Showing posts with label animal. Show all posts
Showing posts with label animal. Show all posts

01/03/2010

Carbon credits proposed for whale conservation

Thanks to Carolina Damian Mendoza

Published online 26 February 2010 | Nature | doi:10.1038/news.2010.96 
Corrected online: 26 February 2010



Stopping whale hunting could help sequester millions of tonnes of carbon.

Richard A. Lovett
Whales are like trees — when it comes to carbon credits.Getty

Biological oceanographer Andrew Pershing wants carbon credits for whale conservation. That's because whales, he says, are like trees. "Like any animal or plant, they are made out of carbon. And whales are so big they each store a lot of carbon," he says.

Pershing, of the University of Maine in Orono and the Gulf of Maine Research Institute in Portland, Maine, calculates that even though some whale species are now recovering from the effects of factory whaling, total whale biomass today is less than one-fifth of what it was in 1900, before whaling decimated the population. Letting the whale population recover, he said on 25 February at the American Geophysical Union's 2010 Ocean Sciences meeting in Portland, Oregon, could eventually sequester 9 million tonnes of carbon in their combined biomass.

He compares it to planting trees. "In a forest, trees remove carbon dioxide from the atmosphere and accumulate that as biomass. Whales take carbon out of the system through their food, then incorporate that carbon in their tissues."

Whaling, by contrast, is like cutting down trees for firewood. "You're taking whales out of the population and putting their carbon somewhere else." In the early days of whaling, Pershing explains, that carbon was going straight into the atmosphere through the burning of whale oil in lamps, for example. More recently, he says, the carbon is released through the consumption of whale meat by humans, "but you're still taking carbon out of the whale and putting it into something that's going to respire it".

Furthermore, when whales die naturally, they usually sink to the bottom of the ocean, carrying their carbon with them. Back in 1900, when whale numbers were high, that would have totalled about 200,000 tonnes of carbon per year, Pershing estimates. Even though benthic creatures eventually eat the whale carcasses (see 'Bone-devouring worms discovered'), the carbon will remain in the depths, Pershing says, staying "out of the atmosphere for potentially hundreds of years".
Carbon consumers

By comparison, 9 million tonnes is only a small fraction of the 7 billion tonnes of carbon entering the atmosphere each year from human activities, Pershing says, but it's still a lot. It's equivalent to 11,000 square kilometres of temperate forest, or 11,000 Hummers driving for 100 years, says Pershing.

It's also comparable to the amount of carbon involved in forest-management schemes being proposed for buying and selling carbon credits, he said. "People would pay a lot to preserve an area of forest that big."

If whales increase in numbers, other species that compete for the same food might decline. But even if ocean food supplies are limited, there could still be a substantial increase in total biomass owing to the difference in size between whales and the organisms they could displace. Because large animals require less food per unit mass than smaller animals, any given food source (such as krill) can support a lot more biomass in a whale than in a small animal such as a penguin.
Rebuilding stocks

Other scientists greeted Pershing's presentation with enthusiasm. "It's exciting," says Daniel Costa, a professor of ecology and evolutionary biology at the University of California, Santa Cruz. "It means that whales are important not just because they're charismatic, but because they play an important role in the carbon cycle."

Furthermore, he says, Pershing's research may actually understate the degree to which whales could sequester carbon. The iron in whale faeces is an important micronutrient that is often in short supply in waters such as the Southern Ocean, and it can help boost algal growth — which ultimately means more food for everything, including whales. "In order to drive these large algal blooms you need iron," says Costa. In fact, he says, the indirect benefits of iron fertilization from whale faeces might remove more carbon from the atmosphere by boosting algal growth than the growth of the whales themselves.

Pershing adds that the same analysis applies to other large ocean animals whose populations have been drastically reduced, such as bluefin tuna and some species of shark. "These guys are huge," he says. And even though all of these animals' biomass combined represents a small fraction of total human carbon emissions, they could still sequester many tonnes of carbon. "You could use carbon as one of the incentives to rebuild the stores of these large organisms," Pershing says. 

CORRECTED: An earlier version of this story incorrectly stated that letting whale biomass recover would sequester 105 million tonnes of carbon. Andrew Pershing has since recalculated this figure as 9 million tonnes of carbon.

07/02/2010

Ant computer




http://www.flickr.com/photos/worldworldworld/4336652574/sizes/m/
Schematics for making a cybernetic computer with ants. By Cesar Harada for Ollie Palmer. Wellcome trust, London, UK.
Roughly the idea is to have a large bed made with many small magnets, controlled by an LED Matrix controller, via USB -> Arduino -> proce55ing. The bed is covered with a sheet of Teflon. On the bed metallic powder can be reconfigured and become a magnetic display, a little bit like the ferrofluid experiments of Sachiko Kodama
The metallic powder would be coated with ant pheromones ("pick me up" / "leave me here").
2 gates (one in, one out) would be a ant (bit) counter (webcam video processing).
Another webcam would be used for general visual control, and feedback.
The pattern the computer would draw as initial position of the metallic powder would be progressively reconfigured by the ants activities, bringing back the content of the "bed" into the "store room". The pattern on the bed would correspond to the program in the computer : a self modifying software and hardware, as one thing. 
The computer could get complex if we would assign ants a color or an RFID tag, of if we had a less binary information to carry ("pick me up" / "leave me here", "pick me up for a while", "exchange me", ask someone to help pick me up" etc).
Such computer would be interesting to evaluate the capacity of learning of ants and of the machine.
We could also use ants methods of optimization for some of our human activities (find people under collapse buildings after avalanches, earthquakes...) or computer routines (web crawling), or new types or architecture generation...

