Spatial and temporal distribution of energy
Description
Studies of the spatial and temporal distribution of microscopic radiation doses lead to potentially important questions regarding conventional approaches to radiation protection. The short ranges of alpha-particle and Auger-electron emissions from radionuclides lead to uncertainties in assessing their hazards. The conventional extrapolations from intermediate doses to low doses and dose rates are questioned by observed dose-rate effects in the so-called initial slope, by the total lack of data for single tracks in cells and by the possibility of multiple-cell effects. At all subcellular levels, even down to DNA, high linear-energy-transfer (LET) radiations can produce unique initial damage, different from that possible with low-LET radiations, and therefore may even, in principle, produce unique final biological effects. This questions simple extrapolations from low- to high-LET radiations and the application of universal quality factors to diverse effects. Further understanding of these questions could lead, in future, to substantial increases or decreases in estimations of risk
Additional details
Publishing Information
- Journal Title
- Health Physics
- Journal Volume
- 55
- Journal Issue
- 2
- Series
- Health Phys.
- Journal Page Range
- 231-240
- ISSN
- 0017-9078
- CODEN
- HLTPA
INIS
- Country of Publication
- United States
- Country of Input or Organization
- United States
- INIS RN
- 20015497
- Subject category
- S63: RADIATION, THERMAL, AND OTHER ENVIRONMENTAL POLLUTANT EFFECTS ON LIVING ORGANISMS AND BIOLOGICAL MATERIALS;
- Descriptors DEI
- ALPHA PARTICLES; BIOLOGICAL RADIATION EFFECTS; DOSE-RESPONSE RELATIONSHIPS; LET; RADIATION DOSES; RADIATION HAZARDS; RADIATION MONITORING; RADIATION PROTECTION; RADIOBIOLOGY; SPATIAL DISTRIBUTION
- Descriptors DEC
- BIOLOGICAL EFFECTS; BIOLOGY; CHARGED PARTICLES; DISTRIBUTION; ENERGY TRANSFER; HAZARDS; HEALTH HAZARDS; HELIUM IONS; IONIZING RADIATIONS; IONS; MONITORING; RADIATION EFFECTS; RADIATIONS