WEARABLE BLOOD PRESSURE MEASUREMENT AND ANTIHEMORRHAGIC DEVICE
20210290089 · 2021-09-23
Inventors
Cpc classification
A61B5/02416
HUMAN NECESSITIES
A61B5/02141
HUMAN NECESSITIES
A61B2017/12004
HUMAN NECESSITIES
A61B5/6885
HUMAN NECESSITIES
International classification
A61B5/022
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
A61B5/145
HUMAN NECESSITIES
Abstract
The present invention proposes a wearable blood pressure measurement and antihemorrhagic device comprising a tightening system adapted to tighten a tightening device on or around the region of interest, wherein the tightening system is adapted to be automatically adjusted in one of a plurality of fastening positions, and one of a processor or control circuitry to control the tightening system. The present invention also proposes a method of measuring blood pressure for measuring at least one of the following: the systolic pressure and/or diastolic pressure of a user, the device comprising such a tightening device, wherein the tightening device is placed on a region of interest to measure at least one of the following: the systolic pressure and/or diastolic pressure, and a blood sensor placed on one side of the tightening system, wherein the blood sensor is, for example, a PPG sensor.
Claims
1. A wearable arterial blood pressure measuring device for measuring at least one of the systolic pressure or the diastolic pressure of a user, the blood pressure measuring device comprising: a tightening system with a tightening device adapted to tighten the tightening device on or around a region of interest of the user, wherein the tightening system is adapted to be adjusted in one of a plurality of fastening positions; a blood sensor placed on one side of the tightening system (10), wherein the blood sensor (50); and one of a processor or control circuitry to control the tightening system.
2. The device of claim 1, further comprising a pressure sensor for measuring the tightening pressure exerted by the tightening system on the region of interest, wherein the pressure sensor is mounted on a body contacting part to be placed on or around a region of interest of a user.
3. The device of claim 1, further comprising a user interface with a user input provided for activating an emergency mode, wherein the tightening device is adapted, upon activation of the emergency mode, to tighten the tightening system on or around a region of interest and adjust the tightening system in an emergency fastening position in which the pressure exerted by the tightening device on the region of interest is at a maximum level, so that the tightening device acts as a tourniquet, in use.
4. The device of claim 1, wherein the tightening system comprises at least one of the following: DC motor, magnet, electromagnet, stepper motor, servomotor, air pump.
5. The device according to claim 1, wherein the processor is further adapted to cause the tightening of the tightening system on the region of interest, monitor the tightening pressure applied on the region of interest using the pressure sensor, process a PPG signal from the PPG sensor located downstream of the tightening system, to derive at least one of the following: the diastolic and/or systolic pressure using the pressure signal and the PPG signal.
6. The device according to claim 1 further comprising a reference sensor, located on the other side of the tightening system with respect to the PPG sensor, wherein, in use, the reference sensor is placed upstream of the tightening system, and the blood pressure sensor is placed downstream of the tightening system with respect to the blood flow of the arteries in the region of interest.
7. The device according to claim 6, wherein the processor is further adapted to compare the reference signal and the PPG signal to derive at least one of the following: the diastolic and/or systolic pressure.
8. A method of measuring blood pressure using an arterial blood pressure measuring device, comprising the following steps: causing tightening of a tightening system of the blood pressure measuring device fastened on or around a region of interest, to increase pressure exerted by the tightening system on the region of interest, wherein the tightening is controlled by a processor using a pressure signal from a pressure sensor of the blood pressure measuring device, the pressure sensor indicating the pressure exerted by the blood pressure device (5) on the region of interest; acquiring a blood signal by a blood sensor of the blood pressure device located downstream of tightening system; and deriving at least one of the following: the systolic pressure and/or diastolic pressure using the blood signal and the tightening pressure signal.
9. The method of claim 8, comprising: acquiring a reference signal using a reference sensor placed upstream of the tightening system on the same region of interest as the blood sensor, comparing the reference signal with the blood signal, to derive the diastolic and/or the systolic pressure.
10. The device according to claim 1 for use in one of an ambulatory blood pressure measurement device, a sphygmomanometer, a pulse oximeter, or a smartwatch.
