiguously demonstrated as true Turing patterns.

At left in each photograph is a real seashell. At right is a computer-generated image of a pattern produced by a Turing pattern simulation.


At left in each photograph is the eye of a popper fish. At right is a computer-generated image of a pattern generated by a Turing pattern simulation.

Source: Wired

    • #nature
    • #biology
    • #biomimicry
    • #Alan Turing
    • #patterns
    • #engineering
    • #tech
    • #chemistry
    • #biomimetica
    • #educational
    • #education
    • #research
    • #inspiration
    • #inspiring
    • #inspirational
  • 12 months ago
  • 6
  • Permalink
  • Share
    Tweet
'\x3ciframe width=\x22500\x22 height=\x22375\x22 src=\x22http://www.youtube.com/embed/TRF-6iKuEqc?wmode=transparent\x26autohide=1\x26egm=0\x26hd=1\x26iv_load_policy=3\x26modestbranding=1\x26rel=0\x26showinfo=0\x26showsearch=0\x22 frameborder=\x220\x22 allowfullscreen\x3e\x3c/iframe\x3e'

“The thorny devil, a tiny highly specialised lizard from the central Australian desert which lives entirely on ants has each scale enlarged and drawn out to a point in the centre. Few birds could relish such a thorny mouthful and to that extent, they must be a very effective defence, but the shape of the scales also serves another and most unusual function. Each is scored with very thin grooves radiating from the central peak. During cold nights, dew condenses on them and is drawn by capillary action along the grooves and eventually down to the tiny creature’s mouth.” (Attenborough 1979:164)

The Thorny Devil (Moloch horridus) can gather all the water it needs directly from rain, standing water, or from soil moisture, against gravity without using energy or a pumping device. Water is conveyed to this desert lizard’s mouth by capillary action through a circulatory system on the surface of its skin, comprised of semi-enclosed channels 5-150 µm wide running between cutaneous scales. Channel surfaces are heavily convoluted, greatly increasing the effective surface area to which water can hydrogen-bond and hence capillary action force. Passive collection and distribution systems of naturally distilled water could help provide clean water supplies to the 1 billion people estimated to lack this vital resource, reduce the energy consumption required in collecting and transporting water by pump action (e.g., to the tops of buildings), and provide a variety of other inexpensive technological solutions such as managing heat through evaporative cooling systems, protecting structures from fire through on-demand water barriers, etc.

Source: AskNature
Video Source: National Geographic

    • #animal
    • #biology
    • #biomimicry
    • #collect
    • #design
    • #harvest
    • #nature
    • #physics
    • #solution
    • #solve
    • #store
    • #tech
    • #technology
    • #water
    • #engineering
    • #educational
    • #education
    • #research
    • #sustainable
  • 1 year ago
  • 2
  • Permalink
  • Share
    Tweet

Solar power research looks to sunflowers for optimum layouts

We’ve all seen concentrated solar power (CSP) plants — those rows and rows of shiny mirror heliostats all crowded around a 100-metre-high pillar, like worshippers peering up at a towering god.

The orchestra of mirrors track the sun throughout the day, bouncing rays up at the central tower where the heat is concentrated, converted into electricity and piped into the national grid. Only a small handful of these plants — like PS10, in the Spanish desert region of Andalucia — exist around the world.

Their growth is restricted thanks to their sizeable footprints. “Concentrated solar thermal energy needs huge areas,” says Alexander Mitsos, the Rockwell International assistant professor of mechanical engineering, at the Massachusetts Institute of Technology.

“If we’re talking about going to 100 percent or even 10 percent renewables, we will need huge areas, so we better use them efficiently,” he explains.

Mitsos and colleagues have come up with a new design for CSPs that reduces the required amount of land while boosting the amount of sunlight the heliostat mirrors collect. In perhaps the most beautiful example of biomimicry yet, it’s inspired by sunflowers.

The researchers at MIT, in collaboration with RWTH Aachen University in Germany, looked at the layout of current CSP plants. They put spaces between the mirrors and staggered them like seats in a movie theatre. This pattern results in shadows being cast on some mirrors, reducing the reflection of light.

