Wednesday, March 11, 2009

We Surround Them

from glennbeck.com

We Surround Them-The Unveiling March 13th on FOX News 5pm ET


Do you watch the direction that America is being taken in and feel powerless to stop it?

Do you believe that your voice isn’t loud enough to be heard above the noise anymore?

Do you read the headlines everyday and feel an empty pit in your stomach…as if you’re completely alone?

If so, then you’ve fallen for the Wizard of Oz lie. While the voices you hear in the distance may sound intimidating, as if they surround us from all sides—the reality is very different. Once you pull the curtain away you realize that there are only a few people pressing the buttons, and their voices are weak. The truth is that they don’t surround us at all.

We surround them.

So, how do we show America what’s really behind the curtain? Below are nine simple principles. If you believe in at least seven of them, then we have something in common. I urge you to read the instructions at the end for how to help make your voice heard.

The Nine Principles

1. America is good.

2. I believe in God and He is the Center of my Life.

3. I must always try to be a more honest person than I was yesterday.

4. The family is sacred. My spouse and I are the ultimate authority, not the government.

5. If you break the law you pay the penalty. Justice is blind and no one is above it.

6. I have a right to life, liberty and pursuit of happiness, but there is no guarantee of equal results.

7. I work hard for what I have and I will share it with who I want to. Government cannot force me to be charitable.

8. It is not un-American for me to disagree with authority or to share my personal opinion.

9. The government works for me. I do not answer to them, they answer to me.


12 Values

* Honesty
* Reverence
* Hope
* Thrift
* Humility
* Charity
* Sincerity
* Moderation
* Hard Work
* Courage
* Personal Responsibility
* Gratitude

You Are Not Alone

If you agree with at least seven of those principles, then you are not alone. Please send a digital version of your picture to: wesurroundthem@foxnews.com and then stay tuned to the radio and television shows over the coming weeks to see how we intend to pull back the curtain.

Time to Fast-track New Nuclear Reactors

Reprinted from Heritage.org

Time to Fast-track New Nuclear Reactors
by Jack Spencer
WebMemo #2062

Nuclear technology can help to meet America's growing demand for reliable, clean, affordable electricity. This has led many politicians, including presidential candidate John McCain, to conclude that the nation needs to start building new nuclear plants now.

The electric power industry has already begun plans to start building new reactors. While approximately 20 applications have been filed or are in preparation to build over 30 new reactors, no permits have been issued and no new plants have begun construction. A primary reason is that the regulatory process remains arduous and unknown. To overcome this, Congress should authorize a fast-track permitting process for a limited number of reactor projects.

A Slow, Arduous Process

The Department of Energy instituted the Nuclear Power 2010 program in 2002 as an effort to address the regulatory and institutional barriers to new reactors' near-term deployment. As its name implies, the original time frame called for new reactor deployment by 2010. Unfortunately, the program has not succeeded in this regard. Most believe that the earliest that a new plant will come on line is the latter half of the next decade.

The problem is not technical or economic—new reactors are being built around the globe, and plans for more are being announced every month. The problem is political. The Nuclear Regulatory Commission (NRC), after so many years with no applications for new reactors, does not have a proven process for efficiently licensing new reactors. The NRC estimates that it needs a minimum of 42 months to issue the design, site, and construction/operation licenses required for reactor construction to begin. This includes—in addition to the safety assessments that are NRC's primary responsibility—about two years for environmental reviews, a year for design reviews, and a year for public hearings. And even this time frame is contingent on complete applications and minimal opposition from outside interests. This has led for calls to streamline the process.

Streamlining is necessary because the process cannot just be sped up. Specific procedures are in place that the NRC must follow, and that process takes time. Simply adding manpower, as some have suggested, would only provide marginal benefit. Because training regulators can take two years, it would be years before the NRC could hire and train enough people to shorten time schedules.

To speed up the current permitting process, Congress should authorize a fast-track program that is open to new reactor applicants that meet certain conditions. The goal would be to cut by at least 50 percent the amount of time it takes to permit a new plant. This must be done without sacrificing safety standards or security.

The lessons learned from the fast-track program could be applied to necessary regulatory overhauls in the future.

The program's objective would be to reduce the permitting schedule from four years down to two or less and should be available for up to two construction permits per reactor design.

The fast-track program would consist of:

1. Focusing NRC Resources. Per congressional direction, the NRC should focus its resources on permitting designated fast-track applications as quickly as possible without sacrificing safety or quality assurance.

