Green Technology & Alternative Energy

What is Green Technology? 

The term "Green Technology" has been adopted over the last 5 years to identify a group of industries and industrial applications which exploit the commercial value of technologies that benefit the environment; particularly as it impacts the human condition. This basket of effected industries is quite diverse and includes businesses as far a field as energy and agriculture. Some predict every consumer product will someday be affected. Unlike the technological waves in recent decades, Green Technology is almost entirely materials science based. Ventures such as Google and Facebook do not primarily rely on advances in material science for their success. But solar energy panels and pollution-free recyclable automobiles do.

Much of the coming green revolution also relies on the availability of "Alternative Energy" sources to both eliminate the emission of green house gases that cause global warming and to make the limited resources we have on the planet perpetually "sustainable". Alternative Energy is defined as both energy sources other than mined hydrocarbons (e.g. solar energy in replacement of oil and natural gas) as well as alternative methods to process mined hydrocarbons that are more efficient than current means (e.g. use of fuel cells in replacement of combustion engines).

What are the raw materials of Green Technology?

As stated, nearly all Green Technologies rely on the use of new advanced materials. These new materials vary from metals commonly used today in many ways. First, elements on the periodic table such as copper, tin, iron and carbon are stepping aside in favor of less common metals, such as zirconium, yttrium, tellurium and the 14 elements that make of the group of metals known as the "rare earths". For example, batteries that were once made of lead are now made of lithium.

Second, the purity of advanced materials can often be measured in atoms with ultra high purities up to 99.9999%.

Next, the scale and size of the raw chemical and metallic powders may be as small as the nanoscale. "Nano" equals a billionth and therefore a nanometer is one-billionth of a meter. To appreciate the size, a human red blood cell is over 2,000 nanometers long, virtually outside the nanoscale range. For a given amount of material, as particle size decreases, surface area increases. Since the surface of any material tends to be where it reacts with other materials, the more surface area, the greater effect using less material. It is not uncommon for one gram of a nanoscale material to have the surface area of a 60' x 30' floor!

In addition to the use of new metallic elements is the use of these less common metals with common metals to form new super alloys with unique properties, such as scandium-aluminum alloy which can combine lightness, extreme strength and high temperature and corrosion tolerance in a single material. Another example would be newly developed carbides of various metals to create super hard and corrosive resistant materials with interesting properties. Similarly, the use of glass and ceramics in functional components of electronics and energy efficient systems is giving way to the use of crystal structures, semiconductors and super conducting materials. 

How are Green Technologies used today?

The vast number of "Green Technologies" fall into one of two broad categories. These are: 
those intended to deal with global warming by either reducing greenhouse gas emissions or in the alternative its potential harmful effects on the planet, and
those technologies associated with establishing economic "sustainable growth" which includes recycling, resource reduction and many aspects of the biosciences.

Each of these two categories has several major associated industries addressing some aspect of achieving their goals. And of course many of the important industrial and technological revolutions taking place today touch on both. For example, fuel cells both decrease the green house gases that cause global warming by potentially eliminating air pollution from automobiles and they also make our energy sources more "sustainable" by reducing the amount of hydrocarbon-based fuel needed to generate the same amount of energy as compared to current combustion engines, i.e. far greater miles per gallon.
 

GLOBAL WARMING

There seems to be little debate that human activity has increased the level of air pollution and CO2 in the earth's atmosphere and that this will increase global temperatures. The ultimate effect to humanity of this rise in the planet's temperature is a matter of great debate but the fact that this will result in significant changes to how we live and work is not. Today there are essentially two approaches to global warming. The first is best known from the work of former Vice President and Nobel Peace Prize Winner Al Gore as presented in his film "An Inconvenient Truth" holds that global warming should be addressed at its root cause by all of humanity working in consort through technological/industrial innovation and international governmental policy to reduce the quantity of air pollution and CO2 emissions being generated. The second approach is best expressed in the work of the environmentalist Bjorn Lomborg as presented in his writings and books, such as "Cool It" which holds that a "rational as opposed to fashionable" approach to global warming is to recognize that the least expensive method of dealing with its effects is to treat them as they occur sometimes at the very local level. This is based on the premise that when the actual effects are examined in a sober and scientific way, policymakers will discover addressing them piecemeal is significantly less costly in capital than the effort that would be necessary to reduce green house gas emissions to a point where the Earth's temperature actually began to fall again.

Those technologies that are intended to deal with the root causes of global warming as proposed by Al Gore and the larger environmental movement work by reducing the emission of the green house gases that are changing the earth's atmospheric temperature. Green house gases are either of the type we commonly think of as "Air Pollution", such NOX (Nitrous Oxide) and SOX (sulfur dioxide) and the non-pollutant CO2 (carbon dioxide) which we exhale. 

Fuel Cells

An example of materials science playing a part in eliminating production of green house gas causing air pollutants is in the use of solid oxide fuel cells (SOFCs). SOFCs are electrochemical power plants that some believe will power automobiles in the future because they produce no air pollutants in the process. However, because they still rely on hydrocarbons as their energy source, they do not eliminate generation of CO2 emissions. This would require the creation of a hydrogen infrastructure which is often discussed but is not being seriously proposed at this time due to both safety concerns and the cost to produce, store and transfer hydrogen.

