BLOOD PRESSURE MEASURING APPARATUS CAPABLE OF ESTIMATING ARTERIOSCLEROSIS
20200260968 ยท 2020-08-20
Assignee
Inventors
Cpc classification
A61B5/0225
HUMAN NECESSITIES
A61B5/02007
HUMAN NECESSITIES
International classification
Abstract
A blood pressure measuring apparatus with a cuff comprises a cuff, an inflation unit, a deflation unit, a pressure sensor, a signal record and storage unit, and an operation and analysis unit. The operation and analysis unit is used to control the inflation unit and the deflation unit to increase the pressure within the cuff to a first pressure, maintain the pressure at the first pressure for a specified interval, then increase the pressure to a second pressure, and decrease the pressure. The blood pressure measurement is accordingly finished. The operation and analysis unit calculates an arteriosclerosis index based on a pulse waveform signal when the adjustable pressure unit maintains the pressure at the first pressure.
Claims
1. A blood pressure measuring apparatus capable of estimating arteriosclerosis, the apparatus comprising: a cuff; an inflation unit pressurizing the cuff; a deflation unit depressurizing or discharging the cuff; a pressure sensor used for sensing at least one oscillometric waveform of pressure variation with the cuff; a signal record and storage unit storing at least one pulse waveform signal within the oscillometric waveform; and an operation and analysis unit used to control the inflation unit and the deflation unit to pressurize the cuff till a first pressure and maintain at the first pressure for a specified interval and then pressurize the cuff to a second pressure, and depressurize or discharge the cuff so as to complete blood pressure measurement; wherein the operation and analysis unit calculates an arteriosclerosis index based on a plurality of characteristic values derived from the pulse waveform signal when the cuff is maintained at the first pressure; wherein the plurality of characteristic values comprise a first magnitude value of a first peak at an incident component of the pulse waveform signal and a second magnitude value of a second peak at a reflective component of the pulse waveform signal.
2. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the arteriosclerosis index is a ratio of the first magnitude value to the second magnitude value.
3. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the plurality of characteristic values further comprise a third magnitude value of a lowest valley at the pulse waveform signal, and the arteriosclerosis index is a ratio of a difference deducting the third magnitude value from the second magnitude value to a difference deducting the third magnitude value from the first magnitude value.
4. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the plurality of characteristic values further comprise a pulse pressure, and arteriosclerosis index is a ratio of a difference deducting the second magnitude value from the first magnitude value to the pulse pressure.
5. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the arteriosclerosis index is a difference deducting the second magnitude value from the first magnitude value.
6. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the operation and analysis unit obtains the first and second magnitude values based on a fourth derivative of a function representing the pulse waveform signal.
7. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the deflation unit is an adjustable deflation valve which adjusts a depressurized interval based on a heart rate.
8. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the pulse waveform signal acting as a biometric is used to identify a user operating the apparatus.
9. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the second pressure is set to be higher than a systolic blood pressure of a user.
10. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the first pressure is preferably set to be lower than a diastolic blood pressure of a user, and more preferably is that the diastolic blood pressure is minus 20 mmHg.
11. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 10, wherein the diastolic blood pressure of the user is an average of historical records or one record previously measured and memorized in the signal record and storage unit.
12. The blood pressure measuring apparatus capable of estimating arteriosclerosis according to claim 1, wherein the specified interval is preferable 10-15 seconds, more preferably 15 seconds.
13. A method for estimating arteriosclerosis using a blood pressure measuring apparatus, wherein the blood pressure measuring apparatus comprises: a cuff; an inflation unit pressurizing the cuff; a deflation unit depressurizing or discharging the cuff; a pressure sensor used for sensing at least one oscillometric waveform of pressure variation with the cuff; a signal record and storage unit storing at least one pulse waveform signal within the oscillometric waveform; and an operation and analysis unit used to control the inflation unit and the deflation unit; the method comprises: inflating the cuff till the pressure of the cuff reaches a first pressure; maintaining the pressure of the cuff at the first pressure for a specified interval; capturing a pulse waveform for at least one heartbeat period during the specified interval to obtain the pulse waveform signal; deriving a plurality of characteristic values from the pulse waveform signal, the plurality of characteristic values comprising a first magnitude value of a first peak at an incident component of the pulse waveform signal and a second magnitude value of a second peak at a reflective component of the pulse waveform signal; and calculating an arteriosclerosis index based on the plurality of characteristic values.
14. The method for estimating arteriosclerosis using a blood pressure measuring apparatus according to claim 13, wherein the arteriosclerosis index is a ratio of the first magnitude value to the second magnitude value.
