Tracker For Surgical Navigation
20200330162 ยท 2020-10-22
Assignee
Inventors
Cpc classification
A61B34/20
HUMAN NECESSITIES
A61B2034/2072
HUMAN NECESSITIES
A61B2090/3945
HUMAN NECESSITIES
A61B90/39
HUMAN NECESSITIES
International classification
Abstract
A tracker for surgical navigation is described. The tracker includes a patch being deformable in at least one direction and a tracker element selected from a light source or a coil. The tracker element is supported by the patch. The tracker further includes an electrical connection electrically coupled to the tracker element and supported by the patch. The electrical connection has a meandering shape along the direction in which the patch is deformable.
Claims
1. A tracker for surgical navigation, the tracker comprising: a patch being deformable in at least one direction; a tracker element selected from a light source or a coil, the tracker element being supported by the patch; and an electrical connection electrically coupled to the tracker element and supported by the patch, the electrical connection having a meandering shape along the direction in which the patch is deformable.
2. The tracker according to claim 1, wherein the patch is elastically deformable.
3. The tracker according to claim 1, wherein the meandering shape comprises a periodic pattern.
4. The tracker according to claim 1, wherein the meandering shape comprises at least one of a wave pattern, a rectangular wave pattern and a zigzag pattern.
5. The tracker according to claim 1, wherein the electrical connection has a width between 5 m to 50 m.
6. The tracker according to claim 1, further comprising a plurality of tracker elements and a plurality of electrical connections.
7. The tracker according to claim 6, wherein at least some of the tracker elements and electrical connections are alternatingly electrically coupled in series.
8. The tracker according to claim 6, further comprising a junction of a plurality of electrical connections.
9. The tracker according to claim 6, further comprising a controller electrically connected with at least two of the tracker elements and configured to control operation of the at least two of the tracker elements independently.
10. The tracker according to claim 1, wherein the patch has a meandering shape.
11. The tracker according to claim 1, wherein the patch comprises multiple fingers.
12. The tracker according to claim 11, wherein the tracker comprises a plurality of tracker elements and a plurality of electrical connections, and wherein at least two of the fingers each support at least one tracker element and at least one electrical connection thereof.
13. The tracker according to claim 1, wherein at least a part of the patch has the shape of a frame enclosing a central opening.
14. The tracker according to claim 1, wherein the electrical connection is printed on the patch.
15. The tracker according to claim 1, further comprising a plurality of layers, wherein the electrical connection is arranged in at least one of the plurality of layers.
16. The tracker according to claim 15, wherein the tracker comprises a via configured to electrically connect at least two of the plurality of layers.
17. The tracker according to claim 1, further comprising an adhesive configured to attach the patch to a surface of a surgical object.
18. A tracker for surgical navigation, the tracker comprising: a patch being deformable in at least one direction; a tracker element arranged on the patch; and an electrical connection electrically coupled to the tracker element and supported by the patch, the electrical connection defining a non-linear pattern with a first pattern spacing along the direction in which the patch is deformable when the patch is not deformed, wherein the electrical connection is configured to assume a second pattern spacing in the at least one direction that is different than the first pattern spacing upon a deformation of the patch in the at least one direction.
19. The tracker according to claim 18, wherein the deformation is a stretching, and wherein the second pattern spacing is larger than the first pattern spacing.
20. A method of operating a tracker for surgical navigation, wherein the tracker comprises a patch being deformable in at least one direction, at least two tracker elements supported by the patch, and an electrical connection electrically coupled to each tracker element and supported by the patch, at least one of the electrical connections having a meandering shape along the direction in which the patch is deformable, the method comprising: controlling operation of the at least two tracker elements independently.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Further details, advantages and aspects of the present disclosure will become apparent from the following embodiments taken in conjunction with the drawings, wherein:
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DETAILED DESCRIPTION
[0035] In the following description, exemplary embodiments of a tracker for surgical navigation and a method for operating a tracker will be explained with reference to the drawings. The same reference numerals will be used to denote the same or similar structural features.
[0036]
[0037] The patch 12 is elastically deformable and therefore (at least partially) configured to return to its original shape after a deforming force is no longer applied. In particular, the patch 12 is stretchable and/or compressible. The patch 12 may be stretchable by more than 10%, more than 20% or more than 30% before it breaks.