2. Mobilizing National Laboratory Capabilities. Although the NRC already uses the national labs to support their activities, the national labs should be compelled by Congress to organize themselves to support the fast-track applications.

3. Focus University Funding Around Supporting the Effort. The Department of Energy funds programs that support nuclear education in the university system. These programs should be focused on supporting the NRC's fast-track program. This would not only provide additional resources to fast-tracking permits but would also develop a workforce with the technical expertise to design and operate America's reactors.

4. Ensuring a Science- and Technical-Based Assessment. The NRC must have the freedom to pursue a transparent, fact-based process in a non-adversarial environment. While inputs from local stakeholders must be accommodated, the NRC must be allowed to make decisions based on good science and engineering in a timely manner. This requires an efficient process that allows legitimate concerns to be heard and resolved without being hijacked by outside, agenda-driven interests.

Fast-track program applicants would have to meet certain criteria. These would include:

1. NRC Certified or Proven Design. The NRC has already certified four designs (although one is currently being amended) and reviewing three others. While only reactors with certified designs are licensable, applicants with designs that are nearing completion, especially if those designs are proven elsewhere, should be eligible for a slightly modified fast-track program that would include design certification.

2. Proven Site with Broad Public Support. The reactor site must already be licensed for operating reactors, and the applicant must demonstrate that the new reactor is welcome by the local community. Furthermore, the applicant must establish that an additional reactor will be safe and environmentally compatible. Under such conditions, the NRC should be permitted to provide an expedited environmental review, which takes roughly two years under current policy.

3. Proven Reactor Owner/Operator. The application must be submitted by an operator with extensive experience with nuclear operations and be in good standing with the NRC. This is not to suggest that some current COL applicants are not capable, but fast-track applicants must have extensive nuclear operations experience and credibility with the state and local community. Each applicant would have to demonstrate its competence to the NRC before entering the program.

4. Proven Demand. The applicant must demonstrate that there is a market for the power to be produced by the reactor.

5. Complete COL (Combined Operations and Construction License) Application. The applicant must have a full and complete COL application per NRC guidance. One of the current problems slowing the NRC is the lack of completeness of some of the applications. Complete applications are critical to ensuring that the NRC is able to conduct a comprehensive design and safety review without having to go back to the applicant for additional information.

6. Long-Lead Components Commitment. The applicant must demonstrate both a financial commitment and a preparedness to earnestly move forward by securing a source for timely delivery of long-lead components. Many of the components used to build a nuclear power plant must be ordered years in advance. Applicants seeking fast-track permits should be required to place early orders or deposits as soon as they are granted a fast-track permitting status.

7. Applicant Fees. Like most other NRC activities, industry should fund most of the activities associated with the fast-track program through the assessment of a program participation fee.

To execute the program, Congress must:

1. Provide Specific Direction to the NRC, National Labs, and Department of Energy. Congress must explicitly state its intentions for the fast-track program and make funding contingent on the NRC, national labs, and DOE to organizing themselves to achieve the objective of early completion of new reactor construction.

2. Adequately Fund. If Congress is serious about reducing the time it takes to permit and build new reactors, it must give NRC, the national labs, and the DOE the resources and regulatory flexibility they need to get the job done. Rebuilding America's energy infrastructure is exactly the kind of direction that each of these institutions should be working toward.

Many Benefits, Few Drawbacks

Many in Congress have begun to realize that the nation's energy, economic, security, and environmental objectives cannot be met without nuclear power. This has led to multiple initiatives to restart the industry in the U.S. Unfortunately, many of these plans rely heavily on subsidies and are not sustainable. However, instituting a program to fast-track the notoriously arduous process of permitting new plants would demonstrate Congress' commitment to nuclear power and provide the regulatory stability that investors need to grow the industry. Furthermore, it would provide a common purpose around which America's energy-related institutions could organize. And finally, it would provide the information necessary to bring about comprehensive regulatory reform that the nation needs for a nuclear renaissance to take hold.

Jack Spencer is Research Fellow in Nuclear Energy in the Thomas A. Roe Institute for Economic Policy Studies at The Heritage Foundation.