Technologically, SOFCs are all materials science. There are no moving parts in the conversion of hydrogen to electricity. They are comprised of three layers. An electrically conductive cathode made of one of several perofskite materials such as Lanthanum Strontium Manganite (LSM), Lanthanum Strontium Ferrite (LSF), Lanthanum Strontium Cobaltite Ferrite (LSCF), Lanthanum Strontium Chromite (LSC), and Lanthanum Strontium Gallate Magnesite (LSGM), an ionically conductive electrolyte, such as Yttria Stabilized Zirconia or YSZ (Zirconium Oxide stabilized with Yttrium Oxide), Gadolinia doped Ceria or GDC (Cerium Oxide stabilized with Gadolinium Oxide, Yttria doped Ceria or YDC (Cerium Oxide stabilized with Yttrium Oxide), and Scandia Stabilized Zirconia or SCZ (Scandium Oxide stabilized with Zirconium Oxide and an electrically conductive anode which usually is Nickel Cermet compositions of nickel oxide and yttria stabilized zirconia. As hydrogen is pumped under pressure through the electrically conductive anode layer and oxygen is made available through the electrically conductive cathode layer, a circuit is completed through the ionically conductive electrolyte completing the circuit. As long as hydrogen is pumped into the system, electricity will be generated.

Solar Energy

An example of a technology intended to reduce both air pollution and CO2 emissions is the use of photovoltaic cells to generate electricity (actually electrons) from photons emitted by the sun. Given the enormous amount of capital today being invested in solar energy technologies globally from Silicon Valley to the Nation of Singapore, solar energy will unquestionably play a major role in reducing green house gas emissions by supplanting hydrocarbons such as oil, coal and gas as our energy source for many applications. From its start solar energy has been essentially a field of materials science. In the 1970s the first silicon-based photovoltaic (PV) cells were produced. These basic cells were created by doping silicon to form two oppositely charged layers.

All silicon-based photovoltaic solar energy collectors however suffer from their ability to absorb energy from a relatively narrow range of the sun's light wave emission. More recently advanced materials have been developed that can either expand this band gap or create multiple band gaps in order to absorb a greater portion of the solar energy spectrum. This has lead to the development of PV cells based on Copper Indium Selenide (CuInSe2) or "CIS" Absorption Layers which can capture energy from portions of the light's spectrum not collected by silicon-based PV cells. Doping CIS with Gallium increases the band gap even further and as such most PV cells are now based on Copper Indium Gallium Selenide (CuInGaSe2) and are referred to as "CIGS".

Other promising designs include cells based on III-IV Nitride materials and research on Zinc Manganese Telluride, Cadmium Telluride (CdTe) and Gallium Selenide P-Type layers. The band gap for III-IV Nitride materials, such as Gallium Indium Nitride, covers nearly the entire energy spectrum of the sun because of multiple band gaps in the semiconductor materials. Similarly, Zinc Manganese Telluride crystals have three band gaps which can absorb greater than 50% of the solar energy spectrum. Further important research involves nanotechnology approaches using nanoparticles of the above materials. 

Wind Energy

Converting wind energy into electricity using various blade and turbine systems has been utilized since the mid-1970s when tax incentives were written in many states to encourage public utilities to purchase the power generated. Many of these earlier systems failed to deliver efficient energy and were only financially viable as tax shelters. More recently advanced materials particularly advanced ceramic, such as yttria stabilized zirconia (YSZ) and composites, have played a part in the development of light, less costly and more efficient wind turbines. Additionally, the decades of experience with wind as an energy source has allowed for the design of better overall wind generator "farms" placed in strategically determined locations, such as the 4,000 megawatt farm proposed by T. Boone Pickens in Texas.

The Nuclear Power Dilemma

One source of energy that is entirely free of green house gas emissions and that could have today already reached wide use is nuclear fission of enriched radioactive isotopic materials to produce electricity. Nuclear generators are the single greatest source of energy that in no way impacts global warming. They fully achieve the goal of environmentalists as a massive source of energy capable of sustaining our present standard of living and reducing planetary temperatures. However, the second goal of the "Green Revolution" is sustainable growth (discussed below) which requires that human activity not produce waste products that cannot be perpetually reused or recycled to something useful. All nuclear fission systems generate some form of radioactive waste which must be disposed of. Given the lengthy half life of the waste materials, "disposal" actually means perpetual storage. However, public policy may come to view storage of nuclear waste a better alternative than allowing for the continual rise in global temperatures.

SUSTAINABLE GROWTH

In the 1960s American's first became aware that their massive increase in consumption after World War II was causing an equally massive generation of waste products for which there was little technology or public policy to address. This spawned the original environmental movement with it's emphasize on reducing ground, air and water pollution. As policies and technologies were created to address pollution, it became clear that the real long term goal must be to ultimately establish a fully sustainable planet; one that could perpetually sustain itself in its present form through better management of its resources. This would require efforts on several technological fronts. First, products needed to be designed and built with an eye towards (1) eliminating wasteful materials use and (2) the reuse and recycling of the materials that are used once the product has exhausted its useful life. Second, reliance on difficult to replenish resources from timber to oil needed to be drastically reduced through the development of new recyclable advanced materials. 

