The present invention relates to a wearable sensor and a perspiration analysis device for analyzing a component in perspiration of a person.
In a human body, there are tissues, such as muscles and nerves, that perform electrical activities, and in order to keep these tissues operating normally, a mechanism exists that keeps a concentration of electrolytes in the body constant mainly by the workings of the autonomic nervous system and the endocrine system. For example, when a large amount of electrolytes in the body is lost as a result of perspiration due to long-term exposure to a hot environment, excessive exercise, or the like and the electrolyte concentration in the body deviates from normal values, various symptoms represented by heat stroke occur.
In recent years, against this backdrop, research has been conducted to understand electrolyte abnormalities in the human body by monitoring the electrolyte concentration in perspiration. For example, Non Patent Literature 1 proposes a wearable device for monitoring the electrolyte ion concentration in perspiration and, from measurement results by this device, it has become clear that the electrolyte ion concentration is useful as a biomarker for dehydration.
Considering that the electrolyte concentration in perspiration is continuously measured for a long time with the device attached to the human body, for example, when strenuous exercise is performed for a certain period of time, and then a break is subsequently taken, and exercise is resumed, that is, when a person perspires for a certain period of time, subsequently stops perspiring, and then perspires again, there is a problem in that the electrolyte ions from the previous perspiration dry, the dried electrolyte ions adhere to the sensor element as salt, and the salt redissolves when perspiration resumes, which affects the measurement.
In order to solve the problems described above, an object of embodiments of the present invention is to provide a wearable sensor and a perspiration analysis device capable of reducing the influence that perspiration drying has on component analysis and achieving long-term analysis of a component in perspiration.
A wearable sensor according to embodiments of the present invention includes a base member including a through-hole, a first sensor element provided in the through-hole and configured to detect a signal related to an electrical characteristic of a liquid in the through-hole, and a porous body having hydrophilicity and disposed on an inner wall of the through-hole in a portion farther from a position of the first sensor element when viewed from a first opening of the through-hole, and on a surface of the base member on a side where a second end portion on a side opposite to the first opening opens.
Further, in one configuration example of the wearable sensor according to embodiments of the present invention, when the base member is attached to a body of the wearer with the base member facing skin of the wearer, a first end portion of the through-hole opens on a side of the base member that faces the skin of the wearer, the first sensor element is disposed in the through-hole and detects an electrical signal derived from an analysis target component contained in perspiration that has flowed into the through-hole from the first opening, and at least the inner wall of the through-hole has hydrophilicity.
Further, in one configuration example of the wearable sensor according to embodiments of the present invention, the wearable sensor further includes a water-repellent member provided on a surface of the base member on a side where the first end portion opens.
Further, a perspiration analysis device according to embodiments of the present invention includes the wearable sensor and a component concentration calculation unit configured to calculate a concentration of the analysis target component from an electrical signal detected by the first sensor element of the wearable sensor.
Further, in one configuration example of the perspiration analysis device according to embodiments of the present invention, the component concentration calculation unit determines that acquisition of the concentration of the analysis target component is completed when a value of the concentration of the analysis target component is stable.
Further, in one configuration example of the perspiration analysis device according to embodiments of the present invention, the wearable sensor further includes a second sensor element for perspiration detection disposed in the through-hole at a position adjacent to the first sensor element, and the component concentration calculation unit determines that the acquisition of the concentration of the analysis target component is completed when perspiration secreted from the skin of the wearer is detected by the second sensor element.
Further, in one configuration example of the perspiration analysis device according to embodiments of the present invention, the perspiration analysis device further includes a communication unit configured to transmit, to an external device, the value of the concentration of the analysis target component calculated by the component concentration calculation unit.
According to embodiments of the present invention, it is possible to adjust the surface tension of a solution (perspiration) so that the solution reaches a position of the porous body by capillary action due to the size of the through-hole, the positions of the first sensor element and the porous body, and the hydrophilicity of the inner wall of the through-hole. Then, according to embodiments of the present invention, the solution moves through a large number of pores of the porous body toward the opening on a side opposite to the skin by capillary action, and evaporates while moving in the porous body on the surface of the base member on a side opposite to the skin. As a result, according to embodiments of the present invention, in wearable-form component analysis, it is possible to reduce adhesion of salt to the surface of the first sensor element and achieve long-term analysis of a component in the solution.
Embodiments of the present invention will be described below with reference to the drawings.
The wearable sensor 1 detects an electrical signal derived from an analysis target component in perspiration secreted from the skin of a wearer.
The AFE unit 2 is a circuit that includes an analog front end and amplifies a faint electrical signal detected by the wearable sensor 1.
The ADC unit 3 includes an analog-digital converter, and is a circuit that converts an analog signal amplified by the AFE unit 2 into digital data at a predetermined sampling frequency.
The storage unit 4 stores digital data output by the ADC unit 3. The storage unit 4 is realized by a non-volatile memory typified by a flash memory, a volatile memory such as a dynamic random access memory (DRAM), or the like.
