WO2005050312A2 - High speed imaging assembly for radiography - Google Patents
High speed imaging assembly for radiography Download PDFInfo
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- WO2005050312A2 WO2005050312A2 PCT/US2004/037313 US2004037313W WO2005050312A2 WO 2005050312 A2 WO2005050312 A2 WO 2005050312A2 US 2004037313 W US2004037313 W US 2004037313W WO 2005050312 A2 WO2005050312 A2 WO 2005050312A2
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- silver halide
- halide emulsion
- film
- imaging assembly
- support
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C5/00—Photographic processes or agents therefor; Regeneration of such processing agents
- G03C5/16—X-ray, infrared, or ultraviolet ray processes
- G03C5/17—X-ray, infrared, or ultraviolet ray processes using screens to intensify X-ray images
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C1/00—Photosensitive materials
- G03C1/76—Photosensitive materials characterised by the base or auxiliary layers
- G03C1/825—Photosensitive materials characterised by the base or auxiliary layers characterised by antireflection means or visible-light filtering means, e.g. antihalation
- G03C1/83—Organic dyestuffs therefor
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C5/00—Photographic processes or agents therefor; Regeneration of such processing agents
- G03C5/16—X-ray, infrared, or ultraviolet ray processes
-
- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C1/00—Photosensitive materials
- G03C1/005—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein
- G03C1/0051—Tabular grain emulsions
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C1/00—Photosensitive materials
- G03C1/005—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein
- G03C1/04—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein with macromolecular additives; with layer-forming substances
- G03C1/047—Proteins, e.g. gelatine derivatives; Hydrolysis or extraction products of proteins
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C1/00—Photosensitive materials
- G03C1/005—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein
- G03C1/46—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein having more than one photosensitive layer
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C1/00—Photosensitive materials
- G03C1/76—Photosensitive materials characterised by the base or auxiliary layers
- G03C1/795—Photosensitive materials characterised by the base or auxiliary layers the base being of macromolecular substances
- G03C1/7954—Polyesters
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C1/00—Photosensitive materials
- G03C1/005—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein
- G03C1/0051—Tabular grain emulsions
- G03C2001/0055—Aspect ratio of tabular grains in general; High aspect ratio; Intermediate aspect ratio; Low aspect ratio
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C1/00—Photosensitive materials
- G03C1/005—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein
- G03C1/035—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein characterised by the crystal form or composition, e.g. mixed grain
- G03C2001/03511—Bromide content
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C1/00—Photosensitive materials
- G03C1/005—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein
- G03C1/04—Silver halide emulsions; Preparation thereof; Physical treatment thereof; Incorporation of additives therein with macromolecular additives; with layer-forming substances
- G03C1/047—Proteins, e.g. gelatine derivatives; Hydrolysis or extraction products of proteins
- G03C2001/0478—Oxidising agent
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C1/00—Photosensitive materials
- G03C1/74—Applying photosensitive compositions to the base; Drying processes therefor
- G03C2001/7425—Coating on both sides
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C7/00—Multicolour photographic processes or agents therefor; Regeneration of such processing agents; Photosensitive materials for multicolour processes
- G03C7/30—Colour processes using colour-coupling substances; Materials therefor; Preparing or processing such materials
- G03C7/3022—Materials with specific emulsion characteristics, e.g. thickness of the layers, silver content, shape of AgX grains
- G03C2007/3025—Silver content
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C2200/00—Details
- G03C2200/27—Gelatine content
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C2200/00—Details
- G03C2200/28—Gelatine-silver ratio
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C2200/00—Details
- G03C2200/52—Rapid processing
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03C—PHOTOSENSITIVE MATERIALS FOR PHOTOGRAPHIC PURPOSES; PHOTOGRAPHIC PROCESSES, e.g. CINE, X-RAY, COLOUR, STEREO-PHOTOGRAPHIC PROCESSES; AUXILIARY PROCESSES IN PHOTOGRAPHY
- G03C5/00—Photographic processes or agents therefor; Regeneration of such processing agents
- G03C5/26—Processes using silver-salt-containing photosensitive materials or agents therefor
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S430/00—Radiation imagery chemistry: process, composition, or product thereof
- Y10S430/167—X-ray
Definitions
- This invention is directed to radiography.
- it is directed to a high speed radiographic imaging assembly containing a radiographic silver halide film and fluorescent intensifying screens and that provides improved medical diagnostic images at reduced imaging dosage.
- the object is to obtain an image of a patient's internal anatomy with as little X-radiation exposure as possible.
- the fastest imaging speeds are realized by mounting a dual-coated radiographic element between a pair of fluorescent intensifying screens for imagewise exposure. 5% or less of the exposing X-radiation passing through the patient is adsorbed directly by the latent image forming silver halide emulsion layers within the duplitized radiographic element. Most of the X-radiation that participates in image formation is absorbed by phosphor particles within the fluorescent screens. This stimulates light emission that is more readily absorbed by the silver halide emulsion layers of the radiographic element. Examples of radiographic element constructions for medical diagnostic purposes are provided by U.
- Imaging assemblies Two important features of film-screen radiographic combinations (or imaging assemblies).
- High image quality that is high resolution or sharpness
- “high speed” imaging assemblies are needed.
- the two features generally go in opposite directions.
- the imaging assemblies that can be used with low radiation dosages that is, “high speed” assemblies
- the imaging assemblies that can be used with low radiation dosages that is, “high speed” assemblies
- the imaging assemblies that can be used with low radiation dosages that is, "high speed” assemblies
- Lower speed imaging assemblies generally require higher radiation dosages.
- Conventional radiographic film-screen combinations, known as imaging assemblies (or systems), useful for general radiography may have a total system speed of up to 400 but lack sufficient crossover control.
- This invention provides a radiographic imaging assembly that has a system speed of at least 200 but less than 800 and comprises: A) a symmetric radiographic silver halide film having a film speed of at least 700 and comprising a support that has first and second major surfaces, the radiographic silver halide film having disposed on the first major support surface, two or more hydrophilic colloid layers including first and second silver halide emulsion layers, and having on the second major support surface, two or more hydrophilic colloid layers including third and fourth silver halide emulsion layers, the first and third silver halide emulsion layers being the outermost emulsion layers on their respective sides of the support, the second and fourth silver halide emulsion layers comprising a crossover control agent sufficient to reduce crossover to less than 15%, and B) a fluorescent intensifying screen arranged on each side of the radiographic silver halide film, the pair of screens having a screen speed of at least 150 and the screens having an average screen sharpness measurement (SSM) value
- SSM average screen sharpness
- each screen comprising an inorganic phosphor capable of absorbing X-rays and emitting electromagnetic radiation having a wavelength greater than 300 nm, the inorganic phosphor being coated in admixture with a polymeric binder in a phosphor layer on a support.
- a radiographic imaging assembly has a system speed of at least 400 and but less than 800 and comprises: A) a symmetric radiographic silver halide film having a film speed of at least 800 and comprising a support that has first and second major surfaces and that is capable of transmitting X-radiation, the radiographic silver halide film having disposed on the first major support surface, two or more hydrophilic colloid layers including first and second silver halide emulsion layers, and having on the second major support surface, two or more hydrophilic colloid layers including third and fourth silver halide emulsion layers, the first and third silver halide emulsion layers being the outermost emulsion layers on their respective sides of the support, each of the first, second, third, and fourth silver halide emulsion layers comprising tabular silver halide.grains that have the same composition, independently an aspect ratio of from 38 to 45, an average grain diameter of at least 3.5 ⁇ m, and an average thickness of from 0.08 to 0.14
- each screen comprising a terbium activated gadolinium oxysulfide phosphor capable of absorbing X-rays and emitting electromagnetic radiation having a wavelength greater than 300 nm, the phosphor being coated in admixture with a polymeric binder in a phosphor layer on a flexible polymeric support.
- This invention also provides a method of providing a black-and- white image comprising exposing the radiographic silver halide film in the radiographic imaging assembly of the present invention and processing the film, sequentially, with a black-and-white developing composition and a fixing composition. The resulting black-and-white images can be used for a medical diagnosis.
- the present invention provides a means for ' providing very sharp radiographic images having high detail that can be used especially for orthopedic examinations.
- This improved image quality is obtained without increasing imaging X-radiation dosage because of the high photographic speed (at least 200 and up to but less than 800) provided by the unique combination of film and screen.
- all other desirable sensitometric properties are maintained and the radiographic film of the imaging assembly can be rapidly processed in conventional processing equipment and compositions.
- the symmetric radiographic silver halide film has a unique set of two silver halide emulsion layers on both sides of the film support comprising tabular silver halide grains having specific halide compositions, grain sizes and aspect ratios.
