Showing posts with label baseload power. Show all posts
Showing posts with label baseload power. Show all posts

Why baseload power is doomed  

Posted by Big Gav in ,

Chris Nelder has a post at Smart Planet on the baseload fallacy and the path towards 100% renewable power - Why baseload power is doomed.

The grid’s architecture developed in a fairly ad-hoc way. As the country was built up, more generation capacity was added, and the grid was extended. Technologically speaking, most of the grid is old and “dumb”: Power gets generated somewhere, and transmitted somewhere else, but there is very little in the way of sensors, storage buffers, switches, or security mechanisms along the way. It’s more like plumbing than an iPhone. This is why it was possible for one overloaded transmission line in Ohio take down much of the grid in Ontario, the Northeast and the Midwest in the blackout of August 14, 2003.

Grid operators have one overriding, fearsome task: They must maintain enough supply from this very complex system, within a narrow range of frequencies and voltages, to meet constantly fluctuating demand at all times. Therefore they tend to be risk-averse, preferring to stick with what they know to be reliable, and avoiding innovation.

Enter renewables

Before the advent of renewables, generating power was a pretty straightforward task: When demand increased, you just added more fuel to an engine. With renewables, the task is reversed: The engines (wind turbines and solar collectors) ramp up and down of their own accord, and grid operators must adjust to accommodate their output.

The growth of renewables in the U.S. has been driven primarily by state Renewable Portfolio Standards (RPS) requiring a certain percentage of power to be generated from renewables by a certain date. According to an April 2011 MIT report just released this month, 29 states have RPS mandates which typically require 15 to 25 percent renewables by 2015 to 2025. Many of these states mandate that grid operators give the renewably-generated power priority, so when wind generation spikes, for example, they must ramp down other generating units. In other areas of the U.S. and in parts of Europe, operators may instead curtail peak production from renewables to accommodate their baseload generation—for example, forcing a wind farm operator to furl their blades or apply brakes to their turbines.

The baseload fallacy

The notion that renewables cannot provide baseload power is really an artifact of the way the grid and its regulators have evolved. If all generators were able to ramp up and down on demand, and if grid operators were able to predict reliably when and where the sun would be shining and the wind would be blowing, accommodating any amount of power from renewables would be no problem.

A 2010 study called “The Base Load Fallacy” by Australian researcher Dr. Mark Diesendorf, an expert on integrating wind into power grids, fingers the “operational inflexibility of base-load power stations” as the main obstacle to further integration of renewables. “The renewable electricity system could be just as reliable as the dirty, fossil-fuelled system that it replaces,” he observes, if demand were more efficient and intelligent, and supply were made up of a wide variety of renewable sources plus a small amount of gas-fired capacity to cover the peaks. The perpetrators of the baseload fallacy, he argues, are mainly the industries who benefit from the status quo: coal, oil and gas companies, the nuclear industry, power generators, and industries who depend on them like aluminum and cement manufacturers.

Claims that renewables could never generate more than a few percent of grid power without taking down the grid have been given the lie by the real-world experience of areas that deliberately adapted their grids.

The best example in the U.S. is Texas. By virtue of having its own grid (technically, an “interconnection”), it is generally outside the purview of federal regulation by FERC. The entire grid is operated by a single ISO, ERCOT, so it has a lot of control over its generation mix and grid planning. Texas decided long ago to pursue its wind potential vigorously, and now has the largest installed wind capacity in the States at over 10 gigawatts (GW).

On March 7, ERCOT used a record 7,599 MW of wind power, constituting 22 percent of the load and representing over 77 percent of its nameplate wind capacity. The previous day it had met 24 percent of the load with wind. Baseload proponents had said that such levels of integration were flatly impossible. But ERCOT had made it possible with the help of a new modeling tool that analyzes real-time conditions every half-hour, giving grid technicians greater ability to match generation with demand and control transmission more discretely. The National Renewable Energy Laboratory has found that if other grid operators adopted similar tools, over one third of U.S. power could be generated from renewables.

