Showing posts with label Quebec Hydro. Show all posts
Showing posts with label Quebec Hydro. Show all posts

Friday, September 5, 2014

Stay Clear, Stay Safe - Dam Safety

Always an important message when it comes to hydroelectric power.

Ontario Power Generation (OPG) is urging the public to exercise extreme caution around waterways, and to be mindful of water safety especially near or around hydroelectric stations and dams.

"Stay clear, stay safe is a simple message," says Mike Martelli, OPG's Senior Vice President of Hydro-Thermal Operations. "Ontario's lakes and rivers are popular holiday weekend destinations but people need to keep themselves and their families safe by paying attention to the warnings signs, fences and booms around hydroelectric stations."
Most hydroelectric facilities are controlled remotely by operators located many kilometres away. As a result, dams can suddenly open at any time, creating rapid change to water levels and flows, while producing deadly undertows.
Additional water safety information can be found online at www.stayclearstaysafe.ca including links to OPG's water safety partners - the Ontario Provincial Police, and the Ontario Federation of Anglers and Hunters.

SOURCE Ontario Power Generation Inc.

Tuesday, January 25, 2011

Transmitting Canadian Hydroelectric Power to the USA via Submarine Cable

Such an interesting article with big picture thinking we all need. This article incorporates elements of interprovincial transmission concepts and Canadian energy exports throughout the US. Very timely and interesting read.