[0038] The patch 12 shown in
[0039] The patch 12 shown in
[0040] The tracker 10 further comprises tracker element in form of a light source 14 supported by the patch 12. The light source 14 may comprise at least one of a light emitting diode (LED), an organic light emitting diode (OLED), a laser, an incan-descent light source and an optical fibre. The tracker 10 may comprise a plurality of light sources 14. With a larger number (such as two, three, four, or more) of light sources 14, the amount of trackable degrees of freedom and/or the tracking accuracy can be increased. The light source 14 is supported by the patch 12. The light source 14 shown in
[0041] A surgical navigation system (not shown) comprises the tracker 10 and a sensor system (not shown) configured to detect information indicative of at least one degree of freedom (e.g., position and orientation) of the tracker 10. To this end, the sensor system may comprise a camera configured to detect light emitted by a light source 14 of the tracker 10.
[0042] The tracker 10 further comprises an electrical connection 16 electrically coupled to the light source 14. The electrical connection 16 may comprise or consist of copper, nickel, silver or gold, or an alloy thereof. The electrical connection 16 shown in
[0043] The electrical connection 16 illustrated in
[0044]
[0045] Similarly, in the case the patch 12 is compressed (not shown), the electrical connection 16 further folds onto itself and compresses along with the patch 12. The meandering shape of the electrical connection essentially provides an elastic wiring for the tracker 10.
[0046] As becomes apparent from a comparison of
[0047] The coil 15 allows tracking of the tracker 10 via an electromagnetic tracking principle. One way to apply the electromagnetic tracking principle is to provide an electromagnetic field generator (not shown) that generates an electromagnetic field that induces a current in the coil 15. The current or a signal indicative of the induced current may be measured by a measuring device (not shown). Based on the current or signal, at least a part of a position and orientation of the coil 15 may be determined. By providing a plurality of coils 15, more degrees of freedom may be determined. Usually, a tracker 10 comprising two coils 15 arranged skewed relative to each other allows determining the position and orientation of the tracker 10.
[0048] A surgical navigation system (not shown) may be provided that comprises the tracker 10 and a sensor system (not shown) configured to detect information indicative of at least one degree of freedom (e.g., position and orientation) of the tracker 10. The sensor system may comprise a measuring device configured to detect a current and/or voltage induced in the coil 15 of the tracker 10. To this end, the surgical navigation system may comprise a field generator configured to generate an electric field that is capable of inducing a current in the coil 15 of the tracker 10.
[0049] The tracker 10 may comprise a plurality of coils 15. Furthermore, the tracker 10 may comprise at least one coil 15 and at least one light source 14. A tracker 10 with light sources 14 and coils 15 may be used as a hybrid-tracker that can be tracked optically as well as electromagnetically. The sensor system of the surgical navigation system may comprise the measuring device as described above and a camera configured to detect light emitted by a light source 14 of the tracker 10. Such a surgical navigation system is capable of tracking electromagnetically and optically.
[0050] The meandering shape of the electrical connection shown in
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[0056] Some wave patterns (in particular wave patterns with a low degree of folding) are stackable next to each other in such a way that a plurality of electrical connections 16 with such a pattern can extend parallel to each other.
[0057] The examples of wave forms shown in
[0058] The tracker 10 may comprise a plurality of electrical connections 16 that need to be arranged close to each other. Such an arrangement may for example be required when providing a supply line and a return line for a light source 14, or when electrical connections 16 for a plurality of light sources 14 are necessary. Due to its meandering shape, the electrical line 16 extends into a width direction (e.g., Y direction in
[0059] Another (additional or alternative) approach is to provide a plurality of layers in the tracker 10, in which electrical connections 16 are arranged.
[0060]
[0061] The tracker 10 comprises a patch 12 deformable in one or more directions of an imaginary plane defined by two orthogonal X and Y directions. Perpendicular to the X and Y directions extends a Z direction. Along the Z direction, the tracker 10 comprises a plurality of layers 18. The tracker 10 shown in
[0062] The tracker 10 shown in
[0063] The vias shown in
[0064] The electrical connections 16 from different layers are electrically connected by the vias 20. For example, via 20C is configured to electrically connect an electrical connection 16A arranged in the top layer 18A with an electrical connection 16D arranged in the bottom layer 18E.
[0065] Similarly, via 20A electrically connects an electrical connection 16E arranged in the top layer 18A with an electrical connection 16C arranged in layer 18B. In this way, the first light source 14A is provided with a supply line comprising the electrical connection 16B and a return line that comprises the electrical connections 16E, 16C and the via 20A.
[0066] The use of the vias 20 is not limited to electrically connecting electrical connections 16. Vias 20 may also electrically connect other electronic components of the tracker 10, such as a light source 14 or a power supply (not shown).
