Mobile transport and shielding apparatus for removable x-ray analyzer
09633753 ยท 2017-04-25
Assignee
Inventors
- Steven M. Pomerantz (Ashland, MA, US)
- John H. Burdett (Charlton, NY, US)
- Rory D. Delaney (Slingerlands, NY, US)
Cpc classification
G01N23/223
PHYSICS
G21F5/015
PHYSICS
International classification
G21F5/015
PHYSICS
G01N23/10
PHYSICS
Abstract
A mobile transport and shielding apparatus, which holds an x-ray analyzer for transport between operating sites, and also serves as a shielded, operational station for holding the x-ray analyzer during operation thereof. The x-ray analyzer is removably insertable into the apparatus and is operable either within the mobile transport and shielding apparatus, or outside of the apparatus. The apparatus may provide means to control, power, cool, and/or charge the x-ray analyzer during operation of the analyzer; and also means to transport the analyzer (e.g., a handle).
Claims
1. A mobile transport and shielding apparatus for a removable x-ray analyzer, comprising: an outer body, forming an inner cavity; a sample stage in the inner cavity having a sample area for a sample; a cover portion of the outer body positionable around the sample area to cover and/or shield the sample area; the outer body and cover portion together providing a closed and shielded configuration enclosing the analyzer which does not allow x-ray radiation to escape the inner cavity during analyzer operation, and providing closed transport during analyzer non-operation; and means for holding the removable x-ray analyzer in the inner cavity, such that the analyzer analyzes a sample in the sample area.
2. The mobile transport and shielding apparatus of claim 1, further comprising means to control, power, cool, and/or charge the x-ray analyzer.
3. The mobile transport and shielding apparatus of claim 1, wherein the cover portion of the outer body is interlocked to prevent x-rays from transmitting to the sample area when the cover is not positioned over the sample area.
4. The mobile transport and shielding apparatus of claim 1, wherein the apparatus comprises a carrying case for the x-ray analyzer when the cover portion of the outer body is closed, using a handle on the cover portion.
5. The mobile transport and shielding apparatus of claim 1, further comprising a user interface mounted on the outside of the outer body to interface to the x-ray analyzer.
6. An x-ray analyzer in combination with the mobile transport and shielding apparatus of claim 1, the x-ray analyzer having an x-ray focal area requiring alignment with the sample in the sample area of the sample stage.
7. The combination of claim 6, further comprising at least one x-ray optic disposed in an x-ray excitation and/or detection path of the analyzer, requiring alignment to the focal area.
8. The combination of claim 7, wherein the at least one x-ray optic comprises a curved monochromating optic or a polycapillary optic.
9. A combination comprising an x-ray analyzer and a mobile transport and shielding apparatus, wherein: the apparatus holds the x-ray analyzer for transport between operating sites, and also serves as a shielded, operational station for holding the x-ray analyzer during operation thereof, the apparatus being of rugged design, and providing a closed and shielded configuration enclosing the analyzer which does not allow x-ray radiation to escape an inner cavity during analyzer operation, and providing closed transport during analyzer non-operation; and the x-ray analyzer is removably insertable into the apparatus and is operable either within the mobile transport and shielding apparatus, or outside of the apparatus.
10. The combination of claim 9, wherein the apparatus comprises means to control, power, cool, and/or charge the x-ray analyzer during operation of the analyzer.
11. The combination of claim 9, wherein the apparatus comprises a user interface to interface to the x-ray analyzer.
12. The combination of claim 9, wherein the x-ray analyzer comprises an x-ray focal area requiring alignment with the sample in a sample area of a sample stage of the apparatus.
13. The combination of claim 12, further comprising at least one x-ray optic disposed in an x-ray excitation and/or detection path of the x-ray analyzer, requiring alignment to the focal area.
14. The combination of claim 13, wherein the at least one x-ray optic comprises a curved monochromating optic or a polycapillary optic.
15. The combination of claim 9, wherein the apparatus comprises a carrying case for the x-ray analyzer, including a handle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject matter regarded as the invention is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other objects, features, and advantages of the invention are apparent from the following detailed description taken in connection with the accompanying drawings in which:
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DETAILED DESCRIPTION OF THE INVENTION
(8) In accordance with the present invention, and with reference to
(9) In accordance with the present invention, and with reference to the perspective views of
(10) With particular reference to
(11) In accordance with the present invention, x-ray analyzer 10 may be removably mounted in apparatus 30 such that it can function as a typical handheld analyzer outside of apparatus 30, or, in accordance with the present invention, can be quickly mounted in apparatus 30 which includes extra shielding (31, 32, 40); a stable sample stage 40 with sample aperture 42; mounting for interface module 20; and/or a larger screen 36 for field operation. In this capacity the transport apparatus 30 is adapted to hold, power, shield, and operate the analyzer; and to transport the analyzer when it is not operational.
(12) The front views of
(13) Similarly, the top views of
(14) The present invention in one aspect is a transport apparatus (e.g., case) doubling as an operational station with integral sample stage. It ships as one unit, with the ability to easily change between typical handheld operation, and fixed mobile platform operation. Other features may include:
(15) The outer body is preferably of rugged design, and dust- and water-proof. It accommodates an optional touch screen display (i.e., larger than the display of module 20).