Mitsos’ lab developed a computational model to evaluate the efficiency of heliostat layouts — the system divides each mirror into discrete sections and accurately calculates the amount of light each section reflects at any given moment.

Mitsos and colleague Corey Noone used numerical optimisation to fiddle with the placement of the heliostats. They brought the fanned-out layout closer together, building a spiral-like pattern that reduces land by ten percent without affecting efficiency.

Next they looked to nature to improve the design further. The florets of a sunflower — small flowers at the centre of the petals, which mature into seeds — are arranged in a stunning spiral fashion that’s impressed mathematicians for years.

The arrangement — a form of Fermat spiral — has each floret turned at a “golden angle” - about 137 degrees - with respect to its neighbour.

The researchers twisted each mirror to be 137 degrees relative to its neighbour and it made a huge difference. The optimised layout takes up 20 percent less space than the current layout of the PS10 in Spain, and even increased total efficiency.

The researchers have published their results in the journal Solar Energy, and have recently filed for patent protection on the design.

Image: Kibbles/Flickr/CC-licensed

Source: Wired.co.uk

    • #nature
    • #sun
    • #solar
    • #research
    • #education
    • #educational
    • #biology
    • #biomimicry
    • #power
    • #technology
    • #tech
  • 1 year ago
  • Permalink
  • Share
    Tweet

Not a scratch

Scorpions may have lessons to teach aircraft designers

The north African desert scorpion, Androctonus australis, is a hardy creature. Most animals that live in deserts dig burrows to protect themselves from the sand-laden wind. Not Androctonus. It usually toughs things out at the surface. Yet when the sand whips by at speeds that would strip paint away from steel, the scorpion is able to scurry off without apparent damage. Han Zhiwu of Jilin University, in China, and his colleagues wondered why.

Their curiosity is not just academic. Aircraft engines and helicopter rotor-blades are constantly abraded by atmospheric dust, and a way of slowing down this abrasion would be welcome. Dr Han suspects that scorpions may provide an answer. As he writes in Langmuir, he has discovered that the surface of Androctonus’s exoskeleton is odd. And when that oddness is translated into other materials it seems to protect them, as well.

Dr Han’s investigations began by scouring the pet shops of Changchun, where the university is located, for scorpions. Having obtained his specimens, he photographed them under a microscope, using ultraviolet light. This made the animals’ exoskeletons, which are composed of a sugar-based polymer called chitin, fluoresce—thus revealing details of their surface features. The team found that Androctonus armour is covered with dome-shaped granules that are 10 microns high and between 25 and 80 microns across. These, they suspected, were the key to its insouciance in the face of sandstorms.

To check, they took further photographs. In particular, they used a laser scanning system to make a three-dimensional map of the armour and then plugged the result into a computer program that blasted the virtual armour with virtual sand grains at various angles of attack. This process revealed that the granules were disturbing the air flow near the skeleton’s surface in ways that appeared to be reducing the erosion rate. Their model suggested that if scorpion exoskeletons were smooth, they would experience almost twice the erosion rate that they actually do.

Having tried things out in a computer, the team then tried them for real. They placed samples of steel in a wind tunnel and fired grains of sand at them using compressed air. One piece of steel was smooth, but the others had grooves of different heights, widths and separations, inspired by scorpion exoskeleton, etched onto their surfaces. Each sample was exposed to the lab-generated sandstorm for five minutes and then weighed to find out how badly it had been eroded.

The upshot was that the pattern most resembling scorpion armour—with grooves that were 2mm apart, 5mm wide and 4mm high—proved best able to withstand the assault. Though not as good as the computer model suggested real scorpion geometry is, such grooving nevertheless cut erosion by a fifth, compared with a smooth steel surface. The lesson for aircraft makers, Dr Han suggests, is that a little surface irregularity might help to prolong the active lives of planes and helicopters, as well as those of scorpions.

Source: The Economist

    • #animal
    • #biology
    • #biomimicry
    • #creativity
    • #creative
    • #curiosity
    • #design
    • #development
    • #education
    • #educational
    • #experiment
    • #engineering
    • #inspiration
    • #innovation
    • #inspiring
    • #inspirational
    • #nature
    • #product
    • #problem
    • #research
    • #science
    • #solve
    • #Scientific
    • #technology
    • #tech
  • 1 year ago
  • 2
  • Permalink
  • Share
    Tweet

The Wisdom of Crowds

Excerpt from the book “The Wisdom of Crowds” by James Surowiecki, one of the most interesting book I’ve ever read.
Strongly Suggested!

