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Natural and anthropogenic levels of tritium in a Canadian Arctic ice core, Agassiz Ice Cap, Ellesmere Island, and comparison with other radionuclides

Published online by Cambridge University Press:  08 September 2017

Thomas G. Kotzer
Affiliation:
Environmental Research Branch, Atomic Energy of Canada Ltd, Chalk River Laboratories, Chalk River, Ontario K0J 1J0, Canada
Akira Kudo
Affiliation:
Institute for Environmental Chemistry, Mational Research Council of Canada, Ottawa, Ontario K1A 0R6, Canada Reactor Research Institute, Kyoto University, Kumatori, Osaka 590-04, Japan
James Zheng
Affiliation:
Institute for Environmental Chemistry, Mational Research Council of Canada, Ottawa, Ontario K1A 0R6, Canada
Wayne Workman
Affiliation:
Environmental Research Branch, Atomic Energy of Canada Ltd, Chalk River Laboratories, Chalk River, Ontario K0J 1J0, Canada
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Abstract

Numerous studies of the ice caps in Greenland and Antarctica have observed accumulations of transuranic radionuclides and fission products from nuclear weapons testing, particularly during the period 1945–75. Recently, the concentrations of radionuclides in the annually deposited surface layers of Agassiz Ice Cap, Ellesmere Island, Canadian Arctic, from 1945 to the present have been measured and have demonstrated a continuous record of deposition of 137Cs and 239,240Pu in ice and snow. In this study, 3He-ingrowth mass spectrometry has been used to measure the low levels of tritium (3H) in some of these samples. Pre-nuclear-bomb tritium levels in ice-core samples were approximately 12 TU in high-latitude meteoric waters and 3–9 TU in mid-latitude meteoric waters. Comparisons of 3H levels and 3H/137Cs + 239,240Pu ratios, which were quite low during the earliest fission-bomb detonations (1946–51) and substantially higher during thermonuclear hydrogen-fusion bomb testing (1952–64), provide a clear indication of the type of nuclear device detonated. This finding accords with the results from other ice-core studies of the distribution of anthropogenic radionuclides from bomb fallout.

Information

Type
Research Article
Copyright
Copyright © International Glaciological Society 2000
Figure 0

Table 1. Sampling depths, descriptions and tritium concentrations for prepared standard waters and ice-core samples from Agassiz Ice Cap

Figure 1

Fig. 1. Measured tritium-depth profile for ice-core samples from Agassiz Ice Cap, 1930–64. (Numbers beside data points correspond to sample numbers from Table 1; tritium values not decay-corrected.)

Figure 2

Fig. 2. Comparison between (i) tritium levels measured in precipitation and wine samples from mid-latitude meteoric waters, and (ii) tritium levels measured in precipitation and ice-core samples from higher-latitude precipitation. Mid-latitude tritium data adapted from Clark and Fritz (1997). Other symbols used: ■, tritium measurements from this study; ◊, tritium data for Resolute Bay (Canadian Arctic) rain (IAEA Global Network of Isotopes in Precipitation database); ×, tritium data on Greenland ice core (Dye-3) from Koide and others (1982); +, tritium data for snow from Thule, Greenland (Begemann, 1958). Small arrows on bottom of diagram refer to Japan: Nagasaki atom bomb and earliest atmospheric tests of thermonuclear devices, namely, 1. George (75 kilotons, U.S.A.); 2. Ivy-Mike (10 megatons, U.S.A.); 3. RDS-6s (400 kilotons, U.S.S.R.); 4. Castle series, (total 47 megatons, U.S.A); 5. second Soviet test (2 megatons ) (from Clark and Fritz, 1997).

Figure 3

Fig. 3. Comparison between tritium levels (this study) and the concentrations of 137Cs and 239,240 Pu previously measured by Kudo and others (in press) on annually deposited ice samples from several other ice cores taken at the same site on Agassiz Ice Cap. Note units used for tritium levels (Bq L−1) relative to those for transuranic radionuclides (mBq cm−2). For tritium 1 TU = 0.1184 Bq L−1.