EP2206123A1 - Neutron translucent construction material - Google Patents
Neutron translucent construction materialInfo
- Publication number
- EP2206123A1 EP2206123A1 EP08836156A EP08836156A EP2206123A1 EP 2206123 A1 EP2206123 A1 EP 2206123A1 EP 08836156 A EP08836156 A EP 08836156A EP 08836156 A EP08836156 A EP 08836156A EP 2206123 A1 EP2206123 A1 EP 2206123A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- neutron
- isotope
- precursor
- process according
- construction material
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
- 239000004035 construction material Substances 0.000 title claims abstract description 43
- 239000002243 precursor Substances 0.000 claims abstract description 42
- 238000000034 method Methods 0.000 claims abstract description 35
- 230000008569 process Effects 0.000 claims abstract description 26
- 239000000758 substrate Substances 0.000 claims abstract description 22
- 238000000151 deposition Methods 0.000 claims abstract description 18
- 238000010276 construction Methods 0.000 claims abstract description 11
- 238000005372 isotope separation Methods 0.000 claims abstract description 6
- 238000004519 manufacturing process Methods 0.000 claims abstract description 5
- 239000000463 material Substances 0.000 claims description 32
- 238000006243 chemical reaction Methods 0.000 claims description 22
- 230000004927 fusion Effects 0.000 claims description 21
- 239000000126 substance Substances 0.000 claims description 12
- 230000004992 fission Effects 0.000 claims description 11
- 229910052710 silicon Inorganic materials 0.000 claims description 11
- 229910052799 carbon Inorganic materials 0.000 claims description 8
- 238000000926 separation method Methods 0.000 claims description 7
- 238000005229 chemical vapour deposition Methods 0.000 claims description 6
- 229910052726 zirconium Inorganic materials 0.000 claims description 4
- BLRPTPMANUNPDV-UHFFFAOYSA-N Silane Chemical compound [SiH4] BLRPTPMANUNPDV-UHFFFAOYSA-N 0.000 claims description 3
- 238000001914 filtration Methods 0.000 claims description 3
- 229910052750 molybdenum Inorganic materials 0.000 claims description 3
- 229910052719 titanium Inorganic materials 0.000 claims description 3
- 229910003910 SiCl4 Inorganic materials 0.000 claims description 2
- 229910004014 SiF4 Inorganic materials 0.000 claims description 2
- BOTDANWDWHJENH-UHFFFAOYSA-N Tetraethyl orthosilicate Chemical compound CCO[Si](OCC)(OCC)OCC BOTDANWDWHJENH-UHFFFAOYSA-N 0.000 claims description 2
- 229910008940 W(CO)6 Inorganic materials 0.000 claims description 2
- 229910052790 beryllium Inorganic materials 0.000 claims description 2
- 229910052804 chromium Inorganic materials 0.000 claims description 2
- 239000011248 coating agent Substances 0.000 claims description 2
- 238000000576 coating method Methods 0.000 claims description 2
- 229910052802 copper Inorganic materials 0.000 claims description 2
- 238000009792 diffusion process Methods 0.000 claims description 2
- 238000003618 dip coating Methods 0.000 claims description 2
- 238000005868 electrolysis reaction Methods 0.000 claims description 2
- 229910052735 hafnium Inorganic materials 0.000 claims description 2
- 229910052741 iridium Inorganic materials 0.000 claims description 2
- 238000001451 molecular beam epitaxy Methods 0.000 claims description 2
- 238000005240 physical vapour deposition Methods 0.000 claims description 2
- 239000000843 powder Substances 0.000 claims description 2
- FDNAPBUWERUEDA-UHFFFAOYSA-N silicon tetrachloride Chemical compound Cl[Si](Cl)(Cl)Cl FDNAPBUWERUEDA-UHFFFAOYSA-N 0.000 claims description 2
- ABTOQLMXBSRXSM-UHFFFAOYSA-N silicon tetrafluoride Chemical compound F[Si](F)(F)F ABTOQLMXBSRXSM-UHFFFAOYSA-N 0.000 claims description 2
- 229910052715 tantalum Inorganic materials 0.000 claims description 2
- LFQCEHFDDXELDD-UHFFFAOYSA-N tetramethyl orthosilicate Chemical group CO[Si](OC)(OC)OC LFQCEHFDDXELDD-UHFFFAOYSA-N 0.000 claims description 2
- 229910052720 vanadium Inorganic materials 0.000 claims description 2
- 229910003091 WCl6 Inorganic materials 0.000 claims 1
- 229910009035 WF6 Inorganic materials 0.000 claims 1
- 125000000956 methoxy group Chemical group [H]C([H])([H])O* 0.000 claims 1
- 239000002994 raw material Substances 0.000 claims 1
- KPGXUAIFQMJJFB-UHFFFAOYSA-H tungsten hexachloride Chemical compound Cl[W](Cl)(Cl)(Cl)(Cl)Cl KPGXUAIFQMJJFB-UHFFFAOYSA-H 0.000 claims 1
- NXHILIPIEUBEPD-UHFFFAOYSA-H tungsten hexafluoride Chemical compound F[W](F)(F)(F)(F)F NXHILIPIEUBEPD-UHFFFAOYSA-H 0.000 claims 1
- 239000007789 gas Substances 0.000 description 33
- 229910052721 tungsten Inorganic materials 0.000 description 16
- 230000008021 deposition Effects 0.000 description 12
- WFKWXMTUELFFGS-UHFFFAOYSA-N tungsten Chemical compound [W] WFKWXMTUELFFGS-UHFFFAOYSA-N 0.000 description 12
- 239000010937 tungsten Substances 0.000 description 12
- 230000004913 activation Effects 0.000 description 10
- 229910010271 silicon carbide Inorganic materials 0.000 description 9
- 239000010703 silicon Substances 0.000 description 6
- HBMJWWWQQXIZIP-UHFFFAOYSA-N silicon carbide Chemical compound [Si+]#[C-] HBMJWWWQQXIZIP-UHFFFAOYSA-N 0.000 description 5
- OKTJSMMVPCPJKN-UHFFFAOYSA-N Carbon Chemical compound [C] OKTJSMMVPCPJKN-UHFFFAOYSA-N 0.000 description 4
- 230000015556 catabolic process Effects 0.000 description 4
- 238000006731 degradation reaction Methods 0.000 description 4
- VNWKTOKETHGBQD-UHFFFAOYSA-N methane Chemical compound C VNWKTOKETHGBQD-UHFFFAOYSA-N 0.000 description 4
- 230000005855 radiation Effects 0.000 description 4
- 238000005094 computer simulation Methods 0.000 description 3
- 238000013461 design Methods 0.000 description 3
- 230000000694 effects Effects 0.000 description 3
- 238000009377 nuclear transmutation Methods 0.000 description 3
- 230000000704 physical effect Effects 0.000 description 3
- 230000002285 radioactive effect Effects 0.000 description 3
- 239000010935 stainless steel Substances 0.000 description 3
- -1 183W Chemical compound 0.000 description 2
- IJGRMHOSHXDMSA-UHFFFAOYSA-N Atomic nitrogen Chemical compound N#N IJGRMHOSHXDMSA-UHFFFAOYSA-N 0.000 description 2