- the silver halide emulsion layers closest to the support on both sides comprise crossover control agents.
- the tabular grains in all four silver halide emulsion layers are dispersed in a polymeric binder mixture that includes at least 0.05 weight % of oxidized gelatin (based on total dry weight of the hydrophilic polymer binder mixture).
- a polymeric binder mixture that includes at least 0.05 weight % of oxidized gelatin (based on total dry weight of the hydrophilic polymer binder mixture).
- FIG. 1 is a simplified schematic representation of a test system used to determine SSM values.
- FIG. 2 is a graphical representation of the X-radiation waveform obtained from a typical test system used to determine SSM values.
- FIG. 3 is a graphical representation of a Fourier transform of data obtained from repetitions of X-radiation waveforms.
- FIG. 4 is a graphical representation of SSM vs. spatial frequencies for the imaging assembly of the present invention described in the Example 1 using Film B and Screen W.
- FIG. 5 is a graphical representation of SSM vs. spatial frequencies for the imaging assembly of the present invention described in the Example 2 using Film B and Screen V. DETAILED DESCRIPTION OF THE INVENTION
- the terms "radiographic imaging assembly” and “imaging assembly” refer to the embodiments of the present invention.
- the term “contrast” as herein employed indicates the average contrast derived from a characteristic curve of a radiographic film using as a first reference point (1) a density D ⁇ ) of 0.25 above minimum density and as a second reference point (2) a density (D2) of 2.0 above minimum density, where contrast is ⁇ D (i.e. 1.75) ⁇ ⁇ logj QE (log ⁇ )E2 - loglO ⁇ l)' ⁇ 1 and E2 being the exposure levels at the reference points (1) and (2).
- “Gamma” is described as the instantaneous rate of change of a D logE sensitometric curve or the instantaneous contrast at any logE value.
- System speed refers to a measurement given to combinations ("systems” or imaging assemblies) of radiographic silver halide films and fluorescent intensifying screens that is calculated using the conventional ISO
- 1 milliRoentgen (mR) is equal to 0.008732 milliGray (mGray). For example, by definition, if 0.0025 milliGray (equal to 0.286 mR) incident on a film-screen system creates a density of 1.0 above D m!n + fog, that film-screen system is considered to have a speed of "400".
- the ISO speed depends on the x-ray spectrum, and is different for the four ISO conditions. It is common to use a "scaled" version of system speed, wherein Radiographic Film A described below used in combination with a pair of fluorescent intensifying screens identified as "X" below, when exposed with an 80 kV (constant potential) X-ray spectrum, filtered with 0.5 mm copper and 1 mm aluminum, at an exposure duration of approximately 0.15 seconds, is assigned or designated a speed value of 400.
- the ISO condition four speed for this system is approximately 500.
- film speed has been given a standard of "400" for Radiographic Film A described in Example 1 below, that has been exposed for approximately 0.15 second and processed according to conditions shown in
- Example 1 using a pair of fluorescent intensifying screens containing a terbium activated gadolinium oxysulfide phosphor (such as Screen "X” noted below).
- Screen "X” a terbium activated gadolinium oxysulfide phosphor
- the first screen pair is considered to have a speed 200% greater than that of the second screen pair.
- the "screen speed” values noted herein are in reference to a pair of screens (either symmetric or asymmetric) arranged on opposing sides of a radiographic film.
- the "screen sha ⁇ ness measurement” (SSM) described herein is a parameter that has been found to correlate well with visual appearance of image sharpness if other conditions are held constant. Each screen sharpness measurement described in this application was made using a test system that is described as follows as illustrated in FIG. 1.
- a slit-shaped X-ray exposure 10 was made onto phosphor screen sample 15 (in a front-screen configuration) that was in contact with optical slit 20.
- the profile or spread 45 of the emitted light from the screen was determined by scanning optical slit 20 relative to X-ray slit (or mask) 25 and digitizing the resulting signal.
- Photomultiplier tube 30 was used to detect the light that passed through optical slit 20.
- Data processing was done during acquisition and analysis to minimize noise in the resulting light spread profile (LSP).
- a Fourier transform of the LSP was calculated to give the SSM as a function of spatial frequency.
- tungsten carbide mask (10-15 ⁇ m wide, 0.64 cm thick, and 0.64 cm long) was used as X-ray slit 25 to provide slit-shaped X-ray exposure 10.
- X-ray slit 25 was held fixed with respect to the source of X- radiation.
- Phosphor screen sample 15 was placed face down (exit surface) on top of optical slit 20 made of two pieces of sharpened tool steel. The steel had been darkened by a chemical treatment and further blackened by a black felt-tipped pen.
- Phosphor screen sample 15 was held in place by a piece of a carbon fiber cassette panel (not shown) that was held down by pressure from spring-loaded plungers •• ⁇ ⁇ ....» ⁇ j drink matter, ⁇ thyroid, ⁇ spirit matter;;,'n
- optical slit 20 The light passed through optical slit 20 was collected by integrating sphere 35 and a fraction of it was then detected by PMT 30. The whole assembly of phosphor screen sample 15, optical slit 20, integrating sphere 35, and PMT 30 was translated relative to X-ray slit 25. Optical slit 20 was aligned with X-ray slit 25. As phosphor screen sample 15 was passed under X-ray slit 25, the light that passed through optical slit 20 varied according to the profile of lateral light spread within phosphor screen sample 15. Any suitable source of X-radiation can be used for this test. To obtain the data described in this application, the X-radiation source was a commercially available Torrex 120D X-Ray Inspection System.
- Integrating sphere 35 had a 4-inch (10.2 cm) diameter and was appropriately reflective. One such integrating sphere can be obtained from Labsphere.
- the top port of integrating sphere 35 that accepted the light from optical slit 20 was 1 inch (2.54 cm) in diameter.
- the side port that was used for PMT 30 was also 1 inch (2.54 cm) in diameter.
- any suitable PMT we used a Hamamatsu 81925 with a quartz window for extended UV response. It was 1 inch (2.54 cm) in diameter, and had a very compact dynode chain so the length of the PMT was minimized.
- High voltage was supplied to PMT 30 by a 0-lkV power supply (not shown).
- a transimpedence amplifier (not shown) having a simple single RC bandwidth limitation of around 1 kHz was constructed.
- the signal from PMT 30 was low- pass filtered using a 24dB/octave active filter set at a bandwidth of 300 Hertz.
- a suitable computer system for example, an Intel 486DX-33MHz DOS computer system
- the X-radiation source was slightly modified to allow for computer control and monitoring of the unit by the computer. Two digital output lines were used for START and STOP of the X-ray tube current, and one digital input line was used to monitor the XRAY ON signal to assure that the unit was indeed on.
- LSP was measured in the following manner.
- the optical slit/integrating sphere/PMT assembly was moved relative to X-ray slit 25.
- the X- radiation generation unit generated X-rays such that the intensity followed a 60 Hz single-wave rectified waveform in time as shown in FIG. 2.
- a single data point that represents the value of the LSP at a given spatial position was generated by acquiring an array of data at each spatial position using time intervals between points in this temporal array small enough such that the X- ray intensity waveform can be adequately represented by this array of data. Several repetitions of the waveform were captured in one array of data.
- the computer positions the translation stage at this peak signal position and adjusted the PMT high voltage to provide peak signal between 1/2 and full scale of the analog-to-digital converter range.
- the translation stage was then moved 500 positions away from the peak and data acquisition is begun. There are 1000 spatial positions, each separated by 10 m ⁇ , at which the value of the LSP was determined.
- the peak of the LSP was approximated at data point 500. Given that the majority of the LSP data acquired represent baseline, for the first 400 values of the LSP and the last 400 values of the LSP, fewer actual data points were acquired, and the intermediate points (between the actual points) were determined by simple linear interpolation.
- the temporal data array was long enough to capture eight repetitions of the single wave rectified X-ray generator waveform.
- a running average value for the baseline was determined and the next data point must fall within some predetermined range of that running average or the acquisition is repeated.
- LSP data values 401-600 a data point was acquired at each spatial position. To improve the signal-to-noise in this portion of the LSP, effectively 32 repetitions of the waveform were captured (the average of 4 repeats of the 8 waveform acquisition).
- the PMT high voltage was reduced to zero, the X-radiation generating unit was turned off, and the stage was positioned approximately at data point 500 (the peak of the LSP).
- Substantial smoothing of the baseline of the data array was done to aid in subsequent analysis.
