BLOOD PRESSURE MEASUREMENT DEVICE WITH A MEMS PUMP AND CONTROL METHOD FOR THE SAME
20200367770 ยท 2020-11-26
Assignee
Inventors
Cpc classification
F04B49/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B5/11
HUMAN NECESSITIES
A61B5/022
HUMAN NECESSITIES
A61B2562/028
HUMAN NECESSITIES
F04B17/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B19/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B5/02141
HUMAN NECESSITIES
F04B2205/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H10N30/802
ELECTRICITY
F04B35/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B45/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A61B5/01
HUMAN NECESSITIES
F04B49/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
A61B5/022
HUMAN NECESSITIES
F04B17/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
This invention discloses a blood pressure measurement device including a cuff having a bladder wrap around an object to be measured, a MEMS pump for inflating the bladder with air, a pressure sensor for monitoring the pressure in the bladder, and a microcontroller for controlling the pressure sensor to continuously receive pressure signals during the process of inflating the bladder, converting the pressure signals into blood pressure values, and controlling a drive voltage level of the MEMS pump to maintain an air inflation speed of the MEMS pump in a predetermined inflation speed range. The invention further discloses a method for controlling a fixed frequency change of the blood pressure measurement device.
Claims
1. A blood pressure measurement device with a MEMS pump, comprising: a cuff having a bladder for wrapping around an object to be measured; a MEMS pump for inflating and deflating the bladder with air respectively during an inflation process and a deflation process; and a microcontroller controlling a DC drive voltage level of the MEMS pump so as to maintain a constant air inflation speed of the MEMS pump; wherein the microcontroller controls the DC drive voltage level of the MEMS pump by a voltage regulator circuit through a motor driving control circuit; wherein the microcontroller emits a fixed-frequency signal to the motor driving control circuit to provide a fixed drive frequency to the MEMS pump from an initialization stage during the inflation process; a DC-DC boost circuit boosting a DC voltage of a system power supply to a DC voltage applicable for the motor driving control circuit to provide the DC drive voltage level to the MEMS pump.
2. The blood pressure measurement device of claim 1, wherein the microcontroller controls the MEMS pump to deflate air from the bladder without applying any DC drive voltage to the MEMS pump.
3. The blood pressure measurement device of claim 2, wherein the MEMS pump replaces an air relief unit to release the air from the bladder without applying any DC drive voltage to the MEMS pump.
4. The blood pressure measurement device of claim 1, further comprising a pressure sensor for monitoring the pressure in the bladder during the inflation process.
5. The blood pressure measurement device of claim 1, wherein the microcontroller emits the fixed-frequency signal to the motor driving control circuit to provide the fixed drive frequency to the MEMS pump from the initialization stage till the pressure in the bladder is equal to 150 mmHg during the inflation process.
6. The blood pressure measurement device of claim 1, further comprising an alternating color light source and a transparent or translucent casing covering the MEMS pump, the microcontroller, the DC-DC boost circuit, and the alternating light source, wherein the alternating color light source changes color light with a pulse rate during blood pressure measurement.
7. The blood pressure measurement device of claim 1, further comprising an alternating color light source and a transparent or translucent casing covering the MEMS pump, the microcontroller, the DC-DC boost circuit, and the alternating light source, wherein the alternating color light source changes color between red and green lights to indicate a high blood pressure and a standard blood pressure respectively.
8. The blood pressure measurement device of claim 1, wherein the motor driving control circuit emits a pulse width modulation (PWM) fixed-frequency signal to provide the fixed drive frequency to the MEMS pump.
9. The blood pressure measurement device of claim 1, wherein the DC drive voltage level is increased according to a linear control.
10. The blood pressure measurement device of claim 1, further comprises a flow sensor for detecting the amount of inflation for monitoring the pressure in the bladder.
11. A blood pressure measurement device with a MEMS pump, comprising: a cuff having a bladder for wrapping around an object to be measured; a MEMS pump for inflating the bladder with air during an inflation process in a first direction and releasing air from the bladder during a deflation process without using any air relief units, wherein air of the bladder is exhausted through the MEMS pump in a second direction opposite to the first direction; and a microcontroller controlling a drive voltage level of the MEMS pump so as to maintain a constant air inflation speed of the MEMS pump; wherein the microcontroller controls the drive voltage level of the MEMS pump by a voltage regulator circuit through a motor driving control circuit; wherein the microcontroller emits a fixed-frequency signal to the motor driving control circuit to provide a fixed drive frequency to the MEMS pump from an initialization stage during the inflation process; a DC-DC boost circuit boosting a DC voltage of a system power supply to a DC voltage applicable for the motor driving control circuit to provide the drive voltage level to the MEMS pump.