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[0073] The tracker 10 comprises a controller 22. The controller 22 is electrically connected with the electrical connections 16 (and consequently also with the light sources 14). The controller 22 comprises a power supply (not shown) that is configured to provide electrical power to the light sources 14. The power supply may comprise at least one of a rechargeable or non-rechargeable battery, a capacitor, a receiver for wireless energy transfer, and a connector to a power outlet. The controller 22 is configured to operate the light sources 14. Light source operation comprises selectively providing electrical power (e.g., providing power or not providing power) to a light source 14. The operation may further comprise controlling at least one of an operation frequency, operation current, and operation voltage. The controller 22 may, for example, be configured to provide an operation current between 1 to 10 mA. Particularly for providing such low currents, the electrical connections 16 are not required to have a large width. The electrical connections may have a width between 10 m to 50 m. Electrical connections 16 with such a low width can be easily deformed and are particularly suited for a meandering shape that can unfold.
[0074] The controller 22 is configured to operate at least two light sources 14 independently. For example, the controller 22 is configured to provide an operation current to only one light source 14 and not to another light source 14. The independent operation may further comprise at least one of a different operation frequency, different operation current, and different operation voltage. Independent control of different light sources 14 allows applying different functionality to different light sources 14 (e.g., one light source is used for indicating that the controller 22 is operational and another light source 14 is used for tracking), selecting different trackable light patterns, or tracking with two separate optical navigation system (e.g., operating at different operation frequencies or operating different types of light sources with different wave lengths).
[0075] The patch comprises multiple fingers 24A-C, wherein each of the fingers 24A-C branches out into sub fingers. The fingers 24A and C have a meandering shape. Each of the fingers 24A-C (and its corresponding sub fingers) supports at least one light source 14 and electrical connections 16 coupled with the light sources 14. In order to supply electrical power to the light sources 14 supported by the sub fingers, the tracker 10 comprises junctions 26 of a plurality (i.e., at least two) of the meandering electrical connections 16. Such a junction 26 may be located at a position of an electrical connection 16 at which another electrical connection 16 branches out (e.g., junction 26A). A junction 26 may also be located at a light source 14 (e.g., junction 26B). Furthermore, the junction may comprise a via (not shown).
[0076] When being attached to an uneven surface, such as a face of the patient, a tracker 10 comprising fingers 24A-C can adapt well to the shape of the surface.
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[0078] The patch 12 comprises a plurality of electrical connections 16 that are coupled in series with the plurality of light sources 14. The electrical connections 16 could also be configured otherwise (see, e.g.,
[0079] When opening the incision in order to access the surgery site, skin around the incision deforms and is mainly pushed in a direction away from the incision. Since the tracker 10 is attached to the skin of the patient, a force is acting on the tracker 10. The patch 12 and the electrical connections 16 (due to their meandering shape) are deformable and can therefore adapt to the force by deformation.
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[0083] The method 100 comprises a step 102 of controlling operation of the at least two tracker elements 14, 15 independently.
[0084] In case of controlling at least two light sources 14, controlling the operation independently comprises selectively providing a first electrical power to a first set of the at least two light sources 14 and a second electrical power to a second set of the at least two light sources 14, wherein the first and second electrical power can be different. Controlling the operation may further comprise adjusting for the at least two light sources 14 at least one of different operation frequencies, different operation currents, and different operation voltages. For example, an operation current between 1 to 10 mA may be provided to one or more of the light sources 14 that are to be tracked and a larger current may be provided to one or more of the light sources 14 that indicate that the tracker 10 is operating. Since detection means for optical navigation are becoming increasingly sensitive, the light sources 14 for tracking can emit with lower intensity and therefore require less operating current than light sources that need to be visible to the surgeon.
[0085] Controlling operation frequency independently for the at least two light sources 14 may comprise operating a first set of the at least two light sources 14 with a first frequency and operating a second set of the at least two light sources 14 with a second frequency, wherein the first and second operation frequency may be different. The first frequency may be synchronized with a first surgical navigation system and/or the second frequency may be synchronized with a second surgical navigation system.
[0086] The method may optionally comprise a step 104 of terminating operation of the first set of the at least two light sources 14. The method may optionally comprise a further step 106 of terminating operation of the second set of the at least two light sources 14.
[0087] The features described in relation to the exemplary embodiments shown in the drawings can be readily combined to result in different embodiments. It is apparent, therefore, that the present disclosure may be varied in many ways. Such variations are not to be regarded as a departure from the scope of the invention as defined by the claims appended hereto.