HIGH EFFICIENCY NEUTRON CAPTURE PRODUCT PRODUCTION
20200035373 ยท 2020-01-30
Inventors
Cpc classification
International classification
Abstract
An apparatus for use with a neutron source for producing reaction-product nuclei from reactant nuclei includes a plurality of reactant nuclei and a plurality of moderating nuclei. The reactant nuclei and the moderating nuclei are configured to increase the probability of neutron capture by reactant nuclei to achieve enhanced ratios of neutron capture by reactant nuclei to neutron source neutron production. Moderating nuclei and neutron reflection are used to minimize neutron leakage. Temperature control, including cryogenic temperature control, may be used to enhance the rate or probability of reactant nuclei neutron capture. The reactant nuclei may include molybdenum-98 and reaction-product nuclei may include technetium-99m.
Claims
1. An apparatus for producing reaction-product nuclei from reactant nuclei, the apparatus comprising: a neutron source that is neither a nuclear reactor nor a subcritical assembly; a first plurality of reactant nuclei having a first average microscopic thermal neutron capture cross section; a collection of isotopes consisting of those isotopes whose nuclei capture at least 1% of all emitted neutrons from a neutron source and which are not reactant nuclei; and a second plurality of nuclei consisting of all nuclei from the collection of isotopes, wherein at least approximately 90% of the nuclei have microscopic thermal neutron capture cross-sections that are lower than the microscopic thermal neutron capture cross-section of any reactant nuclei, and wherein the total mass of moderating nuclei is greater than approximately 1 kilogram; and wherein the neutron source is in proximity to the reactant nuclei sufficient to produce reaction-product nuclei by neutron capture.
2. The apparatus of claim 1, wherein the rate of reactant nuclei neutron capture divided by the rate of the neutron source's neutron production is greater than approximately 1%.
3. The apparatus of claim 1, wherein the rate of reactant nuclei neutron capture divided by the rate of the neutron source's neutron production is greater than approximately 5%.
4. The apparatus of claim 1, wherein the moderating nuclei comprise nuclei of atoms that are chosen from a group consisting of deuterium, tritium, helium-4, lithium-7, beryllium, boron-11, carbon, nitrogen-15, oxygen, fluorine, neon-20 and neon-22.
5. The apparatus of claim 1, further comprising the use of temperature control to maintain at least two different regions of the apparatus at different temperatures, wherein at least one region of the pluralities of reactant nuclei and moderating nuclei is cooled to a temperature below approximately 250 degrees Kelvin.
6. The apparatus of claim 5, wherein the temperature control comprises the use of a cryogenic fluid.
7. The apparatus of claim 4, further comprising at least one neutron reflector at least partially surrounding the pluralities of reactant nuclei and moderating nuclei, wherein the reflector comprises moderating nuclei and wherein the reflector thickness is greater than approximately 20 centimeters and less than approximately 15 meters.
8. The apparatus of claim 4, further comprising both an outer and an inner neutron reflector that reflect neutrons towards regions of the pluralities containing higher densities of reactant nuclei.
9. The apparatus of claim 1, further comprising a target configured to emit neutrons when impacted by accelerated particles, wherein the target is comprised of atoms chosen from a group consisting of deuterium, tritium, helium-4, lithium-7, beryllium, boron-11, carbon, nitrogen-15, oxygen, fluorine, neon-20, neon-22, tantalum, tungsten, lead, mercury, thallium, thorium, uranium, neptunium and other transuranics; and wherein the accelerated particles enter the system via an access channel configured to accept greater than 50 percent of the accelerated particles that impinge upon the access channel.
10. A method for producing decay-product nuclei from a reactant isotope using a neutron source, the method comprising: generating neutrons; preparing a first plurality of reactant nuclei having a first average microscopic thermal neutron capture cross section; preparing a collection of isotopes consisting of those isotopes whose nuclei capture at least 1% of all emitted neutrons from a neutron source and which are not reactant nuclei; preparing a second plurality of nuclei consisting of all nuclei from the collection of isotopes, wherein at least approximately 90% of the nuclei have microscopic thermal neutron capture cross-sections that are lower than the microscopic thermal neutron capture cross-section of any reactant nuclei, and wherein the total mass of moderating nuclei is greater than approximately 1 kilogram; and irradiating the plurality with the neutrons such that a reaction product is generated when the neutrons are captured by the reactant nuclei; and extracting from the plurality a decay product that is generated by radioactive decay of the reaction product isotope.
11. The method of claim 10, wherein the neutrons are generated by a nuclear reactor or a subcritical assembly.
12. The method of claim 10, wherein the neutrons are generated by a source that is neither a reactor nor a subcritical assembly.
