WEARABLE PHYSIOLOGIC STATE MONITORING DEVICE
20210345961 ยท 2021-11-11
Inventors
Cpc classification
A61B5/256
HUMAN NECESSITIES
A61B5/318
HUMAN NECESSITIES
A61B5/0816
HUMAN NECESSITIES
A61B2562/0209
HUMAN NECESSITIES
H05K1/189
ELECTRICITY
H05K1/147
ELECTRICITY
H05K1/028
ELECTRICITY
International classification
A61B5/00
HUMAN NECESSITIES
A61B5/01
HUMAN NECESSITIES
Abstract
A wearable physiologic state monitoring device includes a textile fabric, a flexible sensing unit, and a control unit. The textile fabric has a first surface and a second surface opposite to each other. The flexible sensing unit is joined to the first surface of the textile fabric and has a flexible substrate and a sensing element. The flexible substrate has a bearing surface, and a patterned conductive circuit is provided on the bearing surface. The sensing element is electrically connected to the patterned conductive circuit. The control unit is adjacent to the flexible sensing unit and is electrically connected to the patterned conductive circuit.
Claims
1. A wearable physiologic state monitoring device, comprising: a textile fabric, which has a first surface and a second surface opposite to each other; a flexible sensing unit, which is joined to the first surface of the textile fabric, comprising: a flexible substrate, which has a bearing surface, and a patterned conductive circuit is provided on the bearing surface; and a sensing element, which is electrically connected to the patterned conductive circuit disposed on the bearing surface of the flexible substrate; and a control unit, which is adjacent to the flexible sensing unit and is electrically connected to the patterned conductive circuit.
2. The wearable physiologic state monitoring device of claim 1, wherein the flexible sensing unit further comprising: a flexible circuit board, which is disposed between the flexible substrate and the sensing element, where the sensing element is disposed on the flexible circuit board and is electrically connected to the patterned conductive circuit on the flexible substrate through an electrode of the flexible circuit board.
3. The wearable physiologic state monitoring device of claim 1, wherein the sensing element is selected from a sensing electrode, a temperature sensing element or a strain sensing element.
4. The wearable physiologic state monitoring device of claim 1, wherein the material of the patterned conductive circuit includes a conductive silver paste.
5. The wearable physiologic state monitoring device of claim 1, wherein the material of the flexible substrate is silicon, polyurethane (PU) or thermoplastic polyurethane (TPU).
6. The wearable physiologic state monitoring device of claim 1, wherein the control unit is connected to the textile fabric through a stud element, a bolt element or a bonding glue.
7. The wearable physiologic state monitoring device of claim 1, wherein the control unit is disposed on the first surface or the second surface of the textile fabric.
8. The wearable physiologic state monitoring device of claim 1, wherein the flexible sensing unit is joined to the first surface of the textile fabric by a hot-pressing technology.
9. The wearable physiologic state monitoring device of claim 1, wherein a part of the sensing element is in contact with the bearing surface of the flexible substrate.
10. The wearable physiologic state monitoring device of claim 1, wherein a part of the sensing element is in contact with the first surface of the textile fabric.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The parts in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of at least one embodiment. In the drawings, like reference numerals designate corresponding parts throughout the various diagrams, and all the diagrams are schematic.
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DESCRIPTION OF THE PREFERRED EMBODIMENT
[0032] In the following description, this invention will be explained with reference to embodiments thereof. However, the description of these embodiments is only for purposes of illustration rather than limitation.
[0033] Please refer to
[0034] The textile fabric 11 has a first surface 111 and a second surface 112 opposite to each other. The material of the textile fabric 11 can be textile fibers and fiber products, which are specifically represented by fibers, yarns, fabrics and their composites. Fibers include the natural fiber, the artificial fiber and the synthetic fiber, where the natural fiber can include cotton, wool, silk or hemp; the artificial fiber can be made of wood, cotton linters or natural cellulose from grass; the synthetic fiber mostly uses oil or natural gas as raw materials. In this embodiment, the specific performance of the textile fabric 11 can be clothes, pants, the arm sleeve, a corset, and a bra, which are various wearing articles that can be worn on the human body. In this embodiment, the specific performance of the textile fabric 11 as the clothing with elastic fabric is taken as an example, and the first surface 111 is close to the side of the human skin.
