ELECTRODE ARRANGEMENT FOR MEASURING ELECTRIC VOLTAGES
20220240827 · 2022-08-04
Inventors
Cpc classification
A61N1/0476
HUMAN NECESSITIES
A61B2503/12
HUMAN NECESSITIES
A61B5/266
HUMAN NECESSITIES
A61B5/257
HUMAN NECESSITIES
A61B2562/166
HUMAN NECESSITIES
A61B2562/164
HUMAN NECESSITIES
A61B2562/125
HUMAN NECESSITIES
International classification
A61B5/268
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
A61B5/257
HUMAN NECESSITIES
A61B5/266
HUMAN NECESSITIES
Abstract
An electrode arrangement measures electric voltages and currents in the human body and provides electro-simulation of the human body. The electrode arrangement contains an electrode array with a flexible support. A number of electrodes are arranged in a grid on the same side of the support and slots are disposed between the individual electrodes starting from the outer edge of the support. An elastic intermediate layer that has one recess for each electrode is provided, each recess defining a cavity to be filled with an electrically conductive gel.
Claims
1-14. (canceled)
15. An electrode configuration for measuring electrical voltages and currents in a human body and for electrical stimulation of the human body, the electrode configuration comprising: an electrode array with a flexible carrier and a plurality of electrodes disposed in a grid-shaped formation on a same side of said flexible carrier, said electrode array having slits formed therein starting from an outer edge of said flexible carrier and being disposed between individual ones of said electrodes; and an elastic intermediate layer which, for each of said electrodes, has a respective recess formed therein, wherein a cavity for filling with electrically conductive gel is in each case predefined by each said respective recess.
16. The electrode configuration according to claim 15, wherein said elastic intermediate layer has a first adhesive surface for arrangement on a body surface of a test subject and/or a second adhesive surface for arrangement on said flexible carrier of said electrode array.
17. The electrode configuration according to claim 15, wherein said elastic intermediate layer is formed from a flexible electrically insulating material.
18. The electrode configuration according to claim 15, wherein said electrodes of said electrode array are conductive.
19. The electrode configuration according to claim 15, wherein said flexible carrier of said electrode array is a flexible printed circuit board.
20. The electrode configuration according to claim 15, wherein said electrode array is configured for arrangement on a foot, on a chest and/or on a heart.
21. The electrode configuration according to claim 15, wherein said slits between individual ones of said electrodes of said electrode array are configured in such a way that said electrode array can be arranged on a curved body surface.
22. The electrode configuration according to claim 15, further comprising an amplifier configuration disposed on said flexible carrier, wherein said electrodes are connected to said amplifier configuration, and wherein provision is made that said amplifier configuration is disposed at a distance of less than 100 mm from a nearest one of said electrodes of said electrode array.
23. The electrode configuration according to claim 15, further comprising a switching unit connected to said electrode array, said switching unit configured to switch between an electrical stimulation of the human body via said electrodes and a measurement of the electrical voltages and the currents in the human body by means of said electrodes.
24. The electrode configuration according to claim 15, wherein each said cavity being filled with said electrically conductive gel, the electrode configuration is disposed on a body surface of a test subject.
25. The electrode configuration according to claim 15, wherein said elastic intermediate layer is covered by said elastic carrier of said electrode array.
26. The electrode configuration according to claim 15, further comprising a retaining layer disposed between said elastic intermediate layer and said electrodes of said electrode array, said retaining layer having a smaller cross-sectional area than said elastic intermediate layer, said retaining layer having contact openings formed therein, wherein said contact openings have a smaller cross-sectional area than said recesses of said elastic intermediate layer and wherein said contact openings correspond with said recesses in such a way that an electrically conductive connection is produced between said electrodes and said cavities.
27. The electrode configuration according to claim 17, wherein said flexible electrically insulating material is a foamed plastic.
28. The electrode configuration according to claim 18, wherein said electrodes are composed of gold, platinum, or an electrically conductive polymer.
29. The electrode configuration according to claim 21, wherein said slits between individual ones of said electrodes of said electrode array are configured in such a way that said electrode array can be arranged on a head of a test subject.
30. The electrode configuration according to claim 15, wherein said flexible carrier of said electrode array is a flex print.