13. The method of claim 10, wherein the rate of reactant nuclei neutron capture divided by the rate of the neutron source's neutron production is greater than approximately 1%.
14. The method of claim 10, wherein the moderating nuclei comprise nuclei of atoms that are chosen from a group consisting of deuterium, tritium, helium-4, lithium-7, beryllium, boron-11, carbon, nitrogen-15, oxygen, fluorine, neon-20 and neon-22.
15. The method of claim 14, further comprising at least partially surrounding the pluralities of reactant and moderating nuclei with at least one neutron reflector comprising moderating nuclei and whose thickness is greater than approximately 20 centimeters and less than approximately 15 meters.
16. The method of claim 14, further comprising both an outer and an inner neutron reflector that reflect neutrons towards regions containing higher densities of reactant nuclei.
17. The method of claim 10, further comprising the use of temperature control capable of maintaining at least 2 different regions of the apparatus at different temperatures; wherein at least one region of the pluralities of reactant nuclei and moderating nuclei is cooled to a temperature below 250 degrees Kelvin.
18. The method of claim 17, wherein the temperature control comprises the use of a cryogenic fluid.
19. The method of claim 10, further comprising configuring a target to emit neutrons when impacted by accelerated particles, wherein the target is comprised of atoms chosen from a group consisting of deuterium, tritium, helium-4, lithium-7, beryllium, boron-11, carbon, nitrogen-15, oxygen, fluorine, neon-20, neon-22, tantalum, tungsten, lead, mercury, thallium, thorium, uranium, neptunium and other transuranics, and wherein the accelerated particles enter the system via an access channel configured to accept greater than 50 percent of the accelerated particles that impinge upon the access channel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0053] The previous summary and the following detailed descriptions are to be read in view of the drawings, which illustrate particular exemplary embodiments and features as briefly described below. The summary and detailed descriptions, however, are not limited to only those embodiments and features explicitly illustrated.
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DETAILED DESCRIPTIONS
[0063] These descriptions are presented with sufficient details to provide an understanding of one or more particular embodiments of broader inventive subject matters. These descriptions expound upon and exemplify particular features of those particular embodiments without limiting the inventive subject matters to the explicitly described embodiments and features. Considerations in view of these descriptions will likely give rise to additional and similar embodiments and features without departing from the scope of the inventive subject matters. Although steps may be implied relating to features of processes or methods, no implication is made of any particular order or sequence among expressed or implied steps unless an order or sequence is explicitly stated.
[0064] To promote an understanding of the below descriptions of particular exemplary embodiments, and to clarify that the full scope of the descriptions extends beyond any particularly described embodiment, several underlying principles may be considered without imposing limitations on the exemplary embodiments. According to these underlying principles, isotope production can be implemented by: [0065] 1) Using a neutron source that is neither a nuclear reactor nor a subcritical assembly; [0066] 2) Achieving a high likelihood of neutron capture by intended reactant nuclei by choice of moderating nuclei; [0067] 3) Returning escaping or leaking neutrons to a reaction chamber by use of a neutron reflector; and/or [0068] 4) Optionally using temperature enhancement of neutron capture, preferably low temperature enhancement of neutron capture.
[0069] That is, neutrons can be provided for neutron capture reactions without the use of a nuclear fission reactor or a subcritical assembly, in which naturally fissile material in a subcritical amount or arrangement undergoes some degree of induced fission without reaching criticality. For the purposes of this disclosure, the term subcritical assembly shall be understood to imply the possibility of a subcritical reactor. In the following descriptions, specially designed structures are implemented to cause entering neutrons to be moderated and reflected in such a way as to greatly increase their chances of being captured by a given intended reactant nucleus such as molybdenum-98 (.sup.98Mo). Vessels and housings described below are configured, generally, to minimize neutron leakage and to maximize internal neutron scattering, like a flux trap, but not in the context or confines of a nuclear reactor. Optionally, cooling a volume containing reactant nuclei, for example by using a cryogenic fluid like liquid helium, oxygen, nitrogen, or deuterium, increases the likelihood of neutron capture by an intended reactant nucleus. For the purposes of this description, a reaction chamber is any volume in which reactant nuclei capture neutrons.
[0070] An exception to underlying principle 1 described above, encountered in some of the succeeding embodiments, is when the source of neutrons could be a nuclear reactor or subcritical assembly. For example, a nuclear reactor or subcritical assembly might be configured to leak neutrons so as to provide a source of neutrons for some of the embodiments described below. For example, in one embodiment, a nuclear reactor or subcritical assembly is located in proximity to the reactant nuclei sufficient to produce reaction-product nuclei by neutron capture at a rate exceeding 10.sup.7 neutron captures/second. In these examples, the geometry of either the nuclear reactor or the apparatus might be modified so as to facilitate the transport of neutrons from the nuclear reactor or subcritical assembly to the volumes of apparatus containing reactant nuclei.