Omnibus Public Lands Package Fails House

FOR IMMEDIATE RELEASE
March 11, 2009
2:00 PM


CONTACT: American Rivers
David Moryc, American Rivers, 503-307-1137 ext. 3069
Caitlin Jennings, American Rivers, 202-347-7550 ext. 3100
Omnibus Public Lands Package Meets Opposition in the House
The House stops legislation that would protect over 350,000 acres along 86 rivers

WASHINGTON - March 11 - The House of Representatives rejected legislation today that would have included the second largest Wild and Scenic package in history. The House voted on S. 22, the Omnibus Public Land Management Act of 2009, under a suspension of the rules. Unfortunately, the bill was defeated 282-144, just two votes shy of the necessary two-thirds of the Representatives present.

The bipartisan S.22, which passed the Senate with 73 votes to 21, seeks to safeguard over 1,100 miles of rivers in Oregon, Idaho, Arizona, Wyoming, Utah, Vermont, and Massachusetts. The legislation also includes important protections for 350,000 acres of land along 86 new Wild and Scenic Rivers and it also contains new Wilderness designations for over two million acres of public land.

"While we are very disappointed that the House chose not to protect these national treasures today, we hope Speaker Pelosi and Chairman Rahall will bring the bill up for another vote in the near future," said David Moryc, Senior Director of River Protection at American Rivers. "We are very grateful to the Members who supported this bill today and to the sponsors of the Wild and Scenic provisions on both sides of the aisle for their continued efforts to pass S. 22."

A Wild and Scenic designation creates a protected buffer along both sides of a river, blocks dams and other harmful water projects, and preserves a river's free-flowing nature. It also helps protect and improve water quality, as well as the river's unique historic, cultural, scenic, ecological, and recreational values.

"From the Snake River headwaters in Wyoming to the desert Southwest's Fossil Creek, to the trout streams of the Rockies, and the popular fishing and paddling streams of the Pacific Northwest, our nation's heritage is knit together by these rivers," said Moryc. "They are the lifeblood of the land and our communities. I hope the House soon realizes that these Wild and Scenic designations would be a tremendous gift to future generations."

###

American Rivers is the only national organization standing up for healthy rivers so our communities can thrive. Through national advocacy, innovative solutions and our growing network of strategic partners, we protect and promote our rivers as valuable assets that are vital to our health, safety and quality of life.

Founded in 1973, American Rivers has more than 65,000 members and supporters nationwide, with offices in Washington, DC and the Mid-Atlantic, Northeast, Midwest, Southeast, California and Northwest regions.

Monday, March 2, 2009

Sarah Susanka's 'Not So Big Remodeling'

Sarah Susanka's 'Not So Big Remodeling': "
Sarah Susanka, author of  "The Not So Big House," jumps into the remodeling market with "Not So Big Remodeling," due next ...
"

Friday, February 27, 2009

The Dwindling Red Spots on the Map - thedailygreen.com

The Dwindling Red Spots on the Map - thedailygreen.com

Posted using ShareThis

GOP must be the change it wants to see

GOP must be the change it wants to see

By Sam Reed, a REP member who is the Secretary of State of Washington State and former president of the National Association of Secretaries of State, published November 19 in the Seattle Post-Intelligencer.

In the aftermath of the Obama Tsunami, Republicans at the state and national level are digging out and correctly spending some quality time analyzing what happened and how to move forward with rethinking, rebranding and repositioning for the days to come.

As one of two statewide Republican elected officials left standing (the estimable Attorney General Rob McKenna is the other), my hope for our Grand Old Party is that party elders, activists and donors resist the ultimately self-defeating instinct to move toward narrow ideological dogma, negativism and unhelpful government-is-bad rhetoric.

I hope the party that I have loved all these decades increasingly will be the idea-rich home of pragmatism and reform, the welcoming party of inclusion and the creative party of can-do problem-solvers. We are, after all, the party of Abraham Lincoln, Teddy Roosevelt and Dan Evans. We have succeeded for 148 years by championing individual freedom and responsibility, equal rights and opportunities for all, fiscal conservatism, strong local and state governments, a vibrant free-enterprise system, conservation of our natural resources and a strong national defense. To cant away from such mainstream American thought and away from the practical, common-sense middle is precisely the wrong approach.

I am quite certain Washingtonians and most Americans are ready for a new generation of post-partisan problem solving. Olympia has had some stellar examples of across-the-aisle cooperation and when Republicans have been at the table on such issues as water rights, construction projects and streamlining government regulations, everyone has benefitted. With the state facing a budget crisis and pressing needs in education, transportation, the environment, jobs and social justice, Olympia needs bipartisan cooperation more than ever.

