The present invention relates to the technology field of an electronic device configured for monitoring physical conditions and/or physiological parameters from a maternal body, and more particularly to a maternal and fetal monitoring device using multiple sensing units.
There have been a variety of maternal/fetal monitoring systems proposed. For example, U.S. Pat. No. 10,039,459B2 discloses a pregnant human subject monitoring system, U.S. Pat. No. 6,551,251B1 discloses a fetal heart monitoring system, and U.S. patent publication No. 2018/0256057A1 discloses a fetal phonocardiogram system.
According to the disclosures of U.S. Pat. No. 10,039,459B2, the pregnant human subject monitoring system is configured for monitoring the wellbeing of a fetus by the non-invasive detection and analysis of fetal cardiac electrical activity data. However, the disclosed pregnant human subject monitoring system fails to simultaneously measure physiological parameters (e.g., maternal respiratory rate) of the maternal body and determine physical conditions (e.g., fetal movement) of the fetus and the maternal body. On the other hand, according to the disclosures of U.S. Pat. No. 6,551,251B1, the fetal heart monitoring system is configured for detecting and processing acoustic fetal heart signals from a maternal body, so as to eventually estimate fetal heart activities. However, the disclosed fetal heart monitoring system is not allowed for achievement in measuring physiological parameters (e.g., maternal respiratory rate) of the maternal body and determining physical conditions (e.g., fetal movement) of the fetus and the maternal body. Furthermore, according to the disclosures of U.S. patent publication No. 2018/0256057A1, the fetal phonocardiogram system is configured for utilizing a piezoelectric transducer to collect a sound signal from a maternal body, processing the sound signal to a fetal heart sound sensing signal, and eventually processing the fetal heart sound sensing signal so as to estimate a fetal heart rate of a fetus. It is a pity that, the disclosed fetal phonocardiogram system also fails to measure physiological parameters (e.g., maternal respiratory rate) of the maternal body and determine physical conditions (e.g., fetal movement) of the fetus and the maternal body.
According to above descriptions, it is understood that there are still rooms for improvement in the conventional maternal/fetal monitoring system. In view of this fact, inventors of the present application have made great efforts to make inventive research and eventually provided a maternal and fetal monitoring device using multiple sensing units.
The primary objective of the present invention is to disclose a maternal and fetal monitoring device using multiple sensing units, which is adopted for being attached onto a maternal body, thereby not only determining a maternal physical condition and a fetal physical condition, and but also simultaneously measuring physiological parameters of the maternal body and a fetus.
For achieving the primary objective mentioned above, the present invention provides an embodiment of the maternal and fetal monitoring device, which is adopted for being attached onto a maternal body, and comprises:
a processor module, comprising a first body provided with a circuit assembly therein, wherein the circuit assembly comprises a microprocessor, a memory and a wireless transmission interface; and
a plurality of sensor modules, being coupled to the processor module, wherein each said sensor module comprises a second body provided with first acoustic sensor assembly therein, and the first acoustic sensor assembly comprising an inertial sensor, a temperature sensor and a first acoustic sensor;
wherein the memory stores an application program including instructions, such that in case the application program is executed, the microprocessor being configured for:
In one embodiment, the maternal body posture is selected from a group consisting of lying on a back of the maternal body, lying on a left side of the maternal body, lying on a right side of the maternal body, and sitting upright.
In one embodiment, the maternal physical condition is selected from a group consisting of maternal organ sound, maternal speaking sound, vibration sound of umbilical artery, and vibration sound of uterine artery, and the physiological parameter of the maternal body is selected from a group consisting of maternal heart rate, maternal body temperature, and maternal respiration.
In one embodiment, the fetal physical condition is selected from a group consisting of fetal movements, fetal hiccups and fetal position, and the physiological parameter of the fetus is selected from a group consisting of fetal heart sounds and fetal heartbeat.
In one embodiment, the electronic device is selected from a group consisting of signal transceiver device, tablet computer, cloud server, laptop computer, desktop computer, all-in-one computer, smart phone, smart watch, and smart glasses.
In one embodiment, the memory is selected from a group consisting of embedded flash (eFlash) memory, flash memory chip, hard drive (HD), solid state drive (SSD), and USB flash drive.
In a practicable embodiment, a device fixing member is allowed to be used for making the maternal and fetal monitoring device be attached onto the maternal body, so as to make each said second body contact the maternal body by a body contacting surface thereof.
In one embodiment, the first body has a first accommodation space for receiving the circuit assembly, and each said second body has a second accommodation space for receiving the first acoustic sensor assembly.
In one embodiment, an aperture is formed on a bottom of the second accommodation space, such that the first acoustic sensor of the first acoustic sensor assembly is exposed out of the second body via the aperture.