Imagine that you are French. You are walking along a busy pavement in Paris and another pedestrian is approaching from the opposite direction. A collision will occur unless you each move out of the other’s way. Which way do you step?

The answer is almost certainly to the right. Replay the same scene in many parts of Asia, however, and you would probably move to the left. It is not obvious why. There is no instruction to head in a specific direction (South Korea, where there is a campaign to get people to walk on the right, is an exception). There is no simple correlation with the side of the road on which people drive: Londoners funnel to the right on pavements, for example.

Instead, says Mehdi Moussaid of the Max Planck Institute in Berlin, this is a behaviour brought about by probabilities. If two opposing people guess each other’s intentions correctly, each moving to one side and allowing the other past, then they are likely to choose to move the same way the next time they need to avoid a collision. The probability of a successful manoeuvre increases as more and more people adopt a bias in one direction, until the tendency sticks. Whether it’s right or left does not matter; what does is that it is the unspoken will of the majority.

That is at odds with most people’s idea of being a pedestrian. More than any other way of getting around—such as being crushed into a train or stuck in a traffic jam—walking appears to offer freedom of choice. Reality is more complicated. Whether stepping aside to avoid a collision, following the person in front through a crowd or navigating busy streets, pedestrians are autonomous yet constrained by others. They are both highly mobile and very predictable. “These are particles with a will,” says Dirk Helbing of ETH Zurich, a technology-focused university.

Messrs Helbing and Moussaid are at the cutting edge of a youngish field: understanding and modelling how pedestrians behave. Its purpose is not mere curiosity. Understanding pedestrian flows makes crowd events safer: knowing about the propensity of different nationalities to step in different directions could, for instance, matter to organisers of an event such as a football World Cup, where fans from various countries mingle. The odds of collisions go up if they do not share a reflex to move to one side. In a packed crowd, that could slow down lots of people.

In 1995 Mr Helbing and Peter Molnar, both physicists, came up with a “social force” computer model that used insights from the way that particles in fluids and gases behave to describe pedestrian movement. The model assumed that people are attracted by some things, such as the destination they are heading for, and repelled by others, such as another pedestrian in their path. It proved its worth by predicting several self-organising effects among crowds that are visible in real life.

One is the propensity of dense crowds spontaneously to break into lanes that allow people to move more efficiently in opposing directions. Individuals do not have to negotiate their way through a series of encounters with oncoming people; they can just follow the person in front. That works better than trying to overtake. Research by Mr Moussaid suggests that the effect of one person trying to walk faster than the people around them in a dense crowd is to force an opposing lane of pedestrians to split in two, which has the effect of breaking up the lane next door, and so on. Everyone moves slower as a result.



Up close and personal

Another self-organising behaviour comes when opposing flows of people meet at a single intersection: think of parents trying to shepherd their children into school as other parents, their sprogs already dropped off, try to leave. As people stream through in one direction, the pressure on their side of the intersection drops. That gives those waiting on the other side more opportunity to go through, until pressure on their side is relieved. The result is a series of alternating bursts of traffic through the gates.

This oscillation in flows is clever enough to have got Mr Helbing wondering about its application to cars. Traffic-light systems currently operate on fixed cycles, with lights staying green on the basis of past traffic patterns. If those patterns are not repeated, drivers are left to idle their engines for too long at red signals, raising emissions and tempers. Mr Helbing thinks it is better to have decentralised, local systems, which—like parents at the school gates—can respond to a build-up of traffic and keep the lights on green for longer if need be. City authorities agree: Mr Helbing’s ideas will soon be implemented in Dresden and Zurich.