[0071] Modeling simulations indicate that a system including a 1-3 meter diameter vessel (spheres and concentric spherical shells) that implements at least to some degree some of the above principles can produce many hard-to-manufacture radioisotopes (RIs), including .sup.99Mo, at neutron efficiencies exceeding the current state of the art, where neutron efficiency is defined as:
Neutron Efficiency=(production rate of reaction-product nuclei)/(neutron production rate)
For this definition, it is understood that the production rates described are those observed during periods of operation, more specifically during the period of operation when neutrons are being produced. For this definition, it is also understood that the neutrons in the denominator's neutron production rate refer to the initially produced neutrons (e.g. by nuclear spallation, DT reactions, from fission) rather than neutrons subsequently produced due to secondary reactions (e.g. such as from (n,xn) reactions). Initially produced neutrons, for example, would include both neutrons originating external to the apparatus and then incident upon the apparatus, and also neutrons produced within the apparatus by the action of a charged particle reaction such as a DT reaction or a spallation reaction. Subsequent neutron multiplication, e.g. (n,xn) reactions, do not contribute towards increasing the denominator. It is also understood, for this definition, that the rates mentioned in the numerator and denominator are considered to be averaged over short time intervals, preferably minutes and more preferably seconds, rather than over long periods of time such as hours, days or more. The rates described should be considered in the context of instantaneous rates rather than averaged rates considered over long time spans such as hours.
[0072] Simulations indicate that neutron efficiency values of up to 25 percent are achievable upon implementation of one or more of the embodiments described below. Higher efficiencies might be realized upon improvement upon one or more of the embodiments by certain improvements in reflector geometry, temperature and/or elemental composition. Several embodiments of a system for the production of at least one isotope are described in the following detailed descriptions and are represented in the drawings. In at least one such embodiment, a system for the production of isotopes includes a reaction chamber in which reactant nuclei are present, and in which moderating nuclei may be present. Neutrons for neutron capture reactions are introduced into the reaction chamber from an external neutron source, or are produced locally, for example via spallation when a spallation target inside of or nearby the reaction chamber is impacted by accelerated particles. At least some of the neutrons that initially avoid capture and escape regions with high concentrations of reactant nuclei are subsequently reflected back towards those regions, to increase the likelihood that each neutron will be captured by the intended reactant nuclei. Single and multiple reflector arrangements are described in the following. The reflector may double in function as a physical wall of the reaction chamber. The reflector may be formed using moderating nuclei within the reaction chamber.
[0073] The following descriptions refer to reactant nuclei, reaction product nuclei, decay-product nuclei, and moderating nuclei. Unless otherwise expressly stated or implied, such references are made without regard to whether electrons are bound in electron shells about the nuclei. These descriptions relate therefore to both ionized and charge-balanced atomic arrangements of the described nuclei, such that the described nuclei may be that of uncharged atoms, ionized atoms, free atoms, and atoms bound in molecular bonds including ionic and covalent bonds. The described nuclei may be present in solid, gas, gel, liquid, or other forms. The reactant and moderating species may be combined as disordered mixtures, regular matrices, and molecular compounds prior to neutron exposure and such arrangements may be maintained, altered, or lost upon, for example, neutron capture reactions leading to subsequent decays. The reactant nuclei may be concentrated in a single location or dispersed throughout the apparatus. The reactant nuclei may, if in solid form, be concentrated into one or more pellets, or into foils with large surface areas, or into other shapes. The reactant nuclei may be in solution within a solvent, or may be a component in a liquid, or may be in gaseous form.
[0074] An apparatus 300 for producing reaction-product nuclei from reactant nuclei is shown in cross-sectional view in
[0075] The walls of the reaction chamber or chambers optionally serve as neutron reflectors, surrounding the reaction chamber 304, returning at least some of the neutrons that reach and/or enter the walls to the reaction chamber 304 to increase the likelihood that each neutron will be captured by the intended reactant nuclei. The walls include moderating nuclei, such that the walls are composed of high moderating ratio material having a low microscopic thermal neutron capture cross section. For example, the walls may include beryllium and/or carbon. The walls in terms of thickness, in at least one embodiment, are greater than approximately 20 centimeters and less than approximately 15 meters.