- a mirror analysis was done to assure symmetry to the LSP. This mirror analysis consists of varying the midpoint for the LSP array by amounts less than a full data point spacing, re-sampling the array by interpolation, then calculating the difference between points at mirror positions relative to a given midpoint. The value of the midpoint that gives the minimum difference between left and right is the optimal midpoint.
- the LSP array was then forced to be' symmetric by placing the average value of two mirror points in place of the actual data value for each point in a mirror set.
- the value of the LSP at the peak position was determined by fitting a parabola to the two points on either side of, the peak position.
- the baseline was subtracted.
- the baseline value removed was determined by averaging values at the beginning and the end of the data array.
- the baseline data were replaced with an extrapolation of the LSP by fitting an exponential function (least squares method) to the LSP data from 4% down to 1% of the peak value.
- This modulation data gave a measure of the screen sharpness, i.e. the higher the modulation (closer to 1) at higher spatial frequencies, the sharper the image that the phosphor screen can produce.
- the value of the modulation at selected spatial frequencies is the "Screen Sharpness Measurement” (SSM).
- SSM Screen Sharpness Measurement
- the fluorescent intensifying screens used in the practice of this invention are capable of providing an SSM value greater than those represented by reference Curve A of FIG. 4 at any point along Curve A over the spatial frequency range of from 0 to 10 cycles/mm.
- SSM vs. spatial frequency data from which FIG. 4 was generated are selected.
- Preferred screens used in the practice of this invention are those having SSM values that are at least 1.1 times those represented by reference Curve A of FIG. 4 over a range a spatial frequency range of from 1 to 10 cycles/mm.
- the term "duplitized” is used to define a radiographic film having silver halide emulsion layers disposed on both the front- and backsides of the support.
- the radiographic silver halide films useful in the present invention are "duplitized.”
- the radiographic silver halide films useful in the present invention are generally "symmetric" films wherein the sensitometric responses and properties are essentially the same on each side of the support. However, this does not necessarily mean that the silver halide emulsion layers on each side of the support are compositionally the same.
- the films have essentially the same imaging and non-imaging layers on both sides of the support
- Cross refers to radiation that images and passes through the emulsion layer(s) on one side of the support and images the emulsion layers on the opposite side of the support. Measurements for crossover are determined by determining the density of the silver developed on a given side of the support. Densities can be determined using a standard densitometer. By plotting the density produced on each imaging side of the support versus the steps of a conventional step wedge (a measure of exposure), a characteristic sensitometric curve is generated for each imaging side of the material.
- % Crossover 1 x 100 antilog( ⁇ log E) + 1
- ECD equivalent circular diameter
- the term “aspect ratio” is used to define the ratio of grain ECD to grain thickness.
- the term “coefficient of variation” (COV) is defined as 100 times the standard deviation (a) of grain ECD divided by the mean grain ECD.
- fluorescent intensifying screen refers to a screen that absorbs X-radiation and emits light. A “prompt” emitting fluorescent intensifying screen will emit light immediately upon exposure to radiation while “storage” fluorescent screen can "store” the exposing X-radiation for emission at a later time when the screen is irradiated with other radiation (usually visible light).
- front and back refer to layers, films, or fluorescent intensifying screens nearer to and farther from, respectively, the source of X-radiation.
- Research Disclosure is published by Kenneth Mason Publications, Ltd., Dudley House, 12 North St., Emsworth, Hampshire P010 7DQ England. The publication is also available from Emsworth Design Inc., 147 West 24th Street, New York, N.Y. 10011.
- Radiographic Films useful in this invention have a speed of at least 700 and preferably at least 800, and include a support having disposed on both sides thereof, two or more photographic silver halide emulsion layers and optionally one or more non-radiation sensitive hydrophilic layer(s).
- the "first" and “second” silver halide emulsion layers are disposed on the frontside of the support and the "third" and “fourth” silver halide emulsion layers are disposed on the backside of the support, with the second and fourth silver halide emulsion layers being closer to the support (innermost silver halide emulsion layers) than the first and third silver halide emulsion layers (outermost silver halide emulsion layers).
- the two silver halide emulsion layers on each side of the support are essentially the same in chemical composition (for example, components, types of grains, silver halide composition, hydrophilic colloid binder composition, and g/m 2 coverage), and sensitometric properties but (as noted below) are different in thickness and hence silver and hydrophilic binder coverage.
- the first and second silver halide emulsion layers are different in thickness and the third and fourth silver halide emulsion layers are different in thickness. More preferably, all of the silver halide emulsion layers have essentially the same chemical composition.
- the support can take the form of any conventional radiographic support that is X-radiation and light transmissive.
- Useful supports for the films of this invention can be chosen from among those described in Research Disclosure, September 1996, Item 38957 (Section XV Supports) and Research Disclosure, Vol. 184, August 1979, Item 18431 (Section XII Film Supports).
- the support is preferably a transparent flexible support.
- the transparent support consists of a transparent film chosen to allow direct adhesion of the hydrophilic silver halide emulsion layers or other hydrophilic layers. More commonly, the transparent support is itself hydrophobic and subbing layers are coated on the support to facilitate adhesion of the hydrophilic silver halide emulsion layers.
- the support is either colorless or blue tinted (tinting dye being present in one or both of the support and the subbing layers).
- Polyethylene terephthalate and polyethylene naphthalate are the preferred transparent support materials.
- at least one non-light sensitive hydrophilic layer is included with the two or more silver halide emulsion layers on each side of the support. This layer may be an interlayer or overcoat, or both types of non-light sensitive layers can be present.
- the first, second, third, and fourth silver halide emulsion layers comprise predominantly (more than 50 %, and preferably at least 70%, of the total grain projected area) tabular silver halide grains.
- the grain composition can vary among the layers, but preferably, the grain composition is essentially the same in the first, second, third, and fourth silver halide emulsion layers.
- These tabular silver halide grains generally comprise at least 50, preferably at least 90, and more preferably at least 95, mol % bromide, based on total silver in the emulsion layer.
- Such emulsions include silver halide grains composed of, for example, silver iodobromide, silver chlorobromide, silver iodochlorobromide, and silver chloroiodobromide.
- the iodide grain content is generally up to 5 mol %, based on total silver in the emulsion layer.
- the iodide grain content is up to 3 mol %, and more preferably up to 1 mol % (based on total silver in the emulsion layer).
- Mixtures of different tabular silver halide grains can be used in any of the silver halide emulsion layers.
- Any of the silver halide emulsion layers can also include some non- tabular silver halide grains having any desirable non-tabular morphology, or be comprised of a mixture of two or more of such morphologies. The composition and methods of making such silver halide grains are well known in the art.
- the tabular silver halide grains can have any suitable aspect ratio
- those used particularly in the first, second, third, and fourth silver halide emulsion layers generally and independently have as aspect ratio of 15 or more, preferably from 25 to 45, and more preferably, from 38 to 45.
- the tabular grains in any of the silver halide emulsion layers have an average grain diameter (ECD) of at least 3.0 ⁇ m, and preferably of at least 3.5 ⁇ m.
- the average grain diameters can be the same or different in the various emulsion layers. At least 100 non-overlapping tabular grains are measured to obtain the "average" ECD.
- the tabular grains in the first, second, third, and fourth silver halide emulsion layers independently have an average thickness of from 0.06 to 0.16 ⁇ m, and preferably from 0.08 to 0.14 ⁇ m. Preferably, the average tabular grain thickness is essentially the same in all silver halide emulsion layers.
- the procedures and equipment used to determine tabular grain size (and aspect ratio) are well known in the art. Tabular grain emulsions that have the desired composition and sizes are described in greater detail in the following patents: U. S.
- Patents 4,414,310 (Dickerson), 4,425,425 (Abbott et al.), 4,425,426 (Abbott et al.), 4,439,520 (Kofron et al.), 4,434,226 (Wilgus et al.), 4,435,501 (Maskasky), 4,713,320 (Maskasky), 4,803,150 (Dickerson et al.), 4,900,355 (Dickerson et al.), 4,994,355 (Dickerson et al.), 4,997,750 (Dickerson et al.), 5,021,327 (Bunch et al.), 5,147,771 (Tsaur et al.), 5,147,772 (Tsaur et ah), 5,147,773 (Tsaur et al.), 5,171,659 (Tsaur et al), 5,252,442 (Dickerson et al.), 5,370,977 (Zie
- the total dry unprocessed thickness and coating weight of the silver halide emulsion layers on opposing sides of the support can be the same or different but preferably, they are the same. Where there are two silver halide emulsion layers on each side of the support, they have different dry thickness wherein the outermost silver halide emulsion layers are thicker than the silver halide emulsion layers closer to the support. These evaluations are made on the dried film before it is contacted with processing solutions.
