Smart Sensing Textiles

A stretchable textile product with integrated electrodes and flexible patches, supported by a fastening element, addresses the challenges of robustness and personalization in wearable electronics, ensuring reliable signal transmission and adaptability to diverse body shapes and uses.

JP2025537549APending Publication Date: 2025-11-18NEDERLANDSE ORG VOOR TOEGEPAST NATUURWETENSCHAPPELIJK ONDERZOEK TNO
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Patent Information

Application Number
JP2025526220
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2022-11-07
Filing Date
2023-11-06
Publication Date
2025-11-18

AI Technical Summary

Technical Problem

Existing wearable electronic products face challenges in providing reliable, reusable, and adaptable textile solutions for measuring or applying electrical signals to human skin, particularly in terms of robustness, washability, and personalization to various body shapes and types.

Method used

A stretchable textile product with integrated skin-contact electrodes and flexible patches, supported by a fastening element, allows for conformable fitting and stable electrical interconnection, enabling reliable signal transmission and adaptability to different body shapes and uses.

Benefits of technology

The solution provides improved robustness, reusability, and personalization, ensuring accurate signal measurement or application while minimizing wear and tear, and allowing customization for multiple users and applications.

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Abstract

The present disclosure relates to a wearable electronics product (1), a method of use, and a kit of parts. The product includes a stretchable textile product (2) including at least one skin-contact electrode (5-1) for contacting a wearer's skin, and a flexible patch (4) supporting an electronic component (42) connected to a flexible contact terminal (7-1) of the flexible patch (4). The skin-contact electrode comprises an electrically conductive stretchable textile (15-1) bounded by an electrically insulating stretchable textile (17). The wearable electronics product includes a fixation element (9) that removably attaches the flexible patch (4) along an outer surface (23) of the stretchable textile and applies a contact pressure F at an overlapping portion of the skin-contact electrode and the contact terminal, thereby maintaining an electrical interconnection between the skin-contact electrode and the contact terminal (7-1) at least during wear.
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Description

[Technical Field]

[0001] The present disclosure relates to wearable electronic products, methods of using wearable electronic products, kits, and individual components for assembling wearable electronic products. [Background technology]

[0002] Measuring or applying an electrical signal (e.g., a biosignal) to a subject's skin typically requires attaching electrodes (e.g., self-adhesive electrodes) to the skin at one or more (usually multiple) relevant locations and connecting associated electronics to the electrodes. When monitoring a bodily function, such as an ECG signal, respiration (e.g., bioimpedance), or stress level (e.g., skin conductance), it is important to accurately position skin contact sensors at desired locations on the body. The placement of these locations relative to one another varies from person to person, e.g., by body type, and / or by application.

[0003] Patent document 1 discloses a textile device having first and second conductive portions integrated therein, the device also comprising an electrical element having a first contact pad electrically connected to the first textile portion and a second contact pad electrically connected to the second textile portion, the first and second textile portions adapted to supply power to the electrical element.

[0004] Patent Document 2 discloses a garment made of a fabric shell that houses a conductor connectable to at least one of a plurality of electronic devices stored in each pocket of the fabric shell.

[0005] US Patent No. 5,949,693 discloses a modular wearable circuit consisting of any number of garments that can cooperate as complementary garments in a set, each consisting of an integrated conductive network and electronic components.

[0006] Patent Document 4 discloses a textile product that incorporates a skin-contacting element and / or electrodes and functions as a sensor for measuring bodily functions. Specifically, it discloses a technology for connecting the skin-contacting element to an electronic measurement and evaluation unit.

[0007] Patent Document 5 discloses a textile-based ECG sensor system including a non-conductive substrate having textile-based sensors disposed on a first surface thereof and insulated by a second surface thereof. Each of the textile-based sensors includes conductive textiles that cross each other. Conductive traces are connected to each of the textile-based sensors to transmit and receive signals from an electronic controller.

[0008] While one or more of the above-described products may mitigate the drawbacks associated with conventional attachment of electrodes to a subject's skin, there remains a need for textile products that enable reliable measurement / application of electrical signals to / from human skin, particularly those that offer one or more of the following: improved robustness, such as washability or reusability; improved wearability; and improved functionality, such as personalization to specific body shapes and body types. [Prior art documents] [Patent documents]

[0009] [Patent Document 1] International Publication No. 2015 / 067626 [Patent Document 2] International Publication No. 2001 / 095752 [Patent Document 3] International Publication No. 2006 / 035385 [Patent Document 4] US Patent Application Publication No. 2019 / 297961 [Patent Document 5] International Publication No. 2020 / 099906 Summary of the Invention [Means for solving the problem]

[0010] The present disclosure aims to alleviate the shortcomings of known products and / or provide products that address the needs described above. As will become apparent from the following disclosure, the present disclosure relates to textile products that are more robust in use, more reusable, and / or adaptable to various body types and various uses.