Transmitting Canadian Hydroelectric Power to the USA via Submarine Cable


Harry Valentine, Commentator/Energy Researcher

Canada has for decades, exported hydroelectric power from Quebec and from Labrador into markets in the northeastern USA. California has periodically imported hydroelectric power from British Columbia. A power transmission company based in Vancouver has proposed to install a submarine power cable along America's Pacific coast to carry electric power from British Columbia to California. A transmission development company in Toronto is formulating plans to install a submarine power cable under waterways that link Montreal and New York City, for the purpose of carrying hydroelectric power to that city from dams at James Bay.
A recent announcement from Newfoundland in Eastern Canada involved plans to carry hydroelectric power from Labrador to Northeastern American markets via submarine power cables installed under 2 straits along Canada's Atlantic coast. The province of Manitoba that has much undeveloped hydroelectric generating capacity along the Nelson River and Churchill River, has indicated the interest in exporting some of that power into Midwestern American markets at some time in the future. It may be possible to carry that power via submarine power cable installed under northern riverbeds, Lake Winnipeg and the Red River, with potential to extend the cable through the riverbeds of tributaries and over a short distance across land into the headwaters of the Mississippi River.
Submarine power cables installed in the riverbed of the Mississippi River could connect to similar cables that carry power to cities such as Minneapolis-St Paul, Chicago, St Louis and Kansas City. However, Manitoba Hydro may only have enough undeveloped generating capacity (some 10,000MW) to meet up to 40% of future Midwestern American power requirements that may increase by up to 25,000MW by 2030. Midwestern American power providers may consider obtaining competitively priced Canadian hydroelectric power from Hydro Quebec, via one of 2 direct routes. A third indirect route would see a submarine cable across southern Hudson Bay linking the power dams of Hydro Quebec and Manitoba Hydro.
Montreal-Chicago link:
The is potential to install a submarine cable along the south side of the St. Lawrence River, between the navigation channel and the riverbank from Montreal to Lake Ontario. There is a canal along the south side of the Moses-Saunders power dam near Massena NY that may provide the submarine cable with a route around the power dam and the navigation locks. The cable may follow the south shore of Lake Ontario to any of several streams located to the west of Rochester NY, that have origins near the barge canal that connects Tonawanda NY to Syracuse NY.
That barge canal connects to the channel that carries water from Lake Erie to Niagara Falls and may carry a submarine into the south side of Lake Erie, where it may reach Toledo and Maumee River. The Maumee River connects into the Wabash River that has a tributary with headwaters located near the headwaters of a tributary of a river system that carries water to Chicago. The capacity of the submarine cable may provide potential to serve other possible power markets at Erie, Cleveland and Toledo.
While a submarine cable is possible between Montreal and Chicago, it needs to be a reserve option to a shorter and more direct route between the power dams of Quebec and Chicago. Mutually cordial and cooperate intergovernmental relations between New York State, Ohio, Indiana and Illinois would make such the optional southern route possible. Canadian politics will ultimately determine the route of the submarine power cable between Quebec and Chicago.
Direct James Bay -- Chicago Link:
A direct link between the hydroelectric power dams near James Bay and Chicago would cross over Ontario. It may involve submarine cables installed along the eastern shore of James Bay and in the riverbed of the Moose River and tributary the Missinaibi River that has headwaters near rivers such as the Magpie and the Whitefish that flow into Lake Superior. The cable would continue along the eastern shore of Lake Superior and under the navigation channel to the northern coast of northwestern Michigan.
There are several streams in northwestern Michigan with headwaters in close proximity that flow to Lake Superior and to Lake Michigan. Depending on the nature of intergovernmental relations between Illinois and Michigan, it may be possible to install submarine cables in such riverbeds. A submarine cable buried under riverbeds across northwestern Michigan may be extended south along western Lake Michigan to Milwaukee and Chicago. The overall distance between the power dams of Quebec and Chicago would match the distance between the power dams and New York City and be 1/3rd shorter than the link via Montreal.
Canadian Negotiations:
A direct connection between the Quebec power dams and Chicago would depend on future negotiations between Quebec and Ontario. Ontario wanted to purchase hydroelectric power from Labrador via a power line across Quebec, except that political differences between the governments of Quebec and Newfoundland precluded such an arrangement. A submarine cable under the Lower St. Lawrence River may be possible, given that that river is under joint jurisdiction of the both the Federal Government of Canada and the Government of Quebec.
Ontario may be agreeable to an American-owned submarine power cable connecting between Lake Superior and James Bay through rivers that flow across northern Ontario. James Bay is under Federal Canadian jurisdiction and there would be opportunity to negotiate to install a submarine cable under the seabed near the eastern shore of James Bay, to the a point where Hydro Quebec would provide a connection to their hydroelectric power dams. Quebec's willingness to allow Ontario to acquire hydroelectric power from Labrador would likely enhance prospects for a shorter link between Quebec's power dams and Midwestern American markets.
Lower St. Lawrence River Cable:
High-ranking officials of the Federal Government of Canada have indicated their interest in developing an east-west power connection across Canada. In this regard they may advocate and facilitate the installation of a submarine power cable from Labrador at the Strait of Belle Isle and upstream along the Lower St. Lawrence River to either the Upper St. Lawrence River or the Ottawa River. It is possible that influential political forces in Quebec may allow for a submarine cable to follow the bed of a river that flows from Labrador through Quebec into the Gulf of St. Lawrence.
Modern drilling technology allows for the drilling of circular conduits under the control dams along the river system, to allow submarine power cables to be "threaded" through the conduits. The submarine power cable may be routed to the Canadian side of the Moses-Saunders international power dam, from where it would connect to an upgraded overland power transmission line to carry electric power to Toronto. The submarine power cable may follow an alternate route up the Ottawa River (also under Federal Canadian jurisdiction) from Montreal to Ottawa, from where a high-density power line that is due for upgrading connects through to Toronto.
Political Opposition:
There is the likelihood of influential political forces using the judicial system to prevent the installation of a submarine power cable along the Lower St. Lawrence River that may carry electric power from Labrador to Ontario. Such action would undermine the credibility and authority of the Federal Government of Canada and serve the interest of secessionist political elements in eastern and western Canada. It would also leave Quebec with the option of a submarine cable carrying electric power from Montreal to Midwestern American markets using a longer southern route.
Ontario would be left with the option of purchasing Canadian hydroelectric power from Labrador via buried power cables installed along rail and roadbeds across the northeastern USA, to the Moses-Saunders power dam. However, the successful installation of a submarine power cable under the St. Lawrence River, between the Gulf of St. Lawrence to either the Moses-Saunders power dam or to Ottawa, would affirm credibility of the Federal Government of Canada. It would also provide Ontario with access to a source of competitively priced, renewable electric power from another region of Canada.
Conclusions:
Labrador (Newfoundland) and Quebec are literally competing against each other in the export of hydroelectric power into northeastern American markets. Such competitive rivalry has undermined cordial intergovernmental relations in Eastern Canada. Ontario could offer an option for Quebec to export hydroelectric power to Midwestern American via a short route, provided Quebec allows Ontario to receive hydroelectric power from Labrador via the St. Lawrence River. Such an arrangement would maximize hydroelectric power generation in both Labrador and Quebec, giving American markets the option of competitively priced renewable electric power.

