Some Nuclear Calculations of U235-D2O Gaseous-core Cavity Reactors

Some Nuclear Calculations of U235-D2O Gaseous-core Cavity Reactors PDF Author: Robert G. Ragsdale
Publisher:
ISBN:
Category : Gaseours diffusion plants
Languages : en
Pages : 36

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Book Description
The results of a multigroup, diffusion theory study of spherical gaseous-core cavity reactors are presented in this report. The reactor cavity of gaseous U235 is enclosed by a region of hydrogen gas and is separated from an external D2O moderator-reflector by a zirconium structural shell. Some cylindrical reactors are also investigated. A parametric study of spherical reactors indicates that, for the range of variables studied, critical mass increases as: (1) Fuel region is compressed within the reactor cavity, (2) moderator thickness is decreased, (3) structural shell thickness is increased, and (4) moderator temperature is increased. A buckling analogy is used to estimate the critical mass of fully reflected cylindrical reactors from spherical results without fuel compression. For a reactor cavity of a 120-centimeter radius uniformly filled with fuel, no structural shell, a moderator temperature of 70 F, and a moderator thickness of 100 centimeters, the critical mass of a spherical reactor is 3.1 kilograms while that of a cylinder with a length-to-diameter ratio of 1.0 (L/D = 1) is approximately 3.8 kilograms and, with L/D = 2, 5.9 kilograms. For the range of variables considered for U235-D2O gaseous-core cavity reactors, the systems are characterized by 95 to 99 percent thermal absorptions, with the flux reaching a maximum in the moderator about 10 to 15 centimeters from the reactor cavity.

Some Nuclear Calculations of U235-D2O Gaseous-core Cavity Reactors

Some Nuclear Calculations of U235-D2O Gaseous-core Cavity Reactors PDF Author: Robert G. Ragsdale
Publisher:
ISBN:
Category : Gaseours diffusion plants
Languages : en
Pages : 36

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Book Description
The results of a multigroup, diffusion theory study of spherical gaseous-core cavity reactors are presented in this report. The reactor cavity of gaseous U235 is enclosed by a region of hydrogen gas and is separated from an external D2O moderator-reflector by a zirconium structural shell. Some cylindrical reactors are also investigated. A parametric study of spherical reactors indicates that, for the range of variables studied, critical mass increases as: (1) Fuel region is compressed within the reactor cavity, (2) moderator thickness is decreased, (3) structural shell thickness is increased, and (4) moderator temperature is increased. A buckling analogy is used to estimate the critical mass of fully reflected cylindrical reactors from spherical results without fuel compression. For a reactor cavity of a 120-centimeter radius uniformly filled with fuel, no structural shell, a moderator temperature of 70 F, and a moderator thickness of 100 centimeters, the critical mass of a spherical reactor is 3.1 kilograms while that of a cylinder with a length-to-diameter ratio of 1.0 (L/D = 1) is approximately 3.8 kilograms and, with L/D = 2, 5.9 kilograms. For the range of variables considered for U235-D2O gaseous-core cavity reactors, the systems are characterized by 95 to 99 percent thermal absorptions, with the flux reaching a maximum in the moderator about 10 to 15 centimeters from the reactor cavity.

Some Nuclear Calculations of U235-D2O Gaseous-core Cavity Reactors

Some Nuclear Calculations of U235-D2O Gaseous-core Cavity Reactors PDF Author: Robert G. Ragsdale
Publisher:
ISBN:
Category : Gaseours diffusion plants
Languages : en
Pages : 38

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Book Description
The results of a multigroup, diffusion theory study of spherical gaseous-core cavity reactors are presented in this report. The reactor cavity of gaseous U235 is enclosed by a region of hydrogen gas and is separated from an external D2O moderator-reflector by a zirconium structural shell. Some cylindrical reactors are also investigated. A parametric study of spherical reactors indicates that, for the range of variables studied, critical mass increases as: (1) Fuel region is compressed within the reactor cavity, (2) moderator thickness is decreased, (3) structural shell thickness is increased, and (4) moderator temperature is increased. A buckling analogy is used to estimate the critical mass of fully reflected cylindrical reactors from spherical results without fuel compression. For a reactor cavity of a 120-centimeter radius uniformly filled with fuel, no structural shell, a moderator temperature of 70 F, and a moderator thickness of 100 centimeters, the critical mass of a spherical reactor is 3.1 kilograms while that of a cylinder with a length-to-diameter ratio of 1.0 (L/D = 1) is approximately 3.8 kilograms and, with L/D = 2, 5.9 kilograms. For the range of variables considered for U235-D2O gaseous-core cavity reactors, the systems are characterized by 95 to 99 percent thermal absorptions, with the flux reaching a maximum in the moderator about 10 to 15 centimeters from the reactor cavity.

NASA Technical Note

NASA Technical Note PDF Author:
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ISBN:
Category :
Languages : en
Pages : 442

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Two-dimensional Criticality Calculations of Gaseous-core Cylindrical-cavity Reactors

Two-dimensional Criticality Calculations of Gaseous-core Cylindrical-cavity Reactors PDF Author: Robert E. Hyland
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Category : Criticality (Nuclear engineering)
Languages : en
Pages : 40

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Nuclear Science Abstracts

Nuclear Science Abstracts PDF Author:
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Category : Nuclear energy
Languages : en
Pages : 1684

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Monthly Catalog of United States Government Publications PDF Author:
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Category : Government publications
Languages : en
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Category : Nuclear engineering
Languages : en
Pages : 876

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Category : Nuclear engineering
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Guides to Information Sources in Science and Technology: A guide to information sources in space science and technology, ed. by B. M. Fry and F. E. Mohrhardt

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Category : Science
Languages : en
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Research on Uranium Plasmas and Their Technological Applications

Research on Uranium Plasmas and Their Technological Applications PDF Author: Karlheinz Thom
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Category : Fluid fuel reactors
Languages : en
Pages : 442

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Uranium plasmas applied to nuclear rocket engines, MHD generators, nuclear lasers, and plasma stability and flow - conference.