- QCWXUUIWCKQGHC-UHFFFAOYSA-N Zirconium Chemical compound [Zr] QCWXUUIWCKQGHC-UHFFFAOYSA-N 0.000 description 2
- 229910001093 Zr alloy Inorganic materials 0.000 description 2
- 238000004364 calculation method Methods 0.000 description 2
- 239000003153 chemical reaction reagent Substances 0.000 description 2
- 238000000354 decomposition reaction Methods 0.000 description 2
- 230000002349 favourable effect Effects 0.000 description 2
- 230000004907 flux Effects 0.000 description 2
- 239000001307 helium Substances 0.000 description 2
- 229910052734 helium Inorganic materials 0.000 description 2
- SWQJXJOGLNCZEY-UHFFFAOYSA-N helium atom Chemical compound [He] SWQJXJOGLNCZEY-UHFFFAOYSA-N 0.000 description 2
- 238000012423 maintenance Methods 0.000 description 2
- 239000000203 mixture Substances 0.000 description 2
- 239000002245 particle Substances 0.000 description 2
- 229910001220 stainless steel Inorganic materials 0.000 description 2
- 229910052722 tritium Inorganic materials 0.000 description 2
- UFHFLCQGNIYNRP-UHFFFAOYSA-N Hydrogen Chemical compound [H][H] UFHFLCQGNIYNRP-UHFFFAOYSA-N 0.000 description 1
- WHXSMMKQMYFTQS-UHFFFAOYSA-N Lithium Chemical compound [Li] WHXSMMKQMYFTQS-UHFFFAOYSA-N 0.000 description 1
- 229910011005 Ti(OPr)4 Inorganic materials 0.000 description 1
- 229910003074 TiCl4 Inorganic materials 0.000 description 1
- 229910010386 TiI4 Inorganic materials 0.000 description 1
- 229910001080 W alloy Inorganic materials 0.000 description 1
- 238000010521 absorption reaction Methods 0.000 description 1
- QVGXLLKOCUKJST-UHFFFAOYSA-N atomic oxygen Chemical compound [O] QVGXLLKOCUKJST-UHFFFAOYSA-N 0.000 description 1
- 230000008901 benefit Effects 0.000 description 1
- 230000015572 biosynthetic process Effects 0.000 description 1
- 239000003054 catalyst Substances 0.000 description 1
- 229910052729 chemical element Inorganic materials 0.000 description 1
- 239000002131 composite material Substances 0.000 description 1
- 238000004590 computer program Methods 0.000 description 1
- 238000007796 conventional method Methods 0.000 description 1
- 239000002826 coolant Substances 0.000 description 1
- 230000000779 depleting effect Effects 0.000 description 1
- 238000005137 deposition process Methods 0.000 description 1
- 229910052805 deuterium Inorganic materials 0.000 description 1
- 230000005611 electricity Effects 0.000 description 1
- 229910002804 graphite Inorganic materials 0.000 description 1
- 239000010439 graphite Substances 0.000 description 1
- 229910052739 hydrogen Inorganic materials 0.000 description 1
- 239000001257 hydrogen Substances 0.000 description 1
- 229910052744 lithium Inorganic materials 0.000 description 1
- 229910003465 moissanite Inorganic materials 0.000 description 1
- 238000000329 molecular dynamics simulation Methods 0.000 description 1
- 229910052757 nitrogen Inorganic materials 0.000 description 1
- 239000003758 nuclear fuel Substances 0.000 description 1
- 239000011824 nuclear material Substances 0.000 description 1
- 239000001301 oxygen Substances 0.000 description 1
- 229910052760 oxygen Inorganic materials 0.000 description 1
- 238000002360 preparation method Methods 0.000 description 1
- XTTBFCWRLDKOQU-UHFFFAOYSA-N propan-1-ol;titanium Chemical compound [Ti].CCCO.CCCO.CCCO.CCCO XTTBFCWRLDKOQU-UHFFFAOYSA-N 0.000 description 1
- 239000012857 radioactive material Substances 0.000 description 1
- 239000002901 radioactive waste Substances 0.000 description 1
- 239000012925 reference material Substances 0.000 description 1
- 238000011160 research Methods 0.000 description 1
- 229910001256 stainless steel alloy Inorganic materials 0.000 description 1
- XJDNKRIXUMDJCW-UHFFFAOYSA-J titanium tetrachloride Chemical compound Cl[Ti](Cl)(Cl)Cl XJDNKRIXUMDJCW-UHFFFAOYSA-J 0.000 description 1
- NLLZTRMHNHVXJJ-UHFFFAOYSA-J titanium tetraiodide Chemical compound I[Ti](I)(I)I NLLZTRMHNHVXJJ-UHFFFAOYSA-J 0.000 description 1
Classifications
-
- G—PHYSICS
- G21—NUCLEAR PHYSICS; NUCLEAR ENGINEERING
- G21F—PROTECTION AGAINST X-RADIATION, GAMMA RADIATION, CORPUSCULAR RADIATION OR PARTICLE BOMBARDMENT; TREATING RADIOACTIVELY CONTAMINATED MATERIAL; DECONTAMINATION ARRANGEMENTS THEREFOR
- G21F1/00—Shielding characterised by the composition of the materials
- G21F1/12—Laminated shielding materials
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01D—SEPARATION
- B01D59/00—Separation of different isotopes of the same chemical element
- B01D59/20—Separation by centrifuging
-
- C—CHEMISTRY; METALLURGY
- C23—COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
- C23C—COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
- C23C16/00—Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes
- C23C16/22—Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the deposition of inorganic material, other than metallic material
- C23C16/30—Deposition of compounds, mixtures or solid solutions, e.g. borides, carbides, nitrides
- C23C16/32—Carbides
- C23C16/325—Silicon carbide
-
- C—CHEMISTRY; METALLURGY
- C23—COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; CHEMICAL SURFACE TREATMENT; DIFFUSION TREATMENT OF METALLIC MATERIAL; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL; INHIBITING CORROSION OF METALLIC MATERIAL OR INCRUSTATION IN GENERAL
- C23C—COATING METALLIC MATERIAL; COATING MATERIAL WITH METALLIC MATERIAL; SURFACE TREATMENT OF METALLIC MATERIAL BY DIFFUSION INTO THE SURFACE, BY CHEMICAL CONVERSION OR SUBSTITUTION; COATING BY VACUUM EVAPORATION, BY SPUTTERING, BY ION IMPLANTATION OR BY CHEMICAL VAPOUR DEPOSITION, IN GENERAL
- C23C16/00—Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes
- C23C16/44—Chemical coating by decomposition of gaseous compounds, without leaving reaction products of surface material in the coating, i.e. chemical vapour deposition [CVD] processes characterised by the method of coating
Definitions
- the invention is directed to a process for preparing a neutron translucent construction material, a neutron translucent construction material, a nuclear reactor comprising said neutron translucent construction material, and the use of said neutron shielding construction material.