09/12/2009

New drive to harness wave power

http://news.bbc.co.uk/2/hi/science/nature/8400441.stm

By David Shukman
Environment correspondent, BBC News

Advertisement
Meet green monsters of the deep
In a bleakly beautiful island landscape, some strange new sights are emerging.
In the turbulent waters off the shores of Orkney, in the far north of Scotland, an array of bizarre machines is being deployed in a drive to harness the power of the sea.
The European Marine Energy Centre at Stromness is playing host to nearly a dozen experimental devices designed to capture the energy of the tides and the waves.
It is too early to tell if any of them will work on a large scale or ever succeed commercially.
But during lucky breaks in Orkney's fearsome winter weather, I got the chance to see two of the devices in action.
There is the "Oyster", a giant flap twice the height of a double-decker bus which swings back and forth with the waves.
There is huge potential - absolutely huge amounts of energy out there
Neil Kermode
European Marine Energy Centre
Every time the flap moves, the action compresses hydraulic pumps which force water through a pipe to the shore where it drives a generator.
As we approach through a heavy swell, the bright yellow top of the flap rears up above the surface of the sea before being plunged back down by the next wave.
The machine is the work of the Scottish firm Aquamarine Power. Operations manager Frances Tierney, on board with us, says that its first few weeks have proved it can work.
"It was quite nerve-wracking installing it but we're really pleased with how the Oyster has performed so far."
The company's hope is to set up "farms" of Oysters, with 2MW of electricity being generated for every three machines, according to company officials.
'Huge potential'
Matthias Haag, Aquamarine's chief operating officer, told me that, in theory, 1,500 Oysters could yield one gigawatt (1GW) of electricity - about the output of a typical fossil fuel power station.
"Our studies have identified sites where the waves mean we could generate 5GW of electricity - it's got huge potential."
Another approach is to harness the power of the tides. Between Orkney and the Scottish mainland, the Pentland Firth sees high-speed currents surging from the Atlantic to the North Sea and back again.
These can reach more than eight knots - nearly 10 miles per hour - and the flows last six hours in each direction.
In a notoriously fast-flowing channel known as the Fall of Warness, the Irish firm OpenHydro has deployed an enormous undersea turbine - a fan with a diameter of 6m.
Oyster (BBC)
The Oyster wave power machine swings back and forth with the waves

Fitted between black stilts, this huge device sits near the sea-bed right in the path of the currents.
As the waters surge, the massive blades start spinning and drive a generating system fitted within the machine's frame. The electricity is then piped ashore.
During our visit, the turbine is lifted out of the sea so we can film it. Rising slowly from the choppy grey waters, it looks like something from a Bond film.
Operations manager Sue Barr tells me that this is the company's fourth version of the turbine. The plan is for a 10m-diameter device which could generate 1MW of power.
"We're great fans of all forms of renewable energy but tidal is the only one that's predictable. We predict it with the sun and the moon - that's a very persuasive argument for investment."
Winners and losers
Other marine schemes involve systems of underwater propellers to spin in the tides or giant "snakes" whose joints move with the waves and generate power.
There is no doubting the ambition. But this is a watery, green equivalent to the start of the steam age: lots of clever ideas but the inevitability that there will be winners and losers.
The technologies are in their infancy, the costs at this stage are very high and still unknown are the practical implications of deploying hundreds or thousands of machines at sea.
Wave machine (BBC)
There are many ides for capturing the power of tides and waves
And unresolved are the costly and controversial challenges of having to run new cables into the National Grid and then onto major population centres.
Neil Kermode of the European Marine Energy Centre is keen to be realistic about the prospects and not to hype expectations.
State funding, relatively meagre until now, is being increased and private funds are being raised too.
"We're at the stage of needing to see which of these technologies works and whether they can be scaled up. That requires steady investment.
"Look what the Danes did with wind: investments year after year paid off and now they earn billions in exports.
"There is huge potential - absolutely huge amounts of energy out there - in fact we don't know how much but it is epic."
Mr Kermode's concern is that funding remains consistent so that the different systems can be developed - and given a chance to prove themselves - in the UK.
"There is an absolute risk that we could fail to develop the technology that gets the energy out of the sea.
"If we're not careful we could end up buying this technology from overseas later on, which would be silly."
With its island heritage and experience of North Sea oil and gas, Britain should be ideally placed to pioneer marine energy.
As we leave in the dark of mid-afternoon, a storm drives rain across the runway. I think of the waves pounding the brave new machines out at sea.
Are they the first foot-soldiers of an impending energy revolution or costly forays into the deep that may never really succeed? The next few years will tell.