All that ERCOT needed to accommodate more wind power was some sensors, a better flow of information, and better modeling tools. As the MIT report notes, the hardware to provide better grid information already exists, but few operators have employed it in their control and dispatch operations. The obstacle is not technology, but “the industry’s culture of resistance to new and experimental projects.”

That’s not a problem for China, however. The MIT report mentions that China is piloting a program that will allow it to monitor the national grid in real-time and control it automatically. The system eventually could allow China’s grid to uptake a far greater percentage of renewably-generated power than the antiquated and obsolete U.S. grid can, although the former is still the world’s top consumer of coal for power generation.

Another 2010 study by the German Renewable Energies Agency turned conventional baseload logic on its head, finding that due to their relatively inflexible ability to adjust to changing demand, “nuclear power plants are incompatible with renewable energies.” To meet forecasted wind production in Germany, conventional baseload operation would be cut in half by 2020, assuming renewable generation continues to enjoy priority dispatch. As renewables gradually replace conventional baseload capacity, only more flexible gas generators that can operate at under 50 percent of their capacity will still have a role to play.

The European example

Europe serves as another model of why good grid planning and management are key to integrating renewables into the grid. If baseload proponents were correct, then we would expect the countries with the highest levels of renewable penetration to have the most trouble in managing their grids, but the reality is quite the opposite.

A comprehensive new report on renewables integration by European consultancy eclareon GmbH surveyed the policies and grid functions of the 27 member states of the European Union, and found that “large quantities [of renewable generation] can be effectively managed on the grid.” Countries that planned for adequate grid capacity generally didn’t have a problem with accommodating renewables, and unsurprisingly, those are the same countries that have pushed for more renewable generation.

Solar and wind generation as a percentage of electricity consumption in 27 European Union countries in 2010 (first bar) and 2020 (second bar). Grid integration designated by color: green = positive, yellow = neutral, red = negative. Source: RES Integration Final Report, eclareon GmbH.

Countries where the share of renewable power is greatest—Germany, Denmark, Spain, Ireland, and Portugal—offer “positive conditions for grid operations,” although some barriers to integration were identified, including the potential for curtailment in Germany, challenges to priority dispatching in Ireland, and strict distribution parameters in Portugal. Identified barriers for grid development in those countries revolve around public policy issues, permitting, regulatory regimes, cost distribution, and the obligation (or lack thereof) of grid operators to beef up their grids to accommodate more renewable power.

Ripe for innovation

The real issues around the integration of renewables into the grid have to do with human arrangements, not technology. As the MIT report concluded, “There is a clear need for a statement on national goals for the electricity sector to streamline the US regulatory structure, which currently is complex and fragmented.” We need smart policy, and an intelligent approach to planning the grid of the future that is not simply beholden to the vested interests of the status quo.

This will run directly at odds with the free-market ideologies that have brought us this far. As the EU project THINK observed, “the main shortcomings of the conventional regulatory framework are that grid companies have disincentives to innovate.” A firm regulatory hand, like that in the most renewably-powered countries of Europe, will be necessary to integrate more power from solar and wind onto the grid.

Renewables should be able to meet at least 20 percent of electricity demand without disrupting the grid just about anywhere in the world with good grid planning and management. As geothermal and marine power technologies mature, they will become a much less intermittent, natural substitute for the baseload technologies of the past. A host of other technologies will even out the bumps in renewable generation by adding storage (batteries for distributed storage, and pumped hydro and solar thermal for utility scale); increasing the connections between grids (allowing better transmission between sunny and cloudy, or windy and still areas); and transitioning to on-demand natural gas-fired peaking generators. Over the next decade, the current assumptions about the need for traditional baseload capacity will begin to fade as new storage, interconnection, and smart grid management strategies come into play, and ultimately, a combination of these technologies might raise the limit on renewables to 100 percent.

Is there really any need for baseload power ?  

Posted by Big Gav in , ,

Tom Raftery has a post on the enduring "baseload fallacy" (pdf) beloved of the nuclear power zealots - Is there really any need for baseload power?.