- Nuclear reactors are the containers in which nuclear reactions are performed. The energy released in most nuclear reactions is much larger than that in chemical reactions, because the binding energy that holds a nucleus together is far greater than the energy that holds electrons to a nucleus. Accordingly, nuclear reactions can be exploited in power plants for the provision of energy. The two most important nuclear reactions are nuclear fission and nuclear fusion. At present only nuclear fission is used in power plants to produce energy.
- neutrons are used to fission the nuclear fuel.
- the fission reaction produces not only energy and radiation but also additional neutrons.
- a neutron chain reaction ensues.
- the nuclear reactor provides the assembly of materials to sustain and control the neutron chain reaction, to appropriately transport the heat produced from the fission reactions, and to provide the necessary safety features to cope with the radiation and radioactive materials produced by its operation.
- Structural materials employed in fission reactor systems must possess suitable nuclear and physical properties and must be compatible with the reactor coolant under the conditions of operation.
- Nuclear fusion is, at present, not used for generating energy in power plants. Nevertheless, research is being conducted with the goal of achieving controlled fusion and making fusion power a viable means of producing electricity. It is often claimed that nuclear fusion may provide clean, cheap and abundant energy. The expectation therefore is that nuclear fusion power plants will occupy at least part of the energy market in the future. Nuclear fusion is the process by which two light atomic nuclei fuse together to form a heavier nucleus and thereby release energy. Most design studies for fusion power plants involve using the fusion reactions to create heat, which is then used to operate a steam turbine.
- Some of the most promising nuclear reactions involve the production of substantial amounts of neutrons that result in induced radioactivity within the reactor structure.
- the neutron flux expected in a commercial deuterium- tritium fusion reactor for instance, is about 100 times that of current fission power reactors, thus posing unprecedented challenges for material design.
- the conventional construction materials for nuclear reactors are based on naturally occurring elements.
- the most commonly employed structural materials in fission reactor systems are stainless steel and zirconium alloys. Zirconium alloys have favourable nuclear and physical properties, whereas stainless steel has favourable physical properties.
- Zirconium and stainless steel are used in high-temperature power reactors. Zirconium is relatively expensive, and its use is therefore confined to applications in the reactor core where neutron absorption is important.
- the materials are made as elementally pure as possible.
- these conventional materials are typically sensitive to activation.
- activation is meant to refer to the process wherein a material is bombarded with neutrons, photons and/or electrons and forms an instable intermediate, which subsequently radioactively decays under the undesirable emission of ionising radiation. This decay is accompanied with a structural and mechanical degradation of the material.
- the conventional construction materials are sensitive to activation, the nuclear reactors have limited lifetime and require regular maintenance. In addition, activation of the conventional construction materials results in the emission of radioactive alpha particles and often also helium gas is produced.
- Object of the invention is to provide a construction material having a high degree of physical and chemical stability against neutron bombardment.
- the construction material has to a high degree the properties of insensitivity and translucency for neutron bombardment.
- a further object of the invention is to generally increase the lifetime of a nuclear reactor, in particular of the nuclear reactor wall.
- a material can be rendered more neutron bombardment stable when the material is enriched in one or more specific isotopes. This principle is employed in accordance with the invention for the preparation of neutron translucent construction material.
- neutron translucent as used in this application is meant to refer to a high degree of physical, mechanical, structural and/or chemical stability of a material against neutron bombardment.
- a neutron translucent material is a material that is highly insensitive to neutron bombardment. Such material is activated by the neutrons only to a very low degree, i.e. only a small fraction of the amounts of the various isotopes of the elements in the material is transmuted, typically this fraction is less than 0.1%, preferably less than 0.05%, more preferably less than 0.01%.
- Transmutation refers to nuclear transmutation, which is the conversion of one chemical element or isotope into another, which occurs through nuclear reactions.
- a quantitative measure for the neutron translucency is the fraction isotopes in the material that is not burned-up during the bombardment of a defined amount of neutrons with a defined energy.
- the invention is directed to a process for preparing a neutron translucent construction material comprising a) providing at least one gas phase precursor; b) enriching the at least one precursor in at least one isotope of an element contained in said precursor in a gas phase isotope separation step, wherein said at least one isotope has higher neutron resistance than another isotope of the same element; and c) depositing the isotope enriched product of step b) on a substrate.
- the material Due to the high neutron translucency effect of the construction material of the invention, the material is not readily activated and thereby the structural and mechanical properties of the material are maintained for a significantly longer time than for comparable construction materials that are not enriched in one or more specific isotopes.
- the construction material of the invention is less prone to becoming radioactive. Besides giving rise to less radioactive waste, the material will therefore also enjoy better social acceptance.
- the gas phase precursor provided can for instance comprise one or more elements selected from the group consisting of C, Si, Ti, Li, W, Mo, Zr, Be, V, Cr, Cu, Ir, Ag, Dy, Hf and Ta.
- Precursors comprising such elements can give rise to construction materials with excellent structural and mechanical properties.
- Particularly preferred elements are C, Si and W.
- the natural isotopes of carbon are 12 C and 13 C, where about 99 % of all naturally occurring carbon is 12 C, while about 1 % of all naturally occurring carbon is 13 C (all percentages expressed herein are by weight, unless indicated otherwise).
- the natural isotopes of silicon are 28 Si, 29 Si, and 30 Si, where about 92 % of all naturally occurring silicon is 28 Si, about 5 % of all naturally occurring silicon is 29 Si, and about 2 % of all naturally occurring silicon is 30 Si.
- 28 Si is the most abundant isotope of silicon it is most prone to activation and therefore the least suitable isotope of silicon for use in a neutron translucent construction material.
