Claims
- 1. A gas-free system for separating substantially impurity-free radioactive daughter product from an associated radioactive parent load solution, the system comprising:
a pump; a first multi-port valve having at least two ports, a first port of the first multi-port valve being in flow communication with the pump; a second multi-port valve including at least four ports, a first port of the second multi-port valve being in flow communication with the associated parent load solution, a second port of the second multi-port valve being in flow communication with an associated strip solution, and a third port of the second multi-port valve being in flow communication with the first multi-port valve, and a fourth port; a separator being in flow communication with the fourth port of the second multi-port valve; a third multi-port valve including at least two ports, a first port of the third multi-port valve being in flow communication with the separator opposite the fourth port of the second multi-port valve, and a second port of the third multi-port valve being in flow communication with an associated product vessel; a conduit extending between a third port of the second multi-port valve and the first multi-port valve; and a processor operatively coupled to the pump, first multi-port valve, the second multi-port valve, and the third multi-port valve.
- 2. The system in accordance with claim 1, wherein the separator and the product vessel form modular units that are detachably connected to the second and third multi-port valves.
- 3. The system in accordance with claim 1, wherein the first, second and third flow valves form a valve system, and wherein each of the parent load solution, the strip solution, the separator, and the product vessel are detachably connected to the valve system.
- 4. The system in accordance with claim 1 including a guard column, wherein the third multi-port valve is in flow communication with the associated product vessel by the guard column, and wherein the separator, the guard column and the product vessel form modular units that are detachably connected to the second and third multi-port valves.
- 5. The system in accordance with claim 1 further comprising an associated radioactive in-growth vessel in flow communication with the second multi-port valve, and an associated temporary storage vessel in flow communication with the second multi-port valve, the second multi-port valve including six ports.
- 6. The system in accordance with claim 5, wherein the first, second and third flow valves form a valve system, and wherein each of the parent load solution, the strip solution, the separator, the product vessel, the growth vessel and the storage vessel are detachably connected to the valve system.
- 7. The system in accordance with claim 1 including a radiation shield enclosing the pump, the separator, guard column, and the first, second, and third valves.
- 8. The system in accordance with claim 1 including a wash solution in flow communication with the first or second multi-port valve, the first multi-port valve including three ports.
- 9. A system for separating desired daughter radionuclides from an associated parent load solution, the system comprising:
a first pump; a first multi-port valve including at least three ports, the first valve in flow communication with the first pump, and with the associated parent load solution; a second pump; a second multi-port valve including at least three ports, the second valve in flow communication with the second pump, and with an associated strip solution; a third pump; a third multi-port valve including at least three ports, the third pump in flow communication with the third valve, and with an associated wash solution; a fourth multi-port valve including at least four ports, the fourth valve in flow communication with the first, second and third valves; a separator in flow communication with the fourth valve; a fifth multi-port valve including at least three ports, the fifth multi-port valve in flow communication with the separator, and an associated product vessel; and, a processor operatively coupled to the first, second third, fourth and fifth valves, and to the first, second and third pumps.
- 10. The system in accordance with claim 9 including a guard column, wherein the fifth valve is in flow communication with the product vessel by way of the guard column.
- 11. The system in accordance with claim 10, wherein the first, second, third, fourth and fifth flow valves form a valve system, and wherein each of the parent load solution, the strip solution, the separator, the guard column, the product vessel, the growth vessel and the storage vessel are detachably connected to the valve system.
- 12. The system in accordance with claim 9 wherein the system is substantially free from gas.
- 13. The system in accordance with claim 10 including a radiation shield, wherein the first, fourth and fifth valves, the first pump, the separator and the guard column are enclosed by a radiation shield.
- 14. A gas- and air-less method for separating a daughter radionuclide from a solution containing a parent radionuclide to form a solution of substantially impurity-free daughter radionuclide, comprising the steps of:
transferring a solution containing a parent radionuclide to a growth vessel; waiting a predetermined time for decay of the parent radionuclide to form a parent-daughter solution containing a desired daughter radionuclide; contacting the parent-daughter solution with separation medium having a high affinity for the daughter radionuclide to form daughter-laden separation medium and a daughter-depleted parent-daughter solution; removing the daughter-depleted parent-daughter solution from the separation medium; and stripping the desired daughter radionuclide from the daughter laden separation medium to form a solution of substantially impurity-free daughter radionuclide.
- 15. A gas- and air-less method for separating a daughter radionuclide from a solution containing a parent radionuclide to form a solution of substantially impurity-free daughter radionuclide, comprising the steps of:
transferring a solution containing a parent radionuclide to a growth vessel; waiting a predetermined time for decay of the parent radionuclide to form a parent-daughter solution containing a desired daughter radionuclide; contacting the parent-daughter solution with a first separation medium having a high affinity for the parent radionuclide to form parent laden separation medium and a daughter laden solution; contacting the daughter laden solution with a second separation medium having a high affinity for the parent radionuclide to form a solution of substantially impurity-free daughter radionuclide.
- 16. A system for separating a first solution of substantially a first component from an associated load solution of substantially first and second components, the system comprising:
a pump; a first multi-port valve having at least two ports, a first port of the first multi-port valve being in flow communication with the pump; a second multi-port valve including at least four ports, a first port of the second multi-port valve being in flow communication with the associated load solution, a second port of the second multi-port valve being in flow communication with an associated strip solution, and a third port of the second multi-port valve being in flow communication with the first multi-port valve, and a fourth port; a separator being in flow communication with the fourth port of the second multi-port valve; and a third multi-port valve including at least two ports, a first port of the third multi-port valve being in flow communication with the separator opposite the fourth port of the second multi-port valve, and a second port of the third multi-port valve being in flow communication with an associated product vessel that contains the separated first solution of the first component.