The electricity grid may not need “baseload” generation sources like coal and nuclear to backup the variability of supply from renewables.

Jon Wellinghof is the Chairman of the US Federal Energy Regulatory Commission (FERC). FERC is an independent agency that amongst other things, regulates the interstate transmission of electricity, natural gas, and oil – for more on FERC’s responsibilities see their About page. Chairman Wellinghoff has been involved in the energy industry for 30 years and appointed to the FERC as a commissioner by then president Bush in 2006.

Last year, shortly after being appointed as Chairman of the FERC, Mr Wellinghoff announced that:
No new nuclear or coal plants may ever be needed in the United States….

Wellinghoff said renewables like wind, solar and biomass will provide enough energy to meet baseload capacity and future energy demands. Nuclear and coal plants are too expensive, he added.

“I think baseload capacity is going to become an anachronism,” he said. “Baseload capacity really used to only mean in an economic dispatch, which you dispatch first, what would be the cheapest thing to do. Well, ultimately wind’s going to be the cheapest thing to do, so you’ll dispatch that first.”…

“What you have to do, is you have to be able to shape it,” he added. “And if you can shape wind and you can effectively get capacity available for you for all your loads.

“So if you can shape your renewables, you don’t need fossil fuel or nuclear plants to run all the time. And, in fact, most plants running all the time in your system are an impediment because they’re very inflexible. You can’t ramp up and ramp down a nuclear plant. And if you have instead the ability to ramp up and ramp down loads in ways that can shape the entire system, then the old concept of baseload becomes an anachronism.”

... However, a study published last week by the Maryland-based Institute for Energy and Environmental Research backs Chairman Wellinghoff’s assertion. In a study of North Carolina’s electricity needs it concluded backup generation requirements would be modest for a system based largely on solar and wind power, combined with efficiency, hydroelectric power, and other renewable sources like landfill gas ...

With larger and more inter-connected electricity grids, the requirement for baseload falls even further because the greater the geographical spread of your grid, the greater the chances that the wind will be blowing or the sun shining in some parts of it.

So, is there really any need for baseload power any more, or is this now just a myth perpetuated by those with vested interests?

Do we need nuclear and coal plants for baseload power?  

Posted by Big Gav in , ,

Dave Roberts at Grist has some words on the baseload fallacy - Do we need nuclear and coal plants for baseload power? .

On Friday, Matt Yglesias made the point that only socialist state control seems capable of creating a robust nuclear power industry. After all, the only countries building nuke plants these days are the ones where governments are making the decisions. David Frum replied with a series of wildly overbroad assertions ranging from false to highly misleading, with no evidence or links to support them. (Nuclear power has an impressive effect on conservative error-to-word ratios.) Matt replied in turn, and in doing so echoed a familiar misunderstanding:
That said, obviously you need a certain amount electricity that can be relied upon irrespective of how windy it is or whether the sun is shining. So I’d happily see the nuclear share of the pie grow at the expense of coal and oil as the provider of that baseload electricity.

This notion has really grabbed the public imagination. It’s become conventional wisdom that the grid can only incorporate a limited amount of renewable energy; ergo, we need coal and nuclear power plants for “baseload” electricity. Clean energy skeptics wave the word “baseload” around like a talisman.

There’s far less to the claim than meets the eye, though. As Amory Lovins points out, it’s a category error: baseload is a characteristic of aggregated demand, not of any particular kind of supply. He distills the counter-argument:
Baseload: The electricity system doesn’t rely on any plant’s ability to run continuously; rather, all plants together supply the grid, and the grid serves all loads. That’s necessary because no kind of power plant can run all the time, as Stewart says they must do to meet steady loads. I repeat: there is not and has never been a need for any particular plant or kind of plant to run all the time, and none can. All power plants fail, varying only in their failures’ size, duration, frequency, predictability, and cause. Solar cells’ and windpower’s variation with night and weather is no different from the intermittence of coal and nuclear plants, except that it affects less capacity at once, more briefly, far more predictably, and is no harder and probably easier and cheaper to manage. In short, the ability to serve steady loads is a statistical attribute of all plants on the grid, not an operational requirement for one plant. Variability (predictable failure) and intermittence (unpredictable failure) must be managed by diversifying type and location, forecasting, and integrating with other resources. Utilities do this every day, balancing diverse resources to meet fluctuating demand and offset outages. Even with a largely (or probably a wholly) renewable grid, this is not a significant problem or cost, either in theory or in practice—as illustrated by areas that are already 30-40% wind-powered.