[0011] In particular, the present disclosure provides smart textile products with improved robustness to normal wear and tear such as washing, stretching, folding, flexing, handling, etc. over their lifetime, while maintaining at least the accuracy of electrical signal transmission to / from the skin.

[0012] According to one aspect of the present invention, a wearable electronics product is provided. The product comprises a stretchable textile product, a flexible patch, and a fastening element. The stretchable textile product is configured to conformably fit around a body part of a wearer. The stretchable textile product includes at least one skin-contact electrode. The skin-contact electrode is bounded by an electrically insulating stretchable textile to electrically insulate the skin-contact electrode from adjacent skin-contact electrodes. The skin-contact electrode is comprised of a conductive composition, typically a conductive stretchable textile. The skin-contact electrode has a first surface extending along the interior of the textile product and a second surface extending along the exterior of the textile product. The skin-contact electrode, e.g., a conductive textile, provides a conductive path between opposing surfaces of the textile product, e.g., between opposing first and second surfaces (the skin-facing surface and the outer surface) of the skin-contact electrode. Thus, the skin-contact electrode can be understood to form an element for contacting the body / wearer's skin, at least during wear.

[0013] In a preferred embodiment, the stretchable textile product is a garment, such as a base layer garment, intended for direct contact with the wearer's skin. Alternatively, the textile product may be an intermediate product, such as a textile sheet, bandage, or inlay, intended for direct contact with the wearer's skin, for example by placing the sheet under a base layer garment.

[0014] The wearable electronics product further comprises one or more electronic components, at least while being worn. These components may include components that provide functionality to the device, including, but not limited to, one or more of: sensor(s), actuator(s), processor(s), and / or elements for powering the component(s) (such as a battery). The components may be provided on one or more PCBs. The PCBs may include wireless communication components (I / O devices), for example, Bluetooth or wireless wifi modules.

[0015] One or more electronic components are typically supported by one or more flexible patches and are typically operatively connected to one or more flexible contact terminals of the flexible patches by flexible wiring, e.g., conductive tracks printed or otherwise formed on the patches.

[0016] The wearable electronics product further comprises a fastening element configured to removably mount (attach and detach) the flexible patch along the outer side of the stretchable textile product. The mount is advantageously configured to apply contact pressure at the location of overlap between the outer surface of the skin-contact electrode and the contact terminal. In this way, an electrical interconnection is formed between the skin-contact electrode and the contact terminal, at least during wearing. In a preferred embodiment, even the fastening element can be provided in the form of a replaceable consumable item.

[0017] The stretchable textile product, in particular the electrically conductive stretchable textile and its electrically insulating stretchable textile portion, allows for a snug fit around the relevant body part of the wearer, mitigating potential relative movements of the skin-contact electrodes to the skin, even during wearer's movements / movements. At the same time, the fixation elements can advantageously fix the relative position between the electrically insulating stretchable textile and the contact terminals of the supported patch, thus realizing a stable and reliable electrical interconnection between one or more electronic components and the skin.

[0018] The conductive stretchable textile can include one or more metal-based yarns. Advantageously, conductive yarns can be interwoven with non-conductive yarns to form conductive and non-conductive portions of the textile product, respectively. Preferably, the conductive stretchable textile is comprised of metal or metal-plated conductive textile or yarn. Silver is a particularly preferred material, due to its excellent antibacterial properties and skin compatibility. Alternatively or additionally, the skin-contact electrode may be comprised of a conductive coating, such as a flexible polymer-based matrix or other composition containing a conductive filler, as known in the art. Flexible conductive coatings, such as silicone-based coatings containing conductive fillers, can be particularly advantageous for reducing the contact resistance of one or more of the skin-facing and outward-facing sides of the skin-contact electrode. In some embodiments, the skin-contact electrode can provide anisotropic conductive properties, consisting of isolated portions or islands of conductive stretchable textile integrally formed, for example, by sewing, weaving, bonding, etc., with a layer of non-conductive, insulating stretchable textile.

[0019] Supporting the electronic components along the outer surface of the textile product improves comfort during wear and minimizes interference with conformal contact between the skin and the skin-contact electrodes during wear. An advantage of removably fastening the flexible patch to the outside of the textile product is that only the textile product needs to be biocompatible, particularly skin-compatible. Other components, including the flexible patch, its contact terminals, and / or wiring, can be, but do not need to be, biocompatible, particularly skin-compatible, because the configurations disclosed herein advantageously avoid direct skin contact of these components. This allows for greater flexibility in the selection of materials / compositions for these components.