11. A tourniquet comprising: a tightening system with a tightening device adapted to tighten the tightening device on or around a region of interest of the user, wherein the tightening system is adapted to be adjusted in one of a plurality of fastening positions; and one of a processor, a pressure sensor or control circuitry to control the tightening system.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0024] These and other aspects of the invention will become apparent from, and elucidated with, reference to preferred embodiments described hereinafter with reference to the accompanying drawings, wherein:
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION OF THE INVENTION
[0032]
[0033] In one aspect of the invention, the tightening device is an auto-tightening device 1 and comprises a tightening system 10 for causing the auto-tightening device 1 to tighten on or around said region of interest, and a processor 20 to control the tightening system 10. In another aspect of the invention, the tightening device is controlled manually.
[0034] The tightening system 10 is provided for tightening and securing the tightening device 1 on or around the region of interest.
[0035] In the example of
[0036] The tightening system 10 is adapted to tighten the tightening device 1 in different required positions, as will be explained later in the disclosure. It should be understood that the tightening system 10 may also be adapted to tighten the body contacting part 12, when present.
[0037] The body contacting part 12 of the tightening device 1 and the tightening system 10 of
[0038] The tightening device 1 may be incorporated into a smartwatch and placed around the wrist of the user's body, may be positioned around a thigh, or even adapted to be positioned on the limb with the tightening system adjusted at different tightening positions.
[0039] The tightening system 10 comprises at least one of the following: a small motor, a servomotor, an electromagnet pump or the like. It should be noted that the motor may include a gear train, and a control circuitry 15.
[0040] In the example of
[0041] The tightening device 1 may also be activated manually, for example using a small winder. The tightening system 10 may provide the user with some information about the speed of the manual tightening that should be adopted for the tightening device 1, e.g., a proper speed to turn the winder.
[0042] The processor 20 is configured to receive and/or send control signals to the tightening system 10. A user interface 25 is provided on the tightening device 1 and allows interaction with the user wearing the tightening device 1.
[0043] The user interface 25 comprises a user input device 26, such as a microphone or a touch screen. The user input device 26 allows the user to enter control signals in order to select the position in which the bracelet 12 should be tightened, or the pressure exerted by the bracelet 12 on the region of interest.
[0044] The user interface 25 may also comprise an emergency button 28 activating an emergency function in the processor 20. When such an emergency function is activated, the processor 20 controls the tightening system to tighten the bracelet around the region of interest with as much pressure as possible, preferably at least above the systolic pressure of the subject wearing the tightening device 1, such that the bracelet forms a tourniquet to stop or limit a blood haemorrhage and thus to prevent a user from losing blood downstream from the tightening device 1, for example from the hand when the tightening device 1 is added in a smartwatch, from a thigh when the auto tightening device is wrapped around a thigh, or from the limbs when the tightening device 1 is positioned at the beginning of the limbs, i.e., the arms near the shoulders and the legs near the thighs. The emergency button can be operated by a user who is wounded and bleeding.
[0045] The user interface 25 may also comprise a display or a sound system for displaying or giving indications or information to the user.
[0046] It should be understood that such a tightening device 1 is adapted to block a haemorrhage when a subject is wounded. There are lots of different fields of application, such as the military, the police, firemen, and others involved in dangerous work. Of course, the tightening device 1 should be placed on the very beginning of the region of interest, e.g., to cover the arteries closest to the heart (such as limbs), or on other region of interest.
[0047] A pressure sensor 30 may also be provided on the tightening device 1. The pressure sensor 30 is preferably provided adjacent to or closed to the tightening system 10, on a body contacting part 12.
[0048] The pressure sensor 30 is adapted to measure the tightening pressure exerted by the tightening system 10 on the affected portion of the body. The pressure sensor 30 is adapted to be placed against the region of interest. The pressure sensor 30 may be a force sensor, strain sensor or a load cell.
[0049] The processor 20 is adapted to receive and process tightening pressure signals 30a representative of the force or pressure exerted by the bracelet from the pressure sensor 30. The pressure signals 30a are also used to control the tightening system 10 when tightening the tightening system 10 at different tightening positions.
[0050] The tightening device 1 may be used in military applications, for example for soldiers, or as police equipment. It can also be used for dangerous jobs applications, in which operators are exposed to risk of injury or to particular stressful or dangerous working conditions.
[0051] The tightening device 1 can measure the tightening pressure at predetermined time intervals. When a blood pressure drop is detected on the body part, the processor 20 can also activate the emergency function and control the tightening system 10 to tighten the bracelet 12 such as to apply a predetermined amount of pressure.
[0052] The tightening device 1 further includes one or more of the following: a battery, positioning capabilities, antenna capabilities such as RF or WIFI communications capabilities, etc. to allow remote monitoring and/or communications.