[0076] Within the reaction chamber 304, neutrons 320 are preferably captured by reactant nuclei 322 to produce desired reaction product nuclei 324. Moderating nuclei 326 are also present in the reaction chamber 304 in the illustrated embodiment, the moderating nuclei also optionally serving as reflecting nuclei. A sufficient thickness of reflecting nuclei may also serve as a reflector in a variety of geometric embodiments.
[0077] In at least one embodiment, the plurality of reactant nuclei 322 has a first average microscopic thermal neutron capture cross-section. Also included and hereby defined is a collection of isotopes consisting of those isotopes whose nuclei species capture at least 1% of all emitted neutrons from the neutron source and which are not reactant nuclei. Also defined is a second plurality of nuclei consisting of all nuclei from the collection of isotopes, wherein at least approximately 90% of the nuclei have microscopic thermal neutron capture cross-sections that are lower than the microscopic thermal neutron capture cross-section of any of the reactant nuclei.
[0078] In at least one embodiment, the total mass of moderating nuclei is greater than approximately 1 kilogram. In at least one embodiment, the apparatus 300 includes temperature control capable of cooling at least 0.1 kg of the system to a temperature at or below approximately 250 degrees Kelvin.
[0079] In at least one embodiment, the reactant nuclei 322 include molybdenum-98 nuclei, and the rate of reactant nuclei neutron capture divided by the rate of neutron source production is greater than approximately 1%. In at least one embodiment, the rate of reactant nuclei neutron capture divided by the rate of neutron source production is greater than approximately 5%.
[0080] In at least one embodiment, the reaction product nuclei 324 include molybdenum-99 nuclei produced from molybdenum-98 reaction product nuclei 324 by neutron capture reactions. Due to the decay of molybdenum-99 nuclei, technetium-99m decay-product nuclei may also be present.
[0081] In at least one embodiment, the moderating nuclei 326 include nuclei of atoms that are chosen from a group consisting of deuterium, tritium, helium-4, lithium-7, beryllium, boron-11, carbon, nitrogen-15, oxygen, fluorine, neon-20 and neon-22.
[0082] The neutron source 316 diagrammatically represents many types of neutron sources that are not nuclear reactors or subcritical assemblies. Suitable examples include neutron emitters, neutron generators and neutron production devices. In at least one embodiment, the illustrated neutron source 316 represents a neutron generator with a neutron emission that is greater than 110.sup.14 neutrons per second. The neutron generator may include a proton, deuteron, or helium-ion accelerator with a projectile energy greater than 8 MeV (much lower for DT neutron-producing reactions) and beam current typically in the range of a milliamp or higher, although systems may be designed with beam current in the range of microamps to hundreds of microamps. Thus, in various embodiments, neutrons 320 are provided by the neutron source 316, and the neutrons irradiate the reactant nuclei 322 such that the reaction product nuclei 324 are generated when the neutrons 320 are captured by the reactant nuclei 322.
[0083] The system 300 in at least one embodiment is utilized to produce a particular nuclear species in a staged process that includes induced neutron capture followed by one or more stages of radioactive decay resulting in production of the particular nuclear species. In at least one example, reactant nuclei 322 are exposed to neutrons 320 to produce, through neutron capture, reaction-product nuclei 324. Natural radioactive decays of the reaction-product nuclei 324 then subsequently produce decay-product nuclei 328 of a desired particular nuclear species. In a particular example, the reactant nuclei 322 in
[0084] Generally, various solvents or fluids into which the .sup.98Mo reactant isotope 322 may be dissolved or suspended may be used as the moderator 326 or a part thereof, as long as the atoms within each solvent or fluid constituent have a low microscopic thermal neutron capture cross-section relative to that of the .sup.98Mo reactant 322. Generally, these solvents or fluids may be composed of elements like hydrogen, helium, beryllium, carbon, oxygen, fluorine, and a few isotopes of other elements. The .sup.98Mo reactant 322 may be suspended or dissolved either in regular or liquid form into these solvents or fluids.
[0085] For example, the microscopic thermal neutron capture cross-section of the .sup.98Mo of the reactant 322 is much higher than the microscopic thermal neutron cross-section of deuterium oxide 332 nuclei in liquid. As an example, the microscopic thermal neutron cross-section of .sup.98Mo reactant 322 is about 130 millibarns versus less than one millibarn for either of those of the two hydrogen or one oxygen atoms. As such, the per nucleus probability of a neutron 320 being captured by the .sup.98Mo reactant 322 nucleus is much higher than the probability of a neutron being captured by deuterium oxide. Once a neutron 320 is captured by the .sup.98Mo reactant nucleus 322, it forms the .sup.99Mo reaction-product 324. The .sup.99Mo reaction-product 324 then decays to create the .sup.99mTc decay-product 328, which may be directly and continuously extracted from the chamber 304 via a channel 318, which may include a valve or other mechanical and chemical structures meant to perform radiochemical separation to isolate the desired reaction or decay product.