[0020] By providing a removably attachable fastening element on the exterior of the stretchable textile product, the fastening element can be used to removably attach a patch to the textile product. Removably attaching may be understood as removably, detachably, non-permanently or repeatedly attaching, fastening, securing or attaching the fastening element and / or patch to the exterior of the textile product.

[0021] By providing a fastening element for removably attaching the flexible patch along the exterior of the stretchable textile product to the wearable electronics product, a user can remove the flexible patch having the contact terminals and circuitry from the textile product when desired. Thus, the flexible patch can be removed from the textile product before washing the textile product. Providing a fastening element for removably fastening the flexible patch to the textile product further results in a robust and flexible wearable electronics product, interchangeability between various textile products and flexible patches, and improved washability of the textile product.

[0022] As described herein, when operably connected to skin-contact electrodes, the flexible patch can have a variety of applications. The skin-contact electrodes can be used as input electrodes or output electrodes. In a scenario in which the flexible patch operates as a sensor, for example, to measure a response (surface potential) from the wearer's skin, the skin-contact electrodes can operate as input electrodes and provide input from the user's skin to the flexible patch. In an alternative scenario in which the flexible patch operates as an actuator, for example, to apply a potential difference to the wearer's skin for electrical stimulation, the skin-contact electrodes can operate as output electrodes and provide output from the flexible patch to the wearer's skin.

[0023] As provided by the present disclosure, the flexible patch can be detached from the textile device and reattached to a different functional target or target area or portion of the textile product. The wearable electronics product can be disassembled and reassembled for different uses, including use on different body parts of the same wearer or a different wearer. As will become apparent from this specification, the modularity of the system can further enable personal adjustment and / or more precise (re)positioning of the flexible patch along the target area. For example, to measure an ECG signal, a flexible patch can first be assembled in an area of ​​the textile product corresponding to the wearer's heart location. The flexible patch can then be detached and reassembled (e.g., with a different or additional flexible patch) in a different area of ​​the textile product, for example, to monitor or electrically stimulate muscles.

[0024] Alternatively, or in addition, a wearable electronics product can be disassembled and reassembled for use by a different wearer having a different body shape than the previous wearer. An advantage of removably fastening a flexible patch to a textile product is that it allows the same wearable electronics product to be reused for multiple wearers with different body shapes / sizes / physiologies. Furthermore, the same flexible patch can be adapted to multiple different textile products. The reusability and compatibility of the flexible patch across multiple different applications, body parts, textile products, and body shapes enhances the customization and personalization of wearable electronics products.

[0025] The skin-contact electrodes and the surrounding textile are preferably durably joined into a single element, for example by stitching, gluing, weaving, or knitting, to form an integral part of the stretchable textile product, a single sheet. Preferably, the conductive stretchable textile and the electrically insulating stretchable textile are seamlessly formed as a continuous textile, preferably a woven, nonwoven, or knitted fabric. Seamlessly joining the conductive and insulating portions of the textile product as a single continuous textile sheet, preferably a woven, nonwoven, or knitted textile, reduces the number of potential pressure points during wear, thus improving comfort and fastening. Seamless textile products also allow for more uniform stretchability throughout the textile product, since stiff or poorly stretchable seams are avoided. Preferably, at least the electrically insulating stretchable textile is a so-called 4D stretchable textile. 4D textiles, such as 4D-Knit, are fully variable in shape, position, and height. More preferably, both the electrically insulating stretchable textile and the electrically conductive stretchable textile are stretchable in 4D.

[0026] In a preferred embodiment, the flexible patch comprises a plurality of contact terminals and the stretchable textile product comprises at least a corresponding number of skin-contact electrodes, whereby the skin-contact electrodes and the contact terminals are mutually configured to provide an electrical interconnection between each contact terminal and a separate one of the skin-contact electrodes.

[0027] It will be understood that the number of skin-contact electrodes and contact terminals may depend on the intended application. The patch may be any patch known in the art, for example, a patch configured to measure a signal, such as a potential difference between two contact terminals, for ECG, EEG, or EHG measurements. For example, for ECG measurements in a configuration having at least three skin electrodes (e.g., three, five, or seven), contact electrodes and corresponding contact terminals may be provided. In other embodiments, the flexible patch is configured with four or more contact terminals. For some applications, such as subcutaneous muscle stimulation, a different number of skin-contact electrodes, for example, one, may be sufficient. It will be understood that a wearable electronics product may provide multiple individualized patches that collectively provide single or multiple functionalities as described herein.

