Showing posts with label DOE. Show all posts
Showing posts with label DOE. Show all posts

Sunday, November 10, 2013

The $100,000 Battery That Could Help Hotels Save Bundles of Money


Two 54-kilowatt energy storage systems at the Mark Hopkins Hotel in San Francisco's Nob Hill will be able to supply 20 percent of the building's electricity demand.



When the big utilities lose a guy like Harry Hobbs, trouble lies ahead. Hobbs is the area director of engineering for Intercontinental Hotels in San Francisco, a man who has spent more than 30 years managing the energy demands of some demanding clients.

“The utilities have a 20th-century mentality,” says Hobbs. “If we’re going to address climate change we need 21st-century solutions.

What riles Hobbs is utilities’ approach to managing electricity supply and demand for big commercial customers like hotels. If a hotel’s energy consumption spikes—say on a hot day when guests all turn on their room air conditioners at once—the utility ratchets up the electricity rate they pay. To avoid these so-called demand charges—which can account for half of a monthly power bill—businesses can participate in programs that cut their bills if they allow their local utility take control of their air conditioners or lighting to reduce electricity use when the grid is overloaded.

Letting hotel guests who pay $300 a night sweat, however, is not an option. So Hobbs has pulled the plug on his utility by storing electricity in lithium-ion battery packs when rates are low for use when demand and prices rise. The battery and sophisticated software was built by a Silicon Valley startup called Stem and is another example of how technological innovation is upending utilities’ century-old stranglehold on power.

“We measure a business’ electricity usage and predict when there will be spikes in usage and make decisions on whether to charge or discharge batteries,” says Prakesh Patel, Stem’s vice president of capital markets and strategy, who notes that demand charges have risen 30 percent in the San Francisco Bay Area over the past three years.



That means Stem’s algorithms are constantly analyzing a customer’s power demand as well as other factors, such as weather patterns and past energy use, and then charging and discharging the batteries in tiny increments. Such fine-tuning keeps a customer’s utility bills down while minimizing wear and tear on the expensive lithium ion battery packs, which are similar to those found in electric cars.

“In the 21st century things should be down in real time,” says Hobbs. “I think this is a transformational technology that will be the key for many businesses to assist the utilities in a transition to stored energy system.”

Energy storage is particularly important if renewable energy is to become a mainstream source of electricity. As more wind and solar energy comes online, utilities will need to store that power to balance supply and demand on the grid when the wind isn’t blowing or the sun isn’t shining. (California regulators, for instance, approved a mandate last month that requires the state’s big utilities to install 1,325 megawatts of energy storage by 2020.)

For businesses like big box retail stores that increasingly are installing massive rooftop solar arrays, systems like Stem’s can maximize that investment by allowing them to store free electricity from the sun for use when demand—and rates—jump.

That’s a double-edged sword for utilities, depriving them of demand charges that help finance improvements to the transmission system but also helping them keep balance the grid and avoid blackouts or having to fire up a carbon-spewing fossil fuel power plant when demand suddenly spikes.

Intercontinental Hotels has run a trial with a 15-kilowatt Stem storage system for the past year, and though Hobbs would not discuss dollar savings he says he’s seen between a 17 percent and 30 percent improvement in his ability to manage demand. The hotel has 17 Stem systems on order and plans to install two 54-kilowatt battery packs at the Mark Hopkins in San Francisco, which would supply 20 percent of the hotel’s demand.

Patel says a 54-kilowatt system costs about $100,000, though California state incentives cover about 60 percent of that price. But thanks to a $5 million fund financed by Clean Feet Investors, Stem will offer customers no-money-down installation of battery storage in exchange for monthly fee paid out of the savings on utility bills. Such lease deals unleashed an explosion in residential solar systems and Patel expects to see a similar result in battery storage. Stem has orders for 6 megawatts’ worth of systems and Patel expects that to jump to 15 megawatts over the next year.

“We’ve known for some time that the traditional utility business model, which for over 100 years ago has served its purpose well, has come to an end,” says Jigar Shah, a Clean Feet founder.