In one embodiment, a circular recess is formed on the body contacting surface of the second body, and the circular recess has a depth and a diameter in a range between 4.5 mm and 20 mm, such that a ratio of the diameter to the depth is not greater than 6.
In one embodiment, the second body has a Shore hardness in a range between A20 and A50, and a manufacture material of the second body is selected from a group consisting of liquid silicone rubber (LSR), silicon rubber, silicone, acrylonitrile butadiene styrene (ABS), polyurethane (PU), and polydimethylsiloxane (PDMS).
In one embodiment, a body connecting member is connected between the first body and each said second body, and the body connecting member is provided with an electrical connecting component therein, such that the circuit assembly is coupled to the first acoustic sensor assembly through the electrical connecting component.
In one practicable embodiment, the maternal and fetal monitoring device further comprises:
a wireless charging module, being coupled to the circuit assembly; and
a battery, being coupled to the circuit assembly;
wherein the battery is allowed to be electrically charged by the wireless charging module or a battery charger.
In another one practicable embodiment, the maternal and fetal monitoring device further comprises:
a second acoustic sensor assembly coupled to the circuit assembly, being disposed in the first body and/or said second body, and comprising a second acoustic sensor;
wherein the second acoustic sensor is adopted for collecting an ambient sound, thereby generating and transmitting a second sound signal to the processor module;
wherein the sound collected by the first acoustic sensor has a sound frequency in a range between 0.1 Hz and 500 Hz, and the ambient sound collected by the second acoustic sensor has a sound frequency in a range between 16 Hz and 2K Hz.
In one embodiment, the first acoustic sensor assembly is coupled to the circuit assembly via a first flexible printed circuit board, and the second acoustic sensor assembly is coupled to the circuit assembly through a second flexible printed circuit board.
In one embodiment, the application program consists of a plurality of subprograms, and the plurality of subprograms comprising:
a first subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to control the temperature sensor to collect the body temperature sensing signal from the maternal body;
a second subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to control each said first acoustic sensor to collect the sound emitted from the maternal body, and to control the second acoustic sensor to collect the ambient sound;
a third subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to control the inertial sensor to monitor the movement and/or the vibration of the maternal body;
a fourth subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to apply a signal synchronizing process to the body temperature sensing signal, the inertial signal, the plurality of first sound signals, and the second sound signal according to timestamps that are respectively contained in the body temperature sensing signal, the inertial signal, the first sound signal, and the second sound signal;
a fifth subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to apply a signal process to the body temperature sensing signal, the inertial signal, the plurality of first sound signals, and/or the second sound signal;
a sixth subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to analyze the inertial signal, the plurality of first sound signals, and the second sound signal, so as to determine the maternal physical condition and the fetal physical condition;
a seventh subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to analyze the inertial signal, so as to determine the maternal body posture;
an eighth subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to analyze the body temperature sensing signal, the plurality of first sound signals, and the second sound signal, so as to estimate the at least one physiological parameter of the maternal body and the fetus; and
a ninth subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to utilize the wireless transmission interface 11F to transmit a warning signal to the electronic device in case of at least one of the maternal physical condition, the maternal body posture, the fetal physical condition, and the at least one physiological parameter showing abnormal.
In one practicable embodiment, the plurality of subprograms further comprises:
a tenth subprogram, being compiled to be integrated in the application program by one type of programming language, and including instructions for configuring the microprocessor to judge whether there is a well contact between the second body and the maternal body by analyzing a vibration of said maternal respiration, said maternal body temperature, and a first frequency band and a second frequency band of the first sound signal.
The invention as well as a preferred mode of use and advantages thereof will be best understood by referring to the following detailed description of an illustrative embodiment in conjunction with the accompanying drawings, wherein:
To more clearly describe a maternal and fetal monitoring device using multiple sensing units according to the present invention, embodiments of the present invention will be described in detail with reference to the attached drawings hereinafter.
With reference to
In one embodiment, the maternal body posture determinable for the maternal and fetal monitoring device 1 includes: lying on a left side of the maternal body, lying on a right side of the maternal body, and sitting upright. On the other hand, the maternal physical condition determinable for the maternal and fetal monitoring device 1 includes: maternal organ sound, maternal speaking sound, vibration sound of umbilical artery, and vibration sound of uterine artery. Moreover, the physiological parameters of the maternal body measurable for the maternal and fetal monitoring device 1 include: maternal heart rate, maternal body temperature, and maternal respiration. In addition, the fetal physical condition determinable for the maternal and fetal monitoring device 1 includes: fetal movements, fetal hiccups and fetal position. Moreover, the physiological parameter of the fetus measurable for the maternal and fetal monitoring device 1 includes: fetal heart sounds and fetal heartbeat.