31. The electrode configuration according to claim 22, wherein said amplifier configuration is disposed at a distance of less than 10 mm from a nearest one of said electrodes of said electrode array.
32. The electrode configuration according to claim 25, wherein said elastic intermediate layer is covered by said elastic carrier of said electrode array when the electrode configuration is disposed on a body surface of the test subject.
33. A method for applying the electrode configuration according to claim 15 to a body surface of the human body, which comprises the steps of: a) disposing a second adhesive surface of the elastic intermediate layer on the flexible carrier of the electrode array in such a way that the electrodes correspond with the recesses in the elastic intermediate layer; b) applying the electrically conductive gel to that side of the elastic intermediate layer facing away from the flexible carrier of the electrode array, in such a way that the cavities predefined by the recesses are completely filled, and removing excess parts of the electrically conductive gel; and c) disposing a first adhesive surface of the elastic intermediate layer on the body surface of the human body.
34. The method according to claim 33, which further comprises carrying out the steps a), b) and c) in a reverse order.
Description
[0030] In the drawings:
[0031]
[0032]
[0033]
[0034]
[0035] In the first exemplary embodiment in
[0036] In the exemplary embodiment shown in
[0037] In the exemplary embodiment in
[0038] Between the electrodes 11 arranged in a grid-like formation on the carrier 12, slits 13 starting from the outer edge of the carrier 12 are arranged between the individual electrodes. In the exemplary embodiment shown, the slits 13 extend through the outermost row of electrodes 11, as viewed from the edge of the carrier 12. However, this is by no means absolutely necessary, and the slits 13 can be chosen to be shorter, although, depending on the size of the carrier 12, they can also extend for example through two or more rows of electrodes. These slits 13 advantageously ensure that the carrier 12, designed as a flexible printed circuit board, can adapt to the body surface of a test subject 1, such that an electrode arrangement 100 of this kind can also be applied to curved body surfaces, as is shown for the head 2 of a test subject 1 in
[0039] However, an electrode arrangement 100 according to the invention can also be arranged on a foot, on the chest or on the heart. The dimensions of the carrier 10 and of the intermediate layer 20, and the length of the slits 13, are in this case adapted for the arrangement on the respective body surface.
[0040] As can also be seen in
[0041] When the electrode arrangement 100, as shown in
[0042] The intermediate layer 20 can be, for example, a skin-friendly double-sided adhesive tape, which has a thickness of about 1700 μm, for example. The recesses 21 for the electrodes 11 can be produced in the intermediate layer 20 by punching or laser cutting, for example. The recesses 21 can have the same size as the electrodes 11 or can be slightly larger such that the contact area between the conductive gel and the body surface or the skin of the test subject 1 is maximized, and at the same time the distance between the recesses 21 is large enough to avoid an electrical short circuit.
[0043] Cavities 210, which are predefined by the recesses 21, can be filled with electrically conductive gel in order to establish the best possible electrical contact with the body surface. The volume of such a cavity 210 is defined by the cross-sectional area of the respective recess 21 and the thickness of the intermediate layer 20.
[0044] A method according to the invention for applying an electrode arrangement 100 according to the invention to the body surface of a test subject 1 will now be described below. As can be seen from
[0045] The first cover layer 24 protects the first adhesive surface 22 from soiling that could impair the adhesive effect.
[0046] As can also be seen from
[0047] In a method according to the invention for applying an electrode arrangement 100 to a body surface of the human body, the second adhesive surface 23 of the intermediate layer 20 is firstly arranged on the carrier 12 of the electrode array 10 in such a way that the electrodes 11 correspond with the recesses 21 in the intermediate layer 20, such that electrical voltages or currents can be measured through the recesses 21. If the second adhesive surface 23 of the intermediate layer 20 is covered by a second cover layer 25, the latter is firstly pulled off in order to establish the connection between the intermediate layer 20 and the carrier 12 of the electrode array 10.
[0048] Thereafter, electrically conductive gel is applied to that side of the intermediate layer 20 facing away from the carrier 12 of the electrode array 10, in such a way that the cavities 210 predefined by the recesses 21 are completely filled, and excess gel is then removed, for example with a card.