[0086] Alternatively, instead of suspending or dissolving the .sup.98Mo reactant 322 in a separate liquid or fluid, the .sup.98Mo reactant 322 may itself be part of a liquid compound. Non-limiting examples include: difluoromolybdenum (.sup.98MoF.sub.2); molybdenum fluoride (.sup.98MoF.sub.3); molybdenum tetrafluoride (.sup.98MoF.sub.4); molybdenum hexafluoride (.sup.98MoF.sub.6); compounds of molybdenum, oxygen, and/or fluorine (MoO.sub.nF.sub.m).
[0087] Generally, the apparatus 300 directs neutrons 320 into a volume where neutrons are captured by .sup.98Mo instead of by other nuclei, in a ratio that is significantly higher than in systems that lack strong thermalization and/or high moderating ratios, even though .sup.98Mo has a low microscopic thermal neutron capture cross-section in isolation (of about 130 millibarns). As such, the apparatus 300 allows the neutrons 320 emitted from the neutron source to be captured by the desired reactant nuclei without the majority of neutrons 320 leaking out or being captured by nuclei other than .sup.98Mo, and thus being wasted. The result is that the efficiency of capturing neutrons on the desired reactant nuclei in the apparatus 300 is high (between 1 and 30%) and generally described by the following previously described relationship:
Neutron Efficiency=(production rate of reaction-product nuclei)/(neutron production rate)
where the reaction-product nuclei are .sup.99Mo in situations where the reactant nuclei comprise .sup.98Mo. However, certain models have shown that by altering the temperature of the reactant nuclei, higher efficiencies than 30% may be attainable.
[0088] A system 400 for producing reaction-product nuclei from reactant nuclei according to at least one embodiment is represented in
[0089] Like the walls of the reaction chamber 304 of
[0090] In the illustrated embodiment, the access channel 404 is defined by a radially extending tubular wall 412 that connects an outer surface 414 of the vessel wall 402 to the target 406. As shown in
[0091] A particle accelerator 420 directs a high-energy beam 422 of particles into the access channel 404 of the system 400 (
[0092] In at least one embodiment, neutrons produced at the target 406 are emitted in a fully or partially isotropic fashion. Thus, putting the neutron emitting target at the center of the approximately spherical reaction chamber facilitates a relatively uniform distribution of neutrons in that volume of the reaction chamber 410 where intended reactant nuclei await the emitted nuclei. Nonetheless, in embodiments where neutrons are provided or emitted anisotropically or directionally, the target 406 may be constructed and placed, for example non-concentrically with the wall 402, at any location within or relative to the reaction chamber 410 to maximize neutron efficiency with regard to capture by intended reactant nuclei in the chamber.
[0093] Within the reaction chamber 410 (
[0094] A system 500 for producing reaction-product nuclei from reactant nuclei according to at least one other embodiment is represented in
[0095] In an operational example relating to
[0096] In this operational example, the .sup.98Mo reactant 322 may be combined with the moderator 326 in a solution, or suspension. The moderating nuclei 326 may include deuterium, tritium, helium-4, lithium-7, beryllium, boron-11, carbon, nitrogen-15, oxygen, fluorine, neon-20 and neon-22 as non-limiting examples. Further moderator examples include deuterated compounds such as deuterium oxide (D.sub.2O), deuterated hydrogen peroxide (D.sub.2O.sub.2) and deuterated organic compounds (D.sub.nC.sub.mO.sub.p). Other moderator examples include oxygen (O.sub.2), carbon dioxide (CO.sub.2), deuterated methanol, deuterated ethanol, and fluorine.
[0097] Various solvents or fluids in which the .sup.98Mo reactant may be suspended may be used as long as the solvent or fluid constituents have a low microscopic thermal neutron capture cross-section relative to the .sup.98Mo reactant. Generally, these solvents or fluids may be composed of elements like hydrogen, helium, carbon, oxygen, fluorine, and a few isotopes of other elements. The .sup.98Mo reactant may be suspended or dissolved into these fluids or solvents.
[0098] Alternatively, instead of suspending or dissolving the .sup.98Mo reactant in a separate liquid or fluid, the .sup.98Mo reactant may be a constituent of a liquid or solid compound such as, for non-limiting examples, difluoromolybdenum, molybdenum fluoride, molybdenum tetrafluoride, molybdenum hexafluoride, molybdenum oxides, and compounds of molybdenum, oxygen, and fluorine (MoO.sub.nF.sub.m).