Thursday, January 20, 2011

North Shore Innu set to sign hydro deal


$6.5-billion Romaine project; Letter of intent signed; an agreement possible 'within days,' source says

A Quebec Innu community is closing in on a deal with Hydro-Quebec that would clear the last legal hurdle for one of the largest infrastructure works in Canada, the $6.5-billion hydroelectric Romaine project.
The Innu of Uashat Mani-Utenam, on Quebec's North Shore, signed a letter of agreement with the utility and the Quebec government earlier this week that is guiding the parties in negotiating an agreement in principle.
A source close to the negotiations said yesterday a deal could be reached "within days."
The source added several meetings in the past weeks eased the relationship between the Innu and the government and that led Quebec Premier Jean Charest to appoint a special negotiator to the file.
"A deal would be good for everyone," the source said, adding the agreement could bring a fallout of "hundreds of million of dollars" for the Innu community.
In a brief statement, the Innu of Uashat stressed they hope to ink a final agreement "by the end of March" with Hydro-Quebec and the province.
Last June, the Innu filed a Quebec Superior Court motion for an injunction to halt construction of four dams along the Romaine River near Sept Iles, about 600 kilo-metres northeast of Quebec City.
The major project is set to produce 1,550 megawatts of power, beginning in 2020.
Hydro-Quebec declined to discuss the negotiations yesterday, but noted its goal is to reach an agreement that will see the Innu benefit from the project during and after the construction.
The province-owned utility has already reached agreements with four other Innu communities impacted by the Romaine project.


Wednesday, January 5, 2011

Industry Insight: Hydroelectricity: The Versatile Renewable

http://www.hydroworld.com/index/display/article-display/7205041011/articles/hydro-review/volume-29/issue-1/lead-story/industry-insight_.html