Trying to capture every element of pedestrian movement in an equation is horribly complex, however. One problem is allowing for cultural biases, such as whether people step to the left or the right, or their willingness to get close to fellow pedestrians. An experiment in 2009 tested the walking speeds of Germans and Indians by getting volunteers in each country to walk in single file around an elliptical, makeshift corridor of ropes and chairs. At low densities the speeds of each nationality are similar; but once the numbers increase, Indians walk faster than Germans. This won’t be news to anyone familiar with Munich and Mumbai, but Indians are just less bothered about bumping into other people.

Another problem with assuming people act like particles is that up to 70% of people in a crowd are actually in groups. That matters, as anyone trying to get past shuffling tourists knows. It also leads to some lovely fine-scale choreography when small groups are squeezed. Observations of pavement crowds in Toulouse in France show that clusters of three and four people naturally organise themselves into concave “V” and “U” shapes, with middle members falling back slightly. If a group of three people cared about moving quickly, they would behave like geese and form a convex “V”, with the middle member slightly in front to forge a path. Instead, they adopt a formation that enables them to keep communicating with each other; talking trumps walking.

Mr Moussaid’s solution to such complexity has been to build a model based less on the analogy between humans and particles and more on cognitive science. Agents in this new model are allowed to “see” what’s in front of them; they then try to carve a free path through the masses to get to their destination. This approach produces the same effects of lane-formation in crowds as the physics-based models, but with some added advantages.

In particular, boffins think it could help make emergency evacuations safer. Simulating evacuations is a big part of what pedestrian modellers do—the King’s Cross underground fire in London in 1987 gave the field one of its starting shoves. One big danger in an emergency is that people will follow the crowd and all herd towards a single exit. That in turn means that the crowd may jam as too many people try to force their way through a single doorway.

The physics-based models do have an answer to this problem of “arching” (so called for the shape of the crowd that builds up around the exit). Their simulations suggest the flow of pedestrians through a narrow doorway can be smoothed by plonking an obstacle such as a pillar just in front of the exit. In theory, that should have the effect of splitting people into more efficient lanes. In practice, however, the idea of putting a barrier in front of an emergency exit is too counter-intuitive for planners to have tried.

The cognitive-science model offers a more palatable option, that of experimenting with the effects of changes in people’s visual fields. Mr Moussaid speculates that adaptable lighting systems, which use darkness to repel people and light to attract them, could be used to direct them in emergencies, for example.

Where the cognitive approach falls down is in the most packed environments. “At low densities, behaviour is cognitive and strategic,” says Mr Moussaid. “At high density, it’s about mass movement and physical pressures.” At a certain point crowds can shift from a controlled flow to a stop-and-go pattern, as people are forced to shorten their stride length and occasionally halt to avoid collisions. This kind of movement can develop into something much more frightening, known as crowd turbulence, when people can no longer keep a space between themselves and others. The physical forces that are imparted from one body to another when that happens are both chaotic and powerful: if someone falls over, others will be unable to avoid them.



Science meets religion

Working out precisely how and when these transitions happen is tough. Bringing a real-life situation under control once a stop-and-go pattern has started is equally hard. So the trick is to ensure that serious crowding is avoided in the first place. From big events such as the London Olympics to the design of new railway stations, engineering firms now routinely simulate the movement of people to try to spot areas where crowding is likely to occur.

A typical project involves using off-the-shelf software programs to identify potential bottlenecks in a particular environment, such as a stadium or a Tube station. These models specify the entry and exit points at a location and then use “routing algorithms” that send people to their destinations. Even a one-off event like the Olympics has plenty of data on pedestrian movement to draw on, from past games to other set-piece gatherings such as, say, city-centre carnivals, which enable some basic assumptions about how people will flow.

Once potential points of congestion are identified, more sophisticated models can then be used to go down to a finer level of detail. This second stage allows planners to change architectural designs for new locations and identify when to intervene in existing ones. “There should be many fewer crowd disasters given what we now know and can simulate,” says Mr Helbing.

The biggest test possible of these tools and techniques is the haj, the annual pilgrimage to Mecca in Saudi Arabia that Muslims are expected to carry out at least once in their lives if they can. With as many as 3m pilgrims making the journey each year, the haj has a long history of crowd stampedes and deaths. Indeed, video footage of a haj stampede is used by lots of modellers to validate their simulations of crowd turbulence.