[0028] In yet another or further embodiment, a stretchable textile product comprises a plurality of skin-contact electrodes, each electrically separated or insulated from its neighbors, arranged in an array. The array defines a functional area of ​​the stretchable textile product, whereby the skin-contact electrodes are sized and spaced such that contact terminals overlap the skin-contact electrodes and any additional contact terminals overlap mutually exclusive ones of the skin-contact electrodes. Advantageously, the functional area of ​​the textile product covered by the conductive array can be larger than a target measurement area or target area along the skin of the body part known to correspond to a target biosignal of the body part. By providing a plurality of skin-contact electrodes covering a functional sensing and / or stimulation area larger than the target area of ​​the body part, the textile product can be adapted to different body shapes of different users.

[0029] Furthermore, flexible patches, i.e., flexible patches operatively connected to a textile product, can have various dimensions and / or different arrangements and orientations of contact terminals. Thus, by sizing the functional area larger than the target measurement or target area, the textile product can be adapted to many different flexible patches, thereby enhancing the customization and personalization of wearable electronic products.

[0030] In some preferred embodiments, the flexible patch comprises a flexible carrier and supports or consists of one or more contact terminals as defined herein. The flexible patch comprises or is supported on one or more electronic components. Alternatively, or in addition, the flexible patch can comprise a circuit that operatively connects one or more contact terminals to one or more electronic components. Advantageously, the flexible patch can conform to the wearer's body part to which it is applied, improving the overall comfort of the wearable electronic product. Advantageously, the patch need not be stretchable. The patch can be a disposable patch, e.g., a single-use patch. In more preferred embodiments, the patch is a reusable patch. The circuit, and optionally the contact terminals, can comprise a flexible or stretchable ink printed circuit applied to the flexible carrier. The contact terminals and / or the flexible patch can comprise a patterned shape with holes or discontinuities, e.g., perforations, spirals, grids, etc., to enhance flexibility and breathability. The electronic components may be one or more selected from the list of PCB, battery, electronic actuator, vibration motor, LED, sensor, and / or photodiode. Advantageously, the patch does not need to be washable, as it can be removed before washing. The patch can be disposable or reusable. Preferably, the patch and / or the textile product are reusable. For scalability, the patch can be manufactured in a similar manner to health patches. That is, the patch can be composed of a flexible or stretchable ink printed circuit, preferably on a plastic foil, such as TPU or PET.

[0031] Advantageously, all electronic components and associated circuitry can be located on the flexible patch. By confining all wiring and circuitry to the removable patch, an advantageous modular design is achieved. The absence of wiring and / or circuitry in the textile allows all wiring and / or circuitry to be removed from the textile along with the patch, allowing the textile to be easily washed without damaging delicate or water-sensitive circuitry. The absence of electronic components or circuitry between the skin and the textile limits wear due to friction, improving the lifespan of the textile. Of course, the reader need not be a printed, electronic, or patch; a mixed solution or wire is also contemplated.

[0032] In a preferred embodiment, the fastening element overlaps the flexible patch and exerts a fastening pressure normal to the textile product at least at each of the electrical interconnections. The fastening element can be, for example, a pocket or a strap. Advantageously, the fastening element can also be a modular element that is removably attachable to the textile product depending on the position of the flexible patch. Providing a removably attachable fastening element allows for greater flexibility in terms of the position of the flexible patch, and accordingly allows for greater versatility and customization of the wearable electronics product as a whole, allowing for greater personalization.

[0033] By providing a fixation element that covers, preferably completely covers, the flexible patch, the flexible patch can be shielded from external contact, protecting the flexible patch, components and / or wiring from external interference, improving sensing robustness, and improving the general visual aesthetics of the wearable electronic product as the flexible patch can be hidden from view.

[0034] Means for removably attaching the fastening element to the textile product may include snap connectors, adhesives (e.g. tape), clamps, non-permanent or releasable adhesives, magnets or hook-and-loop fasteners. Alternatively or additionally, said means may be understood to form the fastening element or to at least partially contribute to fastening the flexible patch to the stretchable textile product.

[0035] According to a further aspect of the present invention, there is provided a method of using the wearable electronics products described herein, the method comprising the step of wearing a stretchable textile product on a body part of a subject, wherein the textile product conformably follows the curvature of the body part such that a functional area of ​​the stretchable textile product defined by the skin-contact electrodes of the stretchable textile product and one or more further skin-contact electrodes (if present) covers a target area of ​​the body part. The target area may be an area along the wearer's skin that is known to correspond to a location for receiving a target bio-signal of the body part and / or that is known to correspond to a location for applying electrical stimulation to the body part.

[0036] The method typically further includes attaching a flexible patch along the exterior of the stretchable textile product within the periphery of the target area, thereby forming an electrical interconnection between each contact terminal and a separate one of the skin-contact electrodes. The patch is preferably placed at the relevant site while the textile product is worn by the user. The patch is secured in the relevant position by a securing means. In some embodiments, the patch can simply be inserted, e.g., slid between the exterior surface of the textile product and the securing means, for example, if the securing means is pre-attached to a pocket or strap.

