Trauma Ultrasound Reduction Device
20220265243 · 2022-08-25
Inventors
- Jakob Kemper (Heemstede, NL)
- Andreas Heede (Neumünster, DE)
- Oliver Kutter (Bad Krozingen, DE)
- Clinton Siedenburg (Everett, WA, US)
- Peter Sterrantino (Jacksonville, FL, US)
Cpc classification
A61B8/4477
HUMAN NECESSITIES
A61B8/4281
HUMAN NECESSITIES
International classification
A61B5/00
HUMAN NECESSITIES
A61B5/107
HUMAN NECESSITIES
Abstract
A body profiling system includes multiple pivotally connected links and multiple probes. Each of the probes is disposed on one of the links and includes any one or any combination of a transmitter configured to send a signal, a receiver configured to receive the signal, and a transceiver configured to send and receive the signal.
Claims
1. A body profiling device, comprising: a plurality of pivotally connectable links; and a plurality of probes, each of the probes disposed on a link and including any one or any combination of a transmitter configured to send a signal, a receiver configured to receive the signal, and a transceiver configured to send and receive the signal.
2. The device of claim 1, further comprising: a plurality of hinges, each of the hinges being attachable to adjoining links of the plurality of links to define pivot axes such that the adjoining links pivot about the respective pivot axis defined by the hinge to which the adjoining links are attached.
3. The device of claim 2, wherein at least one of the hinges includes a spiral spring configured to be coiled around the corresponding pivot axis.
4. The device of claim 2, wherein at least one of the hinges includes an electromechanical actuator configured to pivotally bias the adjoining links.
5. The device of claim 2, wherein the hinges are configured to measure an angular position between adjacent links.
6. The device of claim 1, wherein each of the links includes a rigid enclosure.
7. The device of claim 1, wherein the signals are acoustic.
8. The device of claim 1, wherein the device is either one or both of an imaging device and a measuring device.
9. The device of claim 1, wherein the plurality of links are connected to form a linkage, further comprising: a flexible cover that completely covers the linkage.
10. The device of claim 9, further comprising an acoustical coupling fluid applied to the flexible cover.
11. The device of claim 1, wherein: some of the links are middle links pivotally connected to two adjacent links; and two of the links are terminal links pivotally connected to only one adjacent link
12. The device of claim 11, wherein the terminal links are connected to each other by an elastic strap.
13. A body profiling system, comprising: the body profiling device of claim 1; and a computer processor, wherein: (i) the links are modularly and operatively interconnectable with each other: to reversibly and operatively connect a new link to one of the terminal links, thereby converting the one of the terminal links to a middle link and the new link to a new terminal link; or to be reversibly and operatively disconnected from one of the terminal links, thereby converting the adjacent link to the one terminal link to a new terminal link; and (ii) the processor is configured for determining a number of operatively connected links and electronically communicating with the plurality of probes.
14. The system of claim 13, wherein one of the terminal links houses the processor.
15. The system of claim 13, further comprising a computer system that includes the processor, the processor being located remotely from the plurality of links.
16. The system of claim 15, wherein at least some of the plurality of probes are configured to communicate wirelessly with the computer system.
17. A body profiling system, comprising: the body profiling device of claim 1; and a computer processor, wherein: the plurality of links are connected to form a linkage; a first link includes a first transmitter and a second link includes a first receiver, the first receiver opposing the first transmitter such that the first receiver receives a first ultrasonic signal from the first transmitter; a third link includes a second transmitter and a fourth link includes a second receiver, the second receiver opposing the second transmitter such that the second receiver receives a second ultrasonic signal from the second transmitter; and the processor is configured for electronically communicating with the first and the second transmitters and the first and the second receivers to determine a position of an object at least partially surrounded by the system.
18. A method of tracking bone fragments of a patient comprising: positioning a profiling device near a part of a body of the patient that includes the bone fragments; allowing at least one angular biasing element of the profiling device to conform the profiling device to the part; and interpreting acoustic signals transmitted across the bone fragments to ascertain either one or both of a relative location and a relative orientation of the bone fragments.
