ANS is committed to advancing, fostering, and promoting the development and application of nuclear sciences and technologies to benefit society.
Explore the many uses for nuclear science and its impact on energy, the environment, healthcare, food, and more.
Explore membership for yourself or for your organization.
Conference Spotlight
2026 ANS Winter Conference & Expo
November 15–18, 2026
Phoenix, AZ|Arizona Grand Resort & Spa
Latest Magazine Issues
Sep 2026
Jan 2026
2026
Latest Journal Issues
Nuclear Science and Engineering
October 2026
Nuclear Technology
Fusion Science and Technology
Latest News
Westinghouse, Nordion, and PSEG team up to produce Co‑60 in the United States
This past January, Westinghouse Electric Company, Nordion, and PSEG Nuclear formalized agreements to implement newly developed cobalt-60 production technology at Units 1 and 2 of PSEG’s Salem nuclear power plant in New Jersey, with the Co-60 to be supplied to Nordion. Through an ongoing joint initiative, the companies aim to harness U.S. pressurized water reactors to produce a key medical isotope and build the first commercial-scale Co-60 production platform in the United States.
H. F. Beeghly
Nuclear Science and Engineering | Volume 7 | Number 1 | January 1960 | Pages 21-25
Technical Paper | doi.org/10.13182/NSE60-A25693
Articles are hosted by Taylor and Francis Online.
In building a nuclear reactor of any type, the stage is reached at which a decision must be made as to what steels can be used in construction of each plant component. Nuclear engineers have recognized the limitations of some of the common steels in nuclear environments and are pointing out ways the steelmaker should go in devising steels with the nuclear and chemical properties more compatible with them. Methods of fabrication, mechanical property data and compositions of carbon and alloy, including low manganese, low residual element steels made for possible nuclear uses are summarized and compared with those of standard grades of carbon and alloy steels. The limitations on composition imposed by nuclear considerations, and selected data on experimental and commercially produced steels made to avoid these limitations, are outlined. Low manganese steels are commercially available; should the need arise, other compositions both carbon and alloy that are now experimental could be made.