USRE37899E1 - Tomographic method of x-ray imaging - Google Patents
Tomographic method of x-ray imaging Download PDFInfo
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- USRE37899E1 USRE37899E1 US09/456,636 US45663699A USRE37899E US RE37899 E1 USRE37899 E1 US RE37899E1 US 45663699 A US45663699 A US 45663699A US RE37899 E USRE37899 E US RE37899E
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N23/00—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00
- G01N23/02—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material
- G01N23/04—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material and forming images of the material
- G01N23/046—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by transmitting the radiation through the material and forming images of the material using tomography, e.g. computed tomography [CT]
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N23/00—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00
- G01N23/20—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by using diffraction of the radiation by the materials, e.g. for investigating crystal structure; by using scattering of the radiation by the materials, e.g. for investigating non-crystalline materials; by using reflection of the radiation by the materials
- G01N23/20083—Investigating or analysing materials by the use of wave or particle radiation, e.g. X-rays or neutrons, not covered by groups G01N3/00 – G01N17/00, G01N21/00 or G01N22/00 by using diffraction of the radiation by the materials, e.g. for investigating crystal structure; by using scattering of the radiation by the materials, e.g. for investigating non-crystalline materials; by using reflection of the radiation by the materials by using a combination of at least two measurements at least one being a transmission measurement and one a scatter measurement
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- G—PHYSICS
- G01—MEASURING; TESTING
- G01N—INVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
- G01N2223/00—Investigating materials by wave or particle radiation
- G01N2223/40—Imaging
- G01N2223/419—Imaging computed tomograph
Definitions
- This invention relates to the examination of a body by means of x-radiation or gamma radiation.
- This invention is a method for determining the densities of objects or the distribution of densities interior to an object by measuring the intensities of x-rays that are Compton scattered from the volume elements (voxels) of the object.
- x-rays is used throughout the descriptions since it is anticipated that most applications will use an x-ray beam generated by energetic electrons inn an x-ray tube, but it should be evident that all types of energetic photons can be used, including monoenergetic gamma rays, that satisfy the criterion that the energy of the photons are such that Compton scattering dominates the interactions of the photons in the object.
- the use of scattered radiation to determine densities is fundamentally different in theoretical underpinning, in methodology and in implementing apparatus from the standard methods that use transmitted x-rays to determine densities of interior voxels.
- the incident x-rays are rastered across at least one face of an object.
- the x-rays that are Compton scattered approximately perpendicular to the beam directions are detected in arrays of collimated detectors each of which is sensitive to radiation scattered from a specific portion of the incident x-ray beam.
- the distinctive features of the preferred embodiment of this invention are: 1) The energy of the x-rays is high enough so that the interactions in the object are dominated by the Compton effect. In particular, the energy is high enough so that the photoelectric interaction makes a minor contribution in the analysis but it is not so high that pair production is significant. 2) The incident x-rays are collimated into a beam that is scanned through the object in a series of contiguous, approximately parallel paths; the scanning may be accomplished by moving the beam or the container or a combination of both so that the incident x-ray beam passes through every voxel that the detected scattered radiation passes through. 3) The scattered x-rays are detected by arrays of counters that distinguish x-rays that are scattered approximately perpendicular to the incident radiation.
- the detectors must be capable of sensing the direction of the scattered radiation. Methods for sensing the direction of an incident x-ray are well known; gamma cameras, for example, do so with collimators and position-sensitive detectors. 4)
- the volume element resolved by this invention is determined by the cross sectional area of the incident x-ray beam times the spatial resolution along the beam path of the origins of the scattered x-rays.
- the total number of independent measurements is at least equal to the total volume being examined divided by the volume element of spatial resolution 5.
- the densities of the voxels is rapidly and accurately determined from the totality of measurements by standard mathematical relaxation methods, without the need for transformation into frequency space or the use of back projection, though both of those techniques can be used.
- This invention which we will refer to as Compton Scatter Tomography or CST, is a new modality for tomography, quite distinct from the conventional method of computerized axial tomography, CAT, in which the linear attenuation coefficients in voxel elements in an object are determined from transmission measurements, or Single Photon Emission Computer Tomography, SPECT, in which the directions of gamma rays emitted from a radioactive source distributed in a body is used to measure the distribution of radioactivity.