[0099] The decay-product or reaction-product nuclei may be directly and continuously extracted from the reaction chamber via the element 318 (
[0100] A system 700 for the production of desired nuclear species is represented in
[0101] Although five spherical shell layers are illustrated in
[0102] Like the walls of the reaction chamber 304 of
[0103] In
[0104] The spherical boundaries represent, in various embodiments, either: structural materials supporting and separating the adjacent layers; or the interface where layers meet without additional structural materials maintaining their separation. That is, the central spherical target 706 and ordered layers 710, 712, 714, 716 and 718 are distinct in various embodiments by their positions, contents and other physical properties such as temperatures with or without intervening material between them at the radially intermediary boundaries. Additional structural members may be used to connect and/or support each layer and boundary. Exemplary radially arranged beams 730, extending like spokes, are illustrated in
[0105] Structural materials by which the spherical boundaries may be constructed, in at least one embodiment of the system 700 of
[0106] Upon emission of neutrons from the target 706, neutron capture processes occur between the target and an outer wall 702 of the system 700 within one or more of the surrounding layers 710, 712, 714, 716, and 718 to facilitate production of a desired nuclear species. The outer wall 702 is illustrated as a spherical boundary for convenience but may take other form in some embodiments.
[0107] An access channel 732 is represented as a tapered bore that diminishes in size from the outer wall 702 toward the central spherical target 706. The access channel 732 permits a beam 750 of particles to reach the target 706. A radially extending wall 734 defining the access channel 732 is illustrated in
[0108] The access channel 732 is illustrated as subtending s solid angle 736, which is shown as an acute angle for exemplary illustrative purpose. In other embodiments, the angle 736 is obtuse. In at least one embodiment, the solid angle 736 is approximately 2 steradians such that the layers 710-718 are hemispherical. Thus, in various embodiments, the solid angle 730 can be of any value and the access channel 732 can be of any size and shape.
[0109] The access channel 732 can serve two or more purposes. It allows a particle beam to reach the center of the system 700, where incoming particles such as protons, deuterons, helium nuclei, and other projectiles can produce neutrons, for example by inducing nuclear reactions at a central target. For example, if beryllium is used as the central target 706, incoming high energy particles like protons can make neutrons by a .sup.9Be(p,n) reaction. The access channel 732 also allows for the entry and exit of cooling fluid to control temperature in the layers of the system 700. For example, liquid helium, oxygen, and/or other coolants might be used to maintain the temperatures of the central spherical target 706 and layers 710-718, each at a particular respective temperature. In some embodiments of the system 700, temperatures are maintained to preferentially control the moderating ratio and/or to increase the microscopic neutron capture cross-section of a desired reactant isotope. In some embodiments, temperatures are lowered in some layers to less than 100 degrees K, and even to as low as the boiling point of helium, and even lower still.
[0110] One or both of these described purposes might be served by the access channel 732 in various embodiments. For example, a neutron generation mechanism might be entirely contained inside the vessel, and cooling or heating may or may not be needed. Furthermore, more than one bore may be present. The shapes, sizes, locations and numbers of bores can vary without changing the principles above. Some embodiments might not use any bores.
[0111] In at least one embodiment, the neutron-emitting target comprises at least 10 grams of nuclei that possess a microscopic thermal neutron capture cross-section greater than that of the reactant nuclei, in a volume where neutron energy is much higher than thermal energy. In at least one embodiment, the neutron-emitting target comprises at least 10 grams of nuclei that possess a microscopic thermal neutron capture cross-section greater than that of the reactant nuclei, and where the neutron-emitting target is configured (e.g. geometrically, thermally) to absorb as few neutrons as possible, for example less than 1, 5, or 10% of all neutrons produced at the target.
[0112] In at least one embodiment, an externally delivered beam 750 of particles enters the access channel to create neutrons through nuclear reactions at the target 706. In another example, an RI decay source of neutrons is placed at the target location, for example AmBe, .sup.252Cf, PuBe, and other sources may be used.
[0113] Because the system is designed to moderate neutrons of even high energy (for example, even greater than 8-14 MeV), the system can handle a wide variety of neutron energy input without loss of function. For example, DT neutrons and spallation sources may be used. Various neutron intensities or input rates are also acceptable. An underlying design principle implemented by one or more embodiments described herein is directed to increasing the probability that any one neutron gets captured by a given intended reactant. As a result, the intensity of the neutrons delivered into the vessel should not greatly vary the average neutron efficiency.
[0114] There already exist commercial accelerators, for example, that can reach the energies and beam currents necessary to produce these neutrons intensities. For example, particles including protons, deuterium, tritium, helium, and other examples, when incident upon a neutron-producing target, can make between 0.1 and 5 neutrons per incident particle at energies of tens to a few hundreds of MeV. Different targets yield different neutron yields in a process called nuclear spallation.