12. The blood pressure measurement device of claim 11, further comprising a pressure sensor for monitoring the pressure in the bladder during the inflation process.
13. The blood pressure measurement device of claim 11, wherein the microcontroller emits the fixed-frequency signal to the motor driving control circuit to provide the fixed drive frequency to the MEMS pump from the initialization stage till the pressure in the bladder is equal to 150 mmHg during the inflation process.
14. The blood pressure measurement device of claim 11, further comprising an alternating color light source and a transparent or translucent casing covering the MEMS pump, the microcontroller, the DC-DC boost circuit, and the alternating light source, wherein the alternating color light source changes color light with a pulse rate during blood pressure measurement.
15. The blood pressure measurement device of claim 11, further comprising an alternating color light source and a transparent or translucent casing covering the MEMS pump, the microcontroller, the DC-DC boost circuit, and the alternating light source, wherein the alternating color light source changes color between red and green lights to indicate a high blood pressure and a standard blood pressure respectively.
16. A blood pressure measurement device with a MEMS pump, comprising: a cuff having a bladder for wrapping around an object to be measured; a MEMS pump for inflating the bladder with air during an inflation process in a first direction when a drive voltage is applied to the MEMS pump and deflating air from the bladder during a deflation process when no drive voltage is applied to the MEMS pump, wherein air of the bladder is exhausted through the MEMS pump in a second direction opposite to the first direction and no air relief unit fluidly communicates with the bladder; and a microcontroller controlling a drive voltage level of the MEMS pump so as to maintain a constant air inflation speed of the MEMS pump; wherein the microcontroller controls the drive voltage level of the MEMS pump by a voltage regulator circuit through a motor driving control circuit; wherein the microcontroller emits a fixed-frequency signal to the motor driving control circuit to provide a fixed drive frequency to the MEMS pump from an initialization stage during the inflation process; a DC-DC boost circuit boosting a DC voltage from a system power supply to a DC voltage applicable for the motor driving control circuit.
17. The blood pressure measurement device of claim 16, further comprising a pressure sensor for monitoring the pressure in the bladder during the inflation process.
18. The blood pressure measurement device of claim 16, wherein the microcontroller emits the fixed-frequency signal to the motor driving control circuit to provide the fixed drive frequency to the MEMS pump from the initialization stage till the pressure in the bladder is equal to 150 mmHg during the inflation process.
19. The blood pressure measurement device of claim 16, further comprising an alternating color light source and a transparent or translucent casing covering the MEMS pump, the microcontroller, the DC-DC boost circuit, and the alternating light source, wherein the alternating color light source changes color light with a pulse rate during blood pressure measurement.
20. The blood pressure measurement device of claim 16, further comprising an alternating color light source and a transparent or translucent casing covering the MEMS pump, the microcontroller, the DC-DC boost circuit, and the alternating light source, wherein the alternating color light source changes color between red and green lights to indicate a high blood pressure and a standard blood pressure respectively.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0023] To make it easier for our examiner to understand the objective, technical characteristics, structure, innovative features, and performance of the invention, we use preferred embodiments together with the attached drawings for the detailed description of the invention. For simplicity and clarity, the drawings are provided for showing the overall structure of the invention, and the characteristics of the prior art and their corresponding detailed description is omitted to avoid unnecessarily blurring the claims of the present invention. It is noteworthy that same numerals are used to represent the same elements in the drawings respectively.
[0024] With reference to
[0025] With reference to
[0026] The microcontroller 55 controls a voltage regulator circuit 57 to supply an initial voltage V0 (preferably 10 volts) to the motor driving control circuit 56 at an initialization stage; meanwhile the microcontroller 55 drives the motor driving control circuit 56 via the voltage regulator circuit 57 to carry out a constant-speed inflation of the MEMS pump 53. The microcontroller 55 also emits a pulse width modulation (PWM) fixed-frequency signal to the motor driving control circuit 56 to provide a fixed drive frequency to the MEMS pump 53. In other words, a constant frequency is maintained in the whole inflation process. It is noteworthy that the voltage regulator circuit 57 can adjust the drive voltage level of the MEMS pump by changing the resistance or current, so as to achieve the constant-speed inflation effect of the MEMS pump 53.
[0027] The MEMS pump 53 starts inflating the bladder 31 according to the predetermined values of the initial voltage V0 and the constant drive frequency. In the meantime, the pressure sensor 54 is controlled by the microcontroller 55, so that the pressure in the bladder is detected once for a certain period of time (preferably once for every 0.5 second) during the inflation process, and a plurality of pressure signals having the pressure values are sent continuously to the microcontroller 55.
