ADDITIVELY MANUFACTURED COBALT BURNABLE ABSORBER CAPSULES
A target assembly for producing synthetic radioisotopes of Cobalt is provided. The target assembly comprises an enclosure and an irradiation target material. The enclosure defines a cavity therein and is comprised of an enriched material configured to have a short half-life upon being exposed to a neutron flux. The irradiation target material is comprised of a precursor to Cobalt-60. A method for producing a target assembly is also provided.
1 . A target assembly for producing synthetic radioisotopes of Cobalt, the target assembly comprising:
an enclosure comprised of an enriched material, wherein the enriched material is configured to have a short half-life upon being exposed to a neutron flux, and wherein the enclosure defines a cavity therein; and
an irradiation target material comprised of a precursor to Cobalt-60, wherein the irradiation target material is configured to be housed within the cavity of the enclosure.
2 . The target assembly as claimed in claim 1 , wherein the irradiation target material comprises Cobalt-59.
3 . The target assembly as claimed in claim 1 , wherein the enriched material is isotopically pure.
4 . The target assembly as claimed in claim 1 , wherein the enriched material comprises at least one of Nickel-64, Copper-63, or Copper-65.
5 . The target assembly as claimed in claim 1 , wherein the enriched material is a metallic material.
6 . The target assembly as claimed in claim 5 , wherein the enriched material comprises an alloy.
7 . A method for producing a target assembly, the method comprising:
providing a feedstock to a forming process, the feedstock comprising an enriched metallic material; and
producing at least one layer of an enclosure of the target assembly from the feedstock with the forming process.
8 . The method as claimed in claim 7 , wherein the at least one layer comprises an outer wall of the enclosure of the target assembly. The method as claimed in claim 7 , wherein the enriched metallic material is comprised of an isotopically pure material.
10 . The method as claimed in claim 9 , wherein the enriched metallic material comprises Nickel-64, Copper-63, and/or Copper-65.
11 . The method as claimed in claim 7 , wherein the feedstock is configured as a powder.
12 . The method as claimed in claim 7 , wherein the forming process comprises an additive manufacturing process.
13 . The method as claimed in claim 12 , wherein the forming process comprises a powder bed fusion process.
14 . The method as claimed in claim 13 , wherein the forming process comprises at least one of electron beam melting, selective laser melting, or direct metal laser sintering.
15 . The method as claimed in claim 12 , wherein the forming process comprises laser metal deposition.
16 . The method as claimed in claim 7 , wherein the at least one layer is formed around a core comprised of at least one irradiation target material.
17 . The method as claimed in claim 16 , wherein the core comprises a precursor to at least one of Cobalt-60, Lutetium-177, or Actinium-225.
18 . The method as claimed in claim 17 , wherein the core comprises Cobalt-59.