[0035] Please refer to
[0036] The flexible substrate 121 has a strip shape and has a bearing surface 1211. The flexible substrate 121 is bonded to the first surface 111 of the textile fabric 11 with the other surface opposite to the bearing surface 1211. The material of the flexible substrate 121 can be silicon, polyurethane (PU), or Thermoplastic Polyurethane (TPU). In the embodiment, TPU is taken as an example for illustration, which can be combined with the first surface 111 of the textile fabric 11 by the hot-pressing process.
[0037] The flexible circuit board 122 has a bearing surface 1221 and an bonding surface 1222 that are disposed oppositely. The bearing surface 1221 has a plurality of electrodes and a conductive circuit. The bonding surface 1222 can be bonded and fixed to the bearing surface 1211 of the flexible substrate 121 by the adhesive.
[0038] The temperature sensing element 123 is disposed on the bearing surface 1221 of the flexible circuit board 122. In the embodiment, the temperature sensing element 123 may be a thermistor or other electronic components that can change electrical output with temperature changes, and are electrically connected to the electrode through a solder ball, a bump, or a conductive adhesive.
[0039] The patterned conductive circuit 124 is mainly disposed on the bearing surface 1211 of the flexible substrate 121, and is electrically connected to the temperature sensing element 123 on the bearing surface 1221 of the flexible circuit board 122. Wherein, the flexible circuit board 122 may be provided with the electrode on the bonding surface 1222, and is electrically connected to the electrode of the bearing surface 1221 through a through via hole or a blind hole. Accordingly, the patterned conductive circuit 124 can be electrically connected to the temperature sensing element 123 through the electrode on the bonding surface 1222, the through via hole or the blind hole, and the electrode on the bearing surface 1221. In the embodiment, the material of the patterned conductive circuit 124 may include Conductive silver paste, which may be formed on the bearing surface 1211 of the flexible substrate 121 by screen process or direct printing.
[0040] The flexible cover 125 is approximately similar to the flexible substrate 121 in appearance. The flexible cover 125 disposes on the flexible substrate 121, and at least part of the flexible circuit board 122, the temperature sensing element 123, and the patterned conductive circuit 124 are covered between the flexible cover 125 and the flexible substrate 121. The flexible cover 125 is also made of the same material as the flexible substrate 121, and can be silicone, polyurethane or TPU. In the embodiment, the material of the flexible cover 125 is TPU as an example, which can be combined with the flexible substrate 121 by the hot-pressing process.
[0041] Then, please refer to
[0042] Please refer to
[0043] The flexible substrate 131a is a strip shape and has a bearing surface 1311. The flexible substrate 131a is bonded to the first surface 111 of the textile fabric 11 with the other surface opposite to the bearing surface 1311. The patterned conductive circuit 134a is formed on the bearing surface 1311 of the flexible substrate 131a by the screen-printing process or directly printing. The flexible substrate 131a has the same structure, materials, and bonding methods as the flexible substrate 121 described above that includes connecting by direct hot-pressing process, connecting through the adhesive, connecting through the stud element, bolt element, and combinations thereof.
[0044] The stretch element 132a is formed by using silicone as the base material and mixing the conductive particles in the base material. In other embodiments, silicone can also be replaced with other elastic materials. The stretch element 132a is electrically connected to the patterned conductive circuit 134a on the flexible substrate 131a. The combining element 133a is, for example, the adhesive, so that the stretch element 132a is fixed to the first surface 111 of the textile fabric 11 by gluing. The adhesive is, for example, hot-melt adhesive (HMA), which can fix the stretch element 132a to the clothes by hot-pressing process. It is to be noted, in addition to the form of glue, the combining element can also be the combining element in the form of locking or snapping.
[0045] Other embodiments of the combining element 133a are, for example, a stud element or a bolt element. Please refer to
[0046] In addition, please refer to
[0047] The flexible strain sensing unit can be the flexible capacitive strain sensing unit in addition to the above-mentioned resistive mode. For a brief description, please refer to
[0048] In addition to the resistive and capacitive types described above, the flexible strain sensing unit can also be changed in other forms. The main feature is that its electrical characteristics will change with its length.