[0028] The microcontroller 55 determine the inflation speed of the MEMS pump 53 based on the pressure values of the pressure signals at minimum of two different time, meanwhile the microcontroller 55 determines whether or not the current inflation speed is maintained within a predetermined inflation speed range (which is stored in a storage unit 51). When the current inflation speed is greater than the predetermined inflation speed range, the microcontroller 55 will adjust an input/output (I/O) pin of the voltage regulator circuit 57 and use the motor driving control circuit 56 to lower the drive voltage level of the MEMS pump 53, so as to control the inflation speed and return the current inflation speed to its predetermined inflation speed range. When the current inflation speed is smaller than the predetermined inflation speed range, the microcontroller 55 will adjust the input/output (I/O) pin of the voltage regulator circuit 57 and use the motor driving control circuit 56 to increase the drive voltage level of the MEMS pump 53, so as to increase the current inflation speed and allow the current inflation speed to reach its predetermined inflation speed range. In this preferred embodiment, the predetermined inflation speed range is from 2 to 7 mmHg/sec, preferably 4 to 6 mmHg/sec. In addition, the storage unit 51 is a memory, but the present invention is not limited to such arrangement only. The storage unit 51 is provided for storing at least one record of the blood pressure values. In another preferred embodiment, the storage unit 51 further stores user's related data, and a user interface is provided for switching and displaying the identity information or physiological information on the aforementioned display unit 21. People having ordinary skill in the art should understand that the user related data may be stored in the storage unit 51 by an external electronic device via a wireless or cable transmission.
[0029] The microcontroller 55 analyzes and computes a plurality of pressure signals obtained by the pressure sensor 54, converts the pressure signals into blood pressure values, and displays the blood pressure values on the display unit 21. Since such conversion process is well known, it will not be described here.
[0030] With reference to
[0031] With reference to
[0032] In another preferred embodiment of the present invention, the blood pressure measurement device further comprises a flow sensor for detecting the amount of inflation to replace the function of the pressure sensor for monitoring the pressure in the bladder. Therefore, the aforementioned flow sensor continuously transmits current flow signal to the microcontroller 55, so that the microcontroller 55 continuously adjusts the drive voltage level of the MEMS pump 53 to maintain the inflation speed in a predetermined inflation speed range.
[0033] With reference to
[0034] In details, the microcontroller 55 converts and computes the current inflation speed of the MEMS pump 53 according to the pressure values of the pressure signals at minimum of two different time, meanwhile the microcontroller 55 determines whether or not the current inflation speed is maintained in a predetermined inflation speed range (which is stored in the storage unit 51). When the current inflation speed is greater than a predetermined inflation speed range, the motor driving control circuit 56 provides a pulse width modulation (PWM) fixed-frequency signal. The microcontroller 55 adjusts and outputs the fixed-frequency duty ratio to the voltage regulator circuit 57. As a result, different duty ratios are outputted so that the voltage regulator circuit 57 produces different voltage levels; and the drive voltage of the MEMS pump 53 becomes smaller. In this way, the inflation speed can be controlled in the predetermined inflation speed range. When the current inflation speed is smaller than the predetermined inflation speed range, the adjusted drive voltage becomes greater to increase the inflation speed and return the current inflation speed to its predetermined inflation speed range.
[0035] With reference to
[0036] When a user presses a push button 22 to turn on the blood pressure measurement device 10 (Step S101), the MEMS pump 53 starts inflating the bladder 31 with air according to the predetermined values of the fixed drive frequency and the initial voltage level (Step S102). The microcontroller 55 determines whether or not the current inflation speed of the MEMS pump 53 falls within a predetermined inflation speed range (Step S103). If the current inflation speed is greater than the predetermined inflation speed range, then the drive voltage level of the MEMS pump 53 will be lowered to return the inflation speed to its predetermined inflation speed range (Step S103-1). On the other hand, if the current inflation speed is smaller than the predetermined inflation speed range, then the drive voltage of the MEMS pump 53 will be increased to return the inflation speed to its predetermined inflation speed range (Step S103-2).
[0037] As shown in
[0038] Although the control method of the present invention is illustrated by the first and second preferred embodiments, the control method may also be applied to another embodiment by using a flow sensor to replace the pressure, and their only difference resides on that the microcontroller of the first or second preferred embodiment monitors the pressure in the bladder to determine the inflation speed. The microcontroller also controls and regulates the voltage level of the MEMS pump. In the embodiment which the flow sensor is adapted, the microcontroller determines the inflation speed by monitoring the flow rate of the fluid during the inflation process so as to control and regulate the voltage level of the MEMS pump.