- the dry, unprocessed thickness ratio of the first silver halide emulsion layer to that of the second silver halide emulsion layer is greater than 1:1 (preferably from 3:1 to 1 :1)
- the dry, unprocessed thickness ratio of the third silver halide emulsion layer to that of the fourth silver halide emulsion layer is independently greater than 1 :1 (preferably from 3:1 to 1 :1).
- the molar ratios of silver in the first to second, and third to fourth, silver halide emulsion layers are independently greater than 1 :1 (preferably from 1.5:1 to 3:1).
- the silver halide emulsion layers closer to the support on both sides comprise one or more "crossover control agents" that are present in sufficient amounts to reduce light transmitted through the support to opposing layers to less than 15%, preferably less than 12%, and more preferably less than 10%.
- Crossover is measured in the practice of this invention as noted above.
- Useful crossover control agents are well known in the art and include one or more compounds that provide a total density of at least 0.3 (preferably at least 0.45) and up to 0.9 at a preferred wavelength of 545 nm and that are disposed on a transparent support. The density can be measured using a standard densitometer (using "visual status").
- the amount of crossover control agent in the "second" silver halide emulsion layer will vary depending upon the strength of absorption of the given compound(s), but for most pigments and dyes, the amount is generally from 0.75 to 1.5 mg/m 2 (preferably from 1 mg to 1.3 mg/m 2 ).
- the crossover control agents must be substantially removed within 90 seconds (preferably with 45 seconds) during processing (generally during development).
- substantially means that the crossover control agent remaining in the film after processing provides no more than 0.05 optical density as measured using a conventional sensitometer. Removal of the crossover control agents can be achieved by their migration out of the film, but preferably, they are not physically removed but are decolorized during processing.
- Pigments and dyes that can be used as crossover control agents include various water-soluble, liquid crystalline, or particulate magenta or yellow filter dyes or pigments including those described for example in U.S. Patents 4,803,150 (Dickerson et al.), 5,213,956 (Diehl et al.), 5,399,690 (Diehl et al.), 5,922,523 (Helber et al.), and 6,214,499 (Helber et al.), and Japanese Kokai 2- 123349, all of which are cited for pigments and dyes useful in the practice of this invention.
- One useful class of particulate dyes useful as crossover control agents includes nonionic polymethine dyes such as merocyanine, oxonol, hemioxonol, styryl, and arylidene dyes as described in U.S. Patent 4,803,150 (noted above) that is cited for the definitions of those dyes.
- the particulate magenta merocyanine and oxonol dyes are preferred and the magenta oxonol dyes are most preferred.
- One particularly useful magenta oxonol dye that can be used as a crossover control agent is the following compound M-l :
- a variety of silver halide dopants can be used, individually and in combination, in one or more of the silver halide emulsion layers to improve contrast as well as other common sensitometric properties.
- a summary of conventional dopants is provided in Research Disclosure, Item 38957 [Section I Emulsion grains and their preparation, sub-section D and grain modifying conditions and adjustments, paragraphs (3), (4), and (5)].
- a general summary of silver halide emulsions and their preparation is provided in Research Disclosure, Item 38957 (Section I Emulsion grains and their preparation). After precipitation and before chemical sensitization the emulsions can be washed by any convenient conventional technique using techniques disclosed by Research Disclosure, Item 38957 (Section III Emulsion washing).
- any of the emulsions can be chemically sensitized by any convenient conventional technique as illustrated in Research Disclosure, Item 38957 (Section IV Chemical Sensitization). Sulfur, selenium or gold sensitization (or any combination thereof) is specifically contemplated. Sulfur sensitization is preferred, and can be carried out using for example, thiosulfates, thiosulfonates, thiocyanates, isothiocyanates, thioethers, thioureas, cysteine, or rhodanine. A combination of gold and sulfur sensitization is most preferred.
- any of the silver halide emulsions can include one or more suitable spectral sensitizing dyes that include, for example, cyanine and merocyanine spectral sensitizing dyes.
- suitable spectral sensitizing dyes include, for example, cyanine and merocyanine spectral sensitizing dyes.
- the useful amounts of such dyes are well known in the art but are generally within the range of from 200 to 1000 mg/mole of silver in the given emulsion layer. It is particularly preferred that all of the tabular silver halide grains used in the present invention (in all silver halide emulsion layers) be "green-sensitized", that is spectrally sensitized to radiation of from 470 to 570 nm of the electromagnetic spectrum.
- Various spectral sensitizing dyes are known for achieving this characteristic.
- Instability that increases minimum density in negative-type emulsion coatings (that is fog) can be protected against by incorporation of stabilizers, antifoggants, antikinking agents, latent-image stabilizers and similar addenda in the emulsion and contiguous layers prior to coating.
- Such addenda are illustrated in Research Disclosure, Item 38957 (Section VII Antifoggants and stabilizers) and Item 18431 (Section II Emulsion Stabilizers, Antifoggants and Antikinking Agents).
- one or more silver halide emulsion layers include one or more covering power enhancing compounds adsorbed to surfaces of the silver halide grains.
- Such compounds are desqribed in U.S. Patent 5,800,976 (Dickerson et al.) that is cited for the teaching of such sulfur-containing covering power enhancing compounds.
- the silver halide emulsion layers and other hydrophilic layers on both sides of the support of the radiographic films generally contain conventional polymer vehicles (peptizers and binders) that include both synthetically prepared and naturally occurring colloids or polymers.
- the most preferred polymer vehicles include gelatin or gelatin derivatives alone or in combination with other vehicles.
- gelatino-vehicles and related layer features are disclosed in Research Disclosure, Item 38957 (Section II Vehicles, vehicle extenders, vehicle-like addenda and vehicle related addenda).
- the emulsions themselves can contain peptizers of the type set out in Section II, paragraph A.
- Gelatin and hydrophilic colloid peptizers are also useful as binders and hence are commonly present in much higher concentrations than required to perform the peptizing function alone.
- the preferred gelatin vehicles include alkali-treated gelatin, acid-treated gelatin or gelatin derivatives (such as acetylated gelatin, deionized gelatin, oxidized gelatin and phthalated gelatin).
- Cationic starch used as a peptizer for tabular grains is described in U.S. Patents 5,620,840 (Maskasky) and 5,667,955 (Maskasky). Both hydrophobic and, hydrophilic synthetic polymeric vehicles can be used also. Such materials include, but are not limited to, polyacrylates (including polymethacrylates), polystyrenes, polyacrylamides [including poly(methacrylamides)j, and dextrans as described in U.S. Patent 5,876,913 (Dickerson et al.). Thin, high aspect ratio tabular grain silver halide emulsions useful in the present invention will typically be prepared by processes including nucleation and subsequent growth steps.
- silver and halide salt solutions are combined to precipitate a population of silver halide nuclei in a reaction vessel.
- Double jet (addition of silver and halide salt solutions simultaneously) and single jet (addition of one salt solution, such as a silver salt solution, to a vessel already containing an excess of the other salt) process are known.
- silver and halide salt solutions, and/or preformed fine silver halide grains are added to the nuclei in the reaction vessel, and the added silver and halide combines with the existing population of grain nuclei to form larger grains.
- Patent 4,434,226 teaches the precipitation of high aspect ratio tabular grain silver bromoiodide emulsions at bromide ion concentrations in the pBr range of from 0.6 to 1.6 during grain nucleation, with the pBr range being expanded to 0.6 to 2.2 during subsequent grain growth.
- U.S. Patent 4,439,520 extends these teachings to the precipitation of high aspect ratio tabular grain silver bromide emulsions.
- pBr is defined as the negative log of the solution bromide ion concentration.
- Patent 4,414,310 (Daubendiek et al.) describes a process for the preparation of high aspect ratio silver bromoiodide emulsions under pBr conditions not exceeding the value of 1.64 during grain nucleation.
- U.S. Patent 4,713,320 (Maskasky), in the preparation of high aspect ratio silver halide emulsions, teaches that the useful pBr range during nucleation can be extended to a value of 2.4 when the precipitation of the tabular silver bromide or bromoiodide grains occurs in the presence of gelatino-peptizer containing less than 30 micromoles of methionine (for example oxidized gelatin) per gram.
- oxidized gelatin as peptizer during nucleation, such as taught by U.S. Patent 4,713,320 (noted above), is particularly preferred for making thin, high aspect ratio tabular grain emulsions for use in the present invention, employing either double or single jet nucleation processes.
- gelatin employed as peptizer during nucleation typically will comprise only a fraction of the total gelatin employed in an emulsion, the percentage of oxidized gelatin in the resulting emulsion may be relatively small, that is, at least 0.05% (based on total dry weight of hydrophilic polymer vehicle mixture).