Source: The Atlantic


More about the Hotel and Stem install on the DOE International Energy Storage Database: http://www.energystorageexchange.org/projects/356






Thursday, October 24, 2013

The US DOE publishes a website to track Energy Storage Projects


"The DOE International Energy Storage Database provides free, up-to-date information on grid-connected energy storage projects and relevant state and federal policies. All information is vetted through a third-party verification process."


You can refine your search with Technology Type, Location, etc 


For example: with Battery, in France I found two Porjetcs:
- One in Brittany, based on Sodium Sulfur Batteries, providing 1GW for 7:12 :

and a Second One in French Riviera, Nice, based on Lithium-ion (what exact technology of li-ion ?), providing 1GW also, but for 30mn only

Maybe I should try and add my DIY ESS
It is small, BUT, if 500 families install this kind of system at home, they would provide also 1GW of power for several hours, captured from solar or/and wind, produced locally ...


Wednesday, March 13, 2013

US DOE - Energy 101: Electric Vehicles explained to everyone

EVs & their benefits explained to everyone, a good video from the US DOE (Department of Energy)



"This edition of Energy 101 highlights the benefits of electric vehicles, including improved fuel efficiency, reduced emissions, and lower maintenance costs.

For more information on electric vehicles from the Office of Energy Efficiency and Renewable Energy, visit the Vehicle Technologies Program website: http://www1.eere.energy.gov/vehiclesa..."


Source: US DOE

Wednesday, February 20, 2013

California Sets 50MW Target for Grid Energy Storage

Moving past “paralysis by analysis,” the CPUC asks Southern California Edison to find 50MW of grid energy storage by 2021




California has just set a big new target for energy storage on the grid -- 50 megawatts of it, to be exact.

That’s how much energy storage capacity the California Public Utilities Commission (CPUC) is asking Southern California Edison to procure over the next eight years, according to a final decision issued Wednesday. It’s not a lot, compared to the total of 1,400 to 1,800 megawatts CPUC is asking the massive Southern California utility to procure between now and 2021 -- but it's still among the first, if not the first, state regulatory rulings that put grid storage at center stage.

The new decision also certifies energy storage as “preferred resources,” alongside energy efficiency, demand response and distributed generation resources, in California's Energy Action Plan, which tells utilities in which order they’re to buy the power and energy resources they need. Wednesday’s decision sets aside an additional 600 megawatts of capacity for SCE to obtain from such preferred resources.

All in all, it’s a “much-needed market signal that energy storage will be considered as a key asset class to help California address its long-term local reliability and environmental quality needs,” according to Janice Lin, executive director of the California Energy Storage Alliance (CESA). CESA’s member list includes some heavyweights in batteries (LG Chem, Panasonic, Saft), as well as two ice-energy air-conditioning storage players that happen to have significant operations in California: Calmac and Ice Energy.

Wednesday’s CPUC ruling comes amidst a years-long process to set energy storage requirements for the state as it grapples with the challenges of its renewable portfolio standard (RPS) ambitions. California wants to grow its share of grid power from renewable resources (mostly intermittent wind and solar, though some baseload geothermal and biomass as well) from about 20 percent today to 33 percent by decade’s end.

That’s going to introduce huge new stability problems for the grid. Energy storage expert Ed Cazalet has predicted that California could need up to 4 gigawatts of energy storagecapacity to help reach the 33 percent RPS, with both centralized, utility-scale wind power and distributed solar power as key factors to manage.

California Assembly Bill 2514, passed in 2010, called for a study of the state’s needs for grid-scale storage, but didn’t set any hard numbers on how much. The CPUC took up the issue last year, and it’s still in process.

Southern California Edison, along with big fellow state investor-owned utilities Pacific Gas & Electric and San Diego Gas & Electric, have opposed specific procurement mandates. SCE wrote in a CPUC filing that mandates “only serve to increase the return on investment of private storage developers,” while distorting the market for energy storage technologies not yet competitive in purer market terms.

There’s no doubt that many forms of energy storage -- batteries, in particular -- remain too expensive to compete against grid power. Where batteries have been deployed is in trouble spots on the grid: far-off distribution substations where batteries are cheaper than putting in new transmission lines to handle rare peak loads, or islanded grids (like Hawaii) facing an influx of on-again, off-again wind and solar power.

