Month: March 2017

Eco Nuts In Devon

Eco Nuts In Devon

via NOT A LOT OF PEOPLE KNOW THAT
http://ift.tt/16C5B6P

By Paul Homewood

 

h/t Philip Bratby/Dave Bodecott

 

 

FEBRUARY 2010

 

image

One of the first zero carbon primary schools in the country has been built in south Devon.

The new £7 million Dartington Church of England Primary and Nursery School opened its doors to pupils on 25 February 2010.

There are four separate clusters of buildings which are constructed from pre-fabricated sustainable timber panels.

They are insulated with natural wood fibre and clad in locally grown sweet chestnut. The under floor heating is being provided by air source heat pumps with ventilation via a heat recovery system.

The electricity will come from photovoltaic panels mounted on the roof and the water will be heated by solar power.

The school is planning to sell some of the electricity it generates to the National Grid.

Solar panels

Solar panels are one of the eco features

Rain water will be collected for re-use within the school and a sustainable drainage system is being incorporated within the extensive landscaping which includes reed beds and ponds to filter grey water.

The new school replaces the dilapidated old primary and has been built on a site nearby.

Dartington headteacher Jill Mahon said: "It is a stunning design and is truly a unique building.

"I believe it will be a flagship school which will be extremely environmentally-friendly.

"The eco building fits in very well with our school culture and it will really be an amazing learning tool for the children."

BBC Spotlight’s Adrian Campbell was shown some of the features of the new building by one of the pupils, Emily – watch his short film at the top of the page.

http://ift.tt/2n0svkv

 

 

MARCH 2017

 

image

A Devon council has agreed to an £8 million out-of-court settlement over a ‘zero carbon’ primary school which had to close just three years after it opened because of a leaky roof.

The former Dartington Primary school buildings in Totnes were hailed as ‘visionary’ but they started letting in water shortly after building work finished in 2010.

It shut three years later and more than 300 pupils had to take their lessons in a collection of temporary buildings.

The school was eventually demolished at the the end of last year.

Devon County Council has now said it has reached a settlement with the architects and builders involved, reports the BBC.

The council launched a claim against firms involved in the design and building in 2014.

The former buildings had solar panels to power classrooms and rainwater recycling.
But according to a report commissioned by the council, the building started letting in water shortly after it was finished.
The report blamed the design and highlighted "complexities within the rainwater harvesting system".
Problems centred around a groundbreaking sustainable roof which was clad in thin strips of locally-coppiced sweet chestnut.
The wood was intended to provide a "natural and breathable envelope" without needing any sort of artificial membrane or waterproofing.

But parents said the sweet chestnut cladding soon began to buckle and warp, leaving gaping holes for rainwater to trickle in.
The water was supposed to flow into giant cisterns which could be used to flush the toilets but instead it caused damp patches and mouldy walls.
The school in Totnes, Devon was praised at the time for its environmentally friendly credentials when it opened as one of the UK’s first zero carbon schools.
But it was later declared off limits with lessons moved to temporary marquees and huts.
Legal action is on-going after Devon County Council launched a lawsuit against architects White Design and Interserve to cover repairs and bills for temporary classrooms.

Devon County Council ordered a full investigation which confirmed the leaks were "likely to be the result of the scheme design".
White Design has previously denied any liability for the faults.
Building of a new school started in January and the children are expected to move in at the beginning of 2018.

http://ift.tt/2n0vfOK

 

 

Meanwhile, all the soppy headmistress, Jill Mahon, can say is that 90 per cent of the material would be recycled locally.

“How can you be sad when it is being reused. We are seeing a whole process which couldn’t be much richer for the children."
I would have thought the kids might have had a much richer experience if their education for the last 7 years had not been ruined by a leaky roof, followed by three years in temporary marquees and huts.

Still, at least it was zero carbon!!

via NOT A LOT OF PEOPLE KNOW THAT http://ift.tt/16C5B6P

March 15, 2017 at 05:54AM

Enerconics II

Enerconics II

via Scottish Sceptic
http://ift.tt/1wv5Sjx

It’s a while since I originally wrote my first article “Enerconics: The Relationship between Energy and GDP” in which I presented evidence showing that GDP was closely related to energy usage both in terms of differences between global economies and … Continue reading

via Scottish Sceptic http://ift.tt/1wv5Sjx

March 15, 2017 at 05:52AM

Breaking: Climate Science’s Fatal Bungle of Planck Radiation Law

Breaking: Climate Science’s Fatal Bungle of Planck Radiation Law

via Current News – Principia Scientific International
http://ift.tt/1kjWLPW

Game-changing new study reveals official government climate science calculations were botched from outset. Decades of "useless" computer model data exposed as "non-physical and misleading."
Study author is Aussie climate researcher and engineer, Ross McLeod. He writes: "This analysis mathematically disproves the assertion that you can algebraically sum up different radiation fluxes and calculate…

Click title above to read the full article

via Current News – Principia Scientific International http://ift.tt/1kjWLPW

March 15, 2017 at 05:17AM

Study: why CO2 levels are lower during global cold periods

Study: why CO2 levels are lower during global cold periods

via Watts Up With That?
http://ift.tt/1Viafi3

From CALIFORNIA INSTITUTE OF TECHNOLOGY

Deep-sea corals reveal why atmospheric carbon was reduced during colder time periods

We know a lot about how carbon dioxide (CO2) levels can drive climate change, but how about the way that climate change can cause fluctuations in CO2 levels? New research from an international team of scientists reveals one of the mechanisms by which a colder climate was accompanied by depleted atmospheric CO2 during past ice ages.

The overall goal of the work is to better understand how and why the earth goes through periodic climate change, which could shed light on how man-made factors could affect the global climate.