Yes, Democrats have won the White House, the governor's mansion and legislative majorities. But the election is over and America and Washington need to put politics and division aside and get on with the collaborative and creative act of governing.

Voters expect and deserve results, not sharp elbows and rank partisanship. People want solutions, government that works. A number of Republican governors, including the chief executives of Louisiana, Hawaii and Minnesota, admirably demonstrate this approach. If you look at the common thread of McKenna and myself -- how we approach our duties and how we campaign -- it is that we stress excellence in delivering services and solutions to people, all the people, and not pursuing rigid ideological agendas, bashing government or excluding entire constituencies.

In many ways, our state party is strong and well organized and managed to re-elect our three members of Congress and to increase legislative majorities during the Obama surge. But to grow stronger and to broaden its appeal, the party must provide real solutions and offer a voice for opportunity for all, including women, people of color, gay people and any who have been excluded from full participation in public life and economic success.

Republicans must have something to offer the broad middle class, as well as speak to the aspirations of the less fortunate. We must be "green." We must offer positive ideas for jobs and the economy, health care, energy independence, better schools and transportation, environmental protection and social justice. As Gandhi wisely observed, "We must be the change we wish to see in the world."

If history is any guide, Republicans are not consigned to permanent minority status and will rebound. Republicans' fortunes will be assisted by positive attitudes and helpful contributions to this state and nation.

Tuesday, September 23, 2008

The Case for Terrestrial (a.k.a. Nuclear) Energy

The Case for Terrestrial (a.k.a. Nuclear) Energy
William Tucker, Journalist

William Tucker is a veteran journalist. Educated at Amherst College, his work has appeared in Harper’s, the Atlantic Monthly, the American Spectator, the Weekly Standard, National Review, Reason, the New Republic, Reader’s Digest, the Wall Street Journal, and many other publications. His articles have won the John Hancock Award, the Gerald Loeb Award, the Amos Tuck Award, and he was a finalist for the National Magazine Award. His books include Progress and Privilege: America in the Age of Environmentalism; Vigilante: The Backlash Against Crime in America; and The Excluded American: Homelessness and Housing Policies, which won the Mencken Award. His forthcoming book is entitled Terrestrial Energy: How a Nuclear-Solar Alliance Can Rescue the Planet.


The following is adapted from a lecture delivered at Hillsdale College on January 29, 2008, during a conference on “Free Markets and Politics Today,” co-sponsored by the Center for Constructive Alternatives and the Ludwig von Mises Lecture Series.

There have been a host of debates this year between the Democratic and Republican candidates for president. Many of these candidates believe that among our top priorities is to address global warming by reducing carbon emissions. All or most seem to agree that decreasing America’s energy dependence is another. Yet few if any of the candidates have mentioned that nuclear energy—or, as I prefer, terrestrial energy—could serve both these ends.

Right now there are 103 operating nuclear reactors in America, but most are owned by utilities (which also own coal plants). The few spin-offs that concentrate mainly on nuclear—Entergy, of Jackson, Mississippi, and Exelon, of Chicago—are relatively small players. As for a nuclear infrastructure, it hardly exists. There is only one steel company in the world today that can cast the reactor vessels (the 42-foot, egg-shaped containers at the core of a reactor): Japan Steel Works. As countries around the world begin to build new reactors, the company is now back-ordered for four years. Unless some enterprising American steel company takes an interest, any new reactor built in America will be cast in Japan.

This is an extraordinary fate for what was once regarded as an American technology. France, China, Russia, Finland, and Japan all perceive the enormous opportunity that nuclear energy promises for reducing carbon emissions and relieving the world’s energy problems as reflected in recent soaring oil prices. Yet in America, we remain trapped in a Three Mile Island mentality, without even a public discussion of the issue. As folk singer Ani Di-Franco puts it, the structure of the atom is so perfect that it is “blasphemy / To use it to make bombs / Or electricity.”

It is time to step back and question whether this prejudice makes sense.
Fossil Fuels

All living things exist by drawing energy from their environment and discarding part of it as “waste,” so there is nothing inherently shameful about energy consumption. Almost all our energy derives ultimately from the sun. Plants store solar energy by transforming it into large carbon-chain molecules (the process we call photosynthesis). The entire animal kingdom draws its energy from this process by “eating” this stored solar energy. About 750,000 years ago, early humans discovered that they could also draw solar energy from a chain reaction we call “fire.” When heated, the stored energy in carbon chains is released. This heat energy can break down other carbon chains, which causes combustion. Fire has been the principle source of energy throughout most of human history. When historian William Manchester wrote a book about the Middle Ages called A World Lit Only By Fire, he was describing the world of only 700 years ago.