[0037] In some embodiments, the method can include the further step of removably attaching the fastening element to the exterior of the textile product, preferably after application, so that the fastening element covers the target area.

[0038] The method may include the additional step of identifying a target area within the functional area of ​​the textile product. For example, if the target vital signs are ECG signals, the target area may correspond to a location near the wearer's heart. Wearing the flexible patch while wearing the textile product allows the target area to be visually identified, thereby improving the user's accuracy in positioning the flexible patch.

[0039] Optionally, a conductive paste, preferably a non-permanent conductive adhesive, may be provided between one or more of the skin-contact electrodes and one or more of the contact terminals, thereby improving the robustness and integrity of the electrical connection.

[0040] In a preferred method, attaching, preferably reversibly attaching, the fastening element to the textile product, i.e., attaching, can include providing an adhesive along at least the edge of the fastening element before contacting the fastening element with the textile product, the adhesive preferably being a non-permanent adhesive, such as a removable adhesive tape or an adhesive that can be re-detached during washing.

[0041] Attaching the fastening element to the textile product preferably involves contacting the pocket with the textile product while the pocket and / or textile product are in a nested or similar pre-stretched state. By attaching a fastening element, such as a pocket or strap, to the outside of the stretchable textile product while the textile product is being worn by the wearer, the user can more easily attach the fastening element in such a way that the resulting fastening pressure maintains electrical connection between the skin, the skin-contact electrodes, and the contact terminals. By attaching a flexible patch to the outside of the stretchable textile product after the textile product has been worn on a part of the wearer's body, the full range of stretchability of the textile product can be utilized without being limited by stiff or less flexible electronic components. By detaching the flexible patch from the flexible textile when worn, damage to the patch due to stretching, bending, and handling is mitigated.

[0042] It will be appreciated that one or more, or all, of the steps of applying the textile product, applying or positioning the flexible patch, releasably attaching the fixation element, and / or identifying the associated location may be performed by a user. Alternatively, or in addition, some or all of the steps may be performed by or under the guidance of a medical professional. A set of instructions may be provided to guide the user / professional.

[0043] Depending on the application, the method may further include receiving a biosignal, preferably a vital sign, or applying an electrical stimulus. By coupling the patch to an output device, the received biosignal may be output in a manner that can be interpreted by a user, e.g., a healthcare professional, or the wearer.

[0044] It will be appreciated that embodiments of textile products having an array of skin-contacting electrodes as disclosed herein are particularly preferred for achieving modular products.

[0045] Preferably, the textile product is dimensioned to provide a tight fit so that contact between the wearer's skin and the skin-contact electrodes is maintained, improving the accuracy of the signal measured by the flexible patch. Tight fit in the context of a textile product means that the textile product exerts a force normal to the surface of the wearer's skin as a result of the tensile forces present in an extensible textile when the textile product is in a stretched state around a body part.

[0046] According to another or further aspect of the present invention, a kit of parts for assembling the wearable electronics product disclosed herein is provided. The kit comprises a stretchable textile product, a patch, a fastening element, and optional instructions for using the wearable electronics product. The instructions may recite method steps on how to use the kit, describing the steps of fitting the stretchable textile product to a body part, identifying a target area, removably attaching a flexible patch to the exterior of the textile product, and / or removably attaching a fastening element to the exterior of the textile product. Optionally, the further instructions may include measuring a biosignal, such as a vital sign. The kit may further include a data readout device, a data storage device, and / or a data transmission device. Depending at least on the electronic components provided, the wearable electronics product may advantageously be configured as a wearable sensing product and / or a wearable actuation product.

[0047] According to yet another aspect of the present invention there is provided a stretchable textile product, preferably a garment, configured and clearly suitable for being combined with a flexible patch and a fastening element, preferably a flexible patch and a pocket or strap as defined herein, to form a wearable electronic device. The garment may for example be a garment selected from base layer garments such as shirts, leggings, shorts, bras, belts, sleeves, chest bands, waist bands, arm bands, leg bands, headbands, socks, bandages etc.