- 30 Si is the best isotope in terms of neutron stability, but is naturally scarce. In the range of neutron bombardment relevant for the first wall of fusion reactors (about 10 15 neutrons at 2.2 MeV per cm 2 per second) according to computer simulations 30 Si is the most neutron translucent and 28 Si second most neutron translucent natural occurring Si isotope.
- the natural isotopes of tungsten are 180 W, 182 W, 183 W, 184 W, and 186 W, where less than 1 % of all naturally occurring tungsten is 180 W, about 27 % of all naturally occurring tungsten is 182 W, about 14 % of all naturally occurring tungsten is 183 W, about 31 % of all naturally occurring tungsten is 184 W, and about 28 % of all naturally occurring tungsten is 186 W.
- suitable gas phase and/or volatile precursors for Si are Si(OMe) 4 , Si(OEt) 4 , SiH 4 , SiF 4 and SiCl 4 .
- suitable gas phase precursors for W are WF ⁇ , WCl ⁇ and W(CO)6.
- suitable gas phase precursors for Ti are Ti(OPr) 4 , TiCl 4 , TiBr, and TiI 4 .
- suitable gas phase and/or volatile precursors for C are CH 4 , C2H6, C2H 4 , C2H2 C3H8, C3H6, CsH 4 , CO and CO2.
- suitable gas phase or volatile precursurs of combinations of Si, W, C, Ti are Si(OCHs)(CHs), Si(CHs) 4 and SiTi(OEt) ⁇ values of y range from 1 to 4.
- the at least one precursor is enriched in at least one isotope in a gas phase isotope separation step.
- the precursor is enriched in at least one isotope of an element, wherein said at least one isotope has higher neutron resistance than another isotope of the same element.
- the neutron resistance of each isotope of a specific element can be theoretically determined.
- the neutron resistance of specific isotopes is assessed by computer simulation programs such as FISPACT (R.A. Forrest "FISPACT-2003 : User manual", UKAEA FUS 485, 2002) to calculate the burn-up and resulting activation and gas evolution.
- the mechanical degradation of the materials is evaluated from the amount of gas evolution during activation.
- the term “high neutron resistance” thus refers to materials having a low burn-up of any isotopes in the material.
- Enriching the precursor in one or more isotopes can be accomplished by one or more methods selected from the group consisting of gas centrifuge separation, gaseous diffusion, filtration, magnetic field separation, and electrolysis.
- the isotope enrichment comprises gas centrifuge separation. This technique allows the isotope enrichment of relatively heavy atoms (roughly at least atomic mass 20), which atoms are typically used in construction materials.
- Relatively light atoms such as lithium
- a gaseous precursor feed stream can be fed through a pipe into the centre of the cylinder of the centrifuge, where it adopts a rotational motion.
- the centrifugal forces push the precursors with heavier isotopes closer to the wall of the rotor than the precursors with lighter isotopes.
- the gas closer to the wall becomes enriched in the precursors with heavier isotopes, whereas the gas nearer to the rotor axis becomes enriched in the precursors with lighter isotopes.
- the bottom of the rotating cylinder can be heated, producing convection currents that move the isotope enriched products up the cylinder, where they can be collected.
- the enrichment level achieved by a single gas centrifuge is generally insufficient to obtain the desired concentration of specific isotope. It is therefore usually necessary to connect a number of centrifuges together, both in series and in parallel. This arrangement of centrifuges is known as a cascade. By repeating the above process over and over again in a centrifuge cascade, the desired level of enrichment can be achieved.
- the precursor is stable, at least chemically stable, under the conditions at which the isotope enrichment is employed.
- Decomposition of the precursor in the isotope enrichment step would be highly disadvantageous.
- the precursor is subjected to a chemical conversion prior to being fed to the respective isotope enrichment technique, which chemical conversion renders the precursor chemically stable under the conditions at which the respective isotope enrichment technique is employed.
- the isotope enriched product is subjected to a chemical conversion before being deposited on the substrate, which chemical conversion renders the isotope enriched product less chemically stable.
- a chemical destabilisation of the isotope enriched product can be advantageous for the deposition step.
- the isotope enriched product can for instance be activated for a specific deposition technique, such as chemical vapour deposition.
- the isotope enriched product is then deposited on a substrate.
- Suitable deposition techniques include for instance chemical vapour deposition, physical vapour deposition, molecular beam epitaxy, and sol/gel dip coating.
- the isotope enriched product is deposited in the gas phase. This has the advantage that the equipment for deposition can be integrated with the isotope separation equipment. As a result, the process becomes less expensive.
- Off-gas from the deposition step can optionally be recycled to the gas centrifuge thus allowing the process to be carried out in a closed circuit.
- the off-gas may optionally be complemented with a fresh gas phase precursor stream.
- the process of the invention comprises isotope enrichment using a gas centrifuge, preferably a cascade of multiple gas centrifuges, combined with a chemical vapour deposition technique.
- the temperature in the gas centrifuge and the deposition chamber can be different. Typically, the temperature in the deposition chamber is higher in order to effect decomposition of the isotope enriched product and deposition onto a substrate.
- reagent stream for specific deposition techniques, for instance in the case of chemical vapour deposition, it can be advantageous to add a reagent stream to the deposition chamber in order to effect or enhance the deposition onto the substrate.
- Possible reagent streams include oxygen, nitrogen, methane, and mixtures thereof.
- the invention allows the deposition of multiple isotope enriched products onto the substrate by feeding the deposition chamber with more than one isotope enriched product.
- a 30 Si enriched SiH 4 species can be co-deposited with a 13 C enriched CH 4 species. It is also possible to deposit a first isotope enriched product onto the substrate and thereafter deposit a second isotope enriched product onto the substrate. Such a deposit sequence allows the provision of controlled layered structures.
- the process of the invention yields a neutron shielding construction material provided on a substrate.
- Suitable substrates for carrying out the invention include C, SiC, W, and Mo.
- preferred substrates are C, SiC and W.
- the substrate may optionally be removed from the deposited product. The substrate may be removed by burning it away. In this case a substrate made of graphite is preferred.
- the invention is directed to the neutron translucent construction material obtainable by the method of the invention.
- neutron translucent construction materials can comprise for example 29 Si, 30 Si, 28 SiC, and 29 SiC.
- the construction material of the invention greatly transcends the prior art construction materials in terms of neutron translucency and accompany lifetime increase in a fusion reactor environment. For example 30 SiC is calculated to generate four times less gas (helium and hydrogen) than SiC resulting in an expected lifetime increase of 30 SiC of the same order compared to SiC materials without isotope tailoring.
- the coated substrate can be used for construction.
- the substrate can be removed after deposition of the isotope enriched product.
