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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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發(fā)表于 2025-3-21 18:32:33 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱Neutron Beam Design, Development, and Performance for Neutron Capture Therapy
編輯Otto K. Harling,John A. Bernard,Robert G. Zamenhof
視頻videohttp://file.papertrans.cn/665/664660/664660.mp4
叢書名稱Basic Life Sciences
圖書封面Titlebook: Neutron Beam Design, Development, and Performance for Neutron Capture Therapy;  Otto K. Harling,John A. Bernard,Robert G. Zamenhof Book 199
描述For this Workshop, the organizers have attempted to invite experts from all known centers which are engaged in neutron beam development for neutron capture therapy. The Workshop was designed around a series of nineteen invited papers which dealt with neutron source design and development and beam characterization and performance. Emphasis was placed on epithermal beams because they offer clinical advantages and are more challenging to implement than thermal beams. Fission reactor sources were the basis for the majority of the papers; however three papers dealt with accelerator neutron sources. An additional three invited papers provided a summary of clinical results of Ncr therapy in Japan between 1968 and 1989 and overviews of clinical considerations for neutron capture therapy and of the status of tumor targeting chemical agents for Ncr. Five contributed poster papers dealing 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 of
出版日期Book 1990
關(guān)鍵詞brain; development; dosimetry; radiation; therapy; tumor; Ultrasonography
版次1
doihttps://doi.org/10.1007/978-1-4684-5802-2
isbn_softcover978-1-4684-5804-6
isbn_ebook978-1-4684-5802-2
copyrightPlenum Press, New York 1990
The information of publication is updating

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Clinical Considerations for Neutron Capture Therapy of Brain Tumorsston was a major center for the development and use of x-rays to cure cancer. This was summarized by Dr. Francis H. Williams in his book entitled, “The Roentgen Rays in Medicine and Surgery as an Aid in Diagnosis and as a Therapeutic Agent,” published in 1901. Dr. Williams published some of the firs
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Monte Carlo Methods of Neutron Beam Design for Neutron Capture Therapy at the Mit Research Reactor (of beam analysis provides segregation of each individual dose component, and thereby facilitates beam optimization. The Monte Carlo method is discussed in some detail in relation to NCI’ epithermal beam design. Ideal neutron beams (i.e., plane-wave monoenergetic neutron beams with no primary gamma-r
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Neutron Capture Therapy Beam Design at Harwell radiotherapy facility for the 25-MW research reactor DIDO. The program is well into the survey phase, where the main emphasis is on tailoring the neutron spectrum. The incorporation of titanium and vanadium in an aluminium spectrum shaper in the D.O reflector has been shown to yield a significant r
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Physics Design for the Brookhaven Medical Research Reactor Epithermal Neutron Sourcend implementation of an epithermal-neutron source at the Brookhaven Medical Research Reactor (BMRR). Large aluminum containers, filled with aluminum oxide tiles and aluminum spacers, were tailored to pre-existing compartments on the animal side of the reactor facility. A layer of cadmium was used to
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Research on Neutron Beam Design for BNCT at the Musashi Reactorross-sectional view of the reactor is given in Figure 1. From 1976 through the end of March 1989, ninety-four patients with brain tumors and four patients with melanoma have been treated. Although treatments have been successfully performed since 1976, it is desirable to consider improvements in the
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Neutron Beam Studies for a Medical Therapy Reactorry (INEL). The initial emphasis of the conceptual design was toward the treatment of glioblastoma multiforme and other presently incurable cancers. The design goal of the facility is to provide routine patient treatments both in brief time intervals (~10 minutes) and inexpensively. The conceptual st
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