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What is Leah Cool's address?
Leah Cool's address is ***** Beech St, Wilkes Barre, PA.
What is Leah Cool's age?
Leah Cool's age is 40.
What is Leah Cool's phone number?
Leah Cool's phone number is (570) 208-****.
What is Leah Cool's Instagram?
We've discovered several social media accounts associated with Leah Cool, including @leahncooke, @mulhousecestcool, @leah_cookex, @leahmcooks and others. To explore more of Leah Cool's online presence, click here.
What is Leah Cool's Facebook?
We've discovered several social media accounts associated with Leah Cool, including @leah.cool.7547, @leah.cool.12, @lea.cool.710, @leah.cool.908 and others. To explore more of Leah Cool's online presence, click here.
What is Leah Cool's famous for?
The lead-cooled fast reactor is a nuclear reactor design that features a fast neutron spectrum and molten lead or lead-bismuth eutectic coolant. Molten lead or lead-bismuth eutectic can be used as the primary coolant because especially lead, and to a lesser degree bismuth have low neutron absorption and relatively low melting points. Neutrons are slowed less by interaction with these heavy nuclei and therefore, help make this type of reactor a fast-neutron reactor. In simple terms, if a neutron hits a particle with a similar mass, it tends to lose kinetic energy. In contrast, if it hits a much heavier atom such as lead, the neutron will "bounce off" without losing this energy. The coolant does, however, serve as a neutron reflector, returning some escaping neutrons to the core. Fuel designs being explored for this reactor scheme include fertile uranium as a metal, metal oxide or metal nitride. Smaller capacity lead-cooled fast reactors can be cooled by natural convection, while larger designs use forced circulation in normal power operation, but will employ natural circulation emergency cooling. No operator interference is required, nor pumping of any kind to cool the residual heat of the reactor after shutdown. The reactor outlet coolant temperature is typically in the range of 500 to 600 °C, possibly ranging over 800 °C with advanced materials for later designs. Temperatures higher than 800 °C are theoretically high enough to support thermochemical production of hydrogen through the sulfur-iodine cycle, although this has not been demonstrated.. You can find more here.
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