- the construction material can then be further processed for the purpose of construction according to conventional methods.
- the neutron shielding construction material can for instance be processed into a powder or into a coating on a substrate, which is different from the substrate on which the isotope enriched product is originally deposited.
- the material of the invention can advantageously be applied in the construction of a nuclear reactor, preferably in the construction of the nuclear reactor wall.
- the construction material of the invention is suitable for construction of the so-called "first wall" of a nuclear reactor. This is the reactor wall that is in direct contact with the plasma.
- Another application for which the invention is particularly suitable is the construction of silicon carbide mirrors as well as tungsten mirrors.
- the invention is directed to a nuclear reactor, comprising a neutron translucent construction material of the invention.
- the invention is directed to the use of a neutron translucent construction material of the invention in the construction of a nuclear reactor, for instance for nuclear fission or nuclear fusion.
- the invention is directed to the use of a neutron shielding construction material of the invention as a shielding material in military applications.
- the material can for instance be used in tanks and armour, for protection against neutron radiation.
- a first wall of a nuclear reactor can be made of a neutron translucent material comprising tungsten or tungsten alloy using the process of the present invention.
- the gas phase precursor used is WF 6 , manufactured from natural tungsten (W).
- the element tungsten (W) in this gas phase precursor will occur in different isotopes.
- the gas phase precursor WF 6 naturally comprises five different isotopes: 180 WF 6 , 182 WF 6 , 183 WF 6 , 184 WF 6 and 186 WF 6 in abundance 0.1, 26.5, 14.3, 30.6 and 28.4 % respectively.
- the precursor is first subjected to a chemical conversion to stabilize the precursor.
- the process temperature is kept low and catalysts are avoided.
- tungsten W
- a much higher neutron-translucency can be obtained by depleting the naturally occurring isotope mixture of tungsten in 186 W by reducing the natural abundance of W186 of 28.4 % to much lower values e.g. below 0.3 % .
- the gas phase precursor is depleted from the 186 WF 6 molecules using gas centrifuge separation, obtaining an isotope enriched product.
- the isotope enriched product is then heated to higher temperature to destabilize the depleted precursor.
- the destabilized enriched product is then deposited on a substrate using a substrate at low temperature.
- the ideal material for the first wall application would not show transmutation and/or activation ⁇ viz. would not become radioactive), because this would lead to formation of H2 and He and resulting in degradation of physical, chemical and mechanical properties of the material.
Landscapes
- Chemical & Material Sciences (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Chemical & Material Sciences (AREA)
- Materials Engineering (AREA)
- Metallurgy (AREA)
- Organic Chemistry (AREA)
- Inorganic Chemistry (AREA)
- Physics & Mathematics (AREA)
- General Engineering & Computer Science (AREA)
- High Energy & Nuclear Physics (AREA)
- Silicon Compounds (AREA)
- Physical Or Chemical Processes And Apparatus (AREA)
Abstract
The invention is directed to a process for preparing a neutron translucent construction material, a neutron shielding construction material, a nuclear reactor comprising said neutron translucent construction material, and the use of said neutron translucent construction material. The process of the invention comprises a) providing at least one gas phase precursor; b) enriching the at least one precursor in at least one isotope of an element contained in said precursor in a gas phase isotope separation step, wherein said at least one isotope has higher neutron translucency than another isotope of the same element; and c) depositing the isotope enriched product of step b) on a substrate. The construction material of the invention has a high degree of neutron translucency and can be used in the construction of nuclear reactors.
Description
Title: Neutron translucent construction material
The invention is directed to a process for preparing a neutron translucent construction material, a neutron translucent construction material, a nuclear reactor comprising said neutron translucent construction material, and the use of said neutron shielding construction material. Nuclear reactors are the containers in which nuclear reactions are performed. The energy released in most nuclear reactions is much larger than that in chemical reactions, because the binding energy that holds a nucleus together is far greater than the energy that holds electrons to a nucleus. Accordingly, nuclear reactions can be exploited in power plants for the provision of energy. The two most important nuclear reactions are nuclear fission and nuclear fusion. At present only nuclear fission is used in power plants to produce energy.
In a nuclear fission process neutrons are used to fission the nuclear fuel. The fission reaction produces not only energy and radiation but also additional neutrons. Thus a neutron chain reaction ensues. The nuclear reactor provides the assembly of materials to sustain and control the neutron chain reaction, to appropriately transport the heat produced from the fission reactions, and to provide the necessary safety features to cope with the radiation and radioactive materials produced by its operation. Structural materials employed in fission reactor systems must possess suitable nuclear and physical properties and must be compatible with the reactor coolant under the conditions of operation.
Nuclear fusion is, at present, not used for generating energy in power plants. Nevertheless, research is being conducted with the goal of achieving controlled fusion and making fusion power a viable means of producing electricity. It is often claimed that nuclear fusion may provide clean, cheap and abundant energy. The expectation therefore is that nuclear fusion power plants will occupy at least part of the energy market in the future.
Nuclear fusion is the process by which two light atomic nuclei fuse together to form a heavier nucleus and thereby release energy. Most design studies for fusion power plants involve using the fusion reactions to create heat, which is then used to operate a steam turbine. Some of the most promising nuclear reactions (such as the deuterium-tritium fusion reaction and the deuterium- deuterium fusion reaction), however, involve the production of substantial amounts of neutrons that result in induced radioactivity within the reactor structure. The neutron flux expected in a commercial deuterium- tritium fusion reactor, for instance, is about 100 times that of current fission power reactors, thus posing unprecedented challenges for material design. The conventional construction materials for nuclear reactors are based on naturally occurring elements. The most commonly employed structural materials in fission reactor systems are stainless steel and zirconium alloys. Zirconium alloys have favourable nuclear and physical properties, whereas stainless steel has favourable physical properties.
Zirconium and stainless steel are used in high-temperature power reactors. Zirconium is relatively expensive, and its use is therefore confined to applications in the reactor core where neutron absorption is important.
Advantageously, the materials are made as elementally pure as possible. However, these conventional materials are typically sensitive to activation. In the context of this application the term "activation" is meant to refer to the process wherein a material is bombarded with neutrons, photons and/or electrons and forms an instable intermediate, which subsequently radioactively decays under the undesirable emission of ionising radiation. This decay is accompanied with a structural and mechanical degradation of the material.
Because the conventional construction materials are sensitive to activation, the nuclear reactors have limited lifetime and require regular maintenance. In addition, activation of the conventional construction materials
results in the emission of radioactive alpha particles and often also helium gas is produced.
In view of the high demands for nuclear reactors, in particular for fusion reactors, there is a strong need for improved neutron translucent construction materials. The invention is directed at fulfilling this need.
