Fast neutron spectrometer and detector
US-11169285-B2 · Nov 9, 2021 · US
US10386507B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10386507-B2 |
| Application number | US-201515507509-A |
| Country | US |
| Kind code | B2 |
| Filing date | Aug 28, 2015 |
| Priority date | Aug 28, 2014 |
| Publication date | Aug 20, 2019 |
| Grant date | Aug 20, 2019 |
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Tensioned metastable fluid detectors are disclosed that minimize false positive detection events. The methods involve the use of new fluids that provide improved neutron-alpha fission detection at reduced tension states. The rate of spin is also increased using a new protocol that avoids the creation of liquid imbalances in the arms of a CTMFD (centrifugally tensioned metastable fluid detector). The disclosed CTMFD radiation detection system includes a detector assembly containing a detection fluid, a base, a safety enclosure, a motor and motor mounting bracket, speed sensors, a cooling system that includes an air inlet and outlet and a safety enclosure. The CTMFD radiation detection system can include a plurality of independent detector arms having fluids with distinct Pneg requirements such that the range of detectable radiation is increased. Also disclosed are methods for detecting radiation using the disclosed CTMFD radiation detection system. Motor speed calibration procedures are also disclosed.
Opening claim text (preview).
The invention claimed is: 1. A CTMFD radiation detection system comprising a detector assembly comprising a detection fluid, a base, a safety enclosure, a motor and motor mounting bracket, speed sensors, a cooling system comprising an air inlet and outlet, and a safety enclosure, wherein the base further comprises an air intake shaft having bubble sensor holes, vibration dampeners, a holder for a liquid temperature measuring device, shaft supports and attachments for a safety enclosure. 2. The CTMFD radiation detection system of claim 1 wherein the detector arms further comprise a bulb joined to a neck and arms, wherein the interior of the neck is convex and joins the bulb to the arms. 3. The CTMFD radiation detection system of claim 1 wherein the detector comprises a protective coating. 4. The CTMFD radiation detection system of claim 1 wherein the detector comprises support braces. 5. The CTMFD radiation detection system of claim 1 wherein the detection fluid in the arms extends above elbows that connect the upper and lower halves of the arms. 6. The CTMFD radiation detection system of claim 1 wherein the detector further comprises a fill spout. 7. The CTMFD radiation detection system of claim 1 wherein the detector arms have an internal diameter of at least about 6 to about 8 mm or more. 8. The CTMFD radiation detection system of claim 1 wherein the base further comprises an air intake shaft having bubble sensor holes, vibration dampeners comprising suction cup feet, a holder for a liquid temperature measuring device, shaft supports and attachments for a safety enclosure. 9. The CTMFD radiation detection system of claim 1 wherein the detection fluids comprise at least one of R-113, acetone, ethylene chloride, isopentane, methanol, trimethyl borate, PFO, DFP and their mixtures. 10. The CTMFD radiation detection system of claim 1 further comprising an infrared temperature sensor next to the detector bulb for measuring the temperature of the detection fluid. 11. The CTMFD radiation detection system of claim 1 wherein the internal diameter of at least a portion of the tubing in the upper arms is increased relative to the internal diameter of the tubing of the lower arms. 12. The CTMFD radiation detection system of claim 1 wherein the detector comprises detector having a plurality of detector arms having fluids with distinct Pneg requirements. 13. The CTMFD radiation detection system of claim 1 further comprising a battery which powers the motor. 14. The CTMFD radiation detection system of claim 1 further comprising a battery which powers the motor and a separate battery that powers a control microprocessor and display screen. 15. The CTMFD radiation detection system of claim 1 further comprising a pulse width modulation control mechanism for the motor power. 16. A method for detecting radiation using the CTMFD radiation detection system of claim 1 wherein the motor is accelerated in steps taking a sufficient amount of time to avoid false detection events. 17. The method for detecting radiation using the CTMFD radiation detection system of claim 1 wherein the acceleration of the motor is controlled by a transistor circuit that truncates part of the waveform from the AC power. 18. The method for detecting radiation using the CTMFD radiation detection system of claim 1 further comprising a calibration step for controlling detector acceleration comprising running the motor at a plurality of delay values and measuring the detector speed. 19. The method for detecting radiation using the CTMFD radiation detection system of claim 1 further comprising calibrating the motor speed as a function of the heat of the motor. 20. A method for detecting trace actinides in water at concentration levels of under 10 pCi/L by using the CTMFD radiation detection system of claim 1 comprising obtaining one or more CTMFD detectors and identifying a trace actinide and its direction. 21. A CTMFD sensor array arranged to detect radiation with a detection efficiency of about 1,200 cm.sup.2 or more that is gamma and beta blind.
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