Tomography apparatus with integrated lighting
09827065 · 2017-11-28
Assignee
Inventors
Cpc classification
A61B6/4435
HUMAN NECESSITIES
A61B5/055
HUMAN NECESSITIES
G01R33/30
PHYSICS
A61B6/4007
HUMAN NECESSITIES
A61B6/08
HUMAN NECESSITIES
A61B90/30
HUMAN NECESSITIES
G01R33/34
PHYSICS
International classification
A61B90/30
HUMAN NECESSITIES
G01R33/34
PHYSICS
G01R33/30
PHYSICS
A61B5/055
HUMAN NECESSITIES
A61B6/00
HUMAN NECESSITIES
A61B6/08
HUMAN NECESSITIES
Abstract
A tomography apparatus has a gantry with an exterior surface, and a tunnel-shaped opening proceeding through the gantry that defines an examination region, from which tomographic data are acquired from a patient in the opening. An illuminant is integrated into the gantry. The illuminant has a light exit window with a smooth transition to the exterior surface of the gantry.
Claims
1. A tomography apparatus comprising: a gantry having a tunnel-shaped opening proceeding therethrough in an axial direction and defining an examination region adapted to receive a patient therein, said gantry having an exterior surface said tunnel-shaped opening having a constant diameter along said axial direction; a plurality of electronic components configured to rotate around said tunnel-shaped opening in order to acquire tomographic data from a portion of the patient situated in said examination region of said gantry; said gantry comprising a funnel-shaped taper leading to an entrance of said tunnel-shaped opening, said funnel-shaped taper having a smallest diameter, adjacent to said tunnel-shaped opening, and a largest diameter at an end of said funnel-shaped opening farthest from said tunnel-shaped opening; and an illuminant integrated into said funnel-shaped taper of said gantry, said illuminant comprising a light exit window through which light proceeds from said funnel-shaped taper so as to be oriented to illuminate at least a portion of said examination region in said tunnel-shaped opening, said light exit window forming a portion of said exterior surface of said gantry and having a smooth transition to a remainder of said exterior surface of said gantry.
2. A tomography apparatus as claimed in claim 1 wherein said illuminant comprises a plurality of individual lighting elements, and wherein said electronic components include a lighting control component configured to control the individual lighting elements separately from each other.
3. A tomography apparatus as claimed in claim 1 wherein said illuminant emits said light along a propagation direction, and wherein said illuminant is configured to allow said direction of propagation of said light to be selectively adjusted.
4. A tomography apparatus as claimed in claim 1 wherein said illuminant is configured to simultaneously illuminate at least said portion of said examination region from multiple directions, thereby reducing a shadow cast by said illuminant.
5. A tomography apparatus as claimed in claim 1 wherein said illuminant proceeds radially along said tunnel-shaped opening.
6. A tomography apparatus as claimed in claim 1 wherein said illuminant proceeds axially along said tunnel-shaped opening.
7. A tomography apparatus as claimed in claim 1 wherein said illuminant is configured to direct light emitted thereby onto a localized region of said examination region.
8. A tomography apparatus as claimed in claim 1 wherein said illuminant is comprised of at least one light-emitting diode.
9. A tomography apparatus as claimed in claim 1 wherein said illuminant is comprised of at least one halogen lamp.
10. A tomography apparatus as claimed in claim 1 wherein said plurality of components are configured to obtain computed tomography data from said portion of said patient in said examination region, as said tomographic data.
11. A tomography apparatus as claimed in claim 1 wherein said plurality of components are configured to obtain magnetic resonance tomography data from said portion of said patient in said examination region, as said tomographic data.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5)
(6) The tomography device can, for example, also be an MRT device. In an MRT device the recording unit is designed in the form of at least one RF coil. An individual RF coil can in this case be designed both as a radiation emitter and as a radiation detector. The RF coil can in particular be a local coil, e.g. a head or thoracic coil.
(7) A tomography device 1 has a gantry 2, which is a unit with an opening 5 which is designed to receive a patient 3 or another object. In the case of a computed tomography system 1 the gantry 2 includes the rotatable recording unit. The gantry 2 has a lining, behind which the electronic and mechanical components, coolant, etc. are located. This lining forms a tunnel-shaped opening 5. The tunnel-shaped part of the opening 5 is characterized in that the lining forms a tube with a consistent diameter along the axial direction. Furthermore, in one embodiment of the inventive tomography device, the lined gantry 2 has a funnel-shaped taper 10, which opens into the tunnel-shaped opening 5. A funnel-shaped taper 10 of this type is explained in greater detail in the following figures.