[0048] The products, kits, and / or devices described herein can be used for medical applications, such as measuring and / or monitoring vital signs, ECG, bioimpedance, respiration, electrical skin conductance, muscle activity (EHG), EEG, diagnostic purposes, physical therapy, etc. The products, kits, and / or devices described herein are particularly useful in medical treatment facilities such as hospitals, clinics, physical rehabilitation centers, emergency response units, etc. Additionally, the products, kits, and / or devices described herein are also useful for personal use, such as, for example, monitoring vitality, measuring and displaying fitness parameters during exercise, electrical muscle stimulation, etc. Wearable electronics products can be medical devices for use in a medical context, such as, for example, preventing, diagnosing, treating, and / or rehabilitating illnesses, diseases, and / or other conditions. [Brief explanation of the drawings]

[0049] [Figure 1A] 10A-10C are cross-sectional views of embodiments of flexible patches and fastening elements removably attached to textile articles. [Figure 1B] 10A-10C are cross-sectional views of embodiments of flexible patches and fastening elements removably attached to textile articles. [Figure 2] FIG. 10 is a top view of an exemplary flexible patch and fixation element in an attached configuration. [Figure 3A] 1 shows a flexible patch removably attached to a textile product. [Figure 3B] FIG. 3B is an enlarged partial view of FIG. 3A. [Figure 3C] 1 shows the wearable electronics device in an assembled state. [Figure 4A] 1 shows different embodiments of a textile product with different placement of skin-contact electrodes. [Figure 4B] 1 shows different embodiments of a textile product with different placement of skin-contact electrodes. [Figure 4C] 1 shows different embodiments of a textile product with different placement of skin-contact electrodes. [Figure 4D] 1 shows different embodiments of a textile product with different placement of skin-contact electrodes. [Figure 4E] 1 shows different embodiments of a textile product with different placement of skin-contact electrodes. [Figure 5A] 4C shows an embodiment of cross section A of the textile product illustrated in FIG. 4B. [Figure 5B] 4C shows an embodiment of cross section A of the textile product illustrated in FIG. 4B. [Figure 6] 1 shows an array of skin-contact electrodes. [Figure 7A] 1 shows a wearable electronic device product worn by a user. [Figure 7B] 1 shows a wearable electronic device product worn by a user. [Figure 7C] 1 shows a wearable electronic device product worn by a user. [Figure 8A] 1 illustrates how a fastening element is attached to a textile product. [Figure 8B] 1 illustrates how a fastening element is attached to a textile product. [Figure 8C] 1 illustrates how a fastening element is attached to a textile product. [Figure 9] 1 illustrates a schematic diagram of a method for using a wearable electronic product. [Figure 10A] 1 is an exemplary experimental result. [Figure 10B] 1 is an exemplary experimental result. [Figure 10C] 1 is an exemplary experimental result. [Figure 10D] 1 is an exemplary experimental result. [Figure 10E] 1 is an exemplary experimental result. [Figure 10F] 1 is an exemplary experimental result. DETAILED DESCRIPTION OF THE INVENTION

[0050] These and other features, aspects, and advantages of the devices, systems, and methods of the present disclosure will become better understood from the following description, appended claims, and accompanying drawings.

[0051] The present invention will now be described in more detail with reference to the accompanying drawings, in which embodiments of the invention are shown. In the drawings, absolute and relative sizes of systems, elements (components), layers, and regions may be exaggerated for clarity. Embodiments may be described with reference to schematic and / or cross-sectional illustrations of possibly idealized embodiments and intermediate structures of the invention. In this specification and drawings, like numbers refer to like elements throughout. Relative terms and their derivatives should be construed to refer to the orientation shown in the drawings currently being described or discussed. These relative terms are for convenience of description and do not require that the system be constructed or operated in a particular orientation, unless otherwise specified.

[0052] The terminology used to describe particular embodiments is not intended to limit the invention. As used herein, the singular forms "a," "an," and "the" are intended to include the plural forms unless the context clearly indicates otherwise. The term "and / or" includes any and all combinations of one or more of the associated listed items. It will be understood that the terms "comprises" and / or "comprising" specify the presence of stated features but do not exclude the presence or addition of one or more other features. Furthermore, when a particular step of a method is referred to as following another step, it will be understood that the other step may follow directly, unless otherwise specified, or that one or more intermediate steps may be performed before the particular step is performed. Similarly, when a connection between structures or components is described, it will be understood that this connection may be established directly or through intermediate structures or components, unless otherwise specified.

[0053] Next, the wearable electronic product 1 will be described in more detail with reference to the drawings.

[0054] As shown in the figures, the wearable electronics product 1 generally comprises a stretchable textile product 2, a flexible patch 4, and a fastening element 9. The wearable electronics product 1 is flexible and stretchable to conformably follow the curvature of a body part 3. As shown in FIG. 1A, the stretchable textile product 2 may include at least one skin-contact electrode 5-1 for contacting the skin of the body part 3 during wear. The skin-contact electrode 5-1 comprises an electrically conductive stretchable textile 15-1 bounded by an electrically insulating stretchable textile 17.

[0055] In a preferred embodiment, the wearable electronics product comprises a flexible patch 4 supporting thereon an electronic component 42 operatively connected to flexible contact terminals 7-1 of the flexible patch 4.