- the coated first, second, third, and fourth tabular grain silver halide emulsion layers comprise tabular silver halide grains dispersed in a hydrophilic polymeric vehicle mixture comprising at least 0.05%, preferably at least 1%, and more preferably at least 5%, of oxidized gelatin based on the total dry weight of hydrophilic polymer vehicle mixture in that coated silver halide emulsion layer.
- the upper limit for the oxidized gelatin is not critical but for practical purposes, it is 18% and preferably up to 15%, based on the total dry weight of the hydrophilic polymer vehicle mixture.
- the amount of oxidized gelatin in the emulsion layers can be the same or different. Preferably, it is the same amount in all silver halide emulsion layers.
- the oxidized gelatin may be in the form of deionized oxidized gelatin but non-deionized oxidized gelatin may be preferred because of the presence of ions, or a mixture of deionized and non-deionized oxidized gelatins can be used.
- Deionized or non-deionized oxidized gelatin generally has the / property of relatively lower amounts of methionine per gram of gelatin than other forms of gelatin.
- the amount of methionine is from 0 to 3 ⁇ mol of methionine, and more preferably from 0 to 1 ⁇ mol of methionine, per gram of gelatin.
- This material can be prepared using known procedures.
- the remainder of the polymeric vehicle mixture can be any of the hydrophilic vehicles described above, but preferably it is composed of alkali- treated gelatin, acid-treated gelatin acetylated gelatin, or phthalated gelatin.
- the silver halide emulsions containing the tabular silver halide grains described above can be prepared as noted using a considerable amount of oxidized gelatin (preferably deionized oxidized gelatin) during grain nucleation and growth, and then additional polymeric binder can be added to provide the coating formulation.
- the amounts of oxidized gelatin in the emulsion can be as low as 0.3 g/mol of silver and as high as 27 g/mol of silver in the emulsion.
- the amount of oxidized gelatin in the emulsion is from 1 to 20 g/mol of silver.
- the silver halide emulsion layers (and other hydrophilic layers) in the radiographic films are generally fully hardened using one or more conventional hardeners.
- the amount of hardener on each side of the support is generally at least 1% and preferably at least 1.5%, based on the total dry weight of the polymer vehicles on each side of the support.
- the levels of silver and polymer vehicle in the radiographic silver halide film can vary in the various silver halide emulsion layers.
- the total amount of silver on each side of the support is at least 10 and no more than 25 mg/ dm 2 (preferably from 18 to 24 mg/ dm 2 ).
- the total coverage of polymer vehicle on each side of the support is generally at least 20 and no more than 40 mg/dm 2 (preferably from 30 to 40 mg/dm 2 ).
- the amounts of silver and polymer vehicle on the two sides of the support in the radiographic silver halide film can be the same or different as long as the sensitometric properties on both sides are the same. These amounts refer to dry weights.
- the molar ratio of silver in the first silver halide emulsion layer to that of the second silver halide emulsion layer is greater than 1 :1 (preferably from 1.5:1 to 3 : 1 ), and the molar ratio of silver in the third silver halide emulsion layer to that of the fourth silver halide emulsion layer is independently greater than 1 :1 (preferably from 1.5:1 to 3:1).
- the radiographic silver halide films useful in this invention generally include a surface protective overcoat disposed on each side of the support that typically provides for physical protection of the various layers underneath.
- Each protective overcoat can be sub-divided into two or more individual layers.
- protective overcoats can be sub-divided into surface overcoats and interlayers (between the overcoat and silver halide emulsion layers).
- the protective overcoats can contain various addenda to modify the physical properties of the overcoats. Such addenda are illustrated by Research Disclosure, Item 38957 (Section IX Coating physical property modifying addenda, A. Coating aids, B. Plasticizers and lubricants, C. Antistats, and D. Matting agents).
- Interlayers that are typically thin hydrophilic colloid layers can be used to provide a separation between the silver halide emulsion layers and the surface overcoats or between the silver halide emulsion layers.
- the overcoat on at least one side of the support can also include a blue toning dye or a tetraazaindene (such as 4-hydroxy-6-methyl- 1,3,3 a,7- tetraazaindene) if desired.
- the protective overcoat is generally comprised of one or more hydrophilic colloid vehicles, chosen from among the same types disclosed above in connection with the emulsion layers.
- the various coated layers of radiographic silver halide films can also contain tinting dyes to modify the image tone to transmitted or reflected light. These dyes are not decolorized during processing and may be homogeneously or heterogeneously dispersed in the various layers. Preferably, such non-bleachable tinting dyes are in a silver halide emulsion layer.
- the radiographic imaging assemblies are composed of one radiographic silver halide film as described herein and two fluorescent intensifying screens to provide a cumulative speed of at least 200 (preferably at least 400) and less than 800 for the entire imaging "system".
- the film and screens are generally arranged in a suitable "cassette” designed for this purpose.
- one screen is on the "frontside” (first exposed to X-radiation) and the other on the “backside” of the film.
- Fluorescent intensifying screens are typically designed to absorb X-rays and to emit electromagnetic radiation having a wavelength greater than 300 nm. These screens can take any convenient form providing they meet all of the usual requirements for use in radiographic imaging.
- the fluorescent layer contains phosphor particles and a binder, optimally additionally containing a light scattering material, such as titania. Any conventional or useful phosphor can be used, singly or in mixtures, in the intensifying screens used in the practice of this invention.
- fluorescent intensifying screens include but not limited to, Research Disclosure, Vol. 184, August 1979, Item 18431 (Section IX X-ray Screens/Phosphors) and U.S. Patents 2,303,942 (Wynd et al.), 3,778,615 (Luckey), 4,032,471 (Luckey), 4,225,653 (Brixner et al.), 3,418,246 (Royce), 3,428,247 (Yocon), 3,725,704
- the inorganic phosphor can be calcium tungstate, activated or unactivated lithium stannates, niobium and/or rare earth activated or unactivated yttrium, lutetium, or gadolinium tantalates, rare earth-activated or unactivated middle chalcogen phosphors such as rare earth oxychalcogenides and oxyhalides, or terbium-activated or unactivated lanthanum or lutetium middle chalcogen phosphor, or the inorganic phosphor can contain hafnium. Still other useful phosphors are those containing hafnium as described for example in U.S.
- the inorganic phosphor is a rare earth oxychalcogenide and oxyhalide phosphor that is represented by the following formula (1): M' (w -n)M" n O w X' (1) wherein M' is at least one of the metals yttrium (Y), lanthanum (La), gadolinium (Gd), or lutetium (Lu), M" is at least one of the rare earth metals, preferably dysprosium (Dy), erbium (Er), europium (Eu), holmium (Ho), neodymium (Nd), praseodyinium (Pr), samarium (Sm), tantalum (Ta), terbium (Tb), thulium (Tm), or ytterbium (Yb), X' is a middle chalcogen (S, Se, or Te) or halogen, n is 0.002 to 0.2, and w is 1 when X' is halogen,
- Particularly preferred phosphors of formula (1) include a lanthanum oxybromides, or terbium-activated or thulium-activated gadolinium oxides or oxysulfides (such as Gd 2 O 2 S:Tb).
- Other suitable phosphors are described in U.S. Patents 4,835,397 (Arakawa et al.) and 5,381,015 (Dooms), and include for example divalent europium and other rare earth activated alkaline earth metal halide phosphors and rare earth element activated rare earth oxyhalide phosphors.
- the more preferred phosphors include alkaline earth metal fluorohalide prompt emitting and/or storage phosphors [particularly those containing iodide such as alkaline earth metal fluorobromoiodide storage phosphors as described in U.S. Patent 5,464,568 (Bringley et al.)].
- Another class of useful phosphors includes rare earth hosts such as rare earth activated mixed alkaline earth metal sulfates such as europium-activated barium strontium sulfate.
- Particularly useful phosphors are those containing doped or undoped tantalum such as YTaO 4 , YTaO 4 :Nb, Y(Sr)TaO 4 , and Y(Sr)TaO 4 :Nb. These phosphors are described in U.S. Patents 4,226,653 (Brixner), 5,064,729 (Zegarski), 5,250,366 (Nakajima et al.), and 5,626,957 (Benso et al.).