All this began to change about 400 years ago when human beings discovered an older source of stored solar energy—coal. Our most common fossil fuel, coal is the compressed remains of vegetable matter that covered the earth 300-400 million years ago. Coal is superabundant and we will probably never run out of it. It was the fuel of the Industrial Revolution, and it is still the world’s largest source of energy. It is also the most environmentally destructive substance ever utilized. The EPA estimates that it kills 30,000 Americans each year through lung diseases (and in China it is doing far worse). It is also the world’s principal source of carbon dioxide emissions.

Oil, another fossil fuel, is rarer and is believed to be the remains of organisms that lived in shallow seas during the age of the dinosaurs. It was first drilled in 1859, but was used only for lighting and lubrication until the invention of the automobile. Now it constitutes 40 percent of our energy consumption and is perhaps the most difficult fuel to replace. American oil production peaked in 1970 and is now declining rapidly—a fact that explains much of our subsequent foreign policy. The Arab oil embargo occurred three years following the peak, when the producing states realized we were vulnerable. The question now is whether world production will reach a similar peak and decline. As Matthew Simmons has written: “We won’t know until we see it in the rearview mirror.” If it does come, it may not look much different from the quadrupling of oil prices we have witnessed in the last three years.

Natural gas is generally considered the most environmentally benign of the fossil fuels. It gives off little pollution and only about half the greenhouse gas of coal. Natural gas was put under federal regulation in the 1950s, so that by the 1970s we were experiencing a supply shortage. Deregulation in the ,80s led to almost unlimited supplies in the ,90s. Then we began the fateful practice of using gas to produce electricity, resulting in a price crunch and the loss of many gas-dependent industries, such as fertilizer and plastics factories, which have since moved to Mexico and Saudi Arabia to be near supplies. Now American gas production seems to have peaked and we are importing 15 percent of our consumption from Canada. Huge gas supplies have been discovered in Russia and the Middle East, but will not do us much good since gas cannot be easily transported over water. Thus China, India and Europe will be able to buy pipeline gas much more cheaply and are already out-competing us on the world market.
Alternative Fuels

Given the precarious state of these fossil fuels, people have begun talking of “alternative” and “renewable” fuels—water, sun and wind. The term “renewable” is somewhat misleading: no energy is “renewable” insofar as energy cannot be recycled (this is the Second Law of Thermodynamics). The term “renewable” usually describes tapping flows of solar energy that are supposedly “free.” But coal and oil in the ground are also free. It just takes work—and energy—to recover them. So, too, solar “renewables” can only be gathered at a cost. They are often limited and may require extravagant use of other resources—mainly land.

What about water? Hydroelectricity is a form of solar energy. The sun evaporates water, which falls as rain and then flows back to the sea, creating kinetic energy. Rivers have been tapped since Roman times and, beginning in the 19th century, dams were built to store this solar energy. Hydroelectric dams provided 30 percent of our electricity in the 1930s, but the figure has declined to ten percent. And all the good dam sites are now taken.

What about wind? Wind energy has captured the imagination of the public and is touted by many as the fastest growing energy source in the world. All of this is driven by government mandates—tax credits and “renewable portfolio” laws that require utilities to buy non-fossil sources of power. The problem with wind is that it is completely unpredictable. Our electrical grid is one giant machine interconnected across the country, in which voltage balances must be carefully maintained in order to avoid damaging electrical equipment or losing data on computer circuits. Wind irregularities can be masked up to around 20 percent, but after that they become too disruptive. At best, therefore, wind will only be able to provide the 20 percent “spinning reserve” carried by all utilities. In addition, windmills are large and require lots of land. The biggest now stand 65 stories tall—roughly the height of New York’s Trump Tower—and produce only six megawatts, or about 1/200th the output of a conventional power plant. In the East, most are sited on mountaintops, since that is where the wind blows strongest.

What about the sun? Solar energy is very diffuse. A square-meter card table receives enough sunlight to run only four 100-watt electric bulbs. At best, solar could provide our indoor lighting, which consumes about ten percent of our electricity. But keep in mind: gathering and storing solar energy requires vast land areas.

