Valve for extracting air pockets from viscous fluids
US-2016051906-A1 · Feb 25, 2016 · US
US10311983B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10311983-B2 |
| Application number | US-201514985977-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 31, 2015 |
| Priority date | Dec 31, 2014 |
| Publication date | Jun 4, 2019 |
| Grant date | Jun 4, 2019 |
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A control assembly for a nuclear reactor having a pump includes a duct having an inner volume and defining a coolant flow path, a plug fixed to the duct, a rod disposed within the inner volume and having a rod end that is configured to engage a neutron modifying material, a first piston disposed within the inner volume, slidably coupled to the duct, and coupled to the rod, and a biasing member coupled to the rod and the first piston. The biasing member is positioned to apply a biasing force that repositions the first piston, the rod, and the neutron modifying material in response to a loss of pump flow without scram condition.
Opening claim text (preview).
What is claimed is: 1. Apparatus for translation along an axis of fluid flow, the apparatus comprising: a duct configured to conduct a fluid in a first direction; a plug fixed to the duct; a loading assembly disposed within the duct and configured to move a member in the first direction into a loaded position when pressure of the fluid in the duct satisfies a loading condition; a first piston coupled to the member, the first piston within and slidably coupled to the duct, wherein the plug and the first piston define a pair of cooperating apertures that forms at least a portion of a converging-diverging passage; and a firing assembly operably coupled to the loading assembly and disposed within the duct, the firing assembly and the loading assembly being configured to store energy when the member is in the loaded position and to release stored energy and move the member out of the loaded position in a second direction opposite the first direction when the pressure of the fluid in the duct satisfies a firing condition. 2. The apparatus of claim 1 , wherein the member is disposed within the duct and having an end that is configured to engage a neutron modifying material. 3. The apparatus of claim 1 , wherein the converging-diverging passage is disposed along a fluid flow path such that pressure variations within the converging-diverging passage secure the first piston and the member when the pressure of the fluid in the duct satisfies the loading condition. 4. The apparatus of claim 3 , wherein the pair of cooperating apertures includes a first aperture defined at least partially by the first piston and a second aperture defined at least partially by the plug, the first aperture and the second aperture defining at least a portion of a converging opening and at least a portion of a diverging opening. 5. The apparatus of claim 4 , further comprising: wherein the converging opening extends between an inlet end and an inlet throat; wherein the diverging opening extends between an outlet throat and an outlet end; and wherein the inlet throat of the converging opening has an inlet throat cross-sectional area that is equalized with an outlet throat cross-sectional area of the outlet throat of the diverging opening. 6. The apparatus of claim 4 , wherein the first piston includes a first body that defines the first aperture and the plug includes a second body that defines the second aperture such that the pair of cooperating apertures is spaced from peripheries of the plug and the first piston. 7. The apparatus of claim 4 , further comprising: wherein the firing assembly includes a cup and a second piston, wherein the cup has a sidewall that defines an interior space; and wherein the second piston is disposed within the interior space of the cup. 8. The apparatus of claim 7 , further comprising: wherein the member has an opposing second end, wherein the second piston is coupled to the opposing second end of the member, wherein the second piston includes a piston body that separates the interior space of the cup into a first region and a second region; wherein the member is positioned along the fluid flow path; and wherein the cup has an open end such that the first region is exposed to the fluid flow path. 9. The apparatus of claim 8 , further comprising: wherein the cup is configured to contain a compressible fluid within the second region; wherein the cup defines an opening configured to fluidly couple the first region and a liquid coolant associated with the fluid flow path; and wherein a pressure of the compressible fluid varies with the pressure of the liquid coolant. 10. The apparatus of claim 8 , further comprising: wherein the second piston is slidably coupled to the sidewall of the cup; wherein the second piston defines an orifice that places the first region in fluid communication with the second region, and wherein the orifice is configured to restrict a flow of the fluid therethrough such that release of stored energy applied by the firing assembly overcomes a suction force associated with the pressure variations within the converging-diverging passage when the pressure of the fluid in the duct satisfies a firing condition. 11. The apparatus of claim 1 further comprising a hysteresis device positioned to apply a driving force independent of release of stored energy by the firing assembly. 12. The apparatus of claim 11 , further comprising: wherein the hysteresis device is configured to receive a hysteresis control signal; and wherein the hysteresis device initiates the driving force in response to receiving the hysteresis control signal. 13. The apparatus of claim 11 , wherein the hysteresis device is a spring mechanism. 14. The apparatus of claim 1 further comprising an expansion device, the expansion device having a contracted state and an expanded state, and positioned to provide a resisting force in the expanded state. 15. The apparatus of claim 14 , wherein the expansion device further comprises an engaging member, the engaging member maintaining the expansion device in the expanded state. 16. The apparatus of claim 15 , wherein the expansion device is configured to receive an engagement control signal, wherein the engaging member maintains the expansion device in the expanded state in response to receiving the engagement control signal. 17. The apparatus of claim 15 , wherein the expansion device is configured to receive a disengagement control signal, wherein the engaging member disengages and allows the expansion device to return to the contracted state in response to the disengagement control signal. 18. The apparatus of claim 14 , wherein the expansion device comprises a thermal expansive material. 19. The apparatus of claim 14 , wherein the expansion device further comprises a bellows. 20. The apparatus of claim 1 , further comprising a locking mechanism, wherein the locking mechanism has a locked state and an unlocked state, wherein the locking mechanism in the locked state engages the loading assembly. 21. The apparatus of claim 20 , wherein the locking mechanism in the locked state engaging the member inhibits movement of the member relative to the duct. 22. The apparatus of claim 20 , wherein the locking mechanism is configured to receive a locking control signal, wherein the locking mechanism enters and maintains the locked state in response to receiving the locking control signal. 23. The apparatus of claim 20 , wherein the locking mechanism is configured to receive an unlocking control signal, wherein the locking mechanism enters and maintains the unlocked state in response to the unlocking control signal. 24. The apparatus of claim 20 , wherein the locking mechanism comprises a ferromagnetic material. 25. The apparatus of claim 1 , further comprising a flow restricting device, wherein the firing assembly releases the stored energy in response to movement of the flow restricting device. 26. The apparatus of claim 25 , wherein the flow restricting device moves in response to a change in temperature. 27. A nuclear reactor, comprising: a fuel assembly including a fuel assembly duct containing nuclear fuel; a pump in fluid communication with the fuel assembly duct of the fuel assembly, wherein the pump is configured to provide a coolant flow along a coolant flow path; and a control assembly including: a control assembly duct configu
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