Of course, utilities also don’t want to be forced to engage with storage resources they don’t control -- and it’s likely they will need to be forced to open the market to third-party storage projects that work in the context of broader energy markets. Where storage is an intelligent alternative to transmission or generation build-out, and can help integrate renewables, it should be deployed. Of course, cheap natural gas also makes the status-quo approach of using peaker plants a potentially attractive option, though not so much in California, where clean air rules are the toughest in the nation.

CPUC Commissioner Michel Peter Florio, who authored Wednesday’s decision, called it a testament to the state's need to "move beyond paralysis by analysis with respect to energy storage" -- an apparent sign of impatience with the slow approach being taken to AB 2514 implementation. We’ll see if the CPUC applies similar logic to decisions for PG&E and SDG&E.

California is home to several large-scale energy storage project funded by Department of Energy smart grid stimulus grants. PG&E is building a 300-megawatt, 10-hour compressed air energy storage (CAES) system in the Central Valley, and Southern California Edison has been working with A123 Systems on an 8-megawatt, 32 megawatt-hour lithium-ion batterywarehouse of sorts in the Tehachapi mountain range. Both are aimed at stabilizing and integrating the state’s wind power resources into the grid.

We’re also seeing some examples of distributed energy storage emerge, though far smaller in scope and just getting started, with everything from backyard or garage batteries to backup solar installations (Tesla and SolarCity, Silent Power and Hanwha) to substation-scale grid balancing units in the 1-2 megawatt range (Greensmith and SDG&E).



Friday, August 24, 2012

3 Tri-City utilities to start pilot project on storing electricity


Three Tri-City-area utilities plan to start a pilot project in September to show how utilities might be able to store electricity when it's cheap and then release it back to the grid when it's in demand.



The project will help guide research that could make day-to-day storage of electricity by utilities practical, saving customers money and making better use of wind and solar power sources.

Benton PUD is an original participant in the Pacific Northwest Smart Grid Demonstration Project led by Battelle and paid for in part by the Department of Energy.

Franklin PUD and the city of Richland also have been added to the demonstration project through their involvement with the Tri-City Development Council's Mid-Columbia Energy Initiative.

"Demand shifter" devices have been installed by all three utilities.

Each utility has a large metal cabinet, about 6 feet tall and 6 feet wide, filled with batteries to store electricity at times it is not needed.

Battelle, which operates DOE's Pacific Northwest National Laboratory in Richland, will transmit information showing when the price of electricity increases and decreases to a computerized system controlling the demand shifters for the three utilities.

The demand shifters then can store electricity at off-peak hours when electricity is most abundant and least expensive for the utilities. It then can release the electricity back to the grid when demand is high, such as evenings when people are home and using more electricity.

The pilot project is being done on a small scale over two years, with each utility able to store 10 kilowatts for four hours. The average house uses about 1,400 kilowatt hours a month, according to Benton PUD.

"The project should provide some really good background," said Karen Miller, spokeswoman for the Benton PUD. "We're going to learn a lot in the next two years about how energy storage can be incorporated into the utility system."

Battelle researchers plan to quantify the costs and benefits of the demand shifter. For the study, a product called Grid.Balancer, manufactured by Demand Energy in Liberty Lake, is being used.




Anytime utilities can use energy more efficiently, it saves money for the customer, Miller said.

It also could help utilities make better use of renewable resources.

"This has the potential to help offset the intermittency of wind and solar, making them a more reliable source of energy," said Jim Sanders, general manager of Benton PUD, in a statement.

Wind only blows a third of the time.

But, should research prove successful, eventually large-scale demand shifter projects could allow electricity produced when the wind is blowing to be saved for some of the times when it is not.

In addition to the Tri-City-area project, 10 other utilities in Washington, Oregon, Montana, Idaho and Wyoming are participating in the Battelle project with different smart grid programs tailored to its customers.

Smart grids enhance power delivery through two-way communication between suppliers and consumers.

DOE provided $89 million in Recovery Act money for the project, with that money matched by BPA, utilities and five technology companies that make up the demonstration project team.


Source: Tri-City Herald

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