Showing posts with label future. Show all posts
Showing posts with label future. Show all posts

Monday, July 8, 2013

A Green Alternative That Might Just Save the Planet

Guardian-seaweed-algae


"It's best to get it out of the water now or it'll start getting grazed by the little beasties," says Lars Brunner as he hauls 50 kg (110 pounds) of glistening, translucent kelp from the dark waters of the Sound of Kerrera into the boat. The long summer days mean the seaweed is rapidly storing up sugars, which snails and barnacles find delicious.


"You can eat it, but whether it tastes good is debatable," says Brunner. He is also after the sugars, but for a different reason. His work at the Scottish Association for Marine Science (Sams), with parallel projects in Ireland and Norway, is part of a growing worldwide effort aiming to turn the centuries-old seaweed industry into a major source of environmentally friendly biofuels.


The seaweed is farmed in a picture-perfect sea fjord that once hosted a fish farm, near Oban in Argyll, where craggy, green hills overlook the loch. "It's a very good site," says Brunner. "It has really nice currents; the seaweed needs the water to flow over the blades so they can capture the nutrients they need."


Many millions of pounds are being invested in seaweed research from Vietnam to Israel to Chile because producing biofuels in the sea removes at a stroke many of the serious problems with conventional biofuels. Though important as greener alternatives to oil, many biofuels are produced from food crops, such as corn and sugar, which drives up global prices in a world where a billion people are already hungry. Biofuel production also consumes increasingly scarce freshwater and the worst examples — those from palm oil — can produce more carbon dioxide than diesel.


"Seaweed does not have any of those problems," says Phil Kerrison, another marine scientist, back at the Sams labs. Seaweed farming has even been shown to clean up the pollution from fish farms and kelp grows far more quickly than land plants, turning sunlight into chemical energy five times more efficiently.


 "Modern cars can already take 10 percent ethanol, so you already have a way of using it and you are already filling up cars with biodiesel from land crops, so why not seaweed?" Many see huge potential, with the UK government already including up to 4,700 sq km (1,814 sq miles) of seaweed farming cultivation in its future energy scenarios and another study finding it could in theory supply the world's needs several times over. Seaweed can be used to produce ethanol, which can be mixed with petrol, or methane, the main component of the natural gas heating the UK's homes.


But despite 1,000 years of seaweed cultivation, largely in Asia, it remains a labor-intensive industry. Twine has to be impregnated with millimetrer-sized seaweed embryos then wound around ropes. After a growing season in the water, it is harvested by hand. Oban has a history of seaweed industry: there used to be a large factory a few miles up the coast at Barcaldine that ran 24 hours a day and bussed in workers from all around. It produced alginate, a common thickener in ice cream and other food, until cheap imports killed the business.


"This new interest is like the wheel coming around again," says John Keeney, skipper of the Sams boat and a former fish farmer and harbourmaster. Roderick McEachen, who runs the local ferry, agrees. Pointing over the water to the white farmhouse he was born in, he says: "They used to use seaweed to grow potatoes; it was ideal."


Guardian-NASA-biofuelsPlan-infographic-500x375


Seaweed is also used to produce vitamin supplements — the huge Chinese industry was founded to provide iodine to the country's swelling population — as well as cosmetics, plastics and animal feed. These multiple uses could help solve seaweed's biggest barrier to a biofuels breakthrough, says Kerrison. "The main challenge is making the costs low enough, although they are continuously going down because research is going on all over the world. But if you can extract an expensive product first, then do the biofuel, you get a double whammy that helps the economics." Other advances being worked on include mechanizing seaweed production and using the base of offshore wind turbines as growing sites.


There are other potential barriers, including the fact that most common microbes do not ferment the special sugars in seaweed very well. But in 2012, a Californian firm produced genetically modified bacterium that can produce about 1kg (2.2 pounds) of ethanol from 3kg (6.6 pounds) of dried seaweed. Other research in the area involves harvesting bacteria from the droppings of the sheep on the Scottish island of North Ronaldsay, which thrive on an almost exclusive diet of seaweed.


The environmental impact of large-scale seaweed farming is also being investigated but appears as likely to be positive as negative. Some phytoplankton may be outcompeted for nutrients, but the swathes of kelp may provide hatcheries for fish and compounds seaweed gives off in summer could sink and trap climate-warming carbon on the seabed.


Professor Mike Cowling, chief scientist at the Crown Estate, which controls leases of the UK seafloor, is cautiously optimistic. "It is on the threshold of taking off," he says. Seaweed farms covering 15,000 sq km (5,791 sq miles) of UK water could be in operation by 2050. But he says the seasonality of the growing season is a challenge.


Professor Laurence Mee, director of Sams, believes large-scale seaweed farming will become a reality because global competition for resources is intensifying on an increasingly crowded planet. "We have the highest commodity prices in history and we are running out of places to grow things."