The Saudi authorities have brought in consultants in recent years, focusing in particular on the layout of the Jamarat Bridge, where pilgrims perform a ritual in which they throw stones at three pillars. By making the crossing one-way, and changing the shape of the pillars so that people can stone them from a number of locations, they have improved the bridge’s safety.

But according to Paul Townsend of Crowd Dynamics, a consultancy that has worked on the pilgrimage, the risks remain significant. He thinks that the use of gates that could be opened and shut would help to manage the flow. Yet the haj presents some very specific difficulties beyond its sheer scale. Part of the problem is not having a clear idea of how many pilgrims will turn up, which makes planning difficult. Another issue is the nature of the crowd.

“Pilgrims on the haj have the attitude that, if I die there it is God’s will,” says Mr Townsend. “There is a willingness to get more and more dense in the space.” Scientists can model many aspects of pedestrian behaviour, but religious fervour is a step too far.

Source: The Economist

    • #book
    • #inspiration
    • #inspiring
    • #inspirational
    • #crowds
    • #wisdom
    • #education
    • #educational
    • #creative
    • #creativity
    • #curiosity
    • #curious
    • #experiment
    • #human
    • #intelligent
    • #life
    • #lifestyle
    • #learn
    • #nature
    • #people
    • #research
    • #science
    • #Scientific
    • #behavior
  • 1 year ago
  • Permalink
  • Share
    Tweet

“At times of change, the learners are the ones who will inherit the world, while the knowers will be beautifully prepared for a world which no longer exists.”

Alistair Smith

    • #quote
    • #change
    • #world
    • #think different
    • #inspiration
    • #inspiring
    • #inspirational
    • #thinkers
    • #learn
    • #education
    • #educational
  • 1 year ago
  • 1
  • Permalink
  • Share
    Tweet
'\x3ciframe src=\x22http://player.vimeo.com/video/34017777?title=0\x26amp;byline=0\x26amp;portrait=0\x22 width=\x22500\x22 height=\x22281\x22 frameborder=\x220\x22\x3e\x3c/iframe\x3e'

Great inspiring talk from Wilson Miner from the 2011 Build Conference in Belfast.
During his talk, Miner reminds us about how technologies and people who create them impact and shape our world.
Milner was the original designer for EveryBlock and part of the team developing Django, and he was interactive designer for Apple working on the redesign of Apple.com
Currently, Miner is head of design for Rdio.

    • #creative
    • #creativity
    • #change
    • #create
    • #curious
    • #design
    • #education
    • #educational
    • #inspiration
    • #innovation
    • #industrial
    • #inspiring
    • #inspirational
    • #life
    • #make
    • #motivational
    • #people
    • #passion
    • #quote
    • #research
    • #science
    • #social
    • #developer
    • #Build 2011
    • #Build
    • #web
    • #technology
    • #tech
    • #think different
    • #tool
  • 1 year ago
  • Permalink
  • Share
    Tweet
'\x3ciframe width=\x22500\x22 height=\x22374\x22 src=\x22http://www.youtube.com/embed/aCQx9U6awFw?wmode=transparent\x26autohide=1\x26egm=0\x26hd=1\x26iv_load_policy=3\x26modestbranding=1\x26rel=0\x26showinfo=0\x26showsearch=0\x22 frameborder=\x220\x22 allowfullscreen\x3e\x3c/iframe\x3e'

A mind-bending explanation of ten dimensions

    • #inspiration
    • #inspiring
    • #inspirational
    • #science
    • #research
    • #video
    • #ten dimensions
    • #physics
    • #experiment
    • #education
    • #educational
  • 1 year ago
  • Permalink
  • Share
    Tweet
← Newer • Older →
Page 1 of 2

Portrait/Logo

About

A collection of visual and written inspirations, great ideas and interesting things
-
Check out my portfolio

Categories

  • Life
  • Design
  • Science
  • Technology
  • Research
  • Inspiring

More

  • stefanomerlo on Behance
  • @stefanomerlo on Twitter
  • Facebook Profile
  • My Skype Info
  • Linkedin Profile

Twitter

loading tweets…

  • RSS
  • Random
  • Archive
  • Mobile

Effector Theme by Carlo Franco.

Powered by Tumblr