SECONDARY VESTIBULAR SYSTEM FALL PREVENTATIVE DEVICE
20230218200 ยท 2023-07-13
Inventors
Cpc classification
A61B5/0053
HUMAN NECESSITIES
A61B5/746
HUMAN NECESSITIES
A61B2562/0219
HUMAN NECESSITIES
International classification
Abstract
A wearable fall prevention device and method including at least one gyroscope, an actuator, a pressure applicator, and a controller. The at least one gyroscope is configured to detect and signal to a controller when a user's movement and/or orientation surpasses a specified threshold. The controller receives the signal from the at least one gyroscope and generates an actuation signal received by the at least one actuator, activating the at least one pressure applicator. The at least one pressure applicator is adapted to come into contact with the user's neck and vagus nerves at a specified pressure. When the at least one gyroscope detects a user has dropped below the specified threshold, the at least one gyroscope sends a signal to the controller, generating an actuation signal that deactivates the at least one actuator and disengages the at least one pressure applicator from the user's neck and vagus nerves.
Claims
1. A wearable fall preventative device comprising: a device body configured to be worn by a user; at least one gyroscope connected to the device body and configured to detect movement and/or orientation of the user; at least one pressure applicator connected to the device body; at least one actuator connected in controlling relationship with the pressure applicator; and a controller configured to receive movement data and/or orientation data from the at least one gyroscope, and configured to control the pressure applicator by way of the actuator.
2. The wearable fall preventative device according to claim 1, wherein the device body is configured to be worn on a neck of the user.
3. The wearable fall preventative device according to claim 1, wherein the at least one pressure applicator is configured to apply a pressure to a neck of the user.
4. The wearable fall preventative device of claim 1, wherein the device body is elongated with one end and an opposite end, and the at least one gyroscope is arranged at a midpoint between the ends of the device body.
5. The wearable fall preventative device of claim 1, wherein the device body is elongated and has one end and an opposite end, and the at least one gyroscope includes a first gyroscope, positioned on the one end of the device body.
6. The wearable fall preventative device of claim 5, wherein the at least one gyroscope further includes a second gyroscope, positioned on the opposite end of the device body.
7. The wearable fall preventative device of claim 1, wherein the device body is elongated and has one end and an opposite end, and the at least one actuator includes a first actuator, positioned on the one end of the device body.
8. The wearable fall preventative device of claim 7, wherein the at least one actuator further includes a second actuator, and the second actuator is located on the opposite end of the device body.
9. The wearable fall preventative device of claim 1, wherein the at least one gyroscope includes a first, a second, and a third gyroscope, all of which are capable of storing various acceleration and orientation values.
10. The wearable fall preventative device of claim 1, wherein the at least one gyroscope includes a first, second, and a third gyroscope, wherein the first, second, and third gyroscopes are configured to detect when a user's motion surpasses a specified movement and/or orientation threshold.
11. The wearable fall preventative device of claim 1, wherein the at least one gyroscope includes a first, a second, and a third gyroscope, the first, second, and third gyroscopes are configured to detect and signal when a user's movement and/or orientation surpasses a specified threshold, the controller is in communication with the first, second, and third gyroscopes, and is configured to receive movement and/or orientation signals from the first, second and third gyroscopes to generate actuation signals, the at least one actuator includes a first and a second actuator receiving the actuation signals from the controller to activate the first and second actuators, and the at least one pressure applicator includes a first and a second pressure applicator responsive respectively to the first and second actuators to come into contact with the user's neck and vagus nerves at a specified pressure.
12. The wearable fall preventative device of claim 11, wherein the first, second, and third gyroscopes are configured to detect and signal when a user's movement and/or orientation drops below a specified orientation threshold, and in response the controller deactivates the first and second actuators, and the first and second pressure applicators disengage from the user's neck and vagus nerves.
13. The wearable fall preventative device of claim 1, wherein the at least one gyroscope includes a first, second, and a third gyroscope distributed on the device body, and a plurality of additional force sensors are positioned on the device body between the existing first, second, and third gyroscopes and generate additional movement and/or orientation signals, and the controller receives and is responsive to the additional orientation signals.
14. The wearable fall preventative device of claim 1, wherein the at least one gyroscope includes a first, a second, and a third gyroscope, the first, second, and third gyroscopes are configured to detect movements and/or orientations of different magnitudes and said controller determines if the orientation magnitude is above a specified orientation threshold which indicates the user is about to have an imminent fall event, before causing the pressure applicator to apply pressure to the user.
15. The wearable fall prevention device of claim 1, wherein the at least one pressure applicator includes a first and a second applicator comprised of metal balls and springs.