Hydropower in North America is experiencing a renaissance. As a result, equipment manufacturers are being flooded with orders to provide equipment for projects using improved conventional technology and new, emerging technologies.
As one of the earliest and most elementary forms of power generation, hydropower remains by far the largest source of renewable energy in the world, including in North America.
In the early 1900s, hydropower was the dominant source of U.S. electric generation. As recently as the 1940s, hydro facilities accounted for more than 40 percent of electricity production. By the 1950s, developers had tapped the hydro potential of the most mountainous regions in the U.S. – many in the Northwest – where steep inclines supply the strongest river flows and permit the most cost-efficient projects.
Hydropower supplies almost two-thirds of Canada's power and makes it the world's largest hydropower producer, representing 13 percent of global output. This country also is the world's second largest exporter of hydro (after France). Altogether, its roughly 450 hydro plants, half of which have a capacity of less than 10 MW, account for 72,660 MW. Another 1,800 MW of capacity currently is under construction, and an additional 12,000 MW are being considered for development, according to the Canadian Hydropower Association.
Today, hydro represents about 8 percent of all power in the U.S. and more than 90 percent of all the renewable power generated in the U.S. Hydro provides more than 16 times as much energy as wind and solar power combined.
Hoover Dam, on the Colorado River between Nevada and Arizona, impounds water for two powerhouses that provide a total capacity of 2,078 MW.
And hydro's use is increasing, both through updates to older generating technology and through new technologies. Utilities are proposing more than 70 projects that would boost U.S. hydroelectric capacity by at least 11,000 MW over the next decade.
Driving a new wave of hydropower development is unprecedented demand for renewable energy and rising fossil fuel costs. The American Recovery and Reinvestment Act and other programs include tax provisions to attract investment in incremental hydropower; hydro at non-powered dams; and ocean, tidal, and in-stream (hydrokinetic) technologies.
Upgrades and new builds
American Municipal Power (AMP) owns and operates power production facilities for 126 member entities in Ohio, Pennsylvania, Michigan, Virginia, West Virginia, and Kentucky. AMP is developing six hydro projects, representing one of the largest deployments of hydroelectric generation in the U.S. The projects are run-of-river facilities to be installed at existing dams on the Ohio River and on the New River in West Virginia. Combined, these projects would add more than 380 MW of new generation at an estimated construction cost of more than $1.5 billion.
As part of the project, AMP signed a contract worth more than $300 million with Voith Hydro to manufacture turbines and generators for the first three of these projects at the Smithland, Cannelton, and Willow Island locks and dams. A fourth Ohio River project will be at the Captain Anthony Meldahl Locks and Dam. In addition, AMP is pursuing a project (called Robert C. Byrd) at the Gallipolis Lock and Dam on the Ohio River and performing a feasibility study for a project at the Bluestone Dam on the New River.
Another company, PPL Corp., recently received approval of its request to the Federal Energy Regulatory Commission (FERC) to expand its Holtwood plant, on the Susquehanna River in Pennsylvania, by 125 MW. Holtwood currently is rated at 108 MW and has generated power since 1910. PPL said that incentives in the federal stimulus package could make the project feasible by offsetting the factors that caused the company to cancel its original plans for expansion in December 2008. Construction of the estimated $440 million project could begin in February 2010 and be complete by spring of 2013.
The boom in construction of larger hydro projects internationally has provided benefits to developers of smaller projects in the U.S. and Canada. "The hydro business is so robust right now that the contractors only go after big projects, leaving lots of room for smaller players to stay busy with medium and smaller projects," said Norm Bishop, senior vice president of hydroelectric and renewable energy for Knight Piesold. Knight Piesold is an international company of consulting engineers and environmental scientists who work in a variety of fields, including hydropower, wind energy, and mining.
In addition to the demand for renewables and the rising costs of fossil fuels, Bishop cites hydro's flexibility that allows it to meet today's power market demands. These demands include ancillary grid support, which is especially critical in places with increasingly high penetrations of wind farms.
And the potential to make cheap power from water has barely been tapped. Of the existing dams in the U.S., only 3 percent (or around 2,400) are equipped to produce power. These facilities annually generate 270,000 gigawatt-hours (GWh), according to the U.S. Department of Energy (DOE). DOE estimates another 30,000 MW of capacity could be developed, including 17,000 MW at existing dams.
Pump it up
After decades of little or no development, pumped storage in the U.S. is seeing renewed attention. Between 2007 and 2009, FERC issued preliminary permits for more than 20 pumped-storage projects, representing a total capacity of more than 15,000 MW.
In early 2009, Energy Secretary Steven Chu said hydro pumped storage must be a part of a national plan to expand clean energy resources and to integrate variable renewable energy resources into the transmission grid. Chu said the U.S. has limited existing resources for storing energy, and most of what it does have comes from the 20,355 MW of pumped-storage capacity now in service.