[0053]
[0054] The blood pressure device 5 comprises the tightening device 1 having a pressure sensor 30 and a PPG sensor 50, mounted on the tightening device 1. As noted above, the PPG sensor 50 could be replaced by another type of blood sensor, such as but not limited to a piezoelectric sensor or an ultrasound sensor.
[0055] The tightening device 1 is similar to the device in
[0056] In the example of
[0057] The tightening system 10 is provided to tighten the region of interest in order to measure the blood pressure of the user. The tightening system 10, in one aspect of the disclosure, is adapted to automatically adjust the tightening system 10 in one of plurality of fastening positions. The plurality of fastening positions may correspond to a comfortable position, a running position, an acquisition position to acquire a good PPG signal, the automatic tightening mode when a pressure measurement is required, as well as the emergency position, in which the tightening system 10 is tightened and adjusted in a fastening position in which the pressure exerted by the blood pressure measurement device is at a maximum level, so that the blood pressure measurement device acts as a tourniquet. It would also be possible to use the tightening system as a tourniquet without the sensor 50 (or a reference sensor 60, which function is explained below).
[0058] The sensor 50 is a PPG sensor 50, which is located near the tightening system 10, mounted on the body contacting part 12 on one side of the tightening system 10. As is known in the art, the PPG sensor 50 is adapted to detect optically the light transmitted or reflected from or through tissues of the region of interest. The PPG sensor 50 detects changes in the blood flow volume by detecting changes in the detected light intensity. The PPG sensor 50 is able to measure volumetric changes and therefore the passage of blood into the vessels that, thanks to their elasticity, change their diameter every time there is a heartbeat.
[0059] The sensor 50 may be configured to work in a transmission or reflectance mode. The PPG sensors may use one or more wavelengths of light for their operation.
[0060] The blood pressure device 5 may further comprise a reference sensor 60. The reference sensor 60 is adapted to be used as reference for the PPG sensor 50. The reference sensor 60 is located near the tightening system 10, mounted on the body contacting part 12 on other side of the tightening system 10 which is opposite the side of the sensor 50. Hence, the reference sensor 60 is configured to be located on the same artery, vessel or capillary bed, but not located far away from the sensor 50. The reference sensor 60 is also a PPG sensor.
[0061] In use, the blood pressure sensor device 5 is placed on the region of interest, for example with the bracelet 12 and the tightening system 10 around a forearm, with the sensor 50 located downstream of the tightening system 10, and the reference sensor 60 located upstream of the tightening system 10. The terms “downstream” and “upstream” are defined with respect to the direction of blood flow in the arteries in the human body. The tightening system 10 is therefore placed in between the sensors 50 and 60.
[0062] The pressure sensor 30 is adapted to measure the tightening pressure exerted by the tightening system 10 on the involved portion of the body. The pressure sensor 30 is adapted to be placed against or close to the region of interest.
[0063] The processor 20 is adapted to receive and process the tightening pressure signals 30a representative of the force or tightening pressure exerted by the tightening system 10 on the body. The tightening pressure signals 30a are supplied from the pressure sensor 30. The tightening pressure signals 30a may also be used to control the tightening system 10 when tightening the tightening system 10 at different tightening positions, as discussed above.
[0064] The processor 20 is configured to receive and/or send control signals to the tightening system 10. The processor further comprises data processing module(s) to process the different pressure signals, sensor signals, reference signals.
[0065] The user interface 25 may also comprise a display or a sound system for displaying or giving indications or information to the user, such as the value of applied pressure, the diastolic pressure, the systolic pressure, histograms of values, positions, locations, datum, or any even giving indication to the user on how to attach and operate the blood pressure device.
[0066] A blood pressure acquisition mode for measuring blood pressure is provided. The user may use the user interface 25 to select the blood pressure acquisition mode and start the procedure. In the blood pressure acquisition mode, the tightening system 10 is activated to automatically or manually tighten itself until the blood sensor 50 and the reference sensor 60 have detected the diastolic and systolic pressure. After detection of both the diastolic and systolic pressures, the tightening system 10 is adapted to release the pressure and/or force and return to the previous fastening position set before the start of the blood pressure acquisition procedure, in which the tightening system 10 is fixed around and/or on the region of interest.
[0067] The blood pressure device 5 further comprises a blood pressure monitoring mode, in which the blood pressure acquisition mode is activated at predetermined time intervals, which can be manually adjusted. An anomaly mode is also provided, in which the system is adapted to start a blood pressure measurement following an anomalous increase or decrease in the heart rate or heart rate variability detected by the pressure sensor 50 and/or the reference sensor 60.
