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Plasma technology for the manufacturing of nuclear materials at Necsa
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This paper reviews the research, development, and application of plasma technology at the South African Nuclear Energy Corporation (Necsa) over three decades. It covers plasma-assisted processes in the nuclear fuel cycle, including uranium compound conversion, synthesis of ceramic nanomaterials, fluorocarbon monomer production, nuclear waste volume reduction/vitrification, and continuous nuclear-grade zirconium metal manufacturing.
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Title and Synopsis
Plasma technology for the manufacturing of nuclear materials at Necsa
by I.J. van der Walt, J.T. Nel and J.L. Havenga
Synopsis
The development of plasma technology at Necsa started in the early 1980s, when the applicability of high-temperature plasmas in the nuclear fuel cycle was investigated. Since 1995, this plasma expertise has expanded to other industrial applications, for example mineral beneficiation, nanotechnology, fluorocarbon production and waste treatment, all of which are also of relevance to the nuclear industry.
Necsa has demonstrated the manufacture of plasma-dissociated zircon, zirconium metal powder, carbon nanotubes, silicon carbide (SiC), zirconium carbide (ZrC) and boron carbide (B4C) at the laboratory and pilot plant scale. These materials are commonly used in the nuclear industry. Zirconium alloys are used as fuel cladding material for nuclear fuel assemblies.
Necsa manufactured the monomer tetrafluoroethylene (TFE), using 150 and 450 kW DC plasma systems, from which the polymer polytetrafluoroethylene (PTFE) was synthesized for use in filters and as seals in nuclear plants. With the nuclear renaissance at hand, it was demonstrated that plasma technology can be used to produce hydrofluoric acid (HF), which is used in the manufacture of fluorine gas (F2) for the production of uranium hexafluoride (UF6) directly from the mineral calcium fluoride (CaF2) without the use of sulphuric acid as in the conventional process. The recovery of valuable uranium from nuclear waste such as filters, oils, and solids with plasma processes will also be discussed. The destruction of low-level nuclear waste by a plasma gasification system can reduce the volume of this waste by several orders in magnitude, resulting in huge savings in the storage costs. Another product of plasma technology is the encapsulation process for nuclear waste and the production of vitrified product, which could be used as filler material for medium-level nuclear waste.
Keywords: plasma, zirconium, fluorocarbons, nuclear waste, nanomaterials.
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This paper reviews the research, development, and application of plasma technology at the South African Nuclear Energy Corporation (Necsa) over three decades. It covers plasma-assisted processes in the nuclear fuel cycle, including uranium compound conversion, synthesis of ceramic nanomaterials, flu...