National Hydropower Association (NHA) Executive Director Linda Church Ciocci said that expanding hydro pumped storage capacity will be a high priority for her association's new pumped storage council. "The federal government has no program to spur expansion of U.S. pumped storage," she said. "We advocate investment tax credits or other similar measures that can incentivize pumped storage development immediately."
One benefit could be changes to the licensing process, an initiative NHA has worked on for many years. The new process focuses on collaboration among agencies, which should reduce the amount of time required for a new or renewed license from 15 years to as little as three or four years.
Relicensing is hot right now as owners hope to reap even 2 or 3 percent improvements for a price tag that can be as low as $200 per kilowatt.
"There's a tremendous opportunity to repower and upgrade the mechanical aspects of existing facilities to increase output," said Don Erpenbeck, vice president of engineering firm MWH. He's particularly upbeat about some new technologies, such as ultra-low-head hydro, and emerging technologies such as hydrokinetic. "If a project is 20 years old, there's a good chance today's technology can eke out more power at a very small cost per kW," he said.
Water to wire = ultimate efficiency
Hydropower has always had high availability and quick ramping rates. No fuel is needed, just the volume and motion of the water. It also enjoys an overall efficiency unmatched by any other power source. Mechanical efficiency is high, and the only true efficiency losses are limited to line loss.
"Availability is pushing 90 percent with hydro, and on the mechanical side we hit 95 percent efficiency," Erpenbeck said. But some plants have lost as much as 10 percent of their efficiency due to the age of their turbine-generating units. New technology can reclaim that efficiency and even increase output above previous levels. "You could be looking at up to 20 percent efficiency increases if the existing machines are in bad shape," he said.
The new turbines being installed at the 1,038-MW Wanapum project are fish-friendly and also will increase efficiency by 3 percent per unit over the old turbines.
Hydro's ability to ramp quickly enhances its attractiveness as a power portfolio asset. New technology can expand that flexibility. "We can make the efficiency curve flatter, so hydro is more efficient running off peak," said Erpenbeck. "We can now run with even greater flexibility and respond to market conditions across a wider range of megawatts in terms of cycling, load following, and turn down."
Erpenbeck said hydropower can routinely operate at 55 to 100 percent of rated load and back off to 20 to 40 percent as needed.
Increases to operating range provide prime quality spinning reserve for grid support, which is more important today than ever before. The increases are achieved through the ability to run in condensing mode where the generator is synchronized and motoring while the turbine spins air, or synchronized at low power (20 to 40 percent of rated load) and going to full power in seconds. For example, a single unit in the Third Powerhouse at the 6,809-MW Grand Coulee project on the Columbia River in Washington State can go from low load to full load (about 800 MW) in a matter of seconds.
Technology improvements
Improvements to conventional hydro technology provide a variety of upgrades that help hydropower remain low cost while offering environmental benefits.
Grant County Public Utility District in Washington State is installing ten $15 million fish-friendly turbines at its 1,038-MW Wanapum project and plans to replace another ten turbines at 855-MW Priest Rapids. The old turbines are being replaced with models that use six smaller blades instead of five. When completed in 2012, the work is expected to improve each turbine's efficiency by 3 percent and the Priest Rapids facility's overall capacity by 15 percent.
Recent upgrades to the Sacramento Municipal Utility District's 154-MW Jaybird and 82-MW Loon Lake powerhouses have led to still more efficiency gains. Installing new computerized controllers to better regulate water flow to the turbines increased output by 15 MW for the same amount of water when running at low power levels. The new governor control system automatically regulates the Pelton nozzles.
With the old equipment, the controller opened all six needles at once, boosting water flow to the turbine as electricity demand rose. When the unit was at low load, it required less water. But this fanned out of the needles similar to a garden hose set to a wide spray pattern and caused most of the water to miss the turbine wheel.
The new equipment opens two needles initially and adds others as demand for power rises. By moving the same volume of water through two needles instead of six, the water stream is more tightly focused and hits the turbine wheel more directly. This results in significant water savings for the same amount of power generation. Based on current short-term power price forecasts, the utility estimates the equipment will save it $130,000 a year.
Canada's two largest hydro utilities – Ontario Power Generation (OPG) and Hydro-Quebec – continue to expand capacity. Hydro-Quebec's expansion plans include completing the last generating units at the 385-MW Peribonka development and the first units at 62-MW Chute-Allard and 76-MW Rapides-des-Coeurs.
Work also proceeds at the utility's 906-MW Eastmain-1-A/Sarcelle/Rupert jobsite. The project will divert a portion of the flow from the Rupert River watershed into the Eastmain River watershed. The complex will involve four dams, a spillway on the Rupert River, 74 dikes, two diversion bays, and construction of a 1.8-mile-long tunnel and a network of canals and hydraulic structures on the Rupert River to maintain post-diversion water levels along half of the river's length.