Thin Film, Nanomaterials and Organo-Metallics

When Thomas Edison first did his experiments with electricity and the electronic equipment it could power, he wasn't concerned with how much copper was required to carry a circuit or the amount of power being used. As electronics became smaller and more complicated the company he built, General Electric, became very concerned with reducing the scale and volume of metals. Thinner conductive and semi-conductive layers and wires were necessary. Until the 1970s this was accomplished using electroplating of metallic solutions, such as metal chlorides combined with etching technologies.

But the movement towards "Smaller, Cheaper and Faster" products and equipment didn't end there. Advanced technology has introduced three new areas of materials science that will have a major impact on the further reduction of resources necessary to maintain our standard of living. These are nanomaterials, organo-metallics and the application of thin film coatings in replacement of electroplating using sputtering targets and high purity foils.

Thin Film

The fabrication of functional layers of materials at the naoscale can now be accomplished by converting the material into a plasma-like chemical vapor which deposits the material on a substrate. Modern hand-held electronics rely on thin film deposition to achieve their small size.

Nanotechnology

Nanotechnology is playing an increasing role in solving the world energy crisis. Platinum nanoparticles are ideal candidates as a novel technology for low platinum automotive catalysts and for single-nanotechnology research. Lanthanum Nanoparticles, Cerium nanoparticles, Strontium Carbonate Nanoparticles, Manganese Nanoparticles, Manganese Oxide Nanopowder, Nickel Oxide Nanopowder and several other nanoparticles are finding application in the development of small cost-effective Solid Oxide Fuel Cells (SOFC). And Platinum Nanoparticles are being used to develop small.

Proton Exchange Membrane Fuel Cells (PEM)

Lithium Nanoparticles, Lithium Titanate Nanoparticles and tantalum nanoparticles will be found in next generation lithium ion batteries. Ultra high purity Silicon Nanoparticles are being used in new forms of solar energy cells. Thin film deposition of Silicon Nanoparticle quantum dots on the polycrystalline silicon substrate of a photovoltaic (solar) cell increases voltage output as much as 60% by fluorescing the incoming light prior to capture.


Organo-Metallics

A third technological area of materials science that will advance the goals of smaller equipment and reduced reliance on resources is the development of functionalized metallic particles and nanoparticles to introduce the capabilities of a metal to a polymer or bioscience application. Organo-metallics are metal compounds with an organic anion or ligand that allows the metal to dissolve in organic environments such as polymers or attach themselves to living systems such as cellular structures. This makes them also valuable in new medical treatments and water treatment applications.


Alternative Energy Sources

As described above with respect to global warming, even if all material resources on the planet were used in a fully recyclable manner, alternative sources of energy are also necessary since those currently powering civilization are being exhausted. Thus, the most pressing concern of the green revolution is establishing a global energy infrastructure to replace hydrocarbon fuels before the best of those sources are exhausted. Note the less valuable sources such as coal may be plentiful but in their case the challenge is the development of advanced technologies to address elimination or sequestration of the massive volume of CO2 coal generates in its production and use.


Solid State Lighting

By narrowly controlling the particles distribution (PSD) of quantum dot nanocrystals to within 10 nanometers, discreet colors with long term photostability can be emitted with wave lengths representing the entire visible spectra. Prior to quantum dots, light emitting semiconductors, such as light emitting diodes (LED), could not emit white light and therefore could not light a room. With the development of quantum dots with particle size distributions less than 500 nanometers (nm), LED emissions in the blue range can be achieved which may allow for the commercial use of solid state semiconductors to generate luminescent light. This ability has also found application in fluorescent biomarkers and dyes for live cell imaging and antibody conjugates.
 

What are the safety and public policy issues associated with Green Technology?
 
Government policymakers have begun to take several initiatives towards advancing the goals of the green revolution. As to Global Warming, the Kyoto Protocol first made a significant effort to establish a global framework for reducing green house emissions. As to a sustainable planet, most nations now have established reuse and recycle programs. Europe is in the process of possibly the most far reaching effort to manage the materials that go into our daily lives through the REACH program of chemical registration. Once enacted, REACH will allow government to better track whether products are being manufactured from materials that can be recycled or reused. As Green Technology becomes increasingly integral to the economy, American Elements contributes throughout to our customers' efforts providing research support, toll production of new materials with predetermined specifications to allow for optimization studies as well as of course timely and certified bulk volume deliveries globally of advanced materials in support of these programs.

[source : www.scientificamerican.com]

Zero Watt PC


Sun, March 01, 2009 — IDG News Service — Fujitsu Siemens Computers plans to launch in the middle of this year an enterprise desktop computer that consumes no energy when switched off, it said Sunday at the Cebit trade fair in Hanover, Germany.

Computers, like most electronics, consume a very small amount of energy even when switched off because of losses in the transformer or sensors that remain active for functions such as remote power-on. For a PC the consumption when powered off is typically between 1 watt and 4 watts, said Fujitsu Siemens. Right now, the best that energy-conscious users can do is keep electronics on a power strip that they must remember to turn off.

The Esprimo 7935 packs a system that achieves zero consumption without pulling the plug, said Lothar Lechtenberg, a spokesman for the company.