19-24. (canceled)
25. The method of claim 18, wherein the profiling device is either one or both of an imaging device and a measuring device.
26. (canceled)
27. (canceled)
28. The device of claim 9, wherein the cover is filled with an acoustical coupling medium.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0035] A more complete appreciation of the subject matter of the present invention and various advantages thereof may be realized by reference to the following detailed description and the accompanying drawings, in which:
[0036]
[0037]
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[0039]
[0040]
[0041]
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[0043]
DETAILED DESCRIPTION
[0044] As shown in
[0045] The linkage provided by the links 14 includes a first terminal link 22 and a second terminal link 26 on opposite ends of a series of middle links 30. The terminal links 22, 26 are each pivotally connected to only one adjacent link 14. By contrast, each middle link 30 is pivotally connected to two adjacent links 14. In some alternative arrangements, the device may include any one or any combination of more than two terminal links and middle links 30 connected to more than two adjacent links
[0046] As shown, the links 14 each include a tablet shaped housing 16, which as in this example may be rigid. In alternative arrangements, the links may have different shapes and may be more flexible. Each link 14 further includes at least one probe 38. As in the example shown, each probe 38 may include any one or any combination of a transmitter, receiver, transceiver, and other transducer. As in the example shown, the probes 38 may include ultrasound transceivers. A variety of probes 38 are contemplated as suitable for this purpose, e.g., linear, curvilinear, phase array, and mechanical “wobbler” ultrasound probes 38. According to various arrangements, each probe 38 is contained at least partially within a respective housing 16, disposed at least partially outside the respective housing 16, or disposed entirely outside the respective housing 16. In other arrangements, each probe 38 is elastically connected to a respective housing 16 by a linear biasing element such as a spring that biases the probe 38 in a direction perpendicular to a surface of the housing. The position of the linear biasing element may be measured electronically to register contact between the probe 38 or housing 16 and an opposing surface, such as a body being profiled.
[0047] Still referring to
[0048] According to certain embodiments, the hinges 18 also include angular biasing elements to bias pivotally connected links 14 relative to one another. The angular biasing elements may each share a common orientation to constrict the device 10 around the central axis X. According to various further embodiments, the angular biasing elements either constrict the links 14 toward each other until rotation of the links are mechanically obstructed, or the angular biasing elements each have a rest point. In this manner, the device 10 may be maintained at rest with a uniform radius along an entire arc defined by the device. In the example shown, the hinges 18 have angular biasing elements with a rest point such that the device 10 is biased toward a rest position in which each link 14 is an equal distance along the radial direction R from the central axis X, as shown in
[0049] Referring now to
[0050] As shown in
[0051]
[0052] In the step shown by
[0053] In other arrangements, the wrapping may be accomplished by manually pressing or pulling the links 14 tight against the subject 54. In such arrangements, the device 10 may be held in place by a tether such as the strap 64 as shown in
[0054] The device 10, when wrapped around the subject 54 such that the probes 38 are in effective contact with the subject 54, may be used for measuring or imaging the bone 58 through the soft tissue 62 as shown in
[0055] In certain arrangements, the processing of the signal is accomplished with one or more onboard processors housed by the device 10, either in a single link 14 or distributed such that each link 14 houses a processor corresponding to the probe 38 in the same link, or by a computer with which the device 10 is in wired or wireless communication 68 as shown in
[0056] In certain arrangements, the processing is distributed such that one or more onboard processors housed by the device 10 perform certain parts of the image processing, such as imaging, determining a number of actively connected links 14 in the device 10, determining relative positions of the links 14, or aggregating data received from other onboard processors. In an example of such aggregation, the onboard processors may determine an order of priority or work from a predetermined order of priority which may correspond to an order in which the links 14 housing the onboard processors are physically connected or arranged. Data from each onboard processor is communicated to the onboard processor of the next highest priority wirelessly, through one or more cables running between links 14, or through contacts at each hinge 18. The aggregation performed by an aggregating onboard processor may include receiving images generated by one or more onboard processors of higher priority, incorporating signal data from probes 38 corresponding to the one or more onboard processors of higher priority into an image generated or received by the aggregating onboard processor, or discarding or summing duplicative image or signal data received from the onboard processors of higher priority. The data is finally aggregated at an onboard processor of lowest priority, which may be housed in a terminal link 22, 26, that communicates with a computer.