- the inorganic phosphor is an alkaline earth metal phosphor that is the product of firing starting materials comprising optional oxide and a combination of species characterized by the following formula (2): MFX 1-2 I z uM a X a :yA:eQ:tD (2) wherein "M” is magnesium (Mg), calcium (Ca), strontium (Sr), or barium (Ba), "F” is fluoride, "X” is chloride (Cl) or bromide (Br), "I” is iodide, M a is sodium (Na), potassium (K), rubidium (Rb), or cesium (Cs), X a is fluoride (F), chloride (Cl), bromide (Br), or iodide (I), "A” is europium (Eu), cerium (Ce), samarium (Sm), or terbium (Tb), "Q" is BeO, MgO, CaO, SrO,
- the phosphor can be dispersed in a suitable binder(s) in a phosphor layer.
- a particularly useful binder is a polyurethane binder such as that commercially available under the trademark Permuthane.
- the fluorescent intensifying screens useful in this invention exhibit a photographic speed of at least 150.
- One preferred phosphor is a terbium activated gadolinium oxysulfides.
- a worker skilled in the art would be able to choose the appropriate inorganic phosphor, its particle size, and coverage in the phosphor layer to provide the desired screen speed.
- the coverage of the inorganic phosphor in the phosphor layer is from 3.2 to 3.8 g/dm 2 at a phosphor to binder weight ratio of from 20: 1 to 22:1.
- a particularly useful phosphor is a terbium activated gadolinium oxysulfide phosphor and a particularly useful fluorescent intensifying screen of containing this phosphor layer is Kodak MinR-2190 ® that is available from Eastman Kodak Company and is described in general as Screen W in Example 1 below. This screen can be prepared using components and procedures known by one skilled in the art.
- Support materials for radiographic screens in accordance with the present invention include cardboard, plastic films such as films of cellulose acetate, polyvinyl chloride, polyvinyl acetate, polyacrylonitrile, polystyrene, polyester, polyethylene terephthalate, polyamide, polyimide, cellulose triacetate and polycarbonate, metal sheets such as aluminum foil and aluminum alloy foil, ordinary papers, baryta paper, resin-coated papers, pigmented papers containing titanium dioxide or the like, and papers sized with polyvinyl alcohol or the like.
- a flexible plastic film is preferably used as the support material.
- the plastic film may contain a light-absorbing material such as carbon black, or may contain a light-reflecting material such as titanium dioxide or barium sulfate.
- the former is appropriate for preparing a high-resolution type radiographic screen, while the latter is appropriate for preparing a high-sensitivity type radiographic screen.
- the support absorb substantially all of the radiation emitted by the phosphor.
- particularly preferred supports include polyethylene terephthalate, blue colored or black colored (for example, LUMIRROR C, type X30 supplied by Toray Industries, Tokyo, Japan). These supports may have a thickness that may differ depending o the material of the support, and may generally be between 60 and 1000 ⁇ m, more preferably between 80 and 500 ⁇ m from the standpoint of handling.
- flexible support materials for the screens include a specific reflective substrate that is a single- or multi -layer reflective sheet.
- At least one of the layers of this sheet is a reflective substrate that comprises a continuous polymer (particularly a polyester) first phase and a second phase dispersed within the continuous polymer first phase.
- This second phase comprises microvoids containing suitable reflective inorganic particles (especially barium sulfate particles).
- Such a support is capable of reflecting at least 90% (preferably at least 94%) of incident radiation having a wavelength of from 300 to 700 nm. This property is achieved by the judicious selection of the polymer first phase, microvoids and proportion thereof, amount of inorganic particles such as barium sulfate particles, and the use of multiple layers having microvoids and/or particles.
- the continuous polymer first phase of the reflective substrate provides a matrix for the other components of the reflective substrate and is transparent to longer wavelength electromagnetic radiation.
- This polymer phase can comprise a film or sheet of one or more thermoplastic polyesters, which film has been biaxially stretched (that is, stretched in both the longitudinal and transverse directions) to create the microvoids therein around the inorganic particles.
- Any suitable polyester can be used as long as it can be cast, spun, molded, or otherwise formed into a film or sheet, and can be biaxially oriented as noted above.
- the polyesters have a glass transition temperature of from 50 to 150° C (preferably from 60 to 100°C) as determined using a differential scanning calorimeter (DSC).
- Suitable polyesters that can be used include, but are not limited to, ⁇ oly(l ,4-cyclohexylene dimethylene terephthalate), poly(ethylene terephthalate), poly(ethylene naphthalate), and poly(l,3-cyclohexylene dimethylene terephthalate). Poly(l,4-cyclohexylene dimethylene terephthalate) is most preferred.
- the ratio of the reflective index of the continuous polymer first phase to the second phase is from 1.4:1 to 1.6:1.
- barium sulfate particles are incorporated into the continuous polyester phase as described below. These particles generally have an average particle size of from 0.6 to 2 ⁇ m (preferably from 0.7 to 1.0 ⁇ m).
- these particles comprise from 35 to 65 weight % (preferably from 55 to 60 weight %) of the total dry reflective substrate weight, and from 15 to 25% of the total reflective substrate volume.
- the barium sulfate particles can be incorporated into the continuous polyester phase by various means. For example, they can be incorporated during polymerization of the dicarboxylic acid(s) and polyol(s) used to make the continuous polyester first phase. Alternatively and preferably, they are incorporated by mixing them into pellets of the polyester and extruding the mixture to produce a melt stream that is cooled into the desired sheet containing barium sulfate particles dispersed therein. These particles are at least partially bordered by voids because they are embedded in the microvoids distributed throughout the continuous polymer first phase.
- the microvoids containing the particles comprise a second phase dispersed within the continuous polymer first phase.
- the microvoids generally occupy from 35 to 60% (by volume) of the dry reflective substrate.
- the microvoids can be of any particular shape, that is circular, elliptical, convex, or any other shape reflecting the film orientation process and the shape and size of the barium sulfate particles.
- the size and ultimate physical properties of the microvoids depend upon the degree and balance of the orientation, temperature and rate of stretching, crystallization characteristics of the polymer, the size and distribution of the particles, and other considerations that would be apparent to one skilled in the art.
- the microvoids are formed when the extruded sheet containing particles is biaxially stretched using conventional orientation techniques.
- the reflective substrates used in the practice of this invention are prepared by: (a) blending the inorganic particles (such as barium sulfate particles) into a desired polymer (such as a polyester) as the continuous phase, (b) forming a sheet of the polymer containing the particles, such as by extrusion, and (c) stretching the sheet in one or transverse directions to form microvoids around the particles.
- a desired polymer such as a polyester
- the present invention does not require but permits the use or addition of various organic and inorganic materials such as pigments, anti-block agents, antistatic agents, plasticizers, dyes, stabilizers, nucleating agents, and other addenda known in the art to the reflective substrate. These materials may be incorporated into the polymer phase or they may exist as separate dispersed phases and can be incorporated into the polymer using known techniques.
- the reflective substrate can have a thickness (dry) of from 100 to
- the reflective substrate can be the sole layer of the support for the phosphor screen, but in some preferred embodiments, additional layers are formed or laminated with one or more reflective substrate to form a multi-layer or multi-strata support.
- the support further comprises an additional layer such as a stretch microvoided polyester layer that has similar composition as the reflective substrate except that barium sulfate particles are omitted. This additional polyester layer is arranged adjacent the reflective substrate, but opposite the phosphor layer. In other words, the reflective layer is closer to the phosphor layer than the microvoided polyester layer.
- the microvoided polymer layers can comprise microvoids in an amount of from 35 to 60% (by total layer volume).
- the additional layers (with or without microvoids) can have a dry thickness of from 30 to 120 ⁇ m (preferably from 50 to 70 ⁇ m).
- the polymer(s) in the additional layer can be same or different as those in the reflective substrate.
- These additional microvoided polymer layers can also include organic or inorganic particles in the microvoids as long as those particles are not same particles as in the primary reflective layer.
- Useful particles includes polymeric beads (such as cellulose acetate particles), crosslinked polymeric microbeads, immiscible polymer particles (such as polypropylene particles), and other particulate materials known in the art that will not interfere with the desired reflectivity of the support required for the present invention.
- a representative fluorescent intensifying screen useful in the present invention is described as Screen U in Example 2 below. Imaging and Processing Exposure and processing of the radiographic silver halide films useful in this invention can be undertaken in any convenient conventional manner. The exposure and processing techniques of U.S. Patents 5,021,327 and 5,576,156 (both noted above) are typical for processing radiographic films.
- Exposing X- radiation is generally directed through a patient and through a fluorescent intensifying screen arranged against the frontside of the film before it passes through the radiographic silver halide film, and the second fluorescent intensifying screen.
- Processing compositions are described in U.S. Patents 5,738,979 (Fitterman et al.), 5,866,309 (Fitterman et al.), 5,871,890 (Fitterman et al.), 5,935,770 (Fitterman et al.), and 5,942,378 (Fitterman et al.).
