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Wallace Broecker : ウィキペディア英語版
Wallace Smith Broecker

Wallace Smith Broecker (born November 29, 1931 in Chicago〔(Lamont-Doherty Earth Observatory - The Earth Institute - Columbia University )〕) is the Newberry Professor in the Department of Earth and Environmental Sciences at Columbia University and a scientist at Columbia's Lamont-Doherty Earth Observatory. He developed the idea of a global "conveyor belt" linking the circulation of the global ocean and made major contributions to the science of the carbon cycle and the use of chemical tracers and isotope dating in oceanography. Broecker has received the Crafoord Prize and the Vetlesen Prize.
==Areas of research==
Broecker's areas of research include Pleistocene geochronology, radiocarbon dating and chemical oceanography, including oceanic mixing based on stable and radioisotope distribution. This includes research on the biogeochemical cycles of the element carbon and on the record of climate change contained in polar ice and ocean sediments.
Broecker has authored over 450 journal articles and 10 books. He is perhaps best known for his discovery of the role played by the ocean in triggering the abrupt climate changes which punctuated glacial time, in particular the development and popularization of the idea of a global "conveyor belt" linking the circulation of the global ocean. However, his contributions stretch far beyond the "conveyor"; his work is the foundation of carbon cycle science, and his applications of radiocarbon to paleoceanography are landmarks in the field. His work with chemical tracers in the ocean is integral to modern chemical oceanography; indeed, his textbook "Tracers in the Sea", authored with Tsung-Hung Peng, is still cited in the contemporary literature 25 years after its publication.
Broecker writes about his research, on mode changes in the thermohaline circulation: "We have clear evidence that different parts of the earth's climate system are linked in very subtle yet dramatic ways. The climate system has jumped from one mode of operation to another in the past. We are trying to understand how the earth's climate system is engineered, so we can understand what it takes to trigger mode switches. Until we do, we cannot make good predictions about future climate change." 〔https://webcenter.ldeo.columbia.edu/people.nsf/571fc08d39383f1185256efc004fcb7e/85190ba5e1cfe7c685256ef300647df4?OpenDocument〕

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