- the invention is described in its application for the inspection of containers for contraband such as explosives. It should be appreciated, however, that this invention may be useful for a broad range applications in which a non-destructive method is needed to determine the density distributions of objects.
- FIG. 1 A schematic drawing of the main elements of a preferred embodiment of the invention.
- a beam of x or ⁇ -rays 2 directed along the Y axis is stepped in a series of approximately parallel paths in the YZ plane so as to intersect every voxel in the plane 8 of the container 3 .
- the examined container moves in the X direction.
- the x-rays 4 scattered through approximately 90° by elements in the container are counted by an array of collimated detectors 5 and 6 , above and below, respectively, the container.
- a detector 7 of the transmitted x-rays is also shown.
- FIG. 2 A cross section of the container showing one plane of the container, such as plane 8 .
- the area of the plane is divided into 25 imaginary voxels.
- the incident x-ray beam 12 passes along the fourth row and is shown scattered in voxel 43 4 , 3 into the upper detector 18 and the lower detector 20 .
- the transmitted beam is shown stalking striking the detector 12 .
- FIG. 3 A cross section view of the main elements of the invention showing an x-ray machine 31 that generates a raster scanned beam of electrons that strike the anode 33 .
- the electron beam 32 is shown striking the top of the anode 33 ; the electron beam 34 is shown striking near the mid-point of the anode 33 .
- the electron beam 34 generates x-rays that are collimated into a beam 35 by the collimator 36 .
- the x-ray beam 34 passes through the container 41 . Some of the x-ray beam is scattered through approximately 90° into arrays of collimated detectors 42 and 43 that are above and below the container, respectively.
- the x-ray beam that transmits the container 41 is detected in a segmented detector 38 .
- FIG. 4 A plot of the ratio of the Compton mass attenuation factor to the total mass attenuation factor as a function of x-ray energy, for oxygen, silicon and iron.
- the invention is first described using a monoenergic gamma ray source, in particular the 662 keV gamma ray from the decay of 137 Cs.
- a monoenergic gamma ray source in particular the 662 keV gamma ray from the decay of 137 Cs.
- Other radioactive sources such as the 356 keV gamma ray from the decay of 133 Ba, or the 1117 keV and 1332 keV gamma rays from 60 Co, or monochromatic x-ray sources might be appropriate for specific applications but 137 Cs is an especially appropriate choice because of its long 30 year half-life, low cost, high specific activity and simplicity of its radiation spectrum.
- FIG. 1 shows the essential features of the invention as it might be applied to determining the density distributions of materials in luggage.
- the 662 keV gamma rays from the radioactive source 1 of 137 Cs, are collimated into a beam 2 , which is aimed in the Y direction into the luggage 3 .
- the luggage 3 is conveyed in the X direction, i.e., perpendicular to the direction of the beam 2 .
- the intensity of gamma rays 4 that are Compton scattered through approximately 90° in the ⁇ Z directions are measured in top and bottom detectors 5 and 6 .
- the collimated beam 2 is incrementally moved in the Z direction to an adjacent row of voxels in the slice 8 and the measurements repeated until the x-ray beam has interacted with every voxel in the full YZ slice 8 of the luggage 3 .
- the luggage is then moved incrementally in the X direction and the adjacent slice 9 is investigated. In this way, the entire container is examined.
- any combination of relative motions of the gamma ray beam with respect to the luggage is acceptable, including stationary luggage with all of the relative motion supplied by a raster scanned beam and the converse, a stationary beam with all of the relative motion supplied by a luggage conveyance.
- the relative motions may be incremental or continuous depending on the application.
- the central requirement is that every voxel in the volume being interrogated must be traversed at least once by both the incident and scattered radiation.
- the detectors of scattered radiation 5 and 6 may each be single large volume detectors that have the energy and angle dispersive power to determine both the energy of the Compton scattered radiation and the direction from which it came. Such detectors are being developed with these capabilities, but at this time a more cost-effective solution is to use segment detectors 5 and 6 into arrays of collimated detectors each of which is sensitive to radiation from a particular voxel along the beam 2 .