Object of the invention is to provide a construction material having a high degree of physical and chemical stability against neutron bombardment. The construction material has to a high degree the properties of insensitivity and translucency for neutron bombardment. A further object of the invention is to generally increase the lifetime of a nuclear reactor, in particular of the nuclear reactor wall.
A further object of the invention is to prolong the intervals between maintenance of a nuclear reactor so that nuclear power plants need to be shut down less often. Yet a further object of the invention is to decrease the emission of alpha particles as a result of activation of construction material used in the nuclear reactor.
Surprisingly, it was found that these objects can at least partly be met by providing a construction material that is enriched in at least one specific isotope.
The inventors realized that not all isotopes of a specific element have the same stability under neutron bombardment. A material can be rendered more neutron bombardment stable when the material is enriched in one or more specific isotopes. This principle is employed in accordance with the invention for the preparation of neutron translucent construction material.
The term "neutron translucent" as used in this application is meant to refer to a high degree of physical, mechanical, structural and/or chemical stability of a material against neutron bombardment. A neutron translucent material is a material that is highly insensitive to neutron bombardment. Such material is activated by the neutrons only to a very low degree, i.e. only a
small fraction of the amounts of the various isotopes of the elements in the material is transmuted, typically this fraction is less than 0.1%, preferably less than 0.05%, more preferably less than 0.01%. "Transmutation", as used herein, refers to nuclear transmutation, which is the conversion of one chemical element or isotope into another, which occurs through nuclear reactions. A quantitative measure for the neutron translucency is the fraction isotopes in the material that is not burned-up during the bombardment of a defined amount of neutrons with a defined energy.
Accordingly, in a first aspect the invention is directed to a process for preparing a neutron translucent construction material comprising a) providing at least one gas phase precursor; b) enriching the at least one precursor in at least one isotope of an element contained in said precursor in a gas phase isotope separation step, wherein said at least one isotope has higher neutron resistance than another isotope of the same element; and c) depositing the isotope enriched product of step b) on a substrate.
The inventors found that this process allows a convenient and efficient fashion for preparing a construction material having high neutron bombardment stability. The high costs that are accompanied with isotope enrichment does not form a hurdle for the applications in which the invention can be implemented (such as the construction of a nuclear fusion reactor), because there is a lack of qualitatively good and cheap alternatives. Moreover, in accordance with the process of the invention costs can be saved by advantageously combining an isotope separation process with a deposition process.
Due to the high neutron translucency effect of the construction material of the invention, the material is not readily activated and thereby the structural and mechanical properties of the material are maintained for a significantly longer time than for comparable construction materials that are not enriched in one or more specific isotopes. In addition, the construction
material of the invention is less prone to becoming radioactive. Besides giving rise to less radioactive waste, the material will therefore also enjoy better social acceptance.
The gas phase precursor provided can for instance comprise one or more elements selected from the group consisting of C, Si, Ti, Li, W, Mo, Zr, Be, V, Cr, Cu, Ir, Ag, Dy, Hf and Ta. Precursors comprising such elements can give rise to construction materials with excellent structural and mechanical properties. Particularly preferred elements are C, Si and W.
The natural isotopes of carbon are 12C and 13C, where about 99 % of all naturally occurring carbon is 12C, while about 1 % of all naturally occurring carbon is 13C (all percentages expressed herein are by weight, unless indicated otherwise).
The natural isotopes of silicon are 28Si, 29Si, and 30Si, where about 92 % of all naturally occurring silicon is 28Si, about 5 % of all naturally occurring silicon is 29Si, and about 2 % of all naturally occurring silicon is 30Si. Although 28Si is the most abundant isotope of silicon it is most prone to activation and therefore the least suitable isotope of silicon for use in a neutron translucent construction material. 30Si is the best isotope in terms of neutron stability, but is naturally scarce. In the range of neutron bombardment relevant for the first wall of fusion reactors (about 1015 neutrons at 2.2 MeV per cm2 per second) according to computer simulations 30Si is the most neutron translucent and 28Si second most neutron translucent natural occurring Si isotope.
The natural isotopes of tungsten are 180W, 182W, 183W, 184W, and 186W, where less than 1 % of all naturally occurring tungsten is 180W, about 27 % of all naturally occurring tungsten is 182W, about 14 % of all naturally occurring tungsten is 183W, about 31 % of all naturally occurring tungsten is 184W, and about 28 % of all naturally occurring tungsten is 186W.
Calculations with computer simulation program FISPACT [R.A. Forrest "FISPACT-2003 :User manual", UKAEA FUS 485,2002 and M.J.
Moughlin and R.A.Forrest "Comprehensive activation calculations of reference materials for near term reactor concepts" Fusion Engineering and Design, 69 (2003) 711-717] indicate that for a first wall in a fusion reactor the burn-up of the naturally occurring isotopes 13C, 29Si, 183W is lowest of the elements C, Si and W respectively.
Some examples of suitable gas phase and/or volatile precursors for Si are Si(OMe)4, Si(OEt)4, SiH4, SiF4 and SiCl4. Some examples of suitable gas phase precursors for W are WFβ, WClβ and W(CO)6. Some examples of suitable gas phase precursors for Ti are Ti(OPr)4, TiCl4, TiBr, and TiI4. Some examples of suitable gas phase and/or volatile precursors for C are CH4, C2H6, C2H4, C2H2 C3H8, C3H6, CsH4, CO and CO2. Some example of suitable gas phase or volatile precursurs of combinations of Si, W, C, Ti are Si(OCHs)(CHs), Si(CHs)4 and SiTi(OEt)^ values of y range from 1 to 4.
Thereafter, the at least one precursor is enriched in at least one isotope in a gas phase isotope separation step. The precursor is enriched in at least one isotope of an element, wherein said at least one isotope has higher neutron resistance than another isotope of the same element. The neutron resistance of each isotope of a specific element can be theoretically determined. The neutron resistance of specific isotopes is assessed by computer simulation programs such as FISPACT (R.A. Forrest "FISPACT-2003 : User manual", UKAEA FUS 485, 2002) to calculate the burn-up and resulting activation and gas evolution. The mechanical degradation of the materials is evaluated from the amount of gas evolution during activation. Details of the mechanical degradation of the materials are assessed by molecular dynamics computer programs (R. H. Jones et at., "Promise and Challenges of SiCVSiC Composites for Fusion Energy Applications", Journal of Nuclear Materials 307(Pt B) (2002)1057-1072.). Based on the above-mentioned computer simulation programs, the term "high neutron resistance" thus refers to materials having a low burn-up of any isotopes in the material.
