The
US Navy has recently revealed that they have developed a technology that can produce carbon neutral synthetic fuels from seawater by simply using a carbon neutral source of electricity. This technology takes advantage of the fact that the
concentration of bound and dissolved carbon dioxide in seawater is approximately 140 times greater than in the atmosphere. At the same time, the hydrogen contained in the seawater could be extracted through electrolysis and synthesized with CO2 to manufacture a variety of hydrocarbon fuels.
While the US Navy is focusing its attention on using
nuclear or renewable OTEC technologies for manufacturing
jet fuel at sea, the Navy's new technology could be easily utilized to manufacture other carbon neutral fuels such as
methanol, dimethyl ether, diesel fuel, and even gasoline.
The production of
methanol at sea could allow floating nuclear power plants to ship this carbon neutral fuel to practically any coastal port on Earth-- for
electricity production and for ground transportation fuel. Methanol tankers already exist and come in a wide variety of sizes for transporting large quantities of methanol.
Methanol is relatively non-corrosive fuel that remains at a liquid state at room temperature and atmospheric pressure. Methanol requires no specialized containment and can be handled the same way as other oil based liquid fuels. Since methanol is easily biodegradable in marine waters, an accidental tanker spill would be much less damaging to the marine environment and to coastal beaches than an oil or gasoline spill.
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| Japanese Methanol Tanker (Credit: SHIN KURUSHIMA DOCKYARD CO) |
For electricity production, methanol can be easily used in modified natural gas turbines. Tests have shown that, compared to natural gas, methanol produces a higher electrical power output due to the higher mass flow, and significantly reduces NOx and while also producing no SO2 emissions at all. The clean burning characteristic of methanol are also expected to reduce maintenance costs for a converted natural gas turbine. So using carbon neutral methanol for electric power production would not only reduce global warming but would also mean cleaner air in general. Methanol can be easily pumped via pipelines to modified turbine power plants located in inland regions for distribution to electric power all over the mainland United States. Of course, on islands such as Hawaii, methanol could finally end the islands' dependence on high priced oil for electricity.
Methanol can also be used in fuel cell power plants which an be used for back up electricity for buildings or for homes. And methanol fuel cells are currently used to power portable electronic devices.
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| Methanol electric power plant at Point Lisas, Trinidad (Credit: Mendenhall Technical Services) |
Methanol can also be used to power seagoing vessels. And some ocean vessels have already been designed to use methanol in order to reduce pollution from vessels using diesel fuel.
Methanol can also be easily converted into
dimethyl ether (DME) through dehydration over a catalyst. Only moderate modifications are required to enable a diesel fuel engine to burn dimethyl ether. And
dimethyl ether is a much cleaner fuel than diesel fuel for trucks and other heavy ground vehicles.
The further dehydration of dimethyl ether can convert it into
high octane gasoline. This
carbon neutral gasoline can be either mixed with existing fossil fuel derived sources of gasoline or can be used to completely replace gasoline derived from fossil fuels.
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| Conversion of Methanol into Dimethyl Ether and Gasoline for ground transportation vehicles |
So nuclear power plants floating far out to sea in the worlds oceans could potentially supply carbon neutral fuels for both electricity and transportation fuel for the entire planet. Such Ocean Nuclear facilities could be easily designed to withstand the havoc of hurricanes, cyclones, and other tropical storms while also being inherently immune to earthquakes and tsunamis. But storm related production disruptions could easily be avoided by locating such facilities in regions where the frequency of tropical storm formation is very infrequent.
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| The colored areas are regions where cyclones and hurricanes are most frequently created in the world's oceans (Credit: National Oceanic and Atmospheric Administration) |
But Ocean Nuclear complexes could still be located at latitudes where winter snow could be avoided in order to attract more employees to work at the remote ocean facilities. Semi-permanently docked
cruise ships could be purchased by a large Ocean Nuplex to provide
housing,
recreation, restaurants, shopping malls, small hospitals and schools for its nuclear power plant and synfuel operators and
engineers and their families.
Since small nuclear reactors will be designed to produce
300 MWe of electricity or less, that means that
thousands of small nuclear reactors would have to be mass produced and deployed to sea in order to replace America's transportation fuel needs alone. If nuclear manufactured methanol were also required to replace all of America's peak load electricity production then
several hundred more small reactors would also have to be manufactured. Of course, if the US wanted to export carbon neutral fuels to other countries then
thousands more small nuclear power plants would have to be built and deployed to sea.
Centrally manufacturing dozens or even hundreds of small nuclear reactors in the US every year would dramatically reduce the capital cost nuclear reactors and, therefore, the cost of synthetic fuels being produce from these Ocean Nuclear facilities. This would mean millions of high wage manufacturing jobs being created on the American continent for the production of floating nuclear power plants that most Americans would never see.
Such nuclear ocean synfuel production facilities could be clustered
in an area less than 100 square kilometers (a 10 kilometers by 10
kilometers) while producing 25 to 50 GWe of power for synfuel production.
Large remote Ocean Nuplexes could also be used to produce
jet fuel, and even
ammonia for fertilizer (synthesis of atmospheric nitrogen combined with hydrogen extracted from seawater through electrolysis).
US Navy nuclear aircraft carriers could stop by such Ocean Nuclear complexes to refuel their vessels with
jet fuel and also for some R&R for the crew at one or more of the Nuplex cruise ships which could feature a large variety of entertainment and shops which could add more revenue for the Ocean Nuclear Complex.
Security for Ocean Nuclear facilities could also be provided by the US Coast Guard, easily affordable by a large nuclear complex without any tax payer expense. They would also, of course, have their own security forces.
There might also be logistical advantages for locating floating uranium extraction platforms within a
few dozen or a few hundred kilometers of an Ocean Nuclear Complex. There's more than
4 billion tonnes of natural uranium in seawater, enough to power and fuel all of human civilization for
over 3000 years. And if the spent fuel is eventually recycled in next generation breeder reactors then uranium could supply civilization with power for more than
300,000 years. However, since the uranium content of the oceans will be resupplied with its current uranium content in less than
150,000 years, marine uranium could, in theory, supply human energy needs for as long as humans remain on Earth. Of course, this doesn't even include terrestrial thorium supplies and potential extraterrestrial uranium and thorium supplies within the solar system in the future.
Floating airports located perhaps
10 to 100 kilometers away from an Ocean Nuplex could take advantage of their proximity to
synthetic jet fuel, cheap electricity, and desalinated water supplies. Underwater electric power cables that
stretch more than 500 kilometers away from their power source are already in existence.
Floating space launch facilities in the future could also take advantage of Ocean Nuclear complexes located near the
Earth's equatorial regions to take full delta-v advantage of the Earth's rotation.
Launch facilities located less than 80 kilometers away from an Ocean Nuplex could utilize the abundant hydrogen and oxygen produced at the floating nuclear facility-- for cryogenic rocket fuel.
Ironically, Ocean Nuclear facilities might also attract new communities of people living on
floating artificial islands. Such floating island communities might be located just
100 to 500 kilometers away from an Ocean Nuclear complex, taking advantage of the cheap nuclear electricity and high paying jobs-- along with the warm climate and spectacular ocean views! But even at just 100 kilometers away from the floating
Nuplex, from the balcony of your floating home, you'd still be at least 70 kilometers away from from
being able to see the nuclear power facility over the curve of the beautiful blue horizon!