According to the present invention, in case of the fact that maternal physical condition, the maternal body posture, the fetal physical condition, and the at least one physiological parameter show abnormal, the microprocessor 11P generates a warning signal, and then transmits the warning signal to an electronic device 3 like a signal transceiver device through a wireless transmission interface 11F. Besides the signal transceiver device, the electronic device 3 can be a cloud server, a local server belong to a hospital, a postpartum center or an infant care center, and can also be a personal electronic device belong to the baby's parent, wherein the personal electronic device can be a tablet computer, a laptop computer, a desktop computer, an all-in-one computer, a smart phone, a smart watch, or a smart glasses.
As described in more detail below, the first acoustic sensor 12A1 is adopted for collecting fetal hiccups sound, fetal heart sound, fetal heartbeat sound, maternal organ sound, maternal speaking sound, metal heartbeat sound, maternal respiration sound, vibration sound of umbilical artery, and vibration sound of uterine artery. Since the foregoing multiple types of sounds all have a sound frequency below 500 Hz, the first acoustic sensor 12A1 is configured for collecting the sound that is emitted from the maternal body and has a sound frequency in a range between 0.1 Hz and 500 Hz. In addition, the first acoustic sensor 12A1 is also adopted for collecting sound of primitive reflexes actions and sound of irregular fetal movement from the fetus via the maternal body. Furthermore, in order to make sure that the sound collected by the first acoustic sensor 12A1 indeed contains target sound features like the feature of fetal heart sound, the second acoustic sensor 12A2 is utilized to collect an ambient sound having a sound frequency in a range between 16 Hz and 2K Hz.
As
As described in more detail below, the first body 11 has a first accommodation space 110 for receiving the circuit assembly CA0, and each said second body 12 has a second accommodation space 120 for receiving the first acoustic sensor assembly CA1, wherein an aperture 12O is formed on a bottom of the second accommodation space 120, such that the first acoustic sensor 12A1 of the first acoustic sensor assembly CA1 is exposed out of the second body 12 via the aperture 12O. According to the present invention, a circular recess 12R is formed on the body contacting surface of the second body 12, and the circular recess 12R has a depth and a diameter in a range between 4.5 mm and 20 mm, such that a ratio of the diameter to the depth being not greater than 6. In a practicable embodiment, a manufacture material of the second body 12 can be liquid silicone rubber (LSR), silicon rubber, silicone, acrylonitrile butadiene styrene (ABS), polyurethane (PU), or polydimethylsiloxane (PDMS), and the second body 12 is designed to have a Shore hardness in a range between A20 and A50.
It is worth explaining that, after the second body 12 is set to contact the maternal body by a body contacting surface thereof, the circular recess 12R helps the body contacting surface to well contact the skin of the abdominal skin of the maternal body with high air tightness, thereby making an acoustic coupling path be formed between the second body 12 and a sound source portion of the maternal body (e.g., abdominal cavity). It is worth further explaining that the human body is a low frequency resonator. Therefore, in case of there being a sound (e.g., fetal heart sound, sound of fetal movements) produced in the maternal body, magnitude of the low frequency band of the sound would be amplified by the low frequency resonator. Moreover, because there is an acoustic coupling path formed between the second body 12 and the abdominal cavity (i.e., sound source portion) of the maternal body, the sound emitted by the maternal body is directly collected by the first acoustic sensor 12A1 through the acoustic coupling path.
In a specific embodiment, the depth can be designed to have a minimum value of 1.5 mm. On the other hand, in case of the second body 12 being set to contact the maternal body by the body contacting surface thereof, the circular recess 12R is also allowed to prevent the aperture 12O (i.e., sound collecting hole for the first acoustic sensor 12A1) from being plugged by the abdominal skin of the maternal body. Specifically, the second body 12 is made of LSR so as to have a Shore hardness in a range between A20 and A50. Therefore, in spite of the fact that the second body 12 has contacted the abdominal skin of the maternal body for a period of long time, the abdominal skin of the maternal body still not shows the symptoms of allergy, itching and/or redness. On the other hand, since the circular recess 12R is a softness and elasticity cavity without diaphragm, it not only assists the first acoustic sensor 12A1 in effectively collect the sound (e.g., fetal heart sound, sound of fetal movements) emitted from the maternal body, but also amplified the magnitude of the low frequency band of the sound. Moreover, since the circular recess 12R is a low-frequency resonant cavity without diaphragm, the contact area between the second body 2 and the abdominal skin of the maternal body is significantly reduced. As such, in spite of the fact that the second body 12 has contacted the abdominal skin of the maternal body for a period of long time, the abdominal skin would not become a sultry or skin.