[0068] The tightening system 10 can be adapted to tighten simultaneously the body contacting part 12 including the PPG sensor 50 and the reference sensor 60. However, the tightening system 10 may also be configured to tighten independently the body contacting part 12, the PPG sensor 50 and/or the reference sensor 60.
[0069] The pressure sensor 30 is configured to detect the tightening pressure applied by the blood pressure device 5 on the region of interest, in use.
[0070] The pressures sensor 30 may comprise one of the following: a piezoelectric sensor, piezoresistive sensor, inductive pressure sensor, capacitive or optical pressure sensor. The pressure exerted by the blood pressure device 5 may further be derived without the use of the pressure sensor 30. For example, when the tightening system 10 comprises a motor for tightening the tightening system 10, a current absorption of the motor of the tightening system may be used to derive the tightening pressure or force exerted by the blood pressure device on the region of interest. Finally, the pressure sensor could be replaced by a strain gauge or a load cell.
[0071] The blood pressure device 5 is adapted to measure the arterial blood pressure as explained in the following with reference to
[0072] When a user, such as a subject, a patient or a paramedical staff, wants to measure the blood pressure, he/she can activate the blood pressure acquisition mode using the user interface 25. Otherwise, in a monitoring mode, blood pressure acquisition mode can be activated. In a first step S1, the tightening system 10 receives the control signal to tighten the tightening system 10, in order to increase the external pressure applied to the vessels of the area of interest, for example by means of the body contacting part 12 and/or tightening system 10.
[0073] The tightening pressure 30a is measured using the pressure sensor 30. The pressure sensor 30 reads the pressure value exerted by the tightening system 10 on the area of interest. The pressure value monitored by the pressure sensor 30 represents the external pressure exerted on the blood vessels.
[0074] The PPG sensor 50, which is located after the tightening system 10, detects a variation of the blood signal 50a caused by a diminished amount of blood in the blood vessel, when the external pressure increases. When the tightening pressure 30a applied by the body contacting part 12 and/or tightening system 10 reaches the systolic pressure, the blood vessel is completely obstructed, inhibiting the passage of blood downstream of the tightening system 10. The blood pressure sensor 50 is a PPG sensor 50, which is placed after the bracelet, cannot detect any variation of blood signal 50a. At this moment, the tightening pressure exerted by the tightening system 10 corresponds to the systolic pressure of the subject.
[0075] In a second step, the processor 20 is adapted to process the acquired measurements comprising the signal 50a and the tightening pressure 30a to derive the diastolic and systolic pressure (step S2). In particular, the processor processes an attenuation of the PPG signal 50a, associates the measured attenuations with the measured tightening pressure 30a applied by the tightening system and finally obtain the systolic and diastolic pressure.
[0076] The skilled person will understand that only the PPG sensor 50, together with the pressure sensor, can be used to determine both the systolic and diastolic pressure. In one embodiment, the blood pressure measurement device comprises only one PPG sensor.
[0077] In an aspect of the invention, the method comprises using the reference sensor 60, which can be used to improve the precision of the blood pressure measurement. In particular, the reference sensor 60, which is placed upstream of the tightening system 10, picks a signal from the same artery, arteriolar or capillary bed. As such, the reference sensor 60 can be used to improve the precision of the blood pressure measurement. In this embodiment, the processor 20 is adapted to process the acquired data comprising the signal 50a, the refence signal 60a and the tightening pressure 30a to derive the diastolic and systolic pressure.
[0078] When the tightening pressure exerted by the tightening system 10 on the area of interest increases, the reference sensor 60 does not determine or only partially determine a decrease of the reference signal 60a, since the tightening system 10 blocks the circulation of the blood only in those blood vessels that are located downstream of the bracelet 10.
[0079] The processor 20 uses the reference signal 60a from the refence sensor 60, and is adapted to compare the amplitude variation of the reference signal 60a and of the PPG signal 50a, to derive information on the patient's diastolic and systolic pressure. The reference signal 60a captured by the reference sensor 60 is used to identify when the sensor signal 50a begins to decrease in the PPG sensor 50, i.e., to identify the diastolic pressure value.
[0080] The blood pressure measuring device may be part of an ambulatory blood pressure measurement (ABPM) device, a sphygmomanometer, a pulse oximeter or a smartwatch.
[0081] While the present disclosure has been described with reference to blood pressure measurement, it should be noted that of course PPG sensor may be used to measure heart rate and blood oxygenation, as well as a plurality of abnormalities in the morphology of the heart signal.