Saturday, December 27, 2008

PASSIVE THIS!

Rolf Oeser for The New York Times

Berthold Kaufmann and his wife, Dorte Feierabend, with their daughters in their "passive house" in Darmstadt, Germany.



December 27, 2008
The Energy Challenge

No Furnaces but Heat Aplenty in ‘Passive Houses’

DARMSTADT, Germany — From the outside, there is nothing unusual about the stylish new gray and orange row houses in the Kranichstein District, with wreaths on the doors and Christmas lights twinkling through a freezing drizzle. But these houses are part of a revolution in building design: There are no drafts, no cold tile floors, no snuggling under blankets until the furnace kicks in. There is, in fact, no furnace.

In Berthold Kaufmann’s home, there is, to be fair, one radiator for emergency backup in the living room — but it is not in use. Even on the coldest nights in central Germany, Mr. Kaufmann’s new “passive house” and others of this design get all the heat and hot water they need from the amount of energy that would be needed to run a hair dryer.

“You don’t think about temperature — the house just adjusts,” said Mr. Kaufmann, watching his 2-year-old daughter, dressed in a T-shirt, tuck into her sausage in the spacious living room, whose glass doors open to a patio. His new home uses about one-twentieth the heating energy of his parents’ home of roughly the same size, he said.

Architects in many countries, in attempts to meet new energy efficiency standards like the Leadership in Environmental and Energy Design standard in the United States, are designing homes with better insulation and high-efficiency appliances, as well as tapping into alternative sources of power, like solar panels and wind turbines.

The concept of the passive house, pioneered in this city of 140,000 outside Frankfurt, approaches the challenge from a different angle. Using ultrathick insulation and complex doors and windows, the architect engineers a home encased in an airtight shell, so that barely any heat escapes and barely any cold seeps in. That means a passive house can be warmed not only by the sun, but also by the heat from appliances and even from occupants’ bodies.

And in Germany, passive houses cost only about 5 to 7 percent more to build than conventional houses.

Decades ago, attempts at creating sealed solar-heated homes failed, because of stagnant air and mold. But new passive houses use an ingenious central ventilation system. The warm air going out passes side by side with clean, cold air coming in, exchanging heat with 90 percent efficiency.

“The myth before was that to be warm you had to have heating. Our goal is to create a warm house without energy demand,” said Wolfgang Hasper, an engineer at the Passivhaus Institut in Darmstadt. “This is not about wearing thick pullovers, turning the thermostat down and putting up with drafts. It’s about being comfortable with less energy input, and we do this by recycling heating.”

There are now an estimated 15,000 passive houses around the world, the vast majority built in the past few years in German-speaking countries or Scandinavia.

The first passive home was built here in 1991 by Wolfgang Feist, a local physicist, but diffusion of the idea was slowed by language. The courses and literature were mostly in German, and even now the components are mass-produced only in this part of the world.

The industry is thriving in Germany, however — for example, schools in Frankfurt are built with the technique.

Moreover, its popularity is spreading. The European Commission is promoting passive-house building, and the European Parliament has proposed that new buildings meet passive-house standards by 2011.

The United States Army, long a presence in this part of Germany, is considering passive-house barracks.

“Awareness is skyrocketing; it’s hard for us to keep up with requests,” Mr. Hasper said.

Nabih Tahan, a California architect who worked in Austria for 11 years, is completing one of the first passive houses in the United States for his family in Berkeley. He heads a group of 70 Bay Area architects and engineers working to encourage wider acceptance of the standards. “This is a recipe for energy that makes sense to people,” Mr. Tahan said. “Why not reuse this heat you get for free?”

Ironically, however, when California inspectors were examining the Berkeley home to determine whether it met “green” building codes (it did), he could not get credit for the heat exchanger, a device that is still uncommon in the United States. “When you think about passive-house standards, you start looking at buildings in a different way,” he said.

Buildings that are certified hermetically sealed may sound suffocating. (To meet the standard, a building must pass a “blow test” showing that it loses minimal air under pressure.) In fact, passive houses have plenty of windows — though far more face south than north — and all can be opened.

Inside, a passive home does have a slightly different gestalt from conventional houses, just as an electric car drives differently from its gas-using cousin. There is a kind of spaceship-like uniformity of air and temperature. The air from outside all goes through HEPA filters before entering the rooms. The cement floor of the basement isn’t cold. The walls and the air are basically the same temperature.

Look closer and there are technical differences: When the windows are swung open, you see their layers of glass and gas, as well as the elaborate seals around the edges. A small, grated duct near the ceiling in the living room brings in clean air. In the basement there is no furnace, but instead what looks like a giant Styrofoam cooler, containing the heat exchanger.

Passive houses need no human tinkering, but most architects put in a switch with three settings, which can be turned down for vacations, or up to circulate air for a party (though you can also just open the windows). “We’ve found it’s very important to people that they feel they can influence the system,” Mr. Hasper said.