Enriching the precursor in one or more isotopes can be accomplished by one or more methods selected from the group consisting of gas centrifuge separation, gaseous diffusion, filtration, magnetic field separation, and electrolysis. Preferably, the isotope enrichment comprises gas centrifuge separation. This technique allows the isotope enrichment of relatively heavy atoms (roughly at least atomic mass 20), which atoms are typically used in construction materials.
Relatively light atoms, such as lithium, can be efficiently isotope enriched using filtration technique. According to the gas centrifuge technique a gaseous precursor feed stream can be fed through a pipe into the centre of the cylinder of the centrifuge, where it adopts a rotational motion. The centrifugal forces push the precursors with heavier isotopes closer to the wall of the rotor than the precursors with lighter isotopes. The gas closer to the wall becomes enriched in the precursors with heavier isotopes, whereas the gas nearer to the rotor axis becomes enriched in the precursors with lighter isotopes. Advantageously, the bottom of the rotating cylinder can be heated, producing convection currents that move the isotope enriched products up the cylinder, where they can be collected. The enrichment level achieved by a single gas centrifuge is generally insufficient to obtain the desired concentration of specific isotope. It is therefore usually necessary to connect a number of centrifuges together, both in series and in parallel. This arrangement of centrifuges is known as a cascade. By repeating the above process over and over again in a centrifuge cascade, the desired level of enrichment can be achieved.
Preferably, the precursor is stable, at least chemically stable, under the conditions at which the isotope enrichment is employed. Decomposition of the precursor in the isotope enrichment step would be highly disadvantageous. In an embodiment of the invention, therefore, the precursor is subjected to a chemical conversion prior to being fed to the respective isotope
enrichment technique, which chemical conversion renders the precursor chemically stable under the conditions at which the respective isotope enrichment technique is employed.
In a further embodiment, which may be combined with the embodiment above, the isotope enriched product is subjected to a chemical conversion before being deposited on the substrate, which chemical conversion renders the isotope enriched product less chemically stable. Such a chemical destabilisation of the isotope enriched product can be advantageous for the deposition step. The isotope enriched product can for instance be activated for a specific deposition technique, such as chemical vapour deposition.
The isotope enriched product is then deposited on a substrate. Suitable deposition techniques include for instance chemical vapour deposition, physical vapour deposition, molecular beam epitaxy, and sol/gel dip coating. Preferably, the isotope enriched product is deposited in the gas phase. This has the advantage that the equipment for deposition can be integrated with the isotope separation equipment. As a result, the process becomes less expensive. Off-gas from the deposition step can optionally be recycled to the gas centrifuge thus allowing the process to be carried out in a closed circuit. The off-gas may optionally be complemented with a fresh gas phase precursor stream.
In a specially preferred embodiment, the process of the invention comprises isotope enrichment using a gas centrifuge, preferably a cascade of multiple gas centrifuges, combined with a chemical vapour deposition technique. The temperature in the gas centrifuge and the deposition chamber can be different. Typically, the temperature in the deposition chamber is higher in order to effect decomposition of the isotope enriched product and deposition onto a substrate.
For specific deposition techniques, for instance in the case of chemical vapour deposition, it can be advantageous to add a reagent stream to
the deposition chamber in order to effect or enhance the deposition onto the substrate. Possible reagent streams include oxygen, nitrogen, methane, and mixtures thereof.
In a further embodiment, the invention allows the deposition of multiple isotope enriched products onto the substrate by feeding the deposition chamber with more than one isotope enriched product. As an example a 30Si enriched SiH4 species can be co-deposited with a 13C enriched CH4 species. It is also possible to deposit a first isotope enriched product onto the substrate and thereafter deposit a second isotope enriched product onto the substrate. Such a deposit sequence allows the provision of controlled layered structures.
The process of the invention yields a neutron shielding construction material provided on a substrate. Suitable substrates for carrying out the invention include C, SiC, W, and Mo. For construction purposes preferred substrates are C, SiC and W. The substrate may optionally be removed from the deposited product. The substrate may be removed by burning it away. In this case a substrate made of graphite is preferred.
In a further aspect the invention is directed to the neutron translucent construction material obtainable by the method of the invention. Such neutron translucent construction materials can comprise for example 29Si, 30Si, 28SiC, and 29SiC.
The inventors found that the construction material of the invention greatly transcends the prior art construction materials in terms of neutron translucency and accompany lifetime increase in a fusion reactor environment. For example 30SiC is calculated to generate four times less gas (helium and hydrogen) than SiC resulting in an expected lifetime increase of 30SiC of the same order compared to SiC materials without isotope tailoring.
After deposition of the isotope enriched product the coated substrate can be used for construction. In the alternative, the substrate can be removed after deposition of the isotope enriched product. The construction material can then be further processed for the purpose of construction according to
conventional methods. The neutron shielding construction material can for instance be processed into a powder or into a coating on a substrate, which is different from the substrate on which the isotope enriched product is originally deposited. The material of the invention can advantageously be applied in the construction of a nuclear reactor, preferably in the construction of the nuclear reactor wall. In particular, the construction material of the invention is suitable for construction of the so-called "first wall" of a nuclear reactor. This is the reactor wall that is in direct contact with the plasma. Another application for which the invention is particularly suitable is the construction of silicon carbide mirrors as well as tungsten mirrors.
Accordingly, in a further aspect the invention is directed to a nuclear reactor, comprising a neutron translucent construction material of the invention. In yet a further aspect the invention is directed to the use of a neutron translucent construction material of the invention in the construction of a nuclear reactor, for instance for nuclear fission or nuclear fusion.
In a further aspect the invention is directed to the use of a neutron shielding construction material of the invention as a shielding material in military applications. The material can for instance be used in tanks and armour, for protection against neutron radiation.
The present invention will be further illustrated by the following Example.
Example
A first wall of a nuclear reactor can be made of a neutron translucent material comprising tungsten or tungsten alloy using the process of the present invention.
The gas phase precursor used is WF6, manufactured from natural tungsten (W). The element tungsten (W) in this gas phase precursor will occur in different isotopes. The gas phase precursor WF6 naturally comprises five different isotopes: 180WF6, 182WF6, 183WF6, 184WF6 and 186WF6 in abundance 0.1, 26.5, 14.3, 30.6 and 28.4 % respectively.
The precursor is first subjected to a chemical conversion to stabilize the precursor. For this purpose the process temperature is kept low and catalysts are avoided.
In the case of tungsten (W), a much higher neutron-translucency can be obtained by depleting the naturally occurring isotope mixture of tungsten in 186W by reducing the natural abundance of W186 of 28.4 % to much lower values e.g. below 0.3 % . The gas phase precursor is depleted from the 186WF6 molecules using gas centrifuge separation, obtaining an isotope enriched product. The isotope enriched product is then heated to higher temperature to destabilize the depleted precursor.