It is worth explaining that, not only does the memory 11M can be an embedded flash (eFlash) memory provided in the microprocessor 11P, but the memory 11M can also be a flash memory chip, a hard drive (HD), a solid state drive (SSD), or an USB flash drive that is coupled to the microprocessor 11P.
According to the present invention, the first subprogram 11M1 is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to control the temperature sensor 12T to measure a body temperature from the maternal body, thereby generating a body temperature sensing signal. On the other hand, the second subprogram 11M2 is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to control each said first acoustic sensor 12A1 to collect the sound emitted from the maternal body, and to control the second acoustic sensor 12A2 to collect the ambient sound. Moreover, the third subprogram 11M3 is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to control the inertial sensor to monitor a movement and/or a vibration of the maternal body, thereby generating an inertial signal. In addition, the fourth subprogram 11M4 is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to apply a signal synchronizing process to the body temperature sensing signal, the inertial signal, the plurality of first sound signals, and the second sound signal according to timestamps that are respectively contained in the body temperature sensing signal, the inertial signal, the first sound signal, and the second sound signal. Moreover, the fifth subprogram 11M5 is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to apply a signal process to the body temperature sensing signal, the inertial signal, the plurality of first sound signals, and/or the second sound signal.
As described in more detail below, the sixth subprogram 11M6 is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to analyze the inertial signal, the plurality of first sound signals, and the second sound signal, so as to determine a maternal physical condition and a fetal physical condition. On the other hand, the seventh subprogram 11M7 is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to analyze the inertial signal, so as to determine a maternal body posture. Moreover, the eighth subprogram 11M8 is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to analyze the body temperature sensing signal, the plurality of first sound signals, and the second sound signal, so as to estimate the at least one physiological parameter of the maternal body and the fetus. In addition, the ninth subprogram 11M9 is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to utilize the wireless transmission interface 11F to transmit a warning signal to the electronic device 3 in case of at least one of the maternal physical condition, the maternal body posture, the fetal physical condition, and the at least one physiological parameter showing abnormal.
Particularly, there is further a tenth subprogram 11MA stored in the memory 11M. The tenth subprogram 11MA is compiled to be integrated in the application program by one type of programming language, and includes instructions for configuring the microprocessor 11P to judge whether there is a well contact between the second body 12 and the maternal body by analyzing a vibration of said maternal respiration, said maternal body temperature, and a first frequency band and a second frequency band of the first sound signal. According to the particular design of the present invention, before starting to monitor the physical conditions and/or measure the physiological parameters from the maternal body, the tenth subprogram 11MA is executed by the microprocessor 11P, such that the microprocessor 11P is configured to judge whether there is a well contact between the second body 12 and the maternal body or not. After the second body 12 is detected, by the sensor modules 1S, to have already had a well contact with the abdominal skin of the maternal body, the microprocessor 11P immediately enables the maternal and fetal monitoring device 1 to work normally. By such design, the foregoing well-contact detecting function is not only helpful in making the maternal and fetal monitoring device 1 to achieve the monitoring of a maternal physical condition and a fetal physical condition and the measurement of physiological parameters of the maternal body and the fetus, but also significantly save the power consumption of the maternal and fetal monitoring device 1.
With reference to
It needs to further explain that, the microprocessor 11P is provided with an analog-to-digital (A/D) convertor therein. After the microprocessor 11P receives the body temperature sensing signal, the inertial signal, the plurality of first sound signals, and the second sound signal, the A/D convertor is enabled to apply an analog-to-digital conversion process to the foregoing signals. As described in more detail below, the A/D convertor directly digitize the first sound signal, digitize the second sound signal using a first sampling rate, and digitize the inertial signal using a second sampling rate. In one embodiment, the first sampling rate is not greater than 4 KHz (i.e., ≤4 KHz), and the second sampling rate is not greater than 120 Hz (i.e., ≤120 Hz). After that, the microprocessor 11P executes the fifth subprogram 11M5, so as to process the first sound signal, the second sound signal, and/or the inertial signal. For example, the microprocessor 11P applies a FFT (fast Fourier transform) process to the foregoing signals.
Therefore, through above descriptions, all embodiments and their constituting elements of the maternal and fetal monitoring device using multiple sensing units according to the present invention have been introduced completely and clearly. Moreover, the above description is made on embodiments of the present invention. However, the embodiments are not intended to limit the scope of the present invention, and all equivalent implementations or alterations within the spirit of the present invention still fall within the scope of the present invention.
This application claims benefits of U.S. Provisional Patent Application Ser. No. 63/243,109 for “Hybrid and location-based, real-time, portable, wearable, and fully integrated fetal monitoring system”, filed Sep. 11, 2021. The contents of which are hereby incorporated by reference in its entirety for all purposes.
Number | Date | Country | |
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63243109 | Sep 2021 | US |