The houses may be too radical for those who treasure an experience like drinking hot chocolate in a cold kitchen. But not for others. “I grew up in a great old house that was always 10 degrees too cold, so I knew I wanted to make something different,” said Georg W. Zielke, who built his first passive house here, for his family, in 2003 and now designs no other kinds of buildings.

In Germany the added construction costs of passive houses are modest and, because of their growing popularity and an ever larger array of attractive off-the-shelf components, are shrinking.

But the sophisticated windows and heat-exchange ventilation systems needed to make passive houses work properly are not readily available in the United States. So the construction of passive houses in the United States, at least initially, is likely to entail a higher price differential.

Moreover, the kinds of home construction popular in the United States are more difficult to adapt to the standard: residential buildings tend not to have built-in ventilation systems of any kind, and sliding windows are hard to seal.

Dr. Feist’s original passive house — a boxy white building with four apartments — looks like the science project that it was intended to be. But new passive houses come in many shapes and styles. The Passivhaus Institut, which he founded a decade ago, continues to conduct research, teaches architects, and tests homes to make sure they meet standards. It now has affiliates in Britain and the United States.

Still, there are challenges to broader adoption even in Europe.

Because a successful passive house requires the interplay of the building, the sun and the climate, architects need to be careful about site selection. Passive-house heating might not work in a shady valley in Switzerland, or on an urban street with no south-facing wall. Researchers are looking into whether the concept will work in warmer climates — where a heat exchanger could be used in reverse, to keep cool air in and warm air out.

And those who want passive-house mansions may be disappointed. Compact shapes are simpler to seal, while sprawling homes are difficult to insulate and heat.

Most passive houses allow about 500 square feet per person, a comfortable though not expansive living space. Mr. Hasper said people who wanted thousands of square feet per person should look for another design.

“Anyone who feels they need that much space to live,” he said, “well, that’s a different discussion.”

HARVEST the FUNDING!

Harvesting the Ocean: A New Approach to Wave Energy Conversion


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By Tyler Seed

While much attention on renewables in recent years has focussed on solar and wind technologies, awareness has been growing around the enormous energy generating potential of the Earth's oceans. A 2005 report from the Electric Power Research Institute stated that wave power properly and effectively harnessed, would likely have minimal environmental impact, and be much less visible on the landscape, than competing technologies. At the same time, waves possess the advantage of being more predictable than either wind or solar, which in principle makes ocean power a more reliable source of energy.

The rapidly expanding field of wave power is rife with innovation and an extraordinarily diverse range of approaches. Several technologies have been, and are being, developed and tested in coastal regions around the world. So far however, technical challenges involved in engineering a sufficiently inexpensive, efficient and reliable method of extracting this energy have proven difficult enough that as yet there is no agreed upon 'best way' to do it.

Among the significant difficulties facing engineers of commercially viable wave power have been durability in storms, and low generating capacity factors resulting from the difficulties of extracting a steady load from constantly shifting wave motions. Irregular and alternating wave motions lead to large variations of the power produced, severely limiting the power output of many Wave Energy Converters (WEC).

Mikael Sidenmark, founder of Ocean Harvesting Technologies, and the inventor of the Ocean Harvester (pictured above), has developed a method of generating electricity from waves that offers compelling and cost-efficient solutions to these problems.

As Sidenmark explains:

A buoy follows the wave motions at the surface. When the wave rises, a drum inside the buoy is rotated by a mooring line wound around it, converting vertical motion into a rotation. This is a very efficient way of extracting energy from waves that is independent of the wave sizes and has been used in earlier technologies.
What is unique with the Ocean Harvester is the way a counterweight is used to achieve a leveled and controlled load on the generator. As a result, excess energy from larger waves can be accumulated and used to compensate for shortage from smaller waves. In combination with the flexible mooring, this also composes a simple and efficient storm protection system.
Together, these characteristics result in an exceptionally high capacity factor.

The system should produce a consistent level of power throughout the wave motion, over changing wave sizes, and even in storms. Besides generating efficiently and evenly, the simplicity of its design will allow the Ocean Harvester to be easily protected in rough conditions, and make its manufacture impressively cost-efficient.

Ocean Harvesting Technologies is currently planning a two-year scale model testing period, slated to begin in March 2009 in the coastal Blekinge region of Sweden, on the Baltic Sea. The company expects the Ocean Harvester to enter the commercial market in 2013.

The AquaBuOY
Image source: Finavera
AquaBuOY%202.0%20Deployedsm.jpg

Institutions across Sweden are researching further possibilities of wave energy. Among those with notable programs are Uppsala University, Blekinge Institute of Technology (BTH) (where wave power research initiated with the Ocean Harvester in February 2008), and at Chalmers University of Technology, where researchers were involved in pioneering the AquaBuoy, a concept now being tested on a commercial scale.