16. A preventative fall method comprising the steps of: monitoring, by gyroscopes worn by a user, changes in the user's orientation; detecting by the gyroscopes if the user's movement and/or orientation exceeds a set orientation threshold; and generating and sending a warning signal from the gyroscopes to a controller which causes an pressure applicator to come into contact with the user's neck and vagus nerves at a specified pressure.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0012] Before the various embodiments are described in further detail, it is to be understood that the present disclosure is not limited to the particular embodiments described. It will be understood by one of ordinary skill in the art that the systems and methods described herein may be adapted and modified as is appropriate for the application being addressed and that the systems and methods described herein may be employed in other suitable applications, and that such other additions and modifications will not depart from the scope thereof.
[0013] Although various features have been shown in different figures for simplicity, it should be readily apparent to one of skill in the art that the various features may be combined without departing from the scope of the present disclosure.
[0014] Referring to
[0015] The gyroscopes 101, 102, 103 are configured to detect and signal when a user's movement and/or orientation exceeds a specified orientation threshold. The controller 112 is configured to receive movement and/or orientation signals from gyroscopes 101, 102, 103 and generate actuation signals to activate actuators 104 and 105, engage output shafts 106, 107, release springs 108, 109 and thrust pressure applicator(s) 110, 111 from recesses 113 and 114, thereby coming into contact with a user's neck and vagus nerves at a specified pressure. The actuators 104, 105 can receive signals from the controller 112 through wired connections or, alternatively, through wireless connections.
[0016] The gyroscopes 101, 102, and 103 are also configured to detect and signal when a user's movement and/or orientation drops below a specified orientation threshold. The controller 112 is configured to receive the signals from gyroscopes 101, 102, 103 and generate actuation signals to deactivate actuators 104 and 105, disengage output shafts 106, 107, coil springs 108, 109 and allowing pressure applicator(s) 110, 111 to disengage the user's neck and vagus nerves and return back into recesses 113 and 114 to their default positions. The actuators 104, 105 can receive signals from gyroscopes 101, 102, 103 through wired connections or, alternatively, through wireless connections.
[0017] The gyroscopes 101, 102, 103 may utilize any type of gyroscope technology. For instance, the gyroscopes may be ring laser, fiber-optic, quantum, or vibration gyroscopes 101, 102, 103. The gyroscopes are configured to generate movement and/or orientation signals, which are capable of being detected or received by the controller 112, when the user's movement and/or orientation exceeds a certain threshold. The threshold can be predetermined and/or adjusted based on the user's age, mobility, and previous fall history.
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[0020] In operation, the controller 112 is configured to determine if a fall event is imminent. An imminent fall event occurs when a user's movement and/or orientation exceeds a specified orientation threshold that would indicate that a fall event is occurring, likely to occur or imminent. This will trigger a response from the controller 112 as outlined above.
[0021] The present disclosure advantageously provides a device 100 capable of storing various acceleration and/or orientation values through calibration or manual selection. This is advantageous because not every user will have the same orientation value threshold that indicates a fall event is imminent. Thus, the controller 112 may be configured to disregard certain orientation values below a preselected value to avoid triggering a false preventative fall determination.
[0022] Referring to
[0023] An exemplary algorithm executable by the controller 112 for detecting if a fall is imminent thus detecting a trigger event 502 or not detecting a trigger event 504 is illustrated in
[0024] In operation, the wearable fall prevention device 100 requires at least one gyroscope. More gyroscopes incorporated into the wearable fall prevention device 100 will allow for more movement signals capable of being detected. Thus, more orientation and movement data may be provided by the gyroscopes during operation, which may provide better operation of the wearable fall prevention device 100 by decreasing probability of a false positive determination of an imminent fall and/or false negative determinations of an imminent fall.
[0025] The present disclosure advantageously provides a wearable fall prevention device 100 and method 400 that does not require affirmative action by the user in order to receive an early warming of an imminent fall. This feature is advantageous at least because in some instances a user may not have time to recognize an imminent fall and take preventative action.
[0026] The exemplary wearable fall prevention device 100 and method 400 is shown and described as including three gyroscopes 101, 102, 103, two actuators 104, 105, two output shafts 106, 107, two springs 108, 109, two pressure applicators 110, 111, a controller 112, two recesses 113, 114, however, it should be understood that a wearable fall prevention device 100 and method 400 in accordance with the principles of the present disclosure can be designed with any number of gyroscopes, servo motors, output shafts, springs, pressure applicators, controllers, and recesses.
[0027] Advantageously, the device and method according to the present application serves as a secondary vestibular system to users whose primary vestibular system is aging or otherwise impaired. The secondary vestibular device and method in accordance with the present disclosure are configured to stimulate the vagus nerves of a user (e.g. with applied pressure) to cause a user response that would otherwise not occur (or not occur in a timely fashion) because of, for example, arteriosclerosis.
[0028] While the present disclosure has been illustrated and described with respect to particular embodiments thereof, it should be appreciated by those of ordinary skill in the art that various modifications of this disclosure may be made without departing from the spirit and scope of the present disclosure. For example, while the present disclosure provides a wearable fall prevention device system well-suited for elderly user use, it should be readily understood that principles of the present disclosure can be applied to applications where, for example, users are not elderly.