Showing posts with label earthquake. Show all posts
Showing posts with label earthquake. Show all posts

March 17, 2011 - how nuclear power works in 250 words

Thursday, March 17, 2011

As we watch the situation in Japan, where a number of reactors at the Fukushima Daiichi power plant have been damaged by the earthquake and tsunami, I've been looking for a simple explanation of how nuclear power plants -- in Japan and here in the U.S. -- work.  Perhaps because it's a complex technology, or because there are a variety of ways humans use nuclear fission to generate electricity, I haven't found a very simple explanation -- so I decided to write one up myself.
Most nuclear power plants use the energy released by fission -- splitting atoms (usually uranium or plutonium) to heat water into steam.  The steam spins a turbine, which spins a generator to create electricity.   These turbines work much like other steam turbines found in other thermal electricity plants (such as those powered by biomass, natural gas, or coal).

The reactor is the heart of a nuclear power plant.  This key component differentiates nuclear plants from other thermal generators.  While most thermal generators create or release thermal energy (heat) through combustion, nuclear fission creates thermal energy by splitting atoms.  When one uranium atom splits, it releases heat and several neutrons -- subatomic particles that fly off the split atom.  If one of those neutrons smacks into another uranium atom at the right speed, that atom will then split, releasing more heat -- and importantly, more neutrons.  By controlling the speed at which these splits occur, operators create a sustained but controlled fission chain reaction.

When the heat produced by this chain reaction is absorbed by cooling water (like in your home’s boiler or car's radiator system), the water heats up to between 500 °F and 600 °F.  Depending on the reactor design, this heat either transforms the water into steam (in an open-loop boiling water reactor), or goes through a heat exchanger to create steam in a secondary loop (in a closed-loop pressurized water reactor).  Either way, the steam produced flows through a turbine, which spins a generator to create electricity.

That's an overview of the basics of nuclear power generation.  I've simplified it greatly to make it easier to understand.  If you dig deeper, the details are fascinating, and point to both the challenges and opportunities of harnessing fission to create electricity.

March 15, 2011 - US nuclear industry

Tuesday, March 15, 2011

As Japan assesses the damage from last Friday's magnitude 8.9 earthquake and tsunami, one element of the disaster that remains ongoing involves damage to several of that nation's nuclear power plants.  Utility Tokyo Electric Power has imposed blackouts due to a 25 percent capacity shortage, which may be the least of the concerns stemming from the damaged nuclear plants.  Concerns over meltdown and release of radioactive materials loom larger.

A recent snapshot of the price of gas in Maine: $3.539 per gallon for 87 octane regular.


In the immediate wake of the situation in Japan, it may be helpful to consider a snapshot of the U.S. nuclear power industry.  According to the U.S. Energy Information Administration (1 page PDF), in 2009 the U.S. nuclear industry was composed of 104 generators with an aggregate nameplate capacity of 106,618 megawatts.  This represents about 9.5% of the nation's 1,121,686 MW total installed nameplate capacity.  Electricity derived from nuclear power thus ranks third in nameplate capacity behind natural gas (459,803 MW) and coal (338,723 MW).

Nuclear power plays an even bigger role in the U.S. electric industry on a megawatt-hour basis.  Remember that megawatts of capacity refer to how much energy could be produced at a given moment if all the units ran full-bore, while megawatt-hours of energy refer to how much energy was actually produced.  In 2010, nuclear power produced 981,815 thousand MWh out of a total 4,120,028 thousand MWh produced -- or about 24% of the nation's total electric generation.  This is due in part to the high capacity factor of nuclear power, meaning that nuclear plants tend to run near their full capacity and have minimal downtime.

Let's keep Japan in our thoughts and hope the people and the nation recover well and quickly.