24/11/2009

Who will feed your Fish when you are out?

My wife frequently asks me to bring pet animal at home (i.e.: Fish) but I have some (maintenance) problem, especially who will feed my fish when we are out?
Now she got an answer to my dilemma - A Robotic Fish Feeder is the answer. (Designer: Ran Xiangfei) FIFER robot (Fish Feeder) does feeding job to Fish. Fish finally get the attention they deserve. One less item you need to worry about on your day to day tasks. (Related article: End of one more boring task - inflate your car tire)
Fish Feeder
Fish feeder not only feeds but feeds the fish in correct amount. First it calculates the density of Fish in water and dispenses the right amount of food at the pre-set times. If you are growing fish in fish pond then Robot moves to another area (based on pre-set path setting) of the pond calculate the fish density and dispenses. There is also a plant on top which grows to represent the health of your fish.
Fish Feeder
See more pictures here
Via [GearFuse.com and Designer: Ran Xiangfei Gerard Rallo]
Via [http://www.technologymadness.com/?p=415]

15/11/2009

Appropriate technology





Appropriate technology (AT) is technology that is designed with special consideration to the environmental, ethical, cultural, social and economical aspects of the community it is intended for.[neutrality disputed] With these goals in mind, AT typically requires fewer resources, is easier to maintain, has a lower overall cost and less of an impact on the environment compared to industrialized practices.[1][neutrality disputed]

The term is usually used to describe simple technologies suitable for use in developing nations or less developed rural areas of industrialized nations.[1] This form of appropriate technology usually prefers labor-intensive solutions over capital-intensive ones, although labor-saving devices are also used where this does not mean high capital or maintenance cost. In practice, appropriate technology is often something described as using the simplest level of technology that can effectively achieve the intended purpose in a particular location. In industrialized nations, the term appropriate technology takes a different meaning, often referring to engineering that takes special consideration of its social and environmental ramifications.[2]

Visualizing Ocean Data

Interesting images and articles from New Scientist Visions of Data



Whale shark pose

New compact and rugged gadgets can be attached to marine animals. They record pressure, temperature, acceleration and other information, helping biologists to study them in new detail.

But they also require new ways of presenting data.

Researchers at Swansea University, UK, are trying to make it easier to understand the data from accelerometers on tagged animals, which record motion like a Wii videogame controller.

This 3D plot shows the orientation of an animal's body in the water over time, in this case for a whale shark.

(Image: Swansea University)



Penguin vs cormorant

The body orientation plots (left) of penguins and cormorants are similar - but adding the data from depth sensors reveals their behaviour to be very different.

The penguin ascends the water column gradually, spending a lot of time at intermediate depths (green colours).

By contrast, the cormorant ascends almost vertically, levelling off only occasionally to equalise pressure and avoid getting the bends.

(Image: Swansea University)

Scenarii of usage for nomadic ecosystem modules

ideal_world_medium

by Nadine Freischlad

Letting our minds run wild with the possibilities of the modular floating system we came up with this ideal-world-scenario for its use and application.
In the setup, we have considered the following needs and applied them to the modular system.

Growing
- Land garden indoor (regulated temp/water/nutrients // regular veggies)
- Land garden outdoor (exposed to salt/temp // halophytes)
> needs to be accessible, close to storage facilities
- Salt Water gardens (algae)
- Salt Water fisheries (fish)
> need to be accesible, larger space, free circulation of water

Water refinement
- water stills (large surface/heat)
- water catch (large surface/rain)
> water stills need to be accessible, water catch needs to be very flexible for fast setup and cover max. surface

Process and store
- water store (filled from stills and rain water catch)
- food store (cool/dry, abover water and below water)
- food drying (exposed to wind/hot/dry)

waste
- compost/biomass/ biogas production unit
- fed from organic waste

14/11/2009

floating gardens

aquariumfinal-rose2-test1

Floating garden par Benjamin Graindorge, systeme de filtration naturel pour aquarium

floatinglargeok

floatingserre

structural animal protection

animal structural protection

http://users.telenet.be/couleurdune/images/glomerisenboule.jpg

http://joedoyle.com/wp-content/uploads/2008/02/escargot.jpg

http://gothamist.com/attachments/food_laren/2005_11_food_fugu.jpg

http://www.europe-miniatures.com/zvezda/zvezda-8019.jpg



http://www.voyageurs-du-temps.com/images/photos/1301.jpg

 http://www.dinosoria.com/reptil_prehi/cameleon_026.jpg

 http://www.christophe-courteau.com/images/Poisson-targeur-Zeugopterus-punctatus-1.JPG

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