Sunshine can be harnessed directly in two ways—as thermal heat or through photovoltaics, the direct production of electricity. In the 1980s, California built a Power Tower that focused hundreds of mirrors on a single point to boil water to drive a turbine. The facility covered one-fifth of a square mile and produced ten megawatts. It was eventually closed down as uneconomical. Last year, when Spain opened an identical Power Tower in Seville, U.S. News & World Report ran a cover story hailing it as a “Power Revolution.” That facility, of course, is completely subsidized by the government.

Photovoltaic cells have more promise. They are thin wafers where solar radiation knocks the electrons off silicon atoms, producing an electric current. At present, an installation about half the size of a football field could power one suburban home—when the sun shines, of course. The problem is that photovoltaics are enormously expensive; using them to provide one-quarter of an average home’s electricity requires investing around $35,000. Their greatest benefit is that they are able to provide electricity precisely when it is most needed—on hot summer afternoons when air conditioning produces peak loads.
Nuclear or Terrestrial Energy

There is one other form of alternative energy often mistakenly grouped with solar: geothermal energy. Geothermal is produced when the natural heat of the earth comes in contact with groundwater. This can produce geysers and “fumaroles”—steam leaks that are now being harnessed to produce electricity.

Where does this heat come from? Temperatures at the earth’s core reach 7,000 degrees Centigrade, hotter than the surface of the sun. Some of this heat comes from gravitational pressures and the leftover heat from the collisions of astral particles that led to the formation of the earth. But at least half of it (we don’t know the precise percentage) comes from the radioactive breakdown of thorium and uranium within the earth’s mantle. This is “terrestrial energy,” and a nuclear reactor is simply the same process carried out in a controlled environment. In order to harness terrestrial energy in the form of uranium isotopes, we mine it, bring it to the surface, concentrate it, and initiate a chain reaction that releases stored energy in the form of heat—the very same process as that used to harness solar energy from coal.

When Albert Einstein signed the letter to President Roosevelt informing him of the discovery of nuclear energy, he turned to some fellow scientists and said: “For the first time mankind will be using energy not derived from the sun.” This possibility emerged in 1905, when Einstein posited that energy and matter are different forms of the same thing and that energy could be converted to matter and matter to energy (as reflected in the famous equation E = mc2). The co-efficient, c2, is the speed of light squared, which is a very, very large number. What it signifies is that a very, very small amount of matter can be converted into a very, very large amount of energy. This is good news in terms of our energy needs and the environment. It means that the amount of fuel required to produce an equivalent amount of energy is now approximately two million times smaller.

Consider: At an average 1,000 megawatt coal plant, a train with 110 railroad cars, each loaded with 20 tons of coal, arrives every five days. Each carload will provide 20 minutes of electricity. When burned, one ton of coal will throw three tons of carbon dioxide into the atmosphere. We now burn 1 billion tons of coal a year—up from 500 million tons in 1976. This coal produces 40 percent of our greenhouse gases and 20 percent of the world’s carbon emissions.

By contrast, consider a 1000 megawatt nuclear reactor. Every two years a fleet of flatbed trucks pulls up to the reactor to deliver a load of fuel rods. These rods are only mildly radio-active and can be handled with gloves. They will be loaded into the reactor, where they will remain for six years (only one-third of the rods are replaced at each refueling). The replaced rods will be removed and transferred to a storage pool inside the containment structure, where they can remain indefinitely (three feet of water blocks the radiation). There is no exhaust, no carbon emissions, no sulfur sludge to be carted away hourly and heaped into vast dumps. There is no release into the environment. The fuel rods come out looking exactly as they did going in, except that they are now more highly radioactive. There is no air pollution, no water pollution, and no ground pollution.
Objections to Nuclear Energy

What are the potential problems with nuclear power?

First, some fear that a nuclear reactor might explode. But this is impossible. Natural uranium is made of two isotopes—U-235 and U-238 (the latter having three more neutrons). Both are radioactive—meaning they are constantly breaking down into slightly smaller atoms—but only U-235 is fissile, meaning it will split almost in half with a much larger release of energy. Because U-235 is more highly radioactive, it has almost all broken down already, so that it now makes up only seven-tenths of a percent of the world’s natural uranium. In order to set off a chain reaction, natural uranium must be “enriched” so that U-235 makes up a larger percentage. Reactor grade uranium—which will simmer enough to produce a little heat—is three percent U-235. In order to get to bomb grade uranium—the kind that will explode—uranium must be enriched to 90 percent U-235. Given this fact, there is simply no way that a reactor can explode.

