G01T1/2014

Contact imaging sensor head for computed radiography

A scan head design uses 1:1 (one-to-one) imaging micro-lens arrays to transfer the object plane X-ray image from a CR-plate onto a linear photosensor. The scan-head includes a housing having therein, an array of red light emitting diodes (LEDs), a red-absorbing filter, a microlens array, an infrared-filter, and a sensor. The housing faces the CR-plate and the scan-head is translated across the CR-plate to read out the X-ray image therein. The scan head is compact and provides for improved spatial resolution and reduced power requirements.

Phosphorescent plate reader
10838081 · 2020-11-17 · ·

Disclosed is a digital radiography phosphorescent plate reader which includes a stimulation unit, a reading unit and a mechanism for moving the plate. The reading unit includes a TDI sensor in which the line transfer speed is correlated with the speed of movement of the plate. The reader is optimised to achieve a high reading efficiency and a high spatial resolution, whilst reducing the cost and space requirements.

Method for determining the quality of an imaging plate and imaging plate scanner therefor

The invention relates to a method for determining the quality of an imaging plate, comprising the steps of carrying out an exposure of the imaging plate, carrying out a scan of the imaging plate in order to determine an image, determining a signal-to-noise ratio of the image or/and carrying out edge recognition on the image and calculating a quality value of the imaging plate on the basis of the signal-to-noise ratio of the image or/and on the basis of the recognized edge structure. Furthermore, the invention relates to an imaging plate scanner for carrying out such a method.

RADIATION IMAGE READING DEVICE
20200185002 · 2020-06-11 · ·

A radiation image reading device includes: a light scanning unit; a light detection unit. Each of a transmittance when the excitation light reflected from the surface of the recording medium is transmitted through the optical filter and a transmittance when the signal light emitted from the surface of the recording medium at an angle larger than a predetermined angle with respect to a direction perpendicular to the scan line within the detection surface is transmitted through the optical filter is smaller than a transmittance when the signal light emitted from the surface of the recording medium at an angle smaller than the predetermined angle with respect to a direction perpendicular to the scan line within the detection surface is transmitted through the optical filter.

X-RAY IMAGING SYSTEM AND METHOD OF X-RAY IMAGE TRACKING
20200150288 · 2020-05-14 ·

Disclosed herein is a method for image tracking using an X-ray imaging system during an interventional radiology procedure on a human or animal. The method may comprise acquiring a first image of an object inside a human or animal with a first X-ray detector of the X-ray imaging system; acquiring a second image of the object with the X-ray imaging system during the interventional radiology procedure, at a time later than acquiring the first image; determining a displacement of the first X-ray detector based on the first image and the second image; moving the first X-ray detector by the displacement, with an actuator of the X-ray imaging system. The X-ray imaging system comprises the first X-ray detector, the second X-ray detector and the actuator. A spatial resolution of the first X-ray detector is higher than a spatial resolution of the second X-ray detector.

DETECTOR SYSTEM AND RADIATION IMAGING DEVICE
20200132865 · 2020-04-30 ·

The present disclosure provides a detector system and a radiation imaging device. The detector system comprises: a detector, including a plurality of detector layers that are overlapped, and the detector layer comprises a detector element layer and at least one of the detector layers is movable along the thickness direction of the detector layers; a distance adjusting device drivingly connected with at least one of the detector layers to adjust the inter-layer distance between adjacent detector layers of the detector by moving at least one of the detector layers along the thickness of the detector layers. The radiation imaging device comprises the detector system described above. The detector system and the radiation imaging device of the present disclosure are conductive to realizing an omnidirectional and efficient detection effect with high angular resolution.

Device and method for reading an imaging plate
10591615 · 2020-03-17 · ·

A device and method for reading an exposed imaging plate generate read-out light and utilize a deflection unit to direct the read-out light in a scanning movement over the imaging plate. The deflection unit has a micromirror to deflect impinging read-out light towards the imaging plate. The micromirror can swivel about a first swivel axis and about a second swivel axis distinct from the first. A detector unit detects fluorescent light emitted from the imaging plate at locations where the read-out light impinges. An evaluating unit evaluates signals received from the detector unit and builds up an image that is stored in the imaging plate. The evaluating unit takes into account, when evaluating the signals received from the detector unit, that points on the imaging plate are subjected to the read-out light variably often and/or for variable time lengths while the micromirror oscillates about the first and the second swivel axis.

RADIATION DETECTOR, RADIATION DETECTOR MANUFACTURING METHOD, AND SCINTILLATOR PANEL UNIT

A radiation detector includes a sensor panel having a light receiving surface, a first scintillator panel and a second scintillator panel disposed on the light receiving surface in a state of being adjacent to each other along the light receiving surface, and a moisture-proof layer. The first scintillator panel has a first substrate and a first scintillator layer including a plurality of columnar crystals. The second scintillator panel has a second substrate and a second scintillator layer including a plurality of columnar crystals. The first scintillator layer reaches at least a first portion of the first substrate. The second scintillator layer reaches at least a second portion of the second substrate. The moisture-proof layer is provided continuous over the first scintillator panel and the second scintillator panel.

Method for determining the quality of an imaging plate and imaging plate scanner therefor

The invention relates to a method for determining the quality of an imaging plate, comprising the steps of carrying out an exposure of the imaging plate, carrying out a scan of the imaging plate in order to determine an image, determining a signal-to-noise ratio of the image or/and carrying out edge recognition on the image and calculating a quality value of the imaging plate on the basis of the signal-to-noise ratio of the image or/and on the basis of the recognized edge structure. Furthermore, the invention relates to an imaging plate scanner for carrying out such a method.

Contact Imaging Sensor Head For Computed Radiography

A scan head design uses 1:1 (one-to-one) imaging micro-lens arrays to transfer the object plane X-ray image from a CR-plate onto a linear photosensor. The scan-head includes a housing having therein, an array of red light emitting diodes (LEDs), a red-absorbing filter, a microlens array, an infrared-filter, and a sensor. The housing faces the CR-plate and the scan-head is translated across the CR-plate to read out the X-ray image therein. The scan head is compact and provides for improved spatial resolution and reduced power requirements.