Read more about innovations in wave energy in the Worldchanging archives:

Wave Energy (2005)

The Wave Hub (2006)

Biomimetic Ocean Power (2006)

Graphic Series: Earthly Ideas, Week 10: Ocean Power (2008)

Tyler Seed is completing a Masters' degree in Sustainability at Blekinge Institute of Technology in Karlskrona, Sweden.

Top image source: Ocean Harvesting Technologies

GIVE STUDENTS ALTERNATIVE ENERGY EDGE by DESIGN!

photo

St. Clair County students work on a solar-hydrogen fuel cell car. From left: Jason Hoogerhyde, John Freeman, Cody Benedict and Evan Miller. Rather than learning TV repair, students are getting trained in alternative energy.



Schools to invest in alternative energy, give students edge


BY PEGGY WALSH-SARNECKI • FREE PRESS EDUCATION WRITER • December 27, 2008

St. Clair County RESA Career Technical Center students will be calculating actual energy outputs from school-owned windmills, solar panels and a hydroelectric plant.

In Warren Consolidated Schools, students will find lessons from a district-owned wind power station integrated into their classes.

Both programs are the result of a trend by a growing number of schools to meld alternative energy into their lesson plans.

"I think kids are interested in this type of thing. And a lot of us see it as the future, to lessen our reliance on nonrenewable sources. And there are going to be jobs there," said Dan DeGrow, superintendent of St. Clair County Regional Educational Service Agency.

St. Clair RESA plans to invest up to $450,000, depending on how much grant money it receives, in three wind turbines -- each about 100 feet tall -- solar panels next to the turbines and a mini-hydro plant. It will be working with local governments on getting site permits.

Gone are the days of students taking high school electronics to become TV repairpeople. The jobs are moving to other categories, such as alternative energy technicians.

"What we decided was we wanted a way to teach traditional electronics but within a more current context," said Pat Yanik, director of career and technical education for RESA.

Beginning next fall, students will monitor the electricity generated by their three alternative energy sources, learn how to convert the power to actual energy and make decisions on how to distribute their self-generated electricity to RESA facilities. The actual energy generated will be small, but the lessons will be huge.

"With the energy crisis and the government push for it at the federal level and the state level, alternative energy seemed to be a pretty going item that students and parents can understand," said electronics teacher Zack Diatchun.

The Warren Consolidated Schools Board of Education has approved up to $9,000 for a wind spire -- a smaller (30-foot high) version of the windmill-style turbine -- to establish a district-wide alternative energy institute, said Superintendent Robert Livernois. Like St. Clair RESA, Warren Consolidated also hopes much of the cost will be offset by grants.

"The sky's the limit for us. That's what's so exciting about it from a K-12 perspective, you can talk to a second-grader and a 12th-grader," Livernois said. "Our belief is you've got to start somewhere, so as we launch this institute, it's really designed to begin cultivating awareness."

Students at St. Clair RESA have been told their program will open in the fall.

"It doesn't seem like something that they put into a high school-type course, but it's a really good idea they're putting it in," said Cody Benedict, 17, a senior from Yale High School who will be going to school for another year and taking the energy program. "It's going to be a larger range of stuff to learn for jobs."

There's no timetable for the Warren Consolidated program yet, but Livernois expects there will be varying components of alternative energy that will be applicable to most grades.

"We're going to use it in a study of just how much energy you can produce in the community," said Mark Supal, a technology teacher at the Macomb Mathematics Science and Technology Center, where the wind spire will be located.

Even students who won't be around for the new programs recognize the possibilities.

"I got accepted to Michigan Tech ... and I'm probably going to take electrical engineering, but I'm probably going to branch into some kind of alternative energy," said Dalton Pelc, 17, a senior from Kimball Township attending Port Huron High School. "That's what we need, and that's because that's what the economy needs."

Contact PEGGY WALSH-SARNECKI at 586-826-7262 or mmwalsh@freepress.com.

Wednesday, December 10, 2008

Governor Granholm Supports "Green Energy Jobs"

Granholm to talk energy with Obama team

Tuesday, December 9, 2008 3:54 PM EST

LANSING (AP) — Michigan Gov. Jennifer Granholm is traveling to Washington to talk about energy issues with members of President-elect Barack Obama’s transition team.Granholm is being mentioned as a potential pick to be the next energy secretary.

But her spokeswoman says the Democratic governor isn’t going to Washington Wednesday for a job interview.

Instead, Granholm will talk up Michigan as a place to create new energy jobs.

Obama has pledged to use part of his proposed economic stimulus package to develop alternative energies and “green” technologies.

The governor will be joined by her top energy advisers.Granholm also plans to meet with Michigan’s congressional delegation to discuss government loans for the domestic auto industry and a stimulus package.