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THE QUEST FOR THE LAWS GOVERNING RADIATIONS AND THE SEARCH FOR BENEFICIAL INNOVATIONS

机译:辐射法的追求和有益的创新

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The last few years of the 19th Century saw the initial discoveries of ionizing radiation. These seminal discoveries were followed by an era of intensive studies of the physics related to radiation and clinical applications. The quantum theory revolutionized the ideas about nuclear structure and had a major impact on the physics of radiation. The discoveries of artificial radioactivity and of the neutron and the associated nuclear research have led to the availability of a variety of labeled compounds important to the study of human metabolism. Radioimmunoassay is an example, while other labeled compounds have therapeutic significance. New concepts in the acceleration of electrons and positive ions have contributed to the ability to concentrate radiation energy. New concepts in physics have led to the development of significant and versatile forms of diagnostic imaging. An example is computed tomography. Magnetic resonance is another example of an important physical concept which, decades after its discovery, made possible important applications in imaging and spectroscopy. Unlike ionizing radiation, the less energetic radiofrequency photons can convey information about molecular bonds but do not have sufficient energy to break them. Photon and positron emission scanning and tomography provide external images of internal concentrations of radionuclides, permitting the noninvasive determination of function. Dosimetry is fundamentally important to the diagnostic and therapeutic uses of radiation at both microscopic and macroscopic levels. A variety of radiation measuring instruments have been designed and studied for different purposes, including those based on radiation chemical response. Mammography is just one of the diagnostic applications where dosimetry, detector sensitivity characteristics, the radiation energy spectrum and image resolution are all vital parameters. In radiation treatment, physical and mathematical developments and quantitative radiation biology have increasingly led to optimum conformal radiation treatment, with dosimetry as a guiding parameter. (C) 1993 by Radiation Research Society [References: 59]
机译:19世纪的最后几年见证了电离辐射的最初发现。这些开创性的发现之后,是与辐射和临床应用有关的物理学的深入研究时代。量子理论彻底改变了关于核结构的观念,对辐射物理学产生了重大影响。人工放射性和中子的发现以及相关的核研究导致了对人类新陈代谢研究很重要的各种标记化合物的可用性。放射免疫测定法是一个例子,而其他标记的化合物具有治疗意义。电子和正离子加速方面的新概念有助于集中辐射能。物理学中的新概念导致了诊断成像的显着和通用形式的发展。一个例子是计算机断层摄影。磁共振是重要物理概念的另一个示例,在其发现数十年后,它就使成像和光谱学的重要应用成为可能。与电离辐射不同,能量较低的射频光子可以传达有关分子键的信息,但没有足够的能量来破坏它们。光子和正电子发射扫描和断层扫描可提供放射性核素内部浓度的外部图像,从而可以无创地确定功能。剂量学对于微观和宏观水平的辐射诊断和治疗用途至关重要。已经针对不同目的设计和研究了多种辐射测量仪器,包括基于辐射化学响应的仪器。乳腺摄影只是其中剂量学,探测器灵敏度特性,辐射能谱和图像分辨率都是至关重要的参数的诊断应用程序之一。在放射治疗中,物理和数学的发展以及定量放射生物学已越来越多地以剂量学为指导参数,实现了最佳的保形放射治疗。 (C)1993年,由放射研究学会[参考:59]

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