OPG's Niagara tunnel project will increase the amount of water flowing to turbines at the 2,000-MW Sir Adam Beck complex at Niagara Falls, allowing the utility to better use available water. When the 6.5-mile-long tunnel is complete, average annual generation from the Beck stations is expected to increase by about 1,600 GWh. In April 2009, OPG completed a 12.5-MW hydroelectric station on the English River. The new Lac Seul facility uses most of the spill currently passing the existing 18.5-MW Ear Falls generating station, thus increasing overall efficiency, capacity, and energy generated from the plant.
Operation of the first of two turbines at Mississippi Lock and Dam No. 2 heralded the opening of the first commercially-operational hydrokinetic station in the U.S.
OPG also is proceeding with the definition phase for a 450-MW development on the Lower Mattagami River, including replacing the 52-MW Smoky Falls station and expanding the 136-MW Little Long, 140-MW Harmon, and 158-MW Kipling stations. The company also approved redeveloping four existing stations, which otherwise would have been removed from service.
New wave for hydropower
The tremendous force of moving water is obvious to anyone who has stood in breaking ocean waves or swum against a river's current. Ocean, tidal, and instream technologies generate electricity from waves or directly from the flow of water in ocean currents, tides, or inland waterways. This technology is gaining increased attention.
Hydrokinetic technology uses stream flow to make power and requires a steady 3 to 5 knots of flow to operate. Hydrokinetic water turbines can be placed where there is no dam; for example, they may be attached to bridges or to frames on the river bottom. Hydrokinetic technology boosts potential capacity far beyond conventional hydro power. As one example, thousands of miles of canals in California are designed primarily for irrigation but could also host hydrokinetic turbines.
Hydrokinetic turbines are smaller than wind turbines because water is about 800 times denser than air. Ocean tidal currents can deliver a predictable 20 hours per day of energy, and a hydrokinetic turbine can produce up to four times more energy than a wind turbine on a good day. Venturi and centrifugal designs can accelerate water speed through the turbine and double the energy produced. Current project proposals suggest that energy produced by U.S. waves, tides, and rivers could provide a capacity of 13,000 MW by 2025.
In August 2009, officials celebrated the opening of the first commercially-operational hydrokinetic power station in the U.S. The first of two turbines was installed and operational at the 4.4-MW Mississippi Lock and Dam No. 2 facility, in Hastings, Minn., This installation will use two hydrokinetic units, each with a nameplate capacity of 100 kW. The second unit is expected to be installed in 2010.
Near-shore and offshore ocean waves might have the greatest hydrokinetic potential. Extracting just 15 percent of the energy in U.S. coastal waves would generate as much electricity as is currently produced at conventional hydro projects. Much of this wave potential is along the Pacific Coast and close to population centers.
Beyond the sheer size of the resource, ocean, tidal, and in-stream resources are attractive because of their predictability. Wave patterns can be predicted days in advance. Because the kinetic energy in a stream is related to its speed cubed, extracting the most electricity from each hydrokinetic project will depend heavily on site selection. Energy output increases eight times with only twice as much water current speed.
State and federal policymakers across the U.S. have taken notice of the potential of hydrokinetic energy and have begun to support its development through legislative and monetary means. Ocean energy is eligible for credit under renewable electricity standards in 16 states and for federal renewable production tax credits, as expanded in the Energy Policy Act of 2005. Furthermore, hydrokinetic energy development was marked for increased research funding appropriations in the 2007 Energy Independence and Security Act.
Overcoming environmental opposition
Hydro has all but disappeared from the energy options usually cited by renewable energy advocates. Many environmentalists have long opposed hydroelectric power and do not consider it "green" or renewable. Much of the opposition is based on the water diversions required by traditional hydroelectric projects and the effects on land and wildlife. Fish killed as a result of passing hydro turbines has also led to a substantial amount of environmental concern.
Because of this environmental opposition, some states restrict the extent to which hydroelectric projects may qualify under renewable portfolio standards. "Policy makers at the federal and state level have a difficult task of designing regulations and incentives that recognize the fact that an existing renewable source like hydropower can be further developed with the right incentives," said Michael Cutter, vice president of engineering and development for Brookfield Renewable Power. The company has developed, owned, and operated hydro facilities for more than 100 years and has 100 hydropower facilities totaling nearly 2,000 MW in nine U.S. states.
Cutter said opportunities exist throughout the U.S. for continued development of hydroelectric generation. "Recent studies show the amount of hydropower could double from the current amount of installed hydro generating capacity by 2030 if the country could upgrade existing hydropower, add hydropower at non-power dams, and develop some of the new technologies," he said. "To reach hydropower's potential, it is important to continue to strengthen federal and state energy policies and to educate the public on hydropower's role as an indigenous, renewable energy source." 