(16) The apparatus can also be adapted to be a charging station for the analyzer itself and/or spare batteries, using AC power provided to the apparatus from typical power grids e.g., 100-240 VAC 50-60 Hz.
(17) The sample stage may be comparatively large and also may include accessible, plug in sampling accessories.
(18) Integrated cooling may be provided using an air duct/plenum.
(19) Upper radiation shield/cover is interlocked and radiation safe for closed beam operation.
(20) Plug in connections may be provided for devices such as a printer, GPS, Bluetooth, data networks, wireless nodes, sample spinners, etc.
(21) Target weight complete with analyzer and battery is >25 lbs, and approx 10D, 15W, 18H outer dimensions.
(22) A sample chamber (when the lid is closed) may include a stage size of 912 inches or greaterwith cover height of at least 4.5 incheswith optional holes/indents for pin in place accessories/holders.
(23) A camera can also be employed for sample positioning and documentation.
(24) In one embodiment, two part construction may be provided including an inner docking station module for the analyzer, and an outer transport case The inner docking station will slide out or easily be removed from case. In either embodiment, the handheld analyzer will easily & repeatably snap in and out of place.
(25) The present invention also provides important safety features. In general, the apparatus will be stable (not tip over) with lid open or closed. The shielded cover can be interlocked, i.e., activated for x-ray measurement upon closing, and deactivated when opening. The interlock can work with a shutter over the x-ray beam and/or power to the x-ray source to ensure that no radiation is transmitted to the sample area when the cover is not in place.
(26) In its full closed beam configuration, radiation safety of the system will comply with requirements as summarized by the Suggested State Regulations for Control of Radiation and other relevant documents which mandate radiation leakage to be at or below certain levels. In addition warning lights can be included as necessary which can be illuminated whenever the x-ray tube is energized.
(27) Environmental factors are considered and addressed by the present invention, because factory temperatures can range from 5-40 C. (40-105 F.), and humidity may peak at 100%; and field & factory environments may contain high dust levels. Hence the enclosures, and enclosed cooling, provided by the present invention.
(28) The handheld x-ray analyzers useable with the present invention include virtually any portable instruments amenable for movement into or out of the transport apparatus of the present invention, and which would benefit from the advantages provided by the present invention. The x-ray-optic-enabled engines discussed further below are of particular interest, and could benefit from the present invention, because of their need for reliable transportability (i.e., they are sensitive to alignment) and also because they perform optimally when the sample is highly aligned to the input and/or out focal areas of x-ray optics.
(29) Other variations may include any particular orientation of the analyzer, body or cover, and also embodiments including moveable sample holders, e.g., into and out of the sample area.
(30) For example, the doubly curved crystal (DCC) optics discussed further below direct an intense micron-sized monochromatic x-ray beam to the sample to enhance conventional XRF. These 3-D shaped optics selectively focus a very narrow band of x-ray wavelengths for sample excitation, according to Bragg diffraction laws.
(31) Optics for advanced XRF systems, including those below, may include, for example, curved crystal monochromating optics such as those disclosed in commonly assigned U.S. Pat. Nos. 6,285,506; 6,317,483; and 7,035,374; and/or multilayer optics such as those disclosed in commonly assigned U.S. patent application entitled X-Ray Focusing Optic Having Multiple Layers With Respective Crystal Orientations, U.S. Ser. No. 11/941,377 filed Nov. 16, 2007; and/or polycapillary optics such as those disclosed in commonly assigned U.S. Pat. Nos. 5,192,869; 5,175,755; 5,497,008; 5,745,547; 5,570,408; and 5,604,353. Optic/source combinations such as those disclosed in commonly assigned U.S. Pat. Nos. 7,110,506 and 7,209,545 are also useable. Each of the above-noted patents and patent applications is incorporated herein by reference in its entirety.
(32) The following are two examples of x-ray-optic-enabled analyzer engines which may be used in connection with the present invention:
(33) Exemplary ME EDXRF X-Ray Analysis Engine:
(34) Monochromatic excitation, energy dispersive x-ray fluorescence (ME-EDXRF) analyzers can be used for this application, in accordance with the present invention. The engine technology is disclosed in, e.g., commonly assigned US Publication 2011-0170666A1 and PCT Publication No, WO 2009111454 (A1) entitled XRF System Having Multiple Excitation Energy Bands In Highly Aligned Package, the entireties of which are hereby incorporated by reference herein. In one embodiment this engine 50 involves monochromatic excitation known as HD XRF as depicted schematically in
(35) Exemplary MWD XRF X-Ray Analysis Engines:
(36) XOS has previously disclosed a Monochromatic Wavelength Dispersive X-ray Fluorescence (MWDXRF) analyzer using two monochromating optic sets (U.S. Pat. Nos. 6,934,359 and 7,072,439hereby incorporated by reference herein in their entirety), as shown schematically in
(37) The MWD XRF engine 60, shown schematically in
(38) Although preferred embodiments have been depicted and described in detail herein, it will be apparent to those skilled in the relevant art that various modifications, additions, substitutions and the like can be made without departing from the spirit of the invention and these are therefore considered to be within the scope of the invention as defined in the following claims.