[0057] The device 10 may be provided with certain accessories to contribute to secure fastening and ease of use. For example, the first terminal link 22 may be connected to the second terminal link 26 with a strap 64 as shown in
[0058] In another example, the linkage device 10 may be enclosed by a flexible cover 70 as illustrated in
[0059] As shown in
[0060] In certain of the modular arrangements with at least one onboard processor, the first terminal link 22 functions as a base link in that the link includes a first primary processor, whereas the middle links 30 each contain either no onboard processor or an auxiliary processor. In some arrangements, the second terminal link 26 includes either no onboard processor or an auxiliary processor, consistent with the presence or absence of auxiliary processors within the middle links 30, or the second terminal link 26 includes a second primary processor which may or may not differ from the first primary processor. The one or more primary processors differ from any auxiliary processors. For example, the one or more primary processors may perform an aggregation process not performed by any auxiliary processors, or may include features, such as a transmitter and a receiver or a transceiver for wirelessly communicating with a central processor of the computer or a port for a wired connection with the computer. The central processor may be part of the ADAPT® Platform for surgical navigation by Stryker Corporation or other central assistance system which may communicate with other devices, a hospital network, or other networks through cloud-based servers.
[0061] According to certain arrangements, the device 10 is capable of tracking or measuring relative angular or absolute positions of the links 14 joined by each hinge 18. Angular measuring features at the hinges 18 may include transducers, piezoelectric elements in or connected to springs 42, servo motors as electromechanical angular biasing elements 50, or other known features for measuring angles. According to other embodiments, one or more onboard processors within the device 10 or an associated computer compute the relative positions of the links 14 or probes 38 using signal data from the probes 38. For example, any of the housings 16, hinges 18, probes 38, and springs 42 or motors 50 are opaque to a variety of signal sent and received by the probes 38, with other parts of the device 10 being translucent or transparent to the variety of signal sent and received by the probes 38. According to further embodiments of the above, any of the above mentioned parts of the device 10 could be generally translucent or transparent but provided with distinctive opaque marking patterns shaped to facilitate detection during image processing. In such arrangements, the contrast between opaque and transparent or translucent parts enables the image processing software to identify and locate the opaque parts within the signal data to determine the relative positions and orientations of the links 14 or probes 38. In yet further embodiments, any of the above mentioned parts of the device 10 could be radiopaque or include radiopaque marking patterns for co-registration of the device 10 in fluoroscopy. In still further embodiments, relative positions of the links 14 are determined through beamforming techniques such as determining a location of a transmitter by a strength or phase of the transmitter's signal at a corresponding receiver or computed from a delay between a time that a signal is transmitted by one probe 38 and a time that the signal is received by one or more other probes 38.
[0062] It is to be understood that the disclosure set forth herein includes any possible combinations of the particular features set forth above, whether specifically disclosed herein or not. For example, where a particular feature is disclosed in the context of a particular aspect, arrangement, configuration, or embodiment, that feature can also be used, to the extent possible, in combination with and/or in the context of other particular aspects, arrangements, configurations, and embodiments in accordance with the invention.
[0063] Furthermore, although the invention herein has been described with reference to particular embodiments, it is to be understood that these embodiments are merely illustrative of the principles and applications of the present invention. It is therefore to be understood that numerous modifications may be made to the illustrative embodiments and that other arrangements may be devised without departing from the spirit and scope of the present invention as defined by the appended numbered paragraphs below.