[0115] In at least one example, a beam of high energy (tens to hundreds MeV) particles are incident on a neutron rich target, generating sufficient neutrons for practical operation. Assuming approximately one neutron is generated per incident nuclear particle, a beam of about 10.sup.16 particles per second, or a few milliamps of beam current, is necessary. Beams that can provide a few tens or hundreds of MeV at milliamp beam currents or higher are available in industry research implementations, for example in proton therapy. Higher or lower beam energies and beam currents may be warranted to reduce cost or to change production rate over time to alter the rate of neutron-producing-target heating, for example due to heating as the high energy particles decelerate, in which some collisions generate heat instead of (or in addition to) neutrons.
[0116] In
[0117] Many forms of neutron production according to embodiments within the scope of these descriptions cause neutrons to be emitted in a mostly or partially isotropic fashion. Putting the neutron emitting target close to the center of the volume can help distribute isotropically emitted neutrons uniformly into zones rich with nuclei intended for neutron capture to help maximize neutron efficiency. Alternatively, in situations with anisotropy in neutron emission, the neutron emitter location and shape may be varied or optimally selected to improve neutron efficiency.
[0118] Heating and/or cooling is provided in various embodiments to maintain a neutron-producing target at a selected stable temperature. Cooling may be used to facilitate enhancement of the neutron capture rate of reactant nuclei by reducing neutron energy and thereby enhancing the microscopic neutron capture cross-section of the intended reactant nuclei, such as .sup.98Mo nuclei. Cooling may include cryogenic cooling. Heating may also be used to reduce neutron capture of non-reactant nuclei by increasing neutron energy. The coolant and any tubing, piping, and casing that carry the coolant within the housings described herein preferably also have small microscopic neutron capture cross-sections, but are able to handle colder-than-room-temperature or cryogenic temperatures without compromising functional integrity. Tubing materials can include, for example: any polymer constructed with carbon, deuterium, oxygen, beryllium, fluorine, and other low microscopic neutron capture cross-section materials; or metals like, for example, zirconium. Sufficient coolant should be applied to remove waste heat created during neutron creation, and also to cool any layers of the volume down to temperatures below room temperature, for example, down to 100 degrees K, 30 degrees K, 10 degrees K, or below the boiling point of helium. In some embodiments, the intentional use of heating to raise temperatures above room temperature might also be employed in order to increase neutron energy and thereby reduce microscopic neutron capture cross-sections.
[0119] Structural material used in constructions should be able to operate at lower-than-room-temperature and cryogenic temperatures, and also to withstand cycles of temperature between room temperature and lower-than-room-temperature or cryogenic temperature, if lower temperatures are used. Coolant, if used, may enter and leave interior volumes at more than one place. For example, in addition to entering and/or exiting at the bore, coolant might enter or leave at various conduits. Specialty low microscopic thermal neutron capture cross-section variants of commercially available structural materials, pipes, electronic components, heat exchangers, etc. may be used or specifically manufactured for use in this apparatus.
[0120] In
[0121] The thermal control system 900 includes any number of primary conduits 920 and sub-conduits 922 and 924 defining send and return fluid paths constituting a branched fluid distribution network implemented in the layered structure of the layered shell vessel 902 such that the shell layers 904 can be independently or together thermally maintained. In at least one embodiment, a standard cryogenic fluid producer 926 is used to cycle low microscopic neutron capture cross-section coolant fluid that is sufficiently free of higher microscopic neutron capture cross-section contaminants. In another embodiment, cooling fluid is used to keep reactant nuclei between 200 and 250 K. The cooling, whether cryogenic or otherwise, should be done in such a way so as not to interfere with the beam 910 entering the bore.
[0122] Particularly within the vessel 902, conduit lines, tubing, enclosures and the distributed coolant should have low microscopic neutron capture cross-sections so as to minimize neutrons being captured by material within the vessel other than the intended reactant. Various cooling systems and arrangements meeting these conditions are within the scope of these descriptions, as are various methods of lower-than-room-temperature or cryogenic fluid delivery, storage, and production.
[0123] In some embodiments, removal of a produced radioisotope may proceed by allowing the various layers to cool or heat up to room temperature naturally, or may occur by removing frozen material, if material is present in frozen form (for example .sup.98Mo or .sup.99Mo in solid D.sub.2O, oxygen, nitrogen-15, etc.). Removal may also involve allowing liquid to evaporate, leaving only Mo, for example from Mo in liquid oxygen or helium.