Businesses with a lot of computers stand to save a significant amount of money each year by ensuring their PCs aren't consuming any power overnight but there are disadvantages. Many companies administer software updates overnight and having the machines unplugged means that's not possible.

Fujitsu Siemens says it has solved this problem by allowing the machines to be awake and consuming a very small amount of power during a predefined time-slot during which updates can take place. Once the time slot passes the machine returns to zero-watt mode until it is switched on by its user.

Other green credentials of the new computer include a power supply that is 89 percent efficient, which means less electricity is wasted through heat, and motherboards with no halogen or lead. The PC conforms to the U.S. Environmental Protection Agency's (EPA) Energy Star 5.0 standard, which will come into use in the middle of this year, and the German Blue Angel mark.

The world's first such PC innovation, the "0-Watt" function will be available in the ESPRIMO E7935 0-Watt and ESPRIMO P7935 0-Watt beginning in summer 2009

Fujitsu Siemens Computers plans to launch in the middle of this year an enterprise desktop computer that consumes no energy when switched off, it said Sunday at the Cebit trade fair in Hanover, Germany.The machine is likely to cost from around €600 or €700. Availability outside of Fujitsu Siemens' EMEA sales area was not announced.

[source : http://www.cio.com ]

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  2. Green Technology : Zero Energy Building

Green Technology Links

Energy
National Renewable Energy
Laboratories (NREL)
http://www.nrel.gov



Rocky Mountain Institute
http://www.rmi.org

Lawrence Berkeley National Laboratory
http://www.lbl.gov/Publications/annual-report/2005-2006/files/01-energy-tech-1.html

National Energy Research Scientific Computing Center
http://www.nersc.gov/

Energy Star
http://www.energystar.gov/

Green Power Network
http://www.eere.energy.gov/greenpower/

American Council on Renewable Energy (ACORE)
http://www.acore.org

Oak National Laboratory Energy Efficiency and Renewable Energy Program
http://www.ornl.gov/sci/eere/

Sandia National Laboratory - Renewable Energy Office
http://www.sandia.gov/Renewable_Energy/renewable.htm


Renewable and Appropriate Energy Laboratory (UC Berkeley)
http://rael.berkeley.edu/aboutrael.html

Renewable Energy Research Laboratory (University of Massachusetts)
http://www.ceere.org/rerl/


Idaho National Laboratory
http://www.inl.gov/renewableenergy/

Natural Energy Laboratory of Hawaii Authority
http://www.nelha.org/about/gateway.html

Renewable Energy Access
http://www.renewableenergyaccess.com

National Association of Energy Service Companies
http://www.naesco.org/


Green Building
US Green Building Council
http://www.usgbc.org/

US EPA: Green Building
http://www.epa.gov/greenbuilding/


Sustainable Buildings Industry Council
http:www.sbic.org

World Green Building Council
http://www.worldgbc.org/

California Integrated Waste Management Board: Green Building Basics
http://www.ciwmb.ca.gov/greenbuilding/Basics.htm

California Commissioning Collaborative
http://www.cacx.org/

Building Commissioning Association
http://www.bcxa.org/

Whole Building Design Guide
http://www.wbdg.org/


Green Purchasing
Recycled Content ProductDirectory (California Integrated Waste Management Board)
www.ciwmb.ca.gov/RCP

Best Practices Manual (Green California)
http://www.green.ca.gov/EPP/Introduction/default.htm

California Integrated Waste Management Board
http://www.ciwmb.ca.gov/EPP/


US EPA: Environmentally Preferable Purchasing
http://www.epa.gov/epp/


Database of Environmental Information for Products and Services (US EPA)
http://yosemite1.epa.gov/oppt/eppstand2.nsf/Pages/Homepage.html?Open

Green Nanotechnology

Project on Emerging Nanotechnologies

ttp://nanotechproject.org/


US EPA Perspective Factsheet
http://es.epa.gov/ncer/nano/factsheet/


Foresight Nanotech Institute
http://www.foresight.org/



Green Chemistry
US EPA: Green Chemistry Program
http://www.epa.gov/greenchemistry/

Center for Green Chemistry: University of Massachusetts Lowell
http://www.greenchemistry.uml.edu/


Green Chemistry Institute
http://www.chemistry.org/greenchemistryinstitute/


Chemalliance.org
http://www.chemalliance.org/Columns/050520.asp


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  4. Green Technology

Green Technology


The term "technology" refers to the
application of knowledge for practical purposes.

The field of "green technology" encompasses a continuously evolving group
of methods and materials, from techniques for generating energy to
non-toxic cleaning products.

The present expectation is that this field will bring innovation and
changes in daily life of similar magnitude to the "information technology"
explosion over the last two decades. In these early stages, it is
impossible to predict what "green technology" may eventually encompass.

The goals that inform developments in this rapidly growing field include:

Sustainability - meeting the needs of
society in ways that can continue indefinitely into the future without
damaging or depleting natural resources. In short, meeting present needs
without compromising the ability of future generations to meet their own
needs.

"Cradle to cradle" design - ending the
"cradle to grave" cycle of manufactured products, by creating products
that can be fully reclaimed or re-used.

Source reduction - reducing waste and
pollution by changing patterns of production and consumption.

Innovation - developing alternatives
to technologies - whether fossil fuel or chemical intensive agriculture -
that have been demonstrated to damage health and the environment.