- the processing compositions can be supplied as single- or multi-part formulations, and in concentrated form or as more diluted working strength solutions.
- the radiographic silver halide films be processed generally within 90 seconds ("dry-to-dry") and preferably at least 20 seconds and up to 60 seconds, including the developing, fixing and any washing (or rinsing) steps, before drying.
- drying-to-dry Such processing can be carried out in any suitable processing equipment including but not limited to, a Kodak X-OMAT ® RA 480 processor that can utilize Kodak Rapid Access processing chemistry.
- Kodak X-OMAT ® RA 480 processor that can utilize Kodak Rapid Access processing chemistry.
- Other "rapid access processors" are described for example in U.S. Patent 3,545,971 (Barnes et al.) and EP 0 248,390A1 (Akio et al.).
- the black- and-white developing compositions used during processing are free of any photographic film hardeners, such as glutaraldehyde.
- Radiographic kits can include an imaging assembly, additional radiographic silver halide films, additional fluorescent intensifying screens and/or metal screens, and/or one or more suitable processing compositions (for example black-and-white developing and fixing compositions).
- suitable processing compositions for example black-and-white developing and fixing compositions.
- Example 1 Radiographic Film A: Radiographic Film A was a duplitized film having the same silver halide emulsion on each side of a blue-tinted 170 ⁇ m transparent poly(ethylene terephthalate) film support and an interlayer and overcoat layer over each emulsion layer. The emulsions in Film A were not prepared using oxidized gelatin.
- Radiographic Film A had the following layer arrangement: Overcoat Interlayer Emulsion Layer Support Emulsion Layer Interlayer Overcoat
- the noted layers were prepared from the following formulations.
- Overcoat Formulation Coverage (mg/dm Gelatin vehicle 3.4 Methyl methacrylate matte beads 0.14 Carboxymethyl casein 0.57 Colloidal silica (LUDOX AM) 0.57 Polyacrylamide 0.57 Chrome alum 0.025 Resorcinol 0.058 Spermafol 0.15
- Interlaver Formulation Coverage (mg/dm 2 ) Gelatin vehicle 3.4 Carboxymethyl casein 0.57 Colloidal silica (LUDOX AM) 0.57 Polyacrylamide 0.57 Chrome alum 0.025 Resorcinol 0.058 Nitron 0.044 Emulsion Laver Formulation Coverage (mg/dm 2 ) Tabular grains [AgBr 2.9 ⁇ m ave. dia.
- Radiographic Film B was duplitized, symmetric radiographic film with two different silver halide emulsion layers on each side of the support.
- the two emulsion layers contained tabular silver halide grains that were prepared and dispersed in oxidized gelatin that had been added at multiple times before and/or during the nucleation and early growth of the silver bromide tabular grains dispersed therein.
- the tabular grains in each silver halide emulsion layer had a mean aspect ratio of 40.
- Radiographic Film B had the following layer arrangement and formulations on the film support: Overcoat Interlayer Emulsion Layer 1 Emulsion Layer 2 Support Emulsion Layer 2 Emulsion Layer 1 Interlayer Overcoat
- Overcoat Formulation Coverage (mg/dm ) Gelatin vehicle 3.4 Methyl methacrylate matte beads 0.14 Carboxymethyl casein 0.57 Colloidal silica (LUDOX AM) 0.57 Polyacrylamide 0.57 Chrome alum 0.025 Resorcinol 0.058 Spermafol 0.15
- Emulsion Layer 1 Formulation Coverage (mg/dm
- Emulsion Layer 2 Formulation Coverage (mg/dm )
- Fluorescent intensifying screen "X" was prepared using known procedures and components to have a terbium activated gadolinium oxysulfide phosphor (median particle size of 7.8 to 8 ⁇ m) dispersed in a PermuthaneTM polyurethane binder on a white-pigmented poly(ethylene terephthalate) film support.
- the total phosphor coverage was 4.83 g/dm 2 and the phosphor to binder weight ratio was 19:1.
- the screen speed was 440.
- Fluorescent intensifying screen "W" was prepared using known procedures and components to have a terbium activated gadolinium oxysulfide phosphor (median particle size of from 3.8 to 4 ⁇ m) dispersed in a PermuthaneTM polyurethane binder on a white-pigmented poly(ethylene terephthalate) film support.
- the total phosphor coverage was 3.4 g/dm and the phosphor to binder weight ratio was 21 :1. This screen also included 27 ppm of carbon.
- the screen speed was 190.
- Fluorescent intensifying screen "Z” was prepared using known procedures and components to have a terbium activated gadolinium oxysulfide phosphor (median particle size of 3.8 to 4 ⁇ m) dispersed in a PermuthaneTM polyurethane binder on a white-pigmented ⁇ oly(ethylene terephthalate) film support.
- the total phosphor coverage was 3.4 g/dm 2 and the phosphor to binder weight ratio was 21 :1.
- the screen speed was 100. Samples of the films in the imaging assemblies were exposed using an inverse square X-ray sensitometer (device that makes exceedingly reproducible X-ray exposures). A lead screw moved the detector between exposures.
- TABLE II shows the sensitometric data of Radiographic Films A and B when exposed with various screens.
- the data show that sharp images can be obtained with Film A when it is combined with screens having higher SSM values.
- the system speed of the overall imaging assembly is reduced by almost 400%.
- Film B was combined with Screen W, there was no system speed loss (compared to the use of Film A) and a higher SSM value was provided.
- the imaging assemblies of the present invention provided sharper images without the need to increase patient exposure to X-radiation (dosage).
- Example 2 Cassettes used for imaging contained a pair of screens X, W, or V on opposing sides of the noted Radiographic Films A or B described in Example 1.
- Fluorescent intensifying screen "V” was a fluorescent intensifying screen that comprised a terbium activated gadolinium oxysulfide phosphor (median particle size of from 7.8 to 8 ⁇ m) dispersed in a PermuthaneTM polyurethane binder in a single phosphor layer on a microvoided poly(ethylene terephthalate) support. The total phosphor coverage was 9.2 g/dm 2 and the phosphor to binder weight ratio was 27:1. The screen speed was 600.
- the microvoided support used in Screen V was prepared as a 3- layer film (with designated layers 1, 2 and 3) comprising voided polyester matrix layers.
- the BaSO 4 inorganic particles were compounded with the PETG polyester by mixing in a counter-rotating twin-screw extruder attached to a strand die.
- Cast sheets of the noted materials were co-extruded to produce a combined support having the following layer arrangement: layer 1 /layer 2/layer 3, using a 2.5 inch (6.35 cm) extruder to extrude layer 2, and a 1 inch (2.54 cm) extruder to extrude layers 1 and 3.
- the 275 °C melt streams were fed into a 7 inch (17.8 cm) multi-manifold die also heated at 275°C.
- the PP in layer 2 dispersed into globules between 10 and 30 ⁇ m in size during extrusion.
- the final dimensions of the continuous cast multilayer sheet were 18 cm wide and 860 ⁇ m thick. Layers 1 and 3 were each 215 ⁇ m thick while layer 2 was 430 ⁇ m thick.
- the cast multilayer sheet was then stretched at 110°C first 3.0 times in the X-direction and then 3.4 times in the Y-direction. The stretched sheet was then heat set at 150°C and its final thickness was 175 ⁇ m.
- a dispersion of green-emitting, terbium-doped gadolinium oxysulfide phosphor with a mean particle size of 6.8 ⁇ m was prepared from 100 g of the phosphor in a solution prepared from 117 g of polyurethane binder (trademark Permuthane U-6366) at 10 % (by weight) in a 93:7 volume ratio of dichloromethane and methanol. The resulting dispersion was coated at a phosphor coverage of 605 g/m 2 on the 3-layer reflective support noted above to produce Screen V.