[0056] The wearable electronic product 1 preferably further comprises a fixing element 9 that removably attaches the flexible patch 4 along the outer surface 32 of the stretchable textile product 2 and applies contact pressure at the overlapping portion 8-1 between the outer surface 35-1 of the skin-contact electrode 5-1 and the contact terminal 7-1 to form an electrical interconnection between the skin-contact electrode 5-1 and the contact terminal 7-1 at least during wearing.

[0057] Alternatively or additionally, the flexible patch 4 comprises a plurality of contact terminals 7-1, 7-2, 7-n and the stretchable textile product 2 comprises at least a corresponding number of skin-contact electrodes 5-1, 5-2, 5-n. The skin-contact electrodes and each contact terminal may be mutually configured to provide an electrical interconnection between each contact terminal and a separate one of the skin-contact electrodes.

[0058] One or more, preferably all, of the stretchable textile product 2, the skin-contacting electrodes and the electrically insulating stretchable textile 17 are comprised of a four-way stretchable textile. It will be understood that four-way stretchable means that the textile can stretch in both the horizontal and vertical directions and recover its original shape.

[0059] 1B, the stretchable textile product 2 is comprised of at least first and second skin-contact electrodes 5-1, 5-2. Each skin-contact electrode may be formed by a flexible conductive portion 15-1, 15-2 of the textile product 2, and is bounded by an electrically insulating portion 17 of the stretchable textile product.

[0060] FIG. 1B shows each skin-contact electrode formed of a conductive stretchable textile having an inner surface 25-1, 25-2 extending along the inner surface 22 of the textile product and an outer surface 35-1, 35-2 extending along the outer surface 32 of the textile product. As shown, during wear, the inner surfaces 25-1, 25-2 of the skin-contact electrodes face the skin of the body part 3, preferably in direct or indirect contact. It will be understood that the inner surfaces 25-1, 25-2 of the skin-contact electrodes may be provided with a conductive coating (e.g., a silicone-based coating 15c1), for example, to transfer current / charge between the skin and the skin-contact electrodes. A similar or additional coating 15c2 on the outer textile surface can reduce contact resistance with the contact terminals. The outer surfaces 35-1, 35-2 of the skin-contact electrodes face the contact terminals 7-1, 7-2 of the patch 4, preferably in direct or indirect contact with them. Optionally, a conductive paste, preferably a non-permanent conductive adhesive, may be provided between the outer surfaces 35-1, 35-2 and the contact terminals 7-1, 7-2 of the flexible patch, thereby improving the robustness and integrity of the electrical and mechanical interconnection.

[0061] The flexible patch 4 generally comprises at least first and second contact terminals 7-1, 7-2 and a circuit 10 operatively connected thereto, as seen in Figure 2. The flexible patch 4 comprises a flexible substrate supporting one or more electronic components 42 and / or the circuit 10 thereon. The one or more electronic components 42 may be one or more selected from the list of a PCG, a battery, an electronically driven actuator, a vibration motor, an LED, a sensor, and / or a photodiode.

[0062] In a particularly preferred embodiment, the stretchable textile product 2 comprises a plurality of skin-contact electrodes 5-1, 5-2, 5-n arranged in an array, each electrically isolated from its neighbors and defining a functional area of ​​the stretchable textile product 2, whereby the skin-contact electrodes are sized and spaced such that contact terminal 7-1 overlaps skin-contact electrode 5-1 and any additional contact terminals 7-1, 7-2, 7-n overlap skin-contact electrodes 5-1, 5-2, 5-n mutually exclusively.

[0063] 3A illustrates an embodiment of a wearable electronic device 1 in which a flexible patch 4 is removably attached to a stretchable textile product 2 at a location corresponding to a target area 6 within the functional area of ​​the textile product, the target area known to correspond to a location for receiving a target biosignal of a body part and / or for applying electrical stimulation to a body part. FIG. 3B illustrates the skin-contact electrodes 5-1, 5-2 and contact terminals 7-1, 7-2 sized and aligned relative to one another to provide a first overlapping portion 8-1 between the first skin-contact electrode 5-1 and the first and second contact terminals 7-1 and a mutually exclusive second overlapping portion 8-2 between the second skin-contact electrode 5-2 and the second contact terminal 7-2 to form first and second electrical interconnections. It will be appreciated that the relative sizing and positioning of the skin-contact electrodes and contact terminals can ensure that each skin-contact electrode contacts at most one contact terminal when the patch is attached to the textile product within the target measurement area.