The destabilized enriched product is then deposited on a substrate using a substrate at low temperature.
By specifically taking the 186WF6 isotope out of the gas phase precursor, a material with higher neutron translucency and much improved lifetime properties in a heavy neutron flux is obtained.
The ideal material for the first wall application would not show transmutation and/or activation {viz. would not become radioactive), because this would lead to formation of H2 and He and resulting in degradation of physical, chemical and mechanical properties of the material.
Claims
1. Process for preparing a neutron translucent construction material comprising a) providing at least one gas phase precursor produced from natural raw materials; b) enriching the at least one precursor in at least one isotope of an element contained in said precursor in a gas phase isotope separation step, wherein said at least one isotope has higher neutron resistance than another isotope of the same element; and c) depositing the isotope enriched product of step b) on a substrate; wherein neutron translucent is defined as having a high degree of physical, mechanical, structural and/or chemical stability against neutron bombardment.
2. Process according to claim 1, wherein step b) comprises isotope enrichment using one or more methods selected from the group consisting of gas centrifuge separation, gaseous diffusion, filtration, magnetic field separation, and electrolysis.
3. Process according to claim 1 or 2, wherein step b) comprises isotope enrichment using gas centrifuge separation.
4. Process according to claim 3, wherein said isotope enrichment using an gas centrifuge comprises a cascade of at least two gas centrifuges.
5. Process according to any one of the preceding claims, wherein step c) comprises one or more selected from the group consisting of chemical vapour deposition, physical vapour deposition, molecular beam epitaxy, and sol/gel dip coating.
6. Process according to any one of the preceding claims, wherein step c) comprises chemical vapour deposition.
7. Process according to any one of the preceding claims, wherein said at least one precursor comprises at least one element selected from the group consisting of C, Si, Ti, Li, W, Mo, Zr, Be, V, Cr, Cu, Ir, Ag, Dy, Hf and Ta.
8. Process according to any one of the preceding claims, wherein said at least one precursor is selected from the group consisting of Si(OMe)4, Si(OEt)4,
SiH4, SiF4, SiCl4, WF6, WCl6, W(CO)6, CH4, C2H6, C2H4, C2H2 C3H8, C3H6, C3H4, CO, CO2, Si(OCH3)(CH3), Si(CH3), and SiTi(O Et)y values of y range from 1 to 4.
9. Process according to any one of the preceding claims, wherein step c) yields an off-gas, which off-gas is, optionally complemented with fresh gas phase precursor material, recycled as gas phase precursor in step a).
10. Process according to any one of the preceding claims, wherein step b) and step c) are performed at different temperatures, preferably step b) is performed at a lower temperature than step c).
11. Process according to any one of the preceding claims, further comprising a step prior to step b), wherein the precursor is subjected to a chemical conversion which stabilises the precursor.
12. Process according to any one of the preceding claims, further comprising a step between step b) and step c) wherein the product of step b) is subjected to a chemical conversion which destabilises the product of step b).
13. Neutron translucent construction material obtainable by a process according to any one of the preceding claims, which is preferably in the form of a coating or powder.
14. Nuclear reactor comprising a neutron translucent construction material according to claim 13.
15. Use of a neutron shielding construction material according to claim
13 in the construction of a nuclear reactor, for instance for nuclear fission or nuclear fusion.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP08836156A EP2206123A1 (en) | 2007-10-03 | 2008-10-03 | Neutron translucent construction material |
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP07117847A EP2045819A1 (en) | 2007-10-03 | 2007-10-03 | Neutron translucent construction material |
| EP08836156A EP2206123A1 (en) | 2007-10-03 | 2008-10-03 | Neutron translucent construction material |
| PCT/NL2008/050634 WO2009045106A1 (en) | 2007-10-03 | 2008-10-03 | Neutron translucent construction material |
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| Publication Number | Publication Date |
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| EP2206123A1 true EP2206123A1 (en) | 2010-07-14 |
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| EP07117847A Withdrawn EP2045819A1 (en) | 2007-10-03 | 2007-10-03 | Neutron translucent construction material |
| EP08836156A Withdrawn EP2206123A1 (en) | 2007-10-03 | 2008-10-03 | Neutron translucent construction material |
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| EP07117847A Withdrawn EP2045819A1 (en) | 2007-10-03 | 2007-10-03 | Neutron translucent construction material |
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| EP (2) | EP2045819A1 (en) |
| WO (1) | WO2009045106A1 (en) |
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| JP6408221B2 (en) * | 2014-01-24 | 2018-10-17 | イビデン株式会社 | Reactor components |
| RU2626450C1 (en) * | 2016-06-06 | 2017-07-27 | Публичное акционерное общество "Красногорский завод им. С.А. Зверева" | Method of selecting grades of optical glasses for design of space equipment optical systems in long-term exposure conditions of space ionising radiation |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE1959767C2 (en) * | 1969-11-28 | 1982-12-23 | Battelle-Institut E.V., 6000 Frankfurt | Process for isotope separation |
| DE2746871C1 (en) * | 1977-10-19 | 1985-10-31 | Uranit GmbH, 5170 Jülich | Method and device for operating a separation cascade for separating gaseous substance mixtures, in particular isotope mixtures |
| JPS5831117A (en) * | 1981-08-14 | 1983-02-23 | Toray Ind Inc | Production of fiber composite material for neutron shielding |
| US4668538A (en) * | 1984-07-10 | 1987-05-26 | Westinghouse Electric Corp. | Processes for depositing metal compound coatings |
| EP0572673B1 (en) * | 1991-11-21 | 1997-06-25 | Nisshin Steel Co., Ltd. | Method of forming layer of evaporation coating |
| US6608315B1 (en) * | 2000-11-01 | 2003-08-19 | Kourosh Saadatmand | Mechanism for prevention of neutron radiation in ion implanter beamline |
| JP2002148376A (en) * | 2000-11-08 | 2002-05-22 | Mitsubishi Heavy Ind Ltd | Vacuum container for nuclear fusion device |
-
2007
- 2007-10-03 EP EP07117847A patent/EP2045819A1/en not_active Withdrawn
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2008
- 2008-10-03 EP EP08836156A patent/EP2206123A1/en not_active Withdrawn
- 2008-10-03 WO PCT/NL2008/050634 patent/WO2009045106A1/en not_active Ceased
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| EP2045819A1 (en) | 2009-04-08 |
| WO2009045106A1 (en) | 2009-04-09 |
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