Steve Blankinship was associate editor of Power Engineering magazine, a PennWell Corporation publication. This article originally appeared in the June 2009 issue of Power Engineering. Blankinship passed away in 2009. 

Tuesday, January 4, 2011

Hydroelectric power could be key to state cutting gas emissions - Framingham, MA - The MetroWest Daily News

Hydroelectric power could be key to state cutting gas emissions - Framingham, MA - The MetroWest Daily News

More hydroelectric power from Quebec could help power lights in local living rooms as part of a wide-ranging plan to cut greenhouse gas emissions 25 percent below 1990 levels by the end of this decade.
Nearly a fifth of that overall cut would come from importing more hydroelectric power from Canada, largely through a new transmission line proposed from Quebec to New Hampshire.
"That's still off in the future," said Lisa Capone, spokeswoman for the Executive Office of Energy and Environmental Affairs. "We figure probably it's at least five years away from actually being a reality."
The state's plan says that ultimately the new transmission line, known as the Northern Pass project, could serve up to 15 percent of the Bay State's current electricity demand.
It's not the only change proposed to Massachusetts' electric supply to account for 7.7 percent of the overall 25 percent emissions cut.
Another proposal would require utilities to increasingly favor cleaner or no-emissions fuels for the electricity they sell customers. The plan also anticipates that some of the state's older power plants may shut down under new U.S. Environmental Protection Agency regulations now in the works.
Overall, the state plan released Wednesday calls for everything from more energy-efficient buildings to incentives for drivers to stay off the road in order to meet the 25 percent cut.
The plan is part of the state's broader 2008 Global Warming Solutions Act, which mandates an 80 percent reduction of greenhouse emissions below 1990 levels by 2050.
Imported hydroelectric power would not be new to the region. Canadian hydroelectric already accounts for 8.5 percent of New England's electric consumption, the state's plan says.
A 2010 fact sheet from ISO New England, a nonprofit that runs the region's electrical grid, estimates that figure at 5 percent for the region and just 2 percent for Massachusetts.
New England gets about 38 percent of its power from natural gas, 25 percent from oil, 14 percent from nuclear and 9 percent from coal, the ISO says.
Hydroelectric is relatively low-cost and does not require renewable energy subsidies, the state's emissions plan says, but existing transmission lines are at full capacity.
Hydro Quebec, NStar and Northeast Utilities are working on the Northern Pass project with the Patrick administration's support. Project organizers say the new line could provide another 1,200 megawatts of hydro electricity, enough to power nearly a million houses.
The project is still in early engineering and study phases, with the goal of wrapping up in 2015, the Northern Pass website says.
Some environmental groups, including the Appalachian Mountain Club, oppose the project in its current form. Some of the proposed route would cut through the White Mountain National Forest and other protected lands.
As part of its effort to shift the electric supply to cleaner sources, the state is still looking to other renewable technologies.
An existing requirement of the 2008 Green Communities Act says Bay State utilities must hike their use of renewable energy by 1 percent a year. By 2020, 15 percent of the state's electric supply is supposed to come from eligible technologies, including wind and solar power.
The new plan proposes requiring utilities to improve based on pollution per megawatt, rather than just certain types of technology.
The plan argues that this could help spur the types of changes that have already helped make Massachusetts' electricity portfolio 20 percent cleaner since 2005, such as substituting natural gas for coal and oil as a "bridge" to cleaner sources.
The state would also remain part of the Regional Greenhouse Gas Initiative, a 10-state effort to cut carbon dioxide emissions.
One local renewable energy company yesterday gave high marks to the overall plan for a 25 percent greenhouse gas emission cut.
"With this step, Massachusetts continues to be a leader in two ways - environmentally by setting the bar high to reduce greenhouse gas emissions and economically by promoting energy independence and renewable energy jobs within the commonwealth," said Kevin Price, CEO of Renewable Sales in Holliston.
Michael Durand, an NStar spokesman, said the utility is still reviewing the state's plan. But he said NStar played a major role in crafting a proposal to expand its existing residential energy efficiency programs to commercial and industrial customers.

Monday, January 3, 2011

When is it right to redevelop hydroelectric sites?

It is a question that many in the industry are familiar with. There are many concerns when developing renewable energy projects. The most important concern is the environmental impact. Ultimately, renewable energy's selling feature is that it provides greater environmental benefits than not doing it. In most scenarios, there are cost benefits to any new development. My feeling it that the redevelopment of already impacted areas provides an opportunity to maintain the existing impacts and the resulting adapted environment with the creation of renewed green energy production. Water is already the greatest form of renewable energy. Waterpower is commonly viewed as reliable, reactive and renewable. It has been described as a source of energy "more than renewable". I agree. So important to the energy mix is that hydro is used as the perfect and only large scale support system for the wind industry. Where we can dramatically curb the new environmental impacts and provide this source of energy, it is my feeling that we should take all means necessary to support the redevelopment and refurbishment of our heritage green energy assets.
Many of these sites are seen as too small, or too aged to attract large corporate investment. This has caused an environment of less than optimal usage of the flowing resource, and in some cases the abandonment and removal of these sites.
When we are promoting new renewable technologies, we need to also be supporting our proven suppliers and encourage their continuing operations. Support can come from local communities, government initiatives, school level education programs demonstrating its history and benefits, and supplying to an informative discussion so as to avoid broad generalizations on hydroelectric development that have tarnished the good.

