A Bra for Measuring a Physiological Signal

20200146627 ยท 2020-05-14

Assignee

Inventors

Cpc classification

International classification

Abstract

A bra for measuring a physiological signal from a body of a user wearing the bra comprises first and second front portions, or bra cups portions. The bra also comprises first and second side wings, wherein the first side wing is coupled with the first front portion and the second side wing is coupled with the second front portion. In addition the bra comprises a measuring device and/or at least two electrodes, where the measuring device or at least one electrode is arranged to a module, and the module forms at least a basis of the first side wing of the bra or even the first side wing of the bra as its entirety.

Claims

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21. A bra comprising: a measuring device for measuring a physiological signal from a body of a user wearing said bra; a first front portion and a second front portion; a first side wing and a second side wings; wherein the first side wing is coupled with the first front portion and the second side wing is coupled with the second front portion; wherein said measuring device is arranged on a module; and wherein the module forms at least a basis of the first side wing of the bra.

22. The bra of claim 21, wherein the measuring device is at least two electrodes, where said at least two electrodes are arranged to the first side wing.

23. The bra of claim 22, further comprising: connectors and leads, said leads being arranged to couple said at least two electrodes and connectors electrically to each other, wherein said connectors and leads are arranged into said first side wing.

24. The bra of claim 23, wherein said connectors and leads are arranged to the module and wherein said module is integrated to said bra as said first side wing.

25. The bra of claim 22, wherein said at least two electrodes are arranged to a module and wherein said module is integrated to said bra as said first side wing.

26. The bra of claim 22, wherein said at least two electrodes are one of a dry or wet moistened electrode.

27. The bra of claim 21, further comprising: a processing unit, transmitter, and power source arranged into said first side wing.

28. The bra of claim 25, wherein said processing unit, transmitter, and power source is arranged to the module, and wherein said module is integrated to said bra as said first side wing.

29. The bra of claim 21, wherein said bra is one of a daily worn bra or leisure bra.

30. The bra of claim 21, wherein said bra is for measuring electric signal from a body of a user wearing said bra, and wherein the electric signal is at least one of an electrocardiogram signal for heart rate detection, bioimpedance, and an electro dermal activity signal.

31. The bra of claim 21, wherein said measuring device is at least one of optical, temperature, or strain gauge integrated to the first side wing.

32. The bra of claim 21, wherein said module forms at least a major portion of the first side wing of the bra.

33. A method for manufacturing a bra, said bra configured for measuring a physiological signal from a body of a user wearing said bra, the method comprising: providing first and second front portions and a first and second side wings, and coupling the first side wing with the first front portion and the second side wing with the second front portion; providing a measuring device for measuring said physiological signal; and providing said measuring device to a module, wherein the module forms at least a basis of the first side wing of the bra.

34. The method of claim 33, wherein the measuring device is at least two electrodes and the method further comprising: providing said at least two electrodes to the first side wing wherein a positive electrode is between a negative electrode and the first front portion of the bra.

35. The method of claim 34, further comprising: providing connectors and leads; and coupling said at least two electrodes and connectors electrically by said leads so that said connectors and leads are arranged into said module, said module forming said first side wing.

36. The method of claim 34, further comprising: providing said connectors and leads to said module; integrating said module to said bra as said first side wing.

37. The method of claim 36, further comprising: providing a data measuring, transmitter, and power source into said module, said module forming said first side wing.

38. The method of claim 33, further comprising: providing a data measuring, transmitter, and power source into said module, said module forming said first side wing.

39. The method of claim 33, wherein the measuring device is at least two electrodes and the method further comprising: integrating said module to said bra as said first side wing.