The Growing Global Seaweed Industry


The global seaweed farming industry already produces tens of millions of tonnes every year across 44 countries and is worth billions of dollars. But the prospect of a truly sustainable biofuel that can replace climate-warming fossil fuels without making world hunger worse is driving new investment across the globe.


Europe is spending millions of euros on nine pilot plants along its Atlantic coast, while the U.S. department of energy, Norwegian oil giant Statoil and the Chilean government have invested in seaweed-biofuel projects.


In Vietnam, shrimp farmers are now growing seaweed resulting in higher incomes, cleaner water and a locally produced biofuel. In Israel, researchers are testing integrated systems where fish, oysters and seaweed are grown together to maximize the use of nutrients, an echo of the Chinese practice of growing tilapia fish in rice paddies. In India, red seaweed is being investigated.


Seaweeds are macroalgae but their tiny, unicellular cousins — micro algae — are also seen as promising potential source of biofuel. The U.S. navy is spending heavily on the technology while ExxonMobil has sunk $600 million into its research.


By Damian Carrington, The Guardian

University Chemists Work to Desalt the Ocean for Drinking Water

[caption id="attachment_111" align="alignleft" width="300"] The Water Chip[/caption]

A prototype “water chip” developed by researchers at The University of Texas at Austin in collaboration with a startup company.


By creating a small electrical field that removes salts from seawater, chemists at The University of Texas at Austin and the University of Marburg in Germany have introduced a new method for the desalination of seawater that consumes less energy and is dramatically simpler than conventional techniques. The new method requires so little energy that it can run on a store-bought battery.


The process evades the problems confronting current desalination methods by eliminating the need for a membrane and by separating salt from water at a microscale.


The technique, called electrochemically mediated seawater desalination, was described last week  in the journal Angewandte Chemie. The research team was led by Richard Crooks of The University of Texas at Austin and Ulrich Tallarek of the University of Marburg. It’s patent-pending and is in commercial development by startup company Okeanos Technologies.


“The availability of water for drinking and crop irrigation is one of the most basic requirements for maintaining and improving human health,” said Crooks, the Robert A. Welch Chair in Chemistry in the College of Natural Sciences. “Seawater desalination is one way to address this need, but most current methods for desalinating water rely on expensive and easily contaminated membranes. The membrane-free method we’ve developed still needs to be refined and scaled up, but if we can succeed at that, then one day it might be possible to provide fresh water on a massive scale using a simple, even portable, system.”


This new method holds particular promise for the water-stressed areas in which about a third of the planet’s inhabitants live. Many of these regions have access to abundant seawater but not to the energy infrastructure or money necessary to desalt water using conventional technology. As a result, millions of deaths per year in these regions are attributed to water-related causes.


“People are dying because of a lack of freshwater,” said Tony Frudakis, founder and CEO of Okeanos Technologies. “And they’ll continue to do so until there is some kind of breakthrough, and that is what we are hoping our technology will represent.”


Desalination_saltwater_purewater_electrochemical


The left panel shows the salt (which is tagged with a fluorescent tracer) flowing upward after a voltage is applied by an electrode (the dark rectangle) jutting into the channel at just the point where it branches. In the right panel no voltage is being applied.


To achieve desalination, the researchers apply a small voltage (3.0 volts) to a plastic chip filled with seawater. The chip contains a microchannel with two branches. At the junction of the channel an embedded electrode neutralizes some of the chloride ions in seawater to create an “ion depletion zone” that increases the local electric field compared with the rest of the channel. This change in the electric field is sufficient to redirect salts into one branch, allowing desalinated water to pass through the other branch.


“The neutralization reaction occurring at the electrode is key to removing the salts in seawater,” said Kyle Knust, a graduate student in Crooks’ lab and first author on the paper.


Like a troll at the foot of the bridge, the ion depletion zone prevents salt from passing through, resulting in the production of freshwater.



Thus far Crooks and his colleagues have achieved 25 percent desalination. Although drinking water requires 99 percent desalination, they are confident that goal can be achieved.


“This was a proof of principle,” said Knust. “We’ve made comparable performance improvements while developing other applications based on the formation of an ion depletion zone. That suggests that 99 percent desalination is not beyond our reach.”


The other major challenge is to scale up the process. Right now the microchannels, about the size of a human hair, produce about 40 nanoliters of desalted water per minute. To make this technique practical for individual or communal use, a device would have to produce liters of water per day. The authors are confident that this can be achieved as well.


If these engineering challenges are surmounted, they foresee a future in which the technology is deployed at different scales to meet different needs.


“You could build a disaster relief array or a municipal-scale unit,” said Frudakis. “Okeanos has even contemplated building a small system that would look like a Coke machine and would operate in a standalone fashion to produce enough water for a small village.”


Source: University of  Texas


This article, University Chemists Work to Desalt the Ocean for Drinking Water, is syndicated from Green Building Elements and is posted here with permission.