Viability - creating a center of
economic activity around technologies and products that benefit the
environment, speeding their implementation and creating new careers that
truly protect the planet.

Energy
Perhaps the most urgent issue for green technology, this includes the
development of alternative fuels, new means of generating energy and
energy efficiency.

Green building
Green building encompasses everything from the choice of building
materials to where a building is located.

Environmentally preferred purchasing
This government innovation involves the search for products whose contents
and methods of production have the smallest possible impact on the
environment, and mandates that these be the preferred products for
government purchasing.

Green chemistry
The invention, design and application of chemical products and processes
to reduce or to eliminate the use and generation of hazardous substances.

Green nanotechnology
Nanotechnology involves the manipulation of materials at the scale of the
nanometer, one billionth of a meter. Some scientists believe that mastery
of this subject is forthcoming that will transform the way that everything
in the world is manufactured. "Green nanotechnology" is the application of

green chemistry and green engineering principles to this field.

Related posts :

  1. Biofuel
  2. SOLAR ENERGY APPLICATIONS
  3. Green Technology Links
  4. Green Technology & Alternative Energy
  5. Green Technology : Zero Energy Building

Green Technology : Zero Energy Building

Definition

A zero energy building (ZEB) or net zero energy building is a general term applied to a building with zero net energy consumption and zero carbon emissions annually. Zero energy buildings are autonomous from the energy grid supply - energy is produced on-site. This design principle is gaining considerable interest as renewable energy is a means to cut greenhouse gas emissions. Buildings use 40% of the total energy in the US and European Union.



Despite sharing the name zero energy building, there are several definitions of what ZEB means in practice, with a particular difference in usage between North America and Europe.

Net zero site energy use
In this type of ZEB, the amount of energy provided by on-site renewable energy sources is equal to the amount of energy used by the building. In the United States, “zero energy building” generally refers to this type of building.

Net zero source energy use
This ZEB generates the same amount of energy as is used, including the energy used to transport the energy to the building. This type accounts for losses during electricity transmission. These ZEBs must generate more electricity than net zero site energy buildings.

Net zero energy emissions
Outside the United States and Canada, a ZEB is generally defined as one with zero net energy emissions, also known as a zero carbon building or zero emissions building. Under this definition the carbon emissions generated from on-site or off-site fossil fuel use are balanced by the amount of on-site renewable energy production. Other definitions include not only the carbon emissions generated by the building in use, but also those generated in the construction of the building and the embodied energy of the structure. Others debate whether the carbon emissions of commuting to and from the building should also be included in the calculation.

Net zero cost
In this type of building, the cost of purchasing energy is balanced by income from sales of electricity to the grid of electricity generated on-site. Such a status depends on how a utility credits net electricity generation and the utility rate structure the building uses.

Net off-site zero energy use
A building may be considered a ZEB if 100% of the energy it purchases comes from renewable energy sources, even if the energy is generated off the site.

Off-the-grid
Off-the-grid buildings are stand-alone ZEBs that are not connected to an off-site energy utility facility. They require distributed renewable energy generation and energy storage capability (for when the sun is not shining, wind is not blowing, etc).


Design and construction

The most cost-effective energy reduction in a building usually occurs during the design process. To achieve efficient energy use, zero energy design departs significantly from conventional construction practice. Successful zero energy building designers typically combine time tested passive solar, or natural conditioning, principles that work with the on site assets. Sunlight and solar heat, prevailing breezes, and the cool of the earth below a building, can provide daylighting and stable indoor temperatures with minimum mechanical means. Z.E.B.'s are normally optimized to use passive solar heat gain and shading, combined with thermal mass to stabilize diurnal temperature variations throughout the day, and in most climates are superinsulated. All the technologies needed to create zero energy buildings are available off-the-shelf today.

Zero Energy Buildings are usually built with significant energy-saving features. The heating and cooling loads are often drastically lowered by using high-efficiency equipment, added insulation, high-efficiency windows, natural ventilation, and other techniques. These features can vary drastically between buildings in different climate zones. Water heating loads can be lowered using water conservation fixtures, heat recovery units on waste water, and by using solar water heating, and high-efficiency water heating equipment. In addition, free solar daylighting with skylites or solartubes can provide 100% of daytime illumination. Nighttime illumination is typically done with fluorescent and LED lighting that use 1/3 or less of the power of incandescent lights, without adding unwanted heat that incandescent lights do. And miscellaneous electric loads can be lessened by choosing efficient appliances and minimizing phantom loads or standby power. Other techniques to reach net zero (dependent on climate) are Earth sheltered building principles, superinsulation walls using strawbale construction, and exterior landscaping for seasonal shading.

Zero energy buildings are often designed to make use of energy gained from other sources including white goods; for example, use refrigerator exhaust to heat domestic hot water, ventilation air and shower drain heat exchangers, office machines and computer servers, and even body heat from rooms with multiple occupants. These buildings make use of heat energy that conventional buildings typically exhaust outside. They may use heat recovery ventilation, hot water heat recycling, combined heat and power, and absorption chiller units.