[0124] In some embodiments, to extract and ship radioisotopes such as .sup.99Mo, existing radiochemical methods and existing or modified supply chain procedures may be followed. In situations where .sup.99Mo may not be easily extracted from .sup.98Mo precursor or where such extraction is not warranted or necessary, the mass of Mo may be shipped together, used in Technetium-99m generators available commercially today, and returned to have the molybdenum extracted for re-use. In some embodiments, altered or improved Technetium-99m generators that can successfully use lower specific radioactivity levels than those used by the current commercial state of the art technetium generators may be used. Because using enriched molybdenum is helpful to high neutron efficiency operation, using a method of shipping and returning the vessel which minimizes the loss of enriched (expensive) .sup.98Mo might be desirable. Apparatuses according to these descriptions are constructed in such a way that removing or adding reactant nuclei material, such as .sup.98Mo, is fast and easy. For example, it may be constructed in such a way that the layer or layers containing reactant nuclei material are easily removed, pumped out, or added back.
[0125] The volume or volumes with the intended reactant nuclei for neutron absorption/capture is preferably specially constructed for convenient removal of the activated material after irradiation. Further, enriched material (for example .sup.98Mo at 80 percent or more enrichment) may be used.
[0126] Several exemplary configurations are specified in further detail below in Tables 1-4, which specifies densities, materials, temperatures, dimensions are specified for the central target 706 and layers 710 (first layer), 712 (second layer), 714 (third layer), 716 (fourth layer) and 718 (fifth layer) for the system 700 of
[0127] These exemplary configurations are derived from computer modeling using neutron transport codes. Modeling was performed using MCNP5, which is known and often used by those of skill in the art. For the sake of simplicity, modeling did not include structural materials such as those shown at radial positions corresponding to boundaries 720 722, 724, 726 in
TABLE-US-00001 TABLE 1 Configuration 1 Density Temperature Radial Range Chamber (g/cm.sup.3) Material (degrees K) (cm) Central Target 1.85 Beryllium 300 0-20 cm Layer 1 0 Void N/A 20-30 cm Layer 2 1.1 D.sub.2O 300 30-35 cm Layer 3 1.86 51 parts O, 300 35-38 cm 1 part .sup.98Mo Layer 4 1.1 D.sub.2O 300 38-58 cm Layer 5 1.1 D.sub.2O 300 58-199 cm
TABLE-US-00002 TABLE 2 Configuration 2 Density Temperature Radial Range Chamber (g/cm.sup.3) Material (degrees K) (cm) Central Target 1.85 Beryllium 300 0-20 cm Layer 1 0 Void N/A 20-30 cm Layer 2 1.1 D.sub.2O 30 30-35 cm Layer 3 1.86 51 parts O, 30 35-38 cm 1 part .sup.98Mo Layer 4 1.1 D.sub.2O 30 38-58 cm Layer 5 1.1 D.sub.2O 300 58-199 cm
TABLE-US-00003 TABLE 3 Configuration 3 Density Temperature Radial Range Chamber (g/cm.sup.3) Material (degrees K) (cm) Central Target 1.85 Beryllium 300 0-20 cm Layer 1 0 Void N/A 20-30 cm Layer 2 1.1 D.sub.2O 3 30-35 cm Layer 3 1.86 51 parts O, 3 35-38 cm 1 part .sup.98Mo Layer 4 1.1 D.sub.2O 3 38-58 cm Layer 5 1.1 D.sub.2O 300 58-199 cm
[0128] Neutron efficiency is predicted to go from about 2% to 15% as one goes from configuration 1 to configuration 3, representing production yields that would be commercially competitive .sup.99Mo production rates in machine implementation.
TABLE-US-00004 TABLE 4 Configuration 4 Density Temperature Radial Range Chamber (g/cm.sup.3) Material (degrees K) (cm) Central Target 1.85 Beryllium 300 0-10 cm Layer 1 0.12 Void N/A 10-15 cm Layer 2 2.85 22 parts D.sub.2O, 3 15-20 cm 1 part .sup.98Mo Layer 3 1.1 D.sub.2O 3 20-40 cm Layer 4-5 1.1 D.sub.2O 3 40-199 cm
[0129] Configuration 4 has an estimated neutron efficiency of about 20%.
[0130] Extra layers could be added, or layers removed, or these principles modified, or geometries or materials added or changed or altered without changing the premise of these descriptions.
[0131] Particular embodiments and features have been described with reference to the drawings. It is to be understood that these descriptions are not limited to any single embodiment or any particular set of features, and that similar embodiments and features may arise or modifications and additions may be made without departing from the scope of these descriptions and the spirit of the appended claims.