- FIG. 2 shows one slice 8 of the luggage imagined to be divided into 5 rows and 5 columns to make a total of 25 voxels.
- the voxels are numbered sequentially, 11 , 12 , 13 , 14 , 15 , 21 , 22 , 1 , 1 ; 1 , 2 ; 1 , 3 ; 1 , 4 ; 1 , 5 ; 2 , 1 ; 2 , 2 , etc.
- the 662 keV beam of gamma rays 11 is shown passing along the fourth row, through voxels, 41 , 42 , 43 , 44 and 45 4 , 1 ; 4 , 2 ; 4 , 3 ; 4 , 4 ; and 4 , 5 to the transmission detector 21 .
- FIG. 2 shows an example of Compton scattered radiation 17 being scattered in the Z direction from pixel 43 4 , 3 into the single detector 18 and another scattering 19 in the ⁇ Z-direction into detector 20 .
- I 17 ⁇ ( 288 ) ⁇ ⁇ I o ⁇ ( 662 ) ⁇ e - ( ⁇ 41 ⁇ s 41 + ⁇ 42 ⁇ s 42 ) 662 [ ⁇ ⁇ ⁇ ⁇ 43 Comp ⁇ ( 662 ) ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ⁇ ( ⁇ 2 ) ⁇ r 43 ] ⁇ ⁇ e - ( ⁇ 33 ⁇ r 33 + ⁇ 23 ⁇ r 23 + ⁇ 13 ⁇ r 13 ) 288 1 )
- I o ( 662 ) is the intensity of the incident beam 11
- the ⁇ values in the first exponential are the total linear attenuation coefficients for 662 keV radiation
- the ⁇ values in the second exponential term are the total linear attenuation coefficients for the scattered radiation of ⁇ 288 keV
- the t values are the linear dimensions of the pixels
- the square bracket term is the probability for Compton scattering in pixel 43 .
- I 22 (662) I 0 (662) e ⁇ (80 43 t 41 + ⁇ 42 t 42 + ⁇ 43 t 43 + ⁇ 44 t 44 )
- I 22 ( 662 ) I 0 ( 662 ) e ⁇ ( ⁇ 41 t 41 + ⁇ 42 t 42 + ⁇ 43 t 43 + ⁇ 44 t 44 ) 3)
- Equations 3 are not necessary for solving Equations 1 for the densities in each of the volumes of the container 12 , but they give important additional information that can speed up and make more secure the analytic procedures.
- FIG. 4 shows that the Compton effect in iron, the heaviest of the materials found in luggage in substantial quantities, accounts for 98% of the interactions for the incoming radiation of 662 keV and 88% of the interactions for the 288 keV scattered radiation. Equations 1, 2 and 3 then simplify enormously since,
- the 50 scattering equations in this example can be rapidly solved by relaxation techniques; it is not necessary to use matrix inversions or convert to frequency space.
- equations describing the interaction of the beam with the top row of voxels of FIG. 2 result immediately in the densities of each of the voxels since the scattering from voxel 11 is described by an equation with only 1 unknown, the density of the voxel.
- the scattering from voxel 12 1 , 2 is described by an equation with only 2 unknowns, one of which has been determined from the scattering from voxel 11 1 , 1 , and so forth.
- Equation 2 The linear Compton attenuation coefficients are directly proportional to the electron densities in the voxels; i.e., Equation 2 simplifies to Equation 8. 7,
- ⁇ e the Compton scattering per electron
- Z the number of electrons per atom.
- the electron densities are, in turn, very closely related to the matter densities since, for most materials in luggage, Z/A ⁇ 0.5. (The avenge value of Z/A for plastics, explosives and other light materials is a few percent greater than 0.5; Z/A for heavier materials such as iron are a few percent less.)
- the source of the x-rays could be a conventional x-ray tube with a fixed electron beam striking a fixed or rotating anode.
- Our preferred embodiment uses a raster scanned electron beam shown schematically in FIG. 3 .
- the x-rays are generated in a x-ray tube 31 , which produces a raster-scanned beam of x-rays by scanning the electron beam 32 and placing an appropriate collimator 36 in front of the anode 33 .