[0049] Then, if it is present, the first cover layer 24 which covers the first adhesive surface 22 of the intermediate layer 20, and in which the openings 26 corresponding with the recesses 21 in the intermediate layer 20 are arranged, is pulled off. This ensures that the electrically conductive gel is present exclusively in the recesses 21, such that electrical short circuits between the electrodes 11 are avoided.
[0050] Thereafter, the intermediate layer 20 is arranged with the first adhesive surface 22 on the body surface of the test subject 1, as is shown in
[0051] In this way, rapid fitting of a large number of electrodes 11 can be achieved, since they are arranged together on the carrier 10 and, moreover, the electrically conductive gel does not have to be introduced separately into each recess 21.
[0052] A method according to the invention for applying an electrode arrangement can advantageously also be carried out in the reverse order, i.e. the intermediate layer 20 is firstly placed on the body surface of the human body, and then the carrier 12 of the electrode array 10 is connected to the intermediate layer 20.
[0053] By putting a large number of electrodes 11 in place, a large amount of EEG data can be obtained without, for example, the brain of the test subject 1 having to be opened, such that it is also possible, for example, to determine or precisely localize dipoles in the brain of the test subject 1. This is particularly helpful, for example, for determining epilepsy markers in the brain and for in this way localizing regions of the brain for possible surgical treatment.
[0054] If a first cover layer 24 and a second cover layer 25 are arranged on the intermediate layer 20 in the starting state, the electrically conductive gel can also be introduced into the recesses 21 or cavities 210 during the process of manufacturing the intermediate layer 20 and can be enclosed with the cover layers 24, 25 so that subsequent introduction is not necessary. In this case, a further cover layer can be arranged over the first cover layer 24, which further cover layer prevents the gel from running out of the recesses 21 or the cavities 210.
[0055] After use, the intermediate layer 20 can be detached from the electrode array 10 or from the flexible carrier 12, and the electrode array 10 can be cleaned so that it can then be reused. In the exemplary embodiment in
[0056] Optionally, the electrode arrangement 100 can also comprise a retaining layer arranged between the elastic intermediate layer 20 and the electrodes 11 of the electrode array 10. Such a retaining layer has a smaller cross-sectional area than the elastic intermediate layer 20. In this way it is ensured that, for example, a sufficiently large region of the second adhesive surface 23 remains free and the intermediate layer 20 can be reliably connected or glued to the carrier 12 of the electrode array 10.
[0057] The retaining layer has contact openings which have a smaller cross-sectional area than the recesses 21 of the intermediate layer 20, such that, on the one hand, electrically conductive gel located in the cavities 210 is retained and does not leak.
[0058] On the other hand, an electrically conductive connection between the electrodes 11 and the cavities 210 or the electrically conductive gel present in the cavities 210 and thus to the body surface of the test subject 1 can be established through the contact openings if the retaining layer is arranged between the intermediate layer 20 and the electrodes array 10 in such a way that the contact openings correspond with the recesses 21 of the intermediate layer 20.
[0059] In this context, “correspond” is to be understood as meaning that in each case a part of the cross-sectional area of a recess 21 is congruent with the cross-sectional area of a contact opening such that, for example, electrically conductive gel from the respective cavity 210 contacts the respective electrode 11 through the retaining layer. This can be achieved, for example, when the center points of the cross-sectional areas of the contact opening and of the recess coincide.
[0060] Furthermore, the elastic intermediate layer 20 can optionally also be formed without adhesive surfaces 22, 23 or with only one adhesive surface. In this case, the electrode arrangement 100 can be fixed to the body surface of a test subject 1 using self-adhesive medical dressing material, for example. The dressing material is fixed, for example, on the carrier 12 or is stretched across the carrier 12 and affixed to the body surface in question, such that the intermediate layer 20 is also securely fixed to the body surface.
[0061] Optionally, an electrode arrangement 100 according to the invention can also comprise a switching unit, which serves to switch between a measurement and a stimulation by means of the electrodes 11. In this way, either a measurement of electrical voltages and currents in the human body can take place or the relevant body surface can be stimulated.
[0062]
[0063]
[0064]
[0065]
[0066] For example, as is shown in