(8) A tomography device is designed to record spatially three-dimensional images of an examination region of a patient 3. The examination region is for example an organ, i.e. the heart, liver or lungs of the patient, as well as the tissue immediately abutting it. However, the examination region can also be defined more broadly, and for instance can comprise the thorax or the abdomen. During the recording of an image the patient 3 lies on a patient table 6 which is connected to a table base 7, such that it supports the patient table 6 with the patient 3. The patient table 6 is designed to move the patient 3 along a recording direction through the opening 5 of the gantry 2.
(9) Tomography devices are increasingly used for imaging of an examination region of a patient 3 in immediate temporal proximity to or during an invasive treatment. Examples of such treatments are the removal of tissue samples, imaging during an emergency examination, or fluoroscopy, for instance in connection with a heart operation. CT fluoroscopy is the continuous recording and reconstruction of tomographic X-ray images. This enables continuously (often several times a second) reconstructed X-ray images of the mapped region to be displayed. For example, fluoroscopy is used—often with the help of a contrast agent—to carry out minimally invasive operations in the cardiovascular system. In such treatments the person carrying out the treatment, for instance a physician, often has to have direct access to the examination region, or it must at least be possible to position medical devices such as tubes, catheters, syringes and/or brackets for such medical devices in immediate proximity to the examination region.
(10) Hence it is important to improve the conditions for treating an examination region near-instantaneously or simultaneously to a tomographic image recording of the examination region. In particular this includes providing lighting for the examination region, so that the person carrying out the treatment can perform necessary interventions precisely. Furthermore, the lighting must not, as to date has often been the case, restrict the scope of movement of the person carrying out the treatment or obstruct the direct view of the examination region by the illuminant itself.
(11)
(12) Due to the inventive integrated illuminant 4 the conditions for treating the examination region are improved in the case of a simultaneous tomographic image recording, so that the person carrying out the treatment is guaranteed greater scope of movement with simultaneous illumination of the examination region. Since there is a smooth transition from the surface of the gantry 2 to the light exit window of the illuminant 4, the illuminant 4 does not protrude, thus reducing the risk of a collision between a person carrying out treatment and/or a medical instrument with the illuminant 4. Furthermore, it is easier to clean the surface of the gantry 2 and of the light exit window because of the non-protruding construction of the illuminant 4 and the avoidance of abutting edges.
(13) The wide-area illuminant 4 can be a continuous illuminant 4, for example in the form of a panel of a plurality of light-emitting diodes (LED for short), or else discrete lighting elements 12 which can be controlled separately from one another and which have a common light exit window. The light exit window of the illuminant 4 can be formed either of plastic or of glass. Lighting elements 12 that can be controlled separately from one another are for example spotlights in the form of halogen lamps or separate LED panels. If the illuminant 4 is designed in the form of lighting elements 12 which can be controlled separately from one another, the lighting elements 12 can in another embodiment of the invention also each have a separate light exit window. Such light exit windows can have any shape, i.e. they can be designed as circles, ovals, rectangles, etc.
(14) It is important that the light generated by the lighting element 4 can achieve sufficient brightness values as are customary for medical, in particular invasive, treatments. In respective embodiments of the invention the illuminant 4 is designed to generate a brightness of up to 5,000, 10,000, 20,000 or 50,000 lux. The illuminant 4 is further designed to emit light perceived to be white, since colored lighting does not permit a true-to-life perception of the illuminated region, as is necessary in the case of medical treatments.
(15)
(16) In the embodiment shown here the lighting element 4 extends radially along the funnel-shaped taper 10, thereby ensuring a particularly even illumination of the examination region and/or of another region to be illuminated. Due to the different angles of incidence of the light cones of the lighting elements 12 the shadow that is produced by the light cone of a particular lighting element 12 is illuminated by the light cone of another lighting element 12.
(17)
(18) Furthermore, the illuminant 4 extends axially along the tunnel-shaped opening 5 of the gantry 2, so that the examination region is illuminated axially from different directions and hence the shadow cast is reduced. Furthermore, more lighting elements 12 than shown here can be integrated into the tunnel-shaped opening 5 of the gantry, in both the axial and the radial direction, thereby permitting a still more uniform illumination of the examination region.
(19) Furthermore, all embodiments of the tomography device shown may be both a CT device, i.e. a computed tomography system 1, or else an MRT device.
(20) Although modifications and changes may be suggested by those skilled in the art, it is the intention of the inventor to embody within the patent warranted heron all changes and modifications as reasonably and properly come within the scope of his contribution to the art.