The invention relates to a polymer holder, an electrode system and manufacturing and handling methods of the polymer holder.
An electronic device, which measures biosignals such as ECG (ElectroCardioGram) and EEG (ElectroEncephaloGram), must be well contacted with the electrodes that are in contact with the body and mechanically reliably fixed to its support. The electronic device should also be easily removable from the support. A good attachment with easy detachment has not yet been discovered. Hence, there is a need for improvement.
The invention is defined by the independent claims. Embodiments are defined in the dependent claims.
Example embodiments of the present invention are described below, by way of example only, with reference to the accompanying drawings, in which
The following embodiments are only examples. Although the specification may refer to “an” embodiment in several locations, this does not necessarily mean that each such reference is to the same embodiment(s), or that the feature only applies to a single embodiment. Single features of different embodiments may also be combined to provide other embodiments. Furthermore, words “comprising” and “including” should be understood as not limiting the described embodiments to consist of only those features that have been mentioned and such embodiments may also contain features/structures that have not been specifically mentioned. All combinations of the embodiments are considered possible if their combination does not lead to structural or logical contradiction.
It should be noted that while Figures illustrate various embodiments, they are simplified diagrams that only show some structures and/or functional entities. The connections shown in the Figures may refer to logical or physical connections. It is apparent to a person skilled in the art that the described apparatus may also comprise other functions and structures than those described in Figures and text. It should be appreciated that details of some features are irrelevant to the actual invention. Therefore, they need not be discussed in more detail here.
In
A wall 104 of the polymer holder 100 forms a pocket 106, and the wall 104 follows an outer contour of the biosignal processing device 102. The pocket 106 is a free space or volume into which a part of the biosignal processing device 102 fits accurately. A degree of precision with which the surfaces of the biosignal processing device 102 and the polymer holder 100 are adapted to each other may be high enough to enable operation with one hand or without seeing the actual movement of processing device 102. A friction between an outer surface of the biosignal processing device 102 and an inner surface of the polymer holder 100 may keep the biosignal processing device 102 in the polymer holder 100 even under accelerations caused by sport activities or in upside down positions. The fit between the biosignal processing device 102 and the polymer holder 100 may be rather tight resulting in a suitable friction and suction force. Polymer material of the holder 100 is also slightly flexible and even stretchable which enables to achieve a suitable tightness and friction and suction force between the polymer holder 100 and the biosignal processing device 102. The pocket 106 has the wall 104 round the biosignal processing device 102 in a continuous hemispherical manner, which is more secure and efficient than a wall that has a shape of band round the biosignal processing device 102, for example. Still, the hemispherical wall 104 allows easy removal of the biosignal processing device 102.
The polymer holder 100 has a first aperture 108 for inserting the biosignal processing device 102 into the pocket 106 and removing the biosignal processing device 102 from the pocket 106. The size of the aperture 108 may vary but a size and a shape of a cross section of the aperture 108 and the biosignal processing device 102 are about the same.
However in an embodiment, the aperture first 108 may be larger because there may be a clearance between the biosignal processing device 102 and the polymer holder 100, the clearance allowing a free play between the biosignal processing device 102 and the polymer holder 100 at the first aperture 108. In an embodiment, the clearance may be less than 1 mm. In an embodiment, the clearance may be less than 0.1 mm. In any embodiment, the clearance may be less than 0.01 mm. In any embodiment having the clearance, the clearance may be larger than 0.001 mm.
In an embodiment, the cross section of the first aperture 108 and/or the pocket 106 may be a slightly smaller than that of the biosignal processing device 102, because the polymer holder 100 may stretch. In this manner, the friction between the polymer holder 100 and the biosignal processing device 102 may be made stronger.