40. The method of claim 33, wherein said module forms the first side wing of the bra in its entirety.

Description

BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Next the invention will be described in greater detail with reference to exemplary embodiments in accordance with the accompanying drawings, in which:

[0022] FIG. 1 illustrates a principle of an exemplary bra for measuring a physiological signal according to an advantageous embodiment of the invention;

[0023] FIG. 2 illustrates an exemplary bra for measuring a physiological signal with a module wing structure according to an advantageous embodiment of the invention;

[0024] FIG. 3 illustrates an exemplary module wing structure for a bra for measuring a physiological signal according to an advantageous embodiment of the invention; and

[0025] FIG. 4 illustrates another example of the bra for measuring a physiological signal with a module wing structure according to an advantageous embodiment of the invention.

DETAILED DESCRIPTION

[0026] FIGS. 1 and 2 and 4 illustrate a principle of an exemplary bra 100 for measuring a physiological signal according to an advantageous embodiment of the invention, where the bra 100 comprises first (left) 103 and second (right) 104 front portions, where the bra cups locate. In addition the bra comprises also first (left) 101 and second (right) 102 side wings. As can be seen in the Figures the first end of the left side wing 101 is coupled with the first front portion 103 and the first end of the second side wing 102 with the second front portion 104. The second ends of the side wings 101, 102 are extended so that they can be connected to each other in the back side of the used during the use.

[0027] The measuring device and/or the electrodes 105, 106 is/are arranged to the first 101 side wing of the bra. The electrodes 105, 106 can be located such that a positive electrode 105 is integrated into the fabric just left to the left side cup 103. The negative electrode 106 is integrated into the fabric that extends over the left side of the body towards the back. The electrode location is next to the bra back hook-loop mechanism 112. This electrode setup measures nearly the same amplitude ECG as from the usual front electrode positions, and can be used to detect heart rate reliably. In order for the daily worn bra to be comfortable, the side fabrics joining the cups and encircling the body need to allow equal stretch. The conductive lead fabric can be attached to the fabric using non-continuous heat bonding membranes, which can be for example perforated material or having through holes or punctures through the material and/or attached only via spot-like locations (i.e. not attached uniformly and continuously in every points).

[0028] The bra comprises also conductive lead material 107 integrated to the first side wing 101 material. The bra comprises also connectors 108 and leads 107 for electrically coupling the electrodes 105, 106 and connectors 108. The connectors and leads are both arranged to the first side wing 101, as can be seen in FIGS. 1, 2 and 3. In addition the bra may also comprise a data measuring or processing unit 109, transmitter 109 and/or power source 110, which are also advantageously arranged to the first side wing 101.

[0029] FIGS. 2 and 3 illustrate an exemplary module wing structure 111 for a bra 100 for measuring a physiological signal according to an advantageous embodiment of the invention, where it can be seen that the measuring devices or electrodes 105, 106, connectors 108, leads 107 as well as measuring and processing unit 109, transmitter 109 and/or power source 110 can be arranged to the module 111. The module 111 can form said first side wing 101 as such or a portion of the first side wing 101, which can then be integrated to the bra 100 as the first side wing 101 as such or as a portion of the first side wing 101. The module 111 can be integrated e.g. by sewing or laminating, and it can comprise a suitable area, such as peripheral band or strip for integration process.

[0030] FIG. 4 illustrates very similar bra construction for measuring a physiological signal with a module wing structure according to an advantageous embodiment of the invention as is depicted in FIG. 2. In FIG. 4 it is still emphasized that the module forms the bearing structure or major portion of the first side wing of the bra, but still there might be a trim or stitching ribbon 113 or other minor portion added for example to support and fasten the module to the other structure of the bra.

[0031] The invention has been explained above with reference to the aforementioned embodiments, and several advantages of the invention have been demonstrated. It is clear that the invention is not only restricted to these embodiments, but comprises all possible embodiments within the spirit and scope of the inventive thought and the following patent claims.

[0032] The features recited in dependent claims are mutually freely combinable unless otherwise explicitly stated. Especially it should be noted that the measuring device located in the left side wing may comprise electrodes and suitable leads and connectors, as well as other measuring components.