Sophisticated 3D computer simulation tools are available to model how a building will perform with a range of design variables such as building orientation (relative to the daily and seasonal position of the sun), window and door type and placement, overhang depth, insulation type and values of the building elements, air tightness (weatherization), the efficiency of heating, cooling, lighting and other equipment, as well as local climate. These simulations help the designers predict how the building will perform before it is built, and enable them to model the economic and financial implications on building cost benefit analysis, or even more appropriate - life cycle assessment.

Energy generation

ZEBs generate their own energy to meet their electricity and heating needs. In the case of individual houses, various microgeneration technologies may be used to provide heat and electricity to the building, using solar cells or wind turbines for electricity, and biofuels or solar collectors linked to seasonal thermal stores for space heating. To cope with fluctuations in demand, zero energy buildings are frequently connected to the electricity grid, export electricity to the grid when there is a surplus, and drawing electricity when not enough electricity is being produced. Other buildings may be fully autonomous.

Zero Energy Production, in commercial and industrial applications. Taking into account the diverse topography of each location and designing a renewable energy development approach to satisfy the production energy required to develop each product. This production energy always reduces the profitability of each facility constructed in the past. With Zero Energy Production comes the arena of placing Geothermal, Microhydro, Solar, and Wind resources to lower the initial impact of each facilities requirement to be self sustainable using only sustainable energy.

Zero-energy neighborhoods, such as the BedZED development in the United Kingdom, and those that are spreading rapidly in California and China, may use distributed generation schemes. This may in some cases include district heating, community chilled water, shared wind turbines, etc. There are current plans to use ZEB technologies to build entire off-the-grid cities, such as the photovoltaic-powered Huangbaiyu Sustainable Village, and the planned Dongtan Eco-City near Shanghai.

A benefit of such localized energy generation is the elimination of electrical transmission and electricity distribution losses. These losses amount to about 7.2%-7.4% of the energy transferred.


The "energy generation" versus "energy conservation" debate

One of the key areas of debate in zero energy building design is over the balance between energy conservation and the distributed point-of-use generation of renewable energy (solar energy, wind energy, etc.). Most zero energy homes use a combination of the two strategies.
As a result of significant government subsidies for photovoltaic solar electric systems, wind turbines, etc., there are those who suggest that a ZEB is a conventional house with distributed renewable energy generation. Entire additions of such homes have appeared in locations such as California and other locations where photovoltaic (PV) subsidies are significant, but many so called "Zero Energy Homes" still have utility bills. This type of energy generation without energy conservation may not be cost effective with the current price of photovoltaic equipment (depending on the local price of power company electricity), and also requires greater embodied energy and greater resources and is thus the lesser ecological approach..

For three decades, passive solar building design has demonstrated energy consumption reductions of 70% to 90% in many locations, without using any active power generation systems. With expert design, this can be accomplished with little additional new construction cost for materials over a conventional building, but very few industry experts have the skills or experience to do this. Such passive solar designs are much more cost effective than adding expensive photovoltaic panels on the roof of a conventional inefficient building. A few kWh of photovoltaic panels (costing tens of thousands of U.S. dollar equivalent) may only reduce external energy requirements by 15% to 30%. A 100,000 BTU high seasonal energy efficiency ratio 14 conventional air conditioner requires over 7 kW of photovoltaic electricity while it is operating, and that does not include enough for off-the-grid night time operation. Using passive cooling, and superior system engineering techniques, can reduce the air conditioning requirement by 70% to 90%, where photovoltaic electricity then becomes more cost-effective.

The modern evolution of zero energy buildings


The development of modern zero energy buildings became possible not only through the progress made in new construction technologies and techniques, but it has also been significantly improved by academic research on traditional and experimental buildings, which collected precise performance data for today's advanced computer models, and the engineering design decision criteria for the many differences between alternative zero energy design patterns.

Influential zero- and low-energy buildings
Those who commissioned construction of Passive Houses and Zero Energy Homes (over the last three decades) were essential to iterative, incremental, cutting-edge, technology innovations. Much has been learned from many significant successes, and a few expensive failures.
The zero energy building concept has been a progressive evolution from other low-energy building designs. Among these, the Canadian R-2000 and the German passive house standards have been internationally influential. Collaborative government demonstration projects, such as the superinsulated Saskatchewan House, and the International Energy Agency's Task 13, have also played their part.

The 1999 side-by-side Florida Solar Energy Center Lakeland Florida demonstration project was called the "Zero Energy Home." It was a first-generation university effort that significantly influenced the creation of the U.S. Department of Energy, Energy Efficiency and Renewable Energy, Zero Energy Home program. George Bush's Solar America Initiative is funding research and development into widespread near-future development of cost-effective Zero Energy Homes in the amount of $148 million in 2008

New-generation ZEBs
One example of the new generation of zero energy office buildings is the 71-story Pearl River Tower, which is scheduled to open in 2009, as the Guangdong Company headquarters. It uses both high energy efficiency, and distributed renewable energy generation from both solar and wind. Built by Skidmore Owings Merrill LLP in Guangzhou, China, the tower is receiving economic support from government subsidies that are now funding many significant conventional fossil-fuel (and nuclear energy) energy reduction efforts.