On the other hand, a reactor can “melt down.” This is what happened at Three Mile Island. A valve stuck open and a series of mistakes led the operators to think the core was overflowing when it was actually short of cooling water. They further drained the core and about a third of the core melted from the excess heat. But did this result in a nuclear catastrophe? Hardly. The public was disconcerted because no one was sure what was happening. But in the end the melted fuel stayed within the reactor vessel. Critics had predicted a “China syndrome” where the molten core would melt through the steel vessel, then through the concrete containment structure, then down into the earth where it would hit groundwater, causing a steam explosion that would spray radioactive material across a huge area. In fact, the only radioactive debris was a puff of steam that emitted the same radiation as a single chest x-ray. Three Mile Island was an industrial accident. It bankrupted the utility, but no one was injured.

This of course was not the case in Chernobyl, where the Soviet designers didn’t even bother building a concrete containment structure around the reactor vessel. Then in 1986, two teams of operators became involved in a tussle over use of the reactor and ended up overheating the core, which set fire to the carbon moderator that facilitates the chain reaction. (American reactors don’t use carbon moderators.) The result was a four-day fire that spewed radioactive debris around the world. More fallout fell on Harrisburg, Pennsylvania, from Chernobyl than from Three Mile Island. With proper construction such a thing could never happen.

Another objection to nuclear power is the supposed waste it produces. But this is a mischaracterization. A spent fuel rod is 95 percent U-238. This is the same material we can find in a shovel full of dirt from our back yards. Of the remaining five percent, most is useful, but small amounts should probably be placed in a repository such as Yucca Mountain. The useful parts—uranium-235 and plutonium (a manmade element produced from U-238)—can be recycled as fuel. In fact, we are currently recycling plutonium from Russian nuclear missiles. Of the 20 percent of our power that comes from nuclear sources, half is produced from recycled Russian bombs. Many of the remaining isotopes are useful in industry or radiological medicine—now used in 40 percent of all medical procedures. It is only cesium-137 and strontium-90, which have half-lives of 28 and 30 years, respectively, that need to be stored in protective areas.

Unfortunately, federal regulations require all radioactive byproducts of nuclear power plants to be disposed of in a nuclear waste repository. As a result, more than 98 percent of what will go into Yucca Mountain is either natural uranium or useful material. Why are we wasting so much effort on such a needless task? Because in 1977, President Carter decided to outlaw nuclear recycling. The fear then was that other countries would steal our plutonium to make nuclear bombs. (India had just purloined plutonium from a Canadian-built reactor to make its bomb.) This has turned out to be a false alarm. Countries that have built bombs have either drawn plutonium from their own reactors or—as Iran is trying to do now—enriched their own uranium. Canada, Britain, France and Russia are all recycling their nuclear fuel. France has produced 80 percent of its electricity with nuclear power for the last 25 years. It stores all its high-level “nuclear waste” in a single room at Le Havre.
Conclusion

The U.S. currently gets 50 percent of its electricity from coal and 20 percent from nuclear reactors. Reversing these percentages should become a goal of both global warming advocates and anyone who wants to reduce America’s dependence on foreign oil (the latter since a clean, expanded electrical grid could anchor a fleet of hydrogen or electric cars). Contrary to what some critics charge, this would not require massive subsidies or direct intervention by the government. Indeed, the nuclear industry has gone through an astounding revival over the past decade. The entire fleet of 103 reactors is up and running 90 percent of the time. Reactors are making money hand-over-fist—so much so that the attorney general of Connecticut recently proposed a windfall profits tax on them! The industry is poised for new construction, with proposals for four new reactors submitted to the Nuclear Regulatory Commission and almost 30 waiting in the wings.

The rest of the world is rapidly moving toward nuclear power. France, Russia and Japan are not only going ahead with their own nuclear programs, but selling their technology in the developing world. America, which once dominated this technology, is being left behind. The main culprit is public fear. Nuclear technology is regarded as an illegitimate child of the atomic bomb, a Faustian bargain, a blasphemous tinkering with nature. It is none of these. It is simply a natural outgrowth of our evolving understanding of the universe. The sun has been our prime source of energy throughout human history, but energy is also generated in the earth itself. It is time to avail ourselves of this clean, safe terrestrial energy.

Reprinted by permission from Imprimis, a publication of Hillsdale College.