- polyurethane binder trademark Permuthane U-6366
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- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Chemical & Material Sciences (AREA)
- Engineering & Computer Science (AREA)
- Materials Engineering (AREA)
- Silver Salt Photography Or Processing Solution Therefor (AREA)
- Conversion Of X-Rays Into Visible Images (AREA)
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP04819064A EP1687676A2 (en) | 2003-11-12 | 2004-11-08 | High speed imaging assembly for radiography |
| JP2006539735A JP2007510964A (ja) | 2003-11-12 | 2004-11-08 | ラジオグラフィのための高スピード画像形成集成体 |
Applications Claiming Priority (6)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US70619103A | 2003-11-12 | 2003-11-12 | |
| US10/706,191 | 2003-11-12 | ||
| US10/706,574 US20050100837A1 (en) | 2003-11-12 | 2003-11-12 | Ultrahigh speed imaging assembly for orthopedic radiography |
| US10/706,574 | 2003-11-12 | ||
| US10/958,738 | 2004-10-05 | ||
| US10/958,738 US7005226B2 (en) | 2003-11-12 | 2004-10-05 | High speed imaging assembly for radiography |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| WO2005050312A2 true WO2005050312A2 (en) | 2005-06-02 |
| WO2005050312A3 WO2005050312A3 (en) | 2005-09-09 |
Family
ID=34623815
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/US2004/037313 Ceased WO2005050312A2 (en) | 2003-11-12 | 2004-11-08 | High speed imaging assembly for radiography |
Country Status (4)
| Country | Link |
|---|---|
| US (1) | US7005226B2 (enExample) |
| EP (1) | EP1687676A2 (enExample) |
| JP (1) | JP2007510964A (enExample) |
| WO (1) | WO2005050312A2 (enExample) |
Families Citing this family (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US7524920B2 (en) * | 2004-12-16 | 2009-04-28 | Eastman Chemical Company | Biaxially oriented copolyester film and laminates thereof |
| US7014977B1 (en) * | 2005-03-28 | 2006-03-21 | Eastman Kodak Company | Reflective radiographic material with incorporated developer |
| US7018770B1 (en) * | 2005-03-28 | 2006-03-28 | Eastman Kodak Co | High speed reflective radiographic material |
| US20060275558A1 (en) * | 2005-05-17 | 2006-12-07 | Pecorini Thomas J | Conductively coated substrates derived from biaxially-oriented and heat-set polyester film |
| US10120083B2 (en) * | 2011-06-28 | 2018-11-06 | Carestream Dental Technology Topco Limited | Radiation sensing thermoplastic composite panels |
| WO2021124532A1 (ja) * | 2019-12-19 | 2021-06-24 | 株式会社 東芝 | 蛍光板、x線検出器、およびx線検査装置 |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4413320A (en) * | 1980-08-22 | 1983-11-01 | The Bendix Corporation | Control system |
| US4425425A (en) * | 1981-11-12 | 1984-01-10 | Eastman Kodak Company | Radiographic elements exhibiting reduced crossover |
| US4414310A (en) * | 1981-11-12 | 1983-11-08 | Eastman Kodak Company | Process for the preparation of high aspect ratio silver bromoiodide emulsions |
| US4425426A (en) * | 1982-09-30 | 1984-01-10 | Eastman Kodak Company | Radiographic elements exhibiting reduced crossover |
| CA1284050C (en) * | 1985-12-19 | 1991-05-14 | Joe E. Maskasky | Process for precipitating a tabular grain emulsion in the presence of a gelatino-peptizer and an emulsion produced thereby |
| US4803150A (en) * | 1986-12-23 | 1989-02-07 | Eastman Kodak Company | Radiographic element exhibiting reduced crossover |
| US4900652A (en) * | 1987-07-13 | 1990-02-13 | Eastman Kodak Company | Radiographic element |
| US4914014A (en) * | 1988-06-30 | 1990-04-03 | Eastman Kodak Company | Nucleation of tabular grain emulsions at high pBr |
| US5021327A (en) * | 1989-06-29 | 1991-06-04 | Eastman Kodak Company | Radiographic screen/film assemblies with improved detection quantum efficiencies |
| US5252442A (en) * | 1991-05-14 | 1993-10-12 | Eastman Kodak Company | Radiographic elements with improved detective quantum efficiencies |
| US5268251A (en) * | 1991-06-26 | 1993-12-07 | Konica Corporation | Light-sensitive silver halide photographic material image quality- and gradation-adaptable to photographing purposes and image forming method therefor |
| US5221846A (en) * | 1991-11-27 | 1993-06-22 | E. I. Du Pont De Nemours And Company | Radiographic system with improved image quality |
| IT1256070B (it) | 1992-07-28 | 1995-11-27 | Combinazione di elementi fotosensibili da usare in radiografia | |
| IT1255550B (it) * | 1992-10-26 | 1995-11-09 | Minnesota Mining & Mfg | Schermo di rinforzo per raggi x migliorato |
| EP0633497B1 (en) * | 1993-07-08 | 1998-10-14 | Agfa-Gevaert N.V. | Medical x-ray recording system |
| US5430302A (en) * | 1993-12-17 | 1995-07-04 | E. I. Du Pont De Nemours And Company | Lithium tantalate based X-ray intensifying screen |
| JPH0815827A (ja) | 1994-06-28 | 1996-01-19 | Konica Corp | ハロゲン化銀写真感光材料と放射線増感スクリーンとの組体 |
| US5576156A (en) * | 1995-05-22 | 1996-11-19 | Eastman Kodak Company | Low crossover radiographic elements capable of being rapidly processed |
| JP3479574B2 (ja) * | 1995-07-04 | 2003-12-15 | 富士写真フイルム株式会社 | フロント側用放射線増感スクリーン及び放射線増感スクリーン組体 |
| US5746943A (en) * | 1997-02-25 | 1998-05-05 | Sterling Diagnostic Imaging, Inc. | X-ray intensifying screen based on barium hafnium zirconium phosphate |
| US5998083A (en) * | 1997-03-01 | 1999-12-07 | Agfa-Gevaert, N.V. | System and method for radiological image formation |
| US6394650B1 (en) * | 1999-10-27 | 2002-05-28 | Konica Corporation | Photographic combination for use in radiography |
| US6200723B1 (en) | 2000-02-28 | 2001-03-13 | Eastman Kodak Company | Rapidly processable and directly viewable radiographic film with visually adaptive contrast |
| US6190822B1 (en) | 2000-02-28 | 2001-02-20 | Eastman Kodak Company | High contrast visually adaptive radiographic film and imaging assembly |
| US20010031418A1 (en) * | 2000-03-08 | 2001-10-18 | Masaaki Taguchi | Radiographic imaging system and silver halide photographic material |
| US6387586B1 (en) * | 2000-11-06 | 2002-05-14 | Eastman Kodak Company | High contrast visually adaptive radiographic film and imaging assembly for thoracic imaging |
| US6361918B1 (en) * | 2000-11-06 | 2002-03-26 | Eastman Kodak Company | High speed radiographic film and imaging assembly |
| US6350554B1 (en) * | 2000-11-06 | 2002-02-26 | Eastman Kodak Company | High contrast visually adaptive radiographic film and imaging assembly for orthopedic imaging |
| US6652996B2 (en) | 2002-01-31 | 2003-11-25 | Eastman Kodak Company | Radiographic phosphor panel having improved speed and sharpness |
| US6828077B2 (en) * | 2002-11-19 | 2004-12-07 | Eastman Kodak Company | Mammography imaging method using high peak voltage |
| US6794106B2 (en) * | 2002-11-19 | 2004-09-21 | Eastman Kodak Company | Radiographic imaging assembly for mammography |
| US6686118B1 (en) * | 2003-03-26 | 2004-02-03 | Eastman Kodak Company | Blue-sensitive film for radiography and imaging assembly and method |
| US6682868B1 (en) * | 2003-03-26 | 2004-01-27 | Eastman Kodak Company | Radiographic imaging assembly with blue-sensitive film |
| US6686115B1 (en) * | 2003-03-26 | 2004-02-03 | Eastman Kodak Company | Blue-sensitive film for radiography with desired image tone |
| US6686116B1 (en) * | 2003-03-26 | 2004-02-03 | Eastman Kodak Company | Blue spectrally sensitized film for radiography, imaging assembly and method |
| US6686117B1 (en) * | 2003-03-26 | 2004-02-03 | Eastman Kodak Company | Blue-sensitive film for radiography with reduced dye stain |
| US6686119B1 (en) * | 2003-05-29 | 2004-02-03 | Eastman Kodak Company | Blue-sensitive film for radiography and imaging assembly and method |
-
2004
- 2004-10-05 US US10/958,738 patent/US7005226B2/en not_active Expired - Fee Related
- 2004-11-08 JP JP2006539735A patent/JP2007510964A/ja active Pending
- 2004-11-08 WO PCT/US2004/037313 patent/WO2005050312A2/en not_active Ceased
- 2004-11-08 EP EP04819064A patent/EP1687676A2/en not_active Withdrawn
Also Published As
| Publication number | Publication date |
|---|---|
| JP2007510964A (ja) | 2007-04-26 |
| WO2005050312A3 (en) | 2005-09-09 |
| EP1687676A2 (en) | 2006-08-09 |
| US20050100840A1 (en) | 2005-05-12 |
| US7005226B2 (en) | 2006-02-28 |
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