Earth’s average temperature has naturally fluctuated by about 4 to 5 degrees Celsius over the course of the past million years as the planet has cycled in and out of glacial periods. During that time, the earth’s atmospheric CO2 levels have fluctuated between roughly 180 and 280 parts per million (ppm) every 100,000 years or so. (In recent years, man-made carbon emissions have boosted that concentration up to over 400 ppm.)

About 10 years ago, researchers noticed a close correspondence between the fluctuations in CO2 levels and in temperature over the last million years. When the earth is at its coldest, the amount of CO2 in the atmosphere is also at its lowest. During the most recent ice age, which ended about 11,000 years ago, global temperatures were 5 degrees Celsius lower than they are today, and atmospheric CO2 concentrations were at 180 ppm.

Using a library of more than 10,000 deep-sea corals collected by Caltech’s Jess Adkins, an international team of scientists has shown that periods of colder climates are associated with higher phytoplankton efficiency and a reduction in nutrients in the surface of the Southern Ocean (the ocean surrounding the Antarctic), which is related to an increase in carbon sequestration in the deep ocean. A paper about their research appears the week of March 13 in the online edition of the Proceedings of the National Academy of Sciences.

“It is critical to understand why atmospheric CO2 concentration was lower during the ice ages. This will help us understand how the ocean will respond to ongoing anthropogenic CO2 emissions,” says Xingchen (Tony) Wang, lead author of the study. Wang was a graduate student at Princeton while conducting the research in the lab of Daniel Sigman, Dusenbury Professor of Geological and Geophysical Sciences. He is now a Simons Foundation Postdoctoral Fellow on the Origins of Life at Caltech.

There is 60 times more carbon in the ocean than in the atmosphere–partly because the ocean is so big. The mass of the world’s oceans is roughly 270 times greater than that of the atmosphere. As such, the ocean is the greatest regulator of carbon in the atmosphere, acting as both a sink and a source for atmospheric CO2.

Biological processes are the main driver of CO2 absorption from the atmosphere to the ocean. Just like photosynthesizing trees and plants on land, plankton at the surface of the sea turn CO2 into sugars that are eventually consumed by other creatures. As the sea creatures who consume those sugars–and the carbon they contain–die, they sink to the deep ocean, where the carbon is locked away from the atmosphere for a long time. This process is called the “biological pump.”

A healthy population of phytoplankton helps lock away carbon from the atmosphere. In order to thrive, phytoplankton need nutrients–notably, nitrogen, phosphorus, and iron. In most parts of the modern ocean, phytoplankton deplete all of the available nutrients in the surface ocean, and the biological pump operates at maximum efficiency.

However, in the modern Southern Ocean, there is a limited amount of iron–which means that there are not enough phytoplankton to fully consume the nitrogen and phosphorus in the surface waters. When there is less living biomass, there is also less that can die and sink to the bottom–which results in a decrease in carbon sequestration. The biological pump is not currently operating as efficiently as it theoretically could.

To track the efficiency of the biological pump over the span of the past 40,000 years, Adkins and his colleagues collected more than 10,000 fossils of the coral Desmophyllum dianthus.

Why coral? Two reasons: first, as it grows, coral accretes a skeleton around itself, precipitating calcium carbonate (CaCO3) and other trace elements (including nitrogen) out of the water around it. That process creates a rocky record of the chemistry of the ocean. Second, coral can be precisely dated using a combination of radiocarbon and uranium dating.

“Finding a few centimeter-tall fossil corals 2,000 meters deep in the ocean is no trivial task,” says Adkins, Smits Family Professor of Geochemistry and Global Environmental Science at Caltech.

Adkins and his colleagues collected coral from the relatively narrow (500-mile) gap known as the Drake Passage between South America and Antarctica (among other places). Because the Southern Ocean flows around Antarctica, all of its waters funnel through that gap–making the samples Adkins collected a robust record of the water throughout the Southern Ocean.

Wang analyzed the ratios of two isotopes of nitrogen atoms in these corals – nitrogen-14 (14N, the most common variety of the atom, with seven protons and seven neutrons in its nucleus) and nitrogen-15 (15N, which has an extra neutron). When phytoplankton consume nitrogen, they prefer 14N to 15N. As a result, there is a correlation between the ratio of nitrogen isotopes in sinking organic matter (which the corals then eat as it falls to the seafloor) and how much nitrogen is being consumed in the surface ocean–and, by extension, the efficiency of the biological pump.

A higher amount of 15N in the fossils indicates that the biological pump was operating more efficiently at that time. An analogy would be monitoring what a person eats in their home. If they are eating more of their less-liked foods, then one could assume that the amount of food in their pantry is running low.

Indeed, Wang found that higher amounts of 15N were present in fossils corresponding to the last ice age, indicating that the biological pump was operating more efficiently during that time. As such, the evidence suggests that colder climates allow more biomass to grow in the surface Southern Ocean–likely because colder climates experience stronger winds, which can blow more iron into the Southern Ocean from the continents. That biomass consumes carbon, then dies and sinks, locking it away from the atmosphere.

Adkins and his colleagues plan to continue probing the coral library for further details about the cycles of ocean chemistry changes over the past several hundred thousand years.

###

The study is titled “Deep-sea coral evidence for lower Southern Ocean surface nitrate concentrations during the last ice age.” Coauthors include scientists from Caltech, Princeton University, Pomona College, the Max Planck Institute for Chemistry in Germany, University of Bristol, and ETH Zurich in Switzerland. This research was funded by the National Science Foundation, Princeton University, the European Research Council, and the Natural Environment Research Council.

via Watts Up With That? http://ift.tt/1Viafi3

March 15, 2017 at 05:02AM