Right now our power system might be characterized as Security Through Oversupply. We’ve built enough power plants to create the maximum level of power we might ever need at a given point in time; but since “peak load” times are relatively brief, most of the time dozens and dozens of large power plants are cycled down, sitting idle. As population and per-capita power use rise, the size of peak load is rising as well. The STO response is to build more plants.

The alternative will be Resilience Through Diversity: just-in-time, just-enough power from multiple, redundant, diverse sources spread over large geographical areas, managed by a reliable, intelligent power grid incorporating distributed storage. Peak load will be shaved by load spreading and efficiency; failures will be localized and self-healing rather than cascading and catastrophic; intelligence will replace brute power.

Still living in the dark on baseload power  

Posted by Big Gav in ,

The Age has an article on the unnecessary and unnatural obsession with building more baseload power - Still living in the dark on baseload power.

A presentation this month by AGL’s Paul Simshauser, chairman of the Loy Yang brown coal-fired power station in the Latrobe Valley, showed the national electricity market (NEM) had too much base and intermediate-load power (by about 4000 megawatts, enough to power more than 1.5 million homes) and not enough peak-load power (we are short about 1700 megawatts).

Michael Ottaviano, chief executive of Western Australia’s Carnegie Wave Energy, took up the theme at this month’s Eco Investor conference in Sydney, arguing for an expanded role for wave energy, sitting somewhere between baseload power and intermittent energy sources such as wind.

‘‘Wave is a very consistent resource with 90 per cent-plus availability,’’ he said later. ‘‘It will vary as wave height varies. But unlike wind, which varies in minutes and is difficult to predict more than a few hours in advance, wave will vary over hours and be predictable over days.’’

A key, Ottaviano says, is a smart grid that can make use of all the available energy— renewable sources are not always conveniently located near coalfields, so we’re going to need new transmission lines— and supply it where and when it is needed.

(CommunicationsMinister Stephen Conroy is on to this and on Thursday, with cabinet colleagues Martin Ferguson and Peter Garrett, invited bids to build a $100 million smart grid in Queanbeyan , near Canberra. Which is a start.)

Distributed generation can help, too. At the same conference, Ceramic Fuel Cells managing director Brendan Dow presented slides showing about 80 per cent of the energy generated by coal-fired power stations is lost as heat (65-70 per cent wastage) or in transmission and distribution (5-8 per cent).

Given coal-fired power stations account for about 35 per cent of Australia’s carbon dioxide emissions, that’s a lot of carbon pollution for nothing.

Ceramic Fuel Cells makes a gas-powered fuel-cell appliance about the size of a dishwasher that can provide 17,000 kilowatt hours of electricity a year— twice that needed to power an average home, meaning far greater energy savings than an equivalent-cost solar-panel installation. The so-called BlueGen units have a world-beating 60 per cent electrical efficiency.

Even without any subsidy in the form of a feed-in tariff, the BlueGen unit is a commercial proposition—as long as utilities will connect them to the grid, and take the electricity they generate, as they must do with home solar panels.

Meanwhile, the grid continues to roll out, whether the public wants it or not. As reported earlier this month, on the NSW North Coast there is majority community opposition to a $227 million power line from Lismore to Tenterfield, according to state-owned proponent TransGrid’s own consultants. The residents say they don’t need the power, question the demand projections and point to cleaner alternatives such as solar, wind and the bio-energy already generated from bagasse at sugar cane mills at Condong and Broadwater.

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