[0064] FIG. 3C illustrates an embodiment of a wearable electronics product 1 in which a fastening element 9 is removably attached to a stretchable textile product 2. The fastening element 9 can be a flexible, conformable pocket or strap. Preferably, the fastening element has a stiffness greater than that of the textile product, preferably in one direction, and optionally in two directions. Preferably, the fastening element 9 has a Young's modulus greater than that of the textile product 2. By providing a fastening element 9 that is stiffer than the textile product, damage to the circuit due to stretching is mitigated, preferably due to less or optionally no stretch along the length of the circuit. When the wearable electronics product is in use, the fastening pressure F exerted by the fastening element maintains the relative positions of the contact terminals 7-1 and 7-2 and the skin-contact electrodes 5-1 and 5-2, thereby maintaining electrical connection. The fastening pressure F exerted by the fastening element 9 further maintains the relative positions of the skin-contact electrodes 5-1 and 5-2 and the wearer's skin, thereby maintaining electrical connection with the skin. By damping the relative movement between the skin-contact electrodes and the contact terminals and / or between the skin-contact electrodes and the wearer's skin, signal quality and stability as well as sensing robustness are improved. The fixing element 9 is preferably removably attachable, i.e. removably attachable to the outer surface 23 of the stretchable textile product 2.

[0065] To increase the support force for securing the flexible patch 4 to the textile product 2, i.e., the normal force of the securing pressure F, and to increase the support force for maintaining the electrical interconnection between the skin-contact electrodes and the contact terminals, the material used for the securing element, e.g., in the form of a pocket or strap, preferably has a lower elasticity than the material used to form the textile product. The securing element material, particularly the material for forming the pocket as described herein, ideally has an elasticity in the range of 3 to 8 times lower, preferably 4 to 7 times lower, than the elasticity of the material used to form the textile product. For example, in an exemplary embodiment, the elasticity is about 5 times (±10%) lower than the elasticity of the material used to form the textile product.

[0066] 4A-4E show non-exhaustive examples of alternative embodiments of multiple skin-contact electrodes 5-1, 5-2, 5-n arranged in an array across a functional area of ​​a textile product 2. By dimensioning the functional area covered by the array larger than the area of ​​interest along the skin of the body part known to correspond to a target biosignal of the body part, the same stretchable textile product can be adapted to multiple wearers with different body shapes / sizes / physiologies.

[0067] As shown in Figures 5A and 5B, the stretchable textile product 2 can be comprised of conductive textile portions 15-1, 15-2, and 15-3 and a non-conductive textile portion 17. In a preferred embodiment, the conductive stretchable textile 15-1 and the electrically insulating stretchable textile 17 can be seamlessly formed as a continuous textile, preferably a woven, nonwoven, or knitted textile. Figure 5A shows the conductive and non-conductive textile portions seamlessly formed as a single continuous textile sheet. By seamlessly forming the conductive portions 15-1, 15-2, and 15-3 and the electrically insulating portion 17 of the textile product as a single textile product 2, preferably a woven, nonwoven, or knitted fabric, the robustness and durability of the textile product 2 can be improved. Integral formation of the skin-contact electrodes into the stretchable textile product increases the robustness and durability of the textile product against normal wear and tear, such as washing, stretching, folding, flexing, and handling over its lifetime, by integrally forming or embedding the skin-contact electrodes into the stretchable textile product. Figure 5B shows an alternative embodiment in which the conductive and non-conductive textile portions form a multi-layered textile product. The conductive and non-conductive textile portions can be bonded, attached, or secured to adjacent portions, for example, by stitching or gluing.

[0068] FIG. 6 shows a plurality of skin-contact electrodes 5-1, 5-2, 5-n arranged in an array along the textile product 2, and a plurality of contact terminals 7-1, 7-2, 7-n of a patch 4 attached to the textile product.

[0069] Preferably, the maximum cross-sectional dimension of each skin-contact electrode d5 and the maximum spacing s5 between the skin-contact electrodes configured in the array are smaller than the maximum cross-sectional dimension of the contact terminal d7, if present, and the minimum spacing s7 between adjacent contact terminals, respectively, thereby allowing a user to functionally assemble the patch 4, and accordingly the contact terminals 7-1, 7-2, 7-n, at any position and / or orientation within the functional area of ​​the textile product 2. It will be understood that functionally assembling the flexible patch comprises attaching the patch to the textile product such that each contact terminal of the electronic device contacts at least one skin-contact electrode in the array, thereby forming an electrical interconnection. The pattern obtained by arranging the skin-contact electrodes in the array described above provides the textile product with enhanced customization and ease of use. The specified relative cross-sectional dimensions and spacing of adjacent skin-contact electrodes and adjacent contact terminals allow each contact terminal to contact at least one skin-contact electrode regardless of the orientation, location, or placement of the electronic device within the functional area