Core Components of the Green Energy Act of Ontario

Ontario Green Energy Act

In 2006, Premier McGuinty set a precedent in North America by introducing the Renewable Energy Standard Offer Program - the most progressive green energy initiative in more than twenty years.

In that same year the Ontario Power Authority began work on the Integrated Power System Plan – a 20-year plan that will determine how Ontario’s electricity system will evolve.


A great start. But not enough to get us where we need to go.


We need the Ontario Green Energy Act to propel Ontario into a leadership position in renewable energy, to reduce our pollution and greenhouse gas emissions, to create meaningful jobs for Ontarians and to enhance community economic development for rural, remote and First Nations communities.

Ontario Bill 150, Green Energy and Green Economy Act, 2009

Bill 150 was tabled at the Legislative Assembly of Ontario on February 23, 2009 and passed into law on May 14, 2009.

Official Liberal Party of Ontario Website for Ontario's Green Energy Act

Ontario's governing Liberal party has created a website providing explanation and information on their proposed Green Energy Act. Find it here.

Green Energy Act Introduction Testimonials - February 2009

Read what's being said about the tabling of the Green Energy Act by the Government of Ontario.

Green Energy Act Executive Summary

The Ontario Green Energy Act will make Ontario a global leader in the development of renewable energy, clean distributed energy and conservation - creating thousands of jobs, economic prosperity, energy security, and climate protection.

Proposed Green Energy Act

On December 10th at Queens Park in Toronto, a proposed draft of the Ontario green energy act was released titled: "An Act Granting Priority to Renewable Energy Sources to Manage Global Climate Change, Protect the Environment and Streamline Project Approvals". The draft will be under constant revision so please read it and send us your feedback.

Core Components of the Green Energy Act

The ten key points that define the goals of the Ontario Green Energy Act.

Sustainable energy unplugged: Making the connection

Getting connected to the electricity grid is proving a formidable problem for sustainable energy generators. A green energy act would oblige utilities to connect renewable energy.

Beyond the RESOP and the IPSP

Ontario’s Renewable Energy Standard Offer Program (RESOP) was the most progressive green energy initiative in North America for more than twenty years.

http://www.greenenergyact.ca/Page.asp?PageID=1224&SiteNodeID=202&BL_ExpandID=44


Ontario Waterpower Association's view

Renewable Energy

Waterpower: Ontario's primary source of renewable energy

Today, Ontario's waterpower resources comprise about 26% of the province's energy supply-with an installed capacity of 8,150 Megawatts. Nuclear power accounts for 41%, fossil fuels (coal, gas, oil) for 32%, and other renewables (wind, solar etc.) for 1%.

An Energy-efficient Source of Electricity

  • The average facility converts energy to electric energy at a rate of between 75% and 95%.
  • A typical waterpower generating facility has a long life cycle of between 75 and 100 years.
  • The average energy payback ratio (energy required vs. energy produced) is by far the highest among all sources.
  • Relative to other sources, the production of waterpower could be considered a form of energy conservation.

A Province Rich in Water Resources

  • Ontario has more than 250,000 lakes and tens of thousands of kilometres of rivers and streams.
  • About 50 systems support all of Ontario's waterpower production. Fewer than a dozen account for more than eighty percent.
  • Niagara Falls comprises almost a quarter of the installed capacity.
  • Waterpower facilities are located within 10 km of every major town and all cities in north-western Ontario.

Realizing the Potential for Clean, Renewable Waterpower

  • An inventory of waterpower potential in Ontario identified 2,000 sites with basic hydraulic conditions (regularly flowing water and change in elevation) to produce waterpower energy.
  • Just 200 sites have been developed in the last century.
  • Distance to the transmission grid, other natural resource values, and the demand for renewable energy are important factors in realizing waterpower potential.

Sustainable Energy: an Asset for the Future

  • Like other natural resources, Ontario's waterpower resources must be managed and developed to meet present needs and anticipate the requirements of future generations.
  • The waterpower potential that remains in Ontario should be treated as an asset that can continue to contribute energy, now and in the future.
  • Acknowledging and protecting this potential will increase our energy options for the future.