15. The method for estimating arteriosclerosis using a blood pressure measuring apparatus according to claim 13, wherein the plurality of characteristic values further comprise a third magnitude value of a lowest valley at the pulse waveform signal, and the arteriosclerosis index is a ratio of a difference deducting the third magnitude value from the second magnitude value to a difference deducting the third magnitude value from the first magnitude value.
16. The method for estimating arteriosclerosis using a blood pressure measuring apparatus according to claim 13, wherein the plurality of characteristic values further comprise a pulse pressure, and arteriosclerosis index is a ratio of a difference deducting the second magnitude value from the first magnitude value to the pulse pressure.
17. The method for estimating arteriosclerosis using a blood pressure measuring apparatus according to claim 13, wherein the arteriosclerosis index is a difference deducting the second magnitude value from the first magnitude value.
18. The method for estimating arteriosclerosis using a blood pressure measuring apparatus according to claim 13, further comprising obtaining the first and second magnitude values based on a fourth derivative of a function representing the pulse waveform signal.
19. The method for estimating arteriosclerosis using a blood pressure measuring apparatus according to claim 13, wherein the second pressure is set to be higher than a systolic blood pressure of a user, and the first pressure is preferably set to be lower than a diastolic blood pressure of the user, and more preferably is that the diastolic blood pressure is minus 20 mmHg.
20. The method for estimating arteriosclerosis using a blood pressure measuring apparatus according to claim 13, wherein the specified interval is preferable 10-15 seconds, more preferably 15 seconds.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to sufficiently understand the essence, advantages and the preferred embodiments of the present invention, the following detailed description will be more clearly understood by referring to the accompanying drawings.
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE INVENTION
[0025] The following description shows the preferred embodiments of the present invention. The present invention is described below by referring to the embodiments and the figures. Thus, the present invention is not intended to be limited to the embodiments shown, but is to be accorded the principles disclosed herein. Furthermore, that various modifications or changes in light thereof will be suggested to persons skilled in the art and are to be included within the spirit and purview of this application and scope of the appended claims.
[0026]
[0027] The pressure of the cuff 110 can be adjusted by the deflation unit 120. In this embodiment, the deflation unit 120 is a deflation valve used to open or close a valve or an adjustable deflation valve, preferable linear valve, used to adjust the opening level of a valve. The inflation unit 130 can inflate the cuff 110. For example, a MEMS pump or an air pump fills the cuff 110 with air. The pressure sensor 140 is communicated with the cuff 110 and the deflation unit 120, and is used to sense the oscillating waveform of the pressure variation in the cuff 110. The pressure sensor 140 can detect a pressure signal PS. The pressure signal PS comprises an oscillating waveform and an air static pressure within the cuff 110, and is outputted to the signal processing unit 150. The signal processing unit 150 conducts signal processing such as filtering and signal conversion on the pressure signal PS. The processed signal is stored or buffered in the signal record and storage unit 160. When the pressure of the cuff 110 is maintained at the first pressure, the operation and analysis unit 170 calculates an arteriosclerosis index according to the pulse waveform signal. The calculation of the arteriosclerosis index will be further described below.
[0028] As shown in
[0029]
[0030] In other embodiments, the blood pressure measuring apparatus 100 may use the pulse waveform signals of various users as their physiological characteristics to match the corresponding historical records or data stored in the signal record and storage unit 160 so as to identify who is the current user to be measured. The pulse waveform signal for each of users has unique waveform characteristics. A person skilled in the art would understand that the historical records or data are downloaded from an external database to the signal record and storage unit 160 in a wire or wireless transmission way.
[0031]
[0032] The formulas for the foregoing arteriosclerosis indexes AID are as follows:
AID1=MP1/MP2formula I; or
AID2=(MP2MP3)/(MP1MP3)formula II; or
AD3=P/PPformula III; or
AD4=Pformula IV.
[0033] The foregoing arteriosclerosis indexes AID1-AID3 are augmentation indexes (AI) derived from various formulas, and the arteriosclerosis index AID4 is an augmentation pressure (AP).
[0034] The pulse waveform signal as shown in
[0035] Further, the operation and analysis unit 170 averages at least one pulse of the pressure variation in the cuff 110 sensed by the pressure sensor 140 to obtain the pulse waveform signal. Detailed speaking, the operation and analysis unit 170 obtains the pulse waveform signal as shown in
[0036]
[0037]
[0038] The foregoing embodiments of the invention have been presented for the purpose of illustration. Although the invention has been described by certain preceding examples, it is not to be construed as being limited by them. They are not intended to be exhaustive, or to limit the scope of the invention. Modifications, improvements and variations within the scope of the invention are possible in light of this disclosure.