The MCU 5 is a circuit responsible for signal processing that calculates the concentration of the analysis target component from the digital data stored in the storage unit 4.
The communication unit 6 includes a circuit that wirelessly or wiredly transmits an analysis result obtained by the MCU 5 to an external device (not illustrated) such as a smartphone. Examples of standards for wireless communication include Bluetooth (trade name) Low Energy (BLE) and the like. Further, examples of standards for wired communication include Ethernet (trade name) and the like.
The power supply unit 7 is a circuit responsible for supplying power to the perspiration analysis device.
Examples of the base member 10 include a base member made of a glass material having hydrophilicity or a resin material having hydrophilicity. Further, the base member 10 may be a base member subjected to a surface treatment that imparts hydrophilicity to a surface of a water-repellent material and an inner wall of the flow channel 11. The diameter of the flow channel 11 formed in the base member 10 is, for example, about several mm.
When a hydrophilic material is used for the base member 10, it is only required that the water-repellent member 13 be formed by applying a water-repellent surface treatment to the surface (lower surface in
Examples of the sensor element 12 include an ion selective electrode used in Non Patent Literature 1, an enzyme electrode, and an ion-sensitive field effect transistor.
The sensor element 12 is, for example, formed on an inner wall surface of the flow channel 11. Note that, in order to analyze a plurality of components in the perspiration, a plurality of the sensor elements 12 having selectivity of the target component may be provided.
Examples of the porous body 15 having hydrophilicity include porous bodies derived from hydrophilic materials such as nylon and cellulose.
It is only required that the diameter of the flow channel 11, the length of the flow channel 11, the positions of the sensor element 12 and the porous body 15 within the flow channel 11, and the hydrophilicity (wettability) of the inner wall of the flow channel 11 be set so that the perspiration 101 reaches the position of the porous body 15 by capillary action.
The sensor element 12 detects an electrical signal derived from the analysis target component in the perspiration 101 (
The AFE unit 2 amplifies a faint electrical signal detected by the sensor element 12 (
The ADC unit 3 converts the analog signal amplified by the AFE unit 2 into digital data (
The component concentration calculation unit 50 calculates the concentration of the analysis target component from the digital data stored in the storage unit 4 (
Next, the component concentration calculation unit 50 determines, for example, that the acquisition of the component concentration is completed when the water detection sensor element 14 provided in the flow channel 11 at a position adjacent to the sensor element 12 detects that the perspiration 101 has reached the position of the sensor element 12 (YES in
When the acquisition of the component concentration is completed, the communication unit 6 transmits the value of the component concentration calculated by the component concentration calculation unit 50 to an external device (not illustrated) such as a smartphone (
Furthermore, when the amount of perspiration increases, the perspiration 101 moves inside the flow channel 11 and reaches the position of the porous body 15 in the flow channel 11 (
The perspiration analysis device repeatedly performs the processes of steps S1 to S7 until, for example, there is an instruction for measurement completion from the wearer (YES in
As described above, according to this embodiment, in perspiration component analysis by a wearable form, it is possible to reduce adhesion of salt to the surface of the sensor element 12 and achieve long-term analysis of a component in the perspiration. Salt derived from dried electrolyte ions may adhere to the porous body 15 on the surface of the base member 10 opposite to the skin 100, but is in a position away from the skin 100 and the sensor element 12, making it unlikely that the salt adhered to the porous body 15 on the surface of the base member 10 will dissolve when perspiration resumes and reach the sensor element 12.
Further, in this embodiment, as long as the volume of the liquid droplets of the perspiration 101, which occurs between the skin 100 and the flow channel 11 of the wearer, and the surface area of the wearable sensor 1 in the region that comes into contact with the droplets can be estimated, a perspiration rate and a cumulative perspiration volume per unit area of the wearer can be calculated.
That is, the component concentration calculation unit 50 can calculate the cumulative perspiration amount of the wearer in a total elapsed time from completion of acquisition of the component concentration to completion of acquisition of the next component concentration by adding the known volume described above each time acquisition of the component concentration is completed.
Further, the component concentration calculation unit 50 can calculate the perspiration rate per unit area of the wearer by dividing the known volume described above by the elapsed time from completion of acquisition of the immediately preceding component concentration to completion of acquisition of the most recent component concentration and by the surface area described above, each time acquisition of the component concentration is completed.
The storage unit 4 and the MCU 5 described in this embodiment can be realized by a computer including a central processing unit (CPU), a storage device, and an interface, and programs for controlling these hardware resources. A configuration example of this computer is illustrated in
The CPU 200 executes the processes described in this embodiment in accordance with the program stored in the storage device 201.
Embodiments of the present invention can be applied to techniques for analyzing a component in a perspiration of a person.
This application is a national phase entry of PCT Application No. PCT/JP2019/018364, filed on May 8, 2019, which application is hereby incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/JP2019/018364 | 5/8/2019 | WO | 00 |