One of the first zero-energy commercial buildings in the United States is Integrated Design Associates (IDeAs) Z-Squared Design Facility. Opened and occupied as of October 2007, this San Jose, California building was designed to meet a net-zero-energy/zero-carbon-emissions (Z-squared) target. Notably, it is a remodel of a commonplace 1960’s-era tilt-up concrete structure that once served as a corner bank. Z-squared performance was achieved through simple, affordable strategies, including daylighting, radiant heating, ground source heat pump cooling, advanced insulation and glazing and reduced computer and appliance loads through careful equipment selection and wiring.

Googleplex, Google's headquarters in Mountain View, California, completed a 1.6 megawatt photovoltaic campus-wide renewable power generation system. Google (and others) have developed advanced technology for major reductions in computer-server energy consumption (which is becoming a major portion of modern zero-energy commercial building design, along with daylighting and efficient electrical lighting systems).

Hudson Valley Clean Energy in Rhinebeck, NY has proven it is zero net energy. 15kw of solar pv, geothermal heating and cooling and air tight construction allow this building to generate more energy than it consumes to heat, cool and power the building. After one year of operation the unassuming metal building generated more than 110% of total energy consumption.

ZEB development efforts
Wide acceptance of zero energy building technology may require more government incentives or building code regulations, the development of recognised standards, or significant increases in the cost of conventional energy.

The Google photovoltaic campus, and the Microsoft 480-kilowatt photovoltaic campus relied on U.S. Federal, and especially California, subsidies and financial incentives. California is now providing $3.2 billion USD in subsidies for residential-and-commercial near-zero-energy buildings, due to California's serious electricity shortage, frequent power outages, and air pollution problems. The details of other American states' renewable energy subsidies (up to $5.00 USD per watt) can be found in the Database of State Incentives for Renewables and Efficiency. The Florida Solar Energy Center has a slide presentation on recent progress in this area.

The World Business Council for Sustainable Development has launched a major initiative to support the development of ZEB. Led by the CEO of United Technologies and the Chairman of Lafarge, the organization has both the support of large global companies and the expertise to mobilize the corporate world and governmental support to make ZEB a reality. Their first report, a survey of key players in real estate and construction, indicates that the costs of building green are overestimated by 300 percent. Survey respondents estimated that greenhouse gas emissions by buildings are 19 percent of the worldwide total, in contrast to the actual value of roughly 40 percent.


Advantages and disadvantages of ZEBs
ZEB advantages

  • isolation for building owners from future energy price increases

  • increased comfort due to more-uniform interior temperatures (this can be demonstrated with comparative isotherm maps)

  • reduced requirement for energy austerity

  • reduced total cost of ownership due to improved energy efficiency

  • reduced total net monthly cost of living

  • improved reliability - photovoltaic systems have 25-year warrantees - seldom fail during weather problems - the 1982 photovoltaic systems on the Walt Disney World EPCOT Energy Pavilion are still working fine today, after going through 3 recent hurricanes

  • extra cost is minimized for new construction compared to an afterthought retrofit

  • higher resale value as potential owners demand more ZEBs than available supply

  • the value of a ZEB building relative to similar conventional building should increase every time energy costs increase

  • future legislative restrictions, and carbon emission taxes/penalties may force expensive retrofits to inefficient buildings

  • Potential ZEB disadvantages

  • initial costs can be higher - effort required to understand, apply, and qualify for ZEB subsidies

  • very few designers or builders have the necessary skills or experience to build ZEBs

  • possible declines in future utility company renewable energy costs may lessen the value of capital invested in energy efficiency

  • new photovoltaic solar cells equipment technology price has been falling at roughly 17% per year - It will lessen the value of capital invested in a solar electric generating system - Current subsidies will be phased out as photovoltaic mass production lowers future price

  • challenge to recover higher initial costs on resale of building - appraisers are uninformed - their models do not consider energy

  • climate-specific design may limit future ability to respond to rising-or-falling ambient temperatures (global warming)

  • without an optimised thermal envelope embodied energy and resource usage is higher than needed. Although most all net-zero buildings do use high insulation and tight building shells to lower the size and cost of the renewable energy systems.

  • while the individual house may use an average of net zero energy over a year, it may demand energy at the time when peak demand for the grid occurs. In such a case, the capacity of the grid must still provide electricity to all loads. Therefore, a ZEB may not reduce the required power plant capacity.


  • Zero energy building versus green building
    The goal of green building and sustainable architecture is to use resources more efficiently and reduce a building's negative impact on the environment. Zero energy buildings achieve one key green-building goal of completely or very significantly reducing energy use and greenhouse gas emissions for the life of the building. Zero energy buildings may or may not be considered "green" in all areas, such as reducing waste, using recycled building materials, etc. However, zero energy, or net-zero buildings do tend to have a much lower ecological impact over the life of the building compared with other 'green' buildings that require imported energy and/or fossil fuel to be habitable and meet the needs of occupants.

    Because of the design challenges and sensitivity to a site that are required to efficiently meet the energy needs of a building and occupants with renewable energy (solar, wind, geothermal, etc), designers must apply holistic design principles, and take advantage of the free naturally occurring assets available, such as passive solar orientation, natural ventilation, daylighting, thermal mass, and night time cooling.

    Green building certifications do not require a building to have net zero energy use, only to reduce energy use a few percentage points below the minimum required by law. And, many Green building certification programs (such as the Leadership in Energy and Environmental Design developed by the U.S. Green Building Council, and Green Globes, all involve evolving check lists that are measurement tools, not design tools. Inexperienced designers or architects may cherry-pick points to meet a target certification level, even though those points may not be the best design choices for a specific building or climate.