[0049] Then, please refer to
[0050] ECG measuring unit 14a has a flexible substrate 141, a sensing electrode sheet 142, and a patterned conductive circuit 143.
[0051] The flexible substrate 141 has a bearing surface 1411, and is bonded to the first surface 111 of the textile fabric 11 with the other surface opposite to the bearing surface 1411. The flexible substrate 141 has the same structure, materials, and bonding methods as the flexible substrate 131a described above that includes connecting by direct hot-pressing process, connecting through the adhesive, connecting through the stud element, bolt element, and combinations thereof.
[0052] The sensing electrode sheet 142 is disposed on the bearing surface 1411 at one end of the flexible substrate 141. A part of the sensing electrode sheet 142 is in contact with the bearing surface 1411, and a part of the sensing electrode sheet 142 protrudes from the flexible substrate 141. The sensing electrode sheet 142 can be joined by the adhesive and fixed to the bearing surface 1411 of the flexible substrate 141. In other embodiments, the sensing electrode sheet 142 can also be completely disposed on the bearing surface 1411 of the flexible substrate 141.
[0053] The patterned conductive circuit 143 is disposed on the bearing surface 1411 of the flexible substrate 141, and is electrically connected to the sensing electrode sheet 142. The material of the patterned conductive circuit 143 may include a conductive silver paste, which may be formed on the bearing surface 1411 of the flexible substrate 141 by the screen-printing process or directly printing. It is to be noted, for factors such as impedance matching, structural strength, or circuit layout optimization, the patterned conductive circuit 143 can be in a serpentine-like S-shape (such as
[0054] Please refer to
[0055] In this embodiment, the control unit 15 is joined to the first surface 111 of the textile fabric 11 by hot melt glue. In other embodiments, as shown in
[0056] The control unit 15 can include functions such as calculation, storage, and communication to perform subsequent processing on the signals sensed by the flexible temperature sensing units 12a-12b, the flexible strain sensing units 13a-13d, and the flexible ECG measuring units 14a-14d. Taking the strain sensing as an example, the flexible strain sensing units 13a-13d can measure the change of the stretch length of the stretch element during a unit time. The breathing rate of the user can be obtained after the change of the stretch length after a differential operation; the breathing intensity of the user can be obtained after the second differential operation; and the breathing volume of the user can be obtained after an integral operation. According to the above, it is possible to timely send out notifications to remind the user when an abnormal breathing rate or an abnormal breathing intensity occurs in the user through the change of the data.
[0057] The control unit 15 may communicate externally through a communication unit. The technology used by the communication unit may include Radio frequency identification (RFID), Near field communication (NFC), Zigbee, Narrow band internet of things (NB IoT), LoRa, Sigfox, Bluetooth Or Wi-Fi. Through the communication unit described above, the control unit 15 can transmit data to the electronic device designated by the user, such as but not limited to a mobile communication device, a terminal arithmetic device, or a cloud database. In the embodiment, an antenna of the communication unit can be formed on the printed circuit board or the flexible circuit board by screen-printed to be integrated into the control unit 15.
[0058] Please refer to
[0059] As mentioned above, the wearable physiologic state monitoring device disclosed in the present invention combines various flexible sensing units with special technical structures on the surface of the soft textile fabric. Since the sensing unit has sufficient flexibility and good electrical characteristics, it is easy to be integrated into daily necessities such as clothes or textiles. In this way, it can be ensured that the physiological signals of the human body are monitored in real time, so that abnormalities in the body can be detected early. In addition, when the sensing unit has the flexible substrate and the flexible cover, it can be ensured that the sensing unit can be cleaned with the textile fabric at the same time, which can further improve the convenience of the user.
[0060] The above embodiments merely give the detailed technical contents of the present invention and inventive features thereof, and are not to limit the covered range of the present invention. People skilled in this field may proceed with a variety of modifications and replacements based on the disclosures and suggestions of the invention as described without departing from the characteristics thereof. Nevertheless, although such modifications and replacements are not fully disclosed in the above descriptions, they have substantially been covered in the following claims as appended.