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Titlebook: Neutron Beam Design, Development, and Performance for Neutron Capture Therapy; Otto K. Harling,John A. Bernard,Robert G. Zamenhof Book 199

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Investigation of Neutron Beams for the Realization of Boron Neutron Capture Therapy regarding the design of a pure thermal neutron field for neutron capture therapy experiments are reported. Calculations show that a thermal neutron flux of approximately 10. neutrons cm.s. will be generated using a filter made of graphite and bismuth.
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Monte Carlo Methods of Neutron Beam Design for Neutron Capture Therapy at the Mit Research Reactor (ations with measurements, has resulted in an epithermal beam design which is useful for therapy of deep-seated brain tumors. This beam is predicted to be capable of delivering a dose of 2000 RBE-cGy (cJ/kg) to a therapeutic advantage depth of 5.7 cm in polyethylene assuming 30 μ/g .B in tumor with a
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Intermediate Energy Neutron Beams from the MURR desired energy and also a high neutron current. However, installation of this beam will require a significant modification of the thermal column of the MURR. Therefore, a second beam that is less difficult to build and install, but of lower neutron current, has been designed to fit in MURR port F.
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Neutron Capture Therapy Beams at the MIT Research Reactorbrain. On the other hand, the second type of neutron beams have superior therapeutic advantage depths (greater than 6 cm) and good in-phantom therapeutic advantage ratios. Such beams, when used along with bilateral irradiation schemes, would be able to treat tumors at any depth in the brain. Numeric
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with NCT beam design and performance were also presented. A rapporteurs‘ paper was prepared after the Workshop to attempt to summarize the major aspects, issues, and conclusions which resulted from this Workshop. Many people contributed to both the smooth functioning of the Workshop and to the preparation of978-1-4684-5804-6978-1-4684-5802-2
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