    Zero-energy buildings worldwide

    Germany
    Technische Universität Darmstadt won first place in the international zero energy design 2007 Solar Decathlon competition, scoring highest in the Architecture, Lighting, and Engineering contests
    "Self-Sufficient Solar House " Fraunhofer Institute's (ZEB), Freiburg, Germany

    Canada
    In Canada the Net-Zero Energy Home Coalition is an industry association promoting net-zero energy home construction and the adoption of a near net-zero energy home (nNZEH), NZEH Ready and NZEH standard. The Canada Mortgage and Housing Corporation is sponsoring the EQuilibrium Sustainable Housing Competition that will see the construction of twelve zero-energy and near-zero-energy demonstration projects across the country by the end of 2008, the Now House Project, which is a retrofit of a postwar home. The Edmonton project is a duplex in Riverdale, currently at the rough-in stage. [28] The EcoTerra TM House is Canada's first nearly net zero-energy housing built through the CMHC EQuilibrium Sustainable Housing Competition. The house was designed by Dr. Masa Noguchi of the Mackintosh School of Architecture for Alouette Homes and engineered by Prof. Dr. Andreas K. Athienitis of Concordia University.

    United States
    In the U.S., ZEB research is currently being supported by the US Department of Energy (DOE) Building America Program , including industry-based consortia and researcher organizations at the National Renewable Energy Laboratory (NREL), the Florida Solar Energy Center (FSEC), Lawrence Berkeley National Laboratory (LBNL), and Oak Ridge National Laboratory (ORNL). From fiscal year 2008 to 2012, DOE plans to award $40 million to four Building America teams, the Building Science Corporation; IBACOS; the Consortium of Advanced Residential Buildings; and the Building Industry Research Alliance, as well as a consortium of academic and building industry leaders. The funds will be used to develop net-zero-energy homes that consume at 50% to 70% less energy than conventional homes.

    DOE is also awarding $4.1 million to two regional building technology application centers that will accelerate the adoption of new and developing energy-efficient technologies. The two centers, located at the University of Central Florida and Washington State University, will serve 17 states, providing information and training on commercially available energy-efficient technologies.

    According to Energy Design Update (February 2007), one home in the United States has demonstrated 12 months of data showing net-zero-energy performance; that house, located in Wheat Ridge, Colorado, was built by Metro Denver Habitat for Humanity, with help from NREL engineers.

    The U.S. Energy Independence and Security Act of 2007 created 2008 through 2012 funding for a new solar air conditioning research and development program, which should soon demonstrate multiple new technology innovations and mass production economies of scale.
    One of the most comprehensive modern compilations of information on this subject is the U.S. Department of Energy (DOE) Oak Ridge National Laboratory (ORNL) Building Technology group "Thermal Performance of the Exterior Envelopes of Whole Buildings Tenth International Conference" held December 2007. The popular Zero Energy Design[34] DOE/ORNL Workshop materials include an 800-page eBook, 500 presentation slides, and related support materials.
    zHome is a 10 unit zero energy community utilizing detailed energy modeling to achieve true zero net energy, located in Issaquah, WA. Key zero energy features of zHome include a hyper insulated shell, ground source heat pump for heating and hot water, and photovoltaic panels. This project is scheduled for completion at the end of 2009. zHome is believed to be the first production, multifamily, fully zero net energy community in the United States.

    New Leaf America, founded by zero-energy pioneer Chris Prelitz, offers a web based, climate specific roadmap for U.S. homeowners. Weatherization, behavior change, conservation, efficiency, and passive solar strategies are identified to ready homes for the most efficient renewable system needed to offset total energy demand.

    The 31 Tannery Project, located in Branchburg, New Jersey, serves as the corporate headquarters for Ferreira Construction, the Ferreira Group, and Noveda Technologies. The 42,000-square-foot (3,900 m2) office and shop building was constructed in 2006 and is the 1st building in the state of New Jersey to meet New Jersey's Executive Order 54. The building is also the first Net Zero Electric Commercial Building in the United States.
    [edit]United KingdomFurther information: Energy efficiency in British housing
    In the United Kingdom, in December 2006 the government announced that by 2016 all new homes will be zero energy buildings. To encourage this, an exemption from Stamp Duty Land Tax is planned.

    Ireland
    In 2005 Scandinavian Homes launched the worlds first standardised passive house in Ireland, this concept makes the design and construction of passive house a standardised process. Conventional low energy construction techniques have been refined and modelled on the PHPP (Passive House Design Package) to create the standardised passive house. Building offsite allows high precision techniques to be utilised and reduces the possibility of errors in construction.

    Malaysia
    In October 2007, the Malaysia Energy Centre (PTM) successfully completed the development and construction of the PTM Zero Energy Office (ZEO) Building. The building has been designed to be a super-energy-efficient building using only 286 kwh/day. The renewable energy - photovoltaic combination is expected to result in a net zero energy requirement from the grid. The building is currently undergoing a fine tuning process by the local energy management team. Findings are expected to be published in a year.


    [source : wikipedia]

    Link :

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