- the x-ray tube 31 is similar to a conventional cathode ray tube with an appropriate heavy element anode 33 replacing the traditional phosphor screen.
- x-rays are generated that pass through successive parallel holes in the collimator 36 .
- the result is a rastering of approximately parallel beams of x-rays through the container 41 .
- the anode potential determines the maximum energy of the x-ray beams.
- An absorber 37 eliminates the softer components of the x-ray beam and determines the effective lower energy of the x-rays that interact in the container.
- the length of the anode 33 might be 20′′, i.e., about the height of the anode of a 30′′ TV tube; a power density of 2 kilowatts is easily handled by modest cooling of the large-area.
- the collimator 36 might be a set of parallel holes in a 4′′ thick lead block (attenuation by the lead>10 10 ). The holes should be appropriately designed to minimize internal scattering in the collimator.
- the absorber 37 might be 1 mm of tungsten that would reduce the 300 keV x-rays by a factor of ⁇ 2 while killing 100 keV components by factors of 10 4 .
- detectors or detector arrays 42 and 43 respectively that measures the scattered x-rays 46 as a function of position of scattering along the beam direction.
- collimating slits 44 and 45 such as the Soller plates used extensively in x-ray diffraction. These slits restrict the direction of x-rays seen by the detector; their function is similar to the collimators used in Single Photon Emission Tomography (SPECT) in which the origins of the emission of gamma rays from radioactive sources is determined by the SPECT detector.
- SPECT Single Photon Emission Tomography
- Many options are available for the detectors including the hodoscopes of NaI(TI), BGO and CdZnTe now used for SPECT and Positron Emission Tomogaphy.
- Equations 1 and 3 must now be written in terms of weighted integrals over the energy spectra. Exact expressions can be taken into account in the analysis, though we anticipate that in most practical cases it will be sufficient to use appropriate averages of the incident and scattered energies as well as the differential and integral linear attenuation coefficients in Equations 1 and 3, since the Compton cross sections vary slowly with energy, atomic number, and scattering angle around 90°. Specifically, for elements from carbon to iron, the total Compton cross section varies by only 25% from 150 keV to 450 keV; for a given x-ray energy, it varies by only 10%. Moreover, the differential Compton cross section is almost independent of angle from 80° to 110°. It should also be noted that beam hardening—the changing energy spectrum in the container due to absorption—will not be significant when the invention is applied to airline baggage since the high energies of the incident beam are not much attenuated traversing an airline suitcase.
- the simulation studies show that the interrogation of a piece of luggage, 1 meter ⁇ 60 cm ⁇ 20 cm can be carried out in 6 seconds, resulting in the determination of the linear attention coefficients of each voxel in the luggage to an accuracy of 30%.
- the mean values of the densities of any contiguous 300 voxels ( ⁇ 100 g of explosives) would then be known to an accuracy of 2%.
- the simulation studies show that CST should have a minimum detection limit below 100 g of explosives.
- a logical extension of the invention is to make scattering measurements at two incident energies, one at the preferred high energy where the Compton effect is dominant and the other at a lower energy where the photo-electric effect makes a substantial contribution to the interactions of the x-rays in those voxels with high Z component.
- This so-called dual-energy method is well know for transmission tomography where it is used to determine the effective atomic number of the elements in the voxels and we anticipate that the dual energy method could have applications in which the measurement of the effective atomic number of the voxels as well as the density is important. Referring to FIG.
- the invention stresses that the incident beams should be rastered across the container in approximately parallel paths and that the detected radiation should be limited to those x-rays that are scattered approximately perpendicular to the incident beam direction.
- the allowable deviations from these conditions depend on the applications. For all applications we expect that the deviations can be at least ⁇ 20°, since the cos 20° deviates by only 6% from unity. For some applications, especially those in which the high density regions make up a small portion of the container, the deviations from ideal could be considerably larger.
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US09/456,636 USRE37899E1 (en) | 1996-03-11 | 1999-12-08 | Tomographic method of x-ray imaging |
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US08/613,492 US5696806A (en) | 1996-03-11 | 1996-03-11 | Tomographic method of x-ray imaging |
US09/456,636 USRE37899E1 (en) | 1996-03-11 | 1999-12-08 | Tomographic method of x-ray imaging |
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