- 17. The system in accordance with claim 16 including a guard column, wherein the third multi-port valve is in flow communication with the associated product vessel by way of the guard column.
- 18. The system in accordance with claim 17, wherein the separator, the guard column, and the product vessel form modular units that are detachably connected to the second and third multi-port valves.
- 19. The system in accordance with claim 17, wherein the first, second and third flow valves form a valve system, and wherein each of the load solution, the strip solution, the separator, the guard column, and the product vessel are detachably connected to the valve system.
- 20. The system in accordance with claim 16 including a computer processor operatively coupled to the pump, the first multi-port valve, the second multi-port valve, and the third multi-port valve.
- 21. The system in accordance with claim 16 further comprising an associated radioactive in-growth vessel in flow communication with the second multi-port valve, and an associated temporary storage vessel in flow communication with the second multi-port valve, the second multi-port valve including six ports.
- 22. The system in accordance with claim 21, wherein the first, second and third flow valves form a valve system, and wherein each of the parent load solution, the strip solution, the separator, the product vessel, the growth vessel and the storage vessel are detachably connected to the valve system.
- 23. The system in accordance with claim 16 including a wash solution in flow communication with the first multi-port valve, the first multi-port valve including three ports.
- 24. The system in accordance with claim 23, wherein the first, second and third flow valves form a valve system, and wherein each of the parent load solution, the strip solution, the separator, the product vessel, and the wash solution are detachably connected to the valve system.
- 25. The system in accordance with claim 16, wherein at least one of the first and second components is radioactive.
- 26. The system in accordance with claim 16, wherein at least one of the first and second components is an ionic species.
- 27. The system in accordance with claim 16, wherein at least one of the first and second components is an ionic analyte.
- 28. The system in accordance with claim 16 wherein the system is substantially free from gas.
- 29. A system for separating a first ionic species from a load solution having the first ionic species and at least one component, the system comprising:
a first pump; a first multi-port valve including at least three ports, the first valve in flow communication with the first pump, and with the load solution; a second pump; a second multi-port valve including at least three ports, the second valve in flow communication with the second pump, and with an associated strip solution; a third pump; a third multi-port valve including at least three ports, the third valve in flow communication with the third valve, and with an associated wash solution; a fourth multi-port valve including at least four ports, the fourth valve in flow communication with the first, second and third valves; a separator in flow communication with the fourth valve; a fifth multi-port valve including at least three ports, the fifth multi-port valve in flow communication with the separator, the associated solution, and an associated product vessel that contains the first ionic species; and, a processor operatively coupled to the first, second, third, fourth and fifth valves, and to the first, second and third pumps.
- 30. The system in accordance with claim 29 including a guard column, wherein the fifth valve is in flow communication with the product vessel by way of the guard column.
- 31. The system in accordance with claim 30, wherein the first, second, third, fourth and fifth flow valves form a valve system, and wherein each of the parent load solution, the strip solution, the separator, the guard column, the product vessel, the growth vessel and the storage vessel are detachably connected to the valve system.
- 32. The system in accordance with claim 29 wherein the system is substantially free from gas.
- 33. The system in accordance with claim 29 wherein at least one of the first ionic species and the component is radioactive.
- 34. A computer readable medium containing embedded computer program code segments for separating a first component from an associated load solution of substantially first and second components, comprising:
a first computer program code segment that transfers the load solution to a first vessel; a second computer program code segment that contacts the load solution with separation medium having a high affinity for the first component to a form first component-laden separation medium and a first component depleted load solution; a third computer program code segment that removes the first component-laden separation medium and a first component depleted load solution from the separation medium; and a fourth computer program code segment that strips the desired first component from the first component-laden separation medium to form a first solution of substantially the first component.
- 35. A method for separating a first component from an associated load solution of substantially first and second components, comprising the steps of:
transferring the load solution to a first vessel; contacting the load solution with separation medium having a high affinity for the first component to form a first component-laden separation medium and a first component depleted load solution; removing the first component-laden separation medium and a first component-depleted load solution from the separation medium; and stripping the desired first component from the first component depleted separation medium to form a first solution of substantially the first component.
- 36. A computer readable medium containing embedded computer program code segments for separating an ionic species from a load solution containing the ionic species and at least one component to form an end solution of substantially impurity-free ionic species, comprising:
a first computer program code segment that transfers a solution containing at least one component to a growth vessel; a second computer program code segment that contacts the solution with a first separation medium having a high affinity for the ionic species to form an ionic species laden separation medium and an ionic species deleted solution; and a third computer program code segment that contacts the ionic species depleted solution with a second separation medium having a high affinity for other components initially present as a mixture of the ionic species to form a solution of substantially impurity-free ionic species.
- 37. A method for separating an ionic species from a load solution containing the ionic species and at least one component to form an end solution of substantially impurity-free ionic species, comprising the steps of:
transferring a solution containing at least one component to a growth vessel; contacting the solution with a first separation medium having a high affinity for the ionic species to form an ionic species laden separation medium and an ionic species depleted solution; and contacting the ionic species depleted solution with a second separation medium having a high affinity for other components initially present as a mixture of the ionic species to form a solution of substantially impurity-free ionic species.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefit of U.S. Provisional Application Serial No. 60/300,141 filed Jun. 22, 2001.
Provisional Applications (1)
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Number |
Date |
Country |
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60300141 |
Jun 2001 |
US |