The polymer holder 100 includes an electrically conductive contact structure 110 at a rear section 114 of the polymer holder 100 opposite to the first aperture 108. The electrically conductive contact structure 110 may be in a wired electric contact with electrodes 112, which are configured to receive the at least one biosignal. The biosignal may be generated by a human or animal. The electrically conductive contact structure 110 may be at least partly attached to the wall 104, directly or indirectly to hold structure 100 in place. The electrically conductive contact structure 110 is configured to connect electrically with a counterpart 116 of the biosignal processing device 102 in response to an insert of the biosignal processing device 102 into the pocket 106. The electrically conductive contact structure 110 is also configured to connect mechanically with the counterpart 116 which may increase friction and thus permanence, immobility and/or stability of the biosignal processing device 102 partly within the polymer holder 100. By having a proper wall 104 around the biosignal processing device 102 in a form of the pocket 106 and a good electric contact inside the pocket 106 makes the biosignal processing device 102 to stay in the pocket 106 effectively even in rapid movements. The biosignal processing device 102 is also easy to take out from the pocket 106, because it is only partly therein.
In an embodiment an example of which is illustrated in
In an embodiment, the electrically conductive contact structure 110 may comprise a female connector, and the female connector is configured to connect with a male connector of the biosignal processing device 102 in response to the insert of the biosignal processing device 102 in the pocket 106.
In an embodiment, the male connector may be a male USB connector (USB=Universal Serial Bus), and the female connector may be a female USB connector. In an embodiment, the male connector may be a male micro USB connector, and the female connector may be a female micro USB connector.
In an embodiment, the electrically conductive contact structure 110 is partly within a cover 118 of an elastic material. In an embodiment, the cover 118 may be molded, and the electrically conductive contact structure 110 may be left within the elastic material. In an embodiment, the molding process may be injection molding.
In an embodiment an example of which is illustrated in
In an embodiment an example of which is illustrated in
In an embodiment, the first polymer part 100A and the second polymer part 100B may be formed separately.
In an embodiment an example of which is illustrated in
In an embodiment an example of which is shown in
In an embodiment, the at least one lever 130 may be pushed forward and turn between the hinges 132, 134 in response to a pressure of the polymer holder 100 at the rear section 114. The lever 130 may turn between the hinges 132, 134. Then the lever 130 may move the piston 128 toward the first aperture 108 in response to the pressure. The piston 128 may then move the biosignal processing device 102 toward the first aperture 108.
In an embodiment an example of which is illustrated in
In an embodiment, the wall 104 of the polymer holder 100 may droop in response to the pressure. The mechanism 126 may then redirect the force of the pressure to a force toward the first aperture 108 in order to move the biosignal processing device 102 thereto. As can be seen in
In an embodiment an example of which is shown in
In an embodiment, the polymer holder 100 has extensions 200 at a farthest end from the first aperture 108 to ensure a good grip when the polymer holder 100 is squeezed.
In an embodiment an example of which is shown in
In an embodiment an example of which is shown in
An electrode system may comprises the polymer holder 100, the electrically conductive contact structure 110, the electrodes 112, and the biosignal processing device 102 which have already been disclosed above.
In an embodiment an example of which is shown in
In an embodiment of the manufacturing method, the electrically conductive contact structure 110 may be molded within an elastic material.
In an embodiment of the manufacturing method, a mechanism 126 is formed at the rear section 114, the mechanism 126 being configured to cause a force, to the biosignal processing device 102, directed toward the first aperture 108 in response to pressure against the polymer holder 100 at the rear section 114.
It will be obvious to a person skilled in the art that, as technology advances, the inventive concept can be implemented in various ways. The invention and its embodiments are not limited to the example embodiments described above but may vary within the scope of the claims.
This application is a continuation-in-part application of U.S. patent application Ser. No. 15/966,785, filed Apr. 30, 2018, which is incorporated by reference herein in its entirety.
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Number | Date | Country | |
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20190334304 A1 | Oct 2019 | US |
Number | Date | Country | |
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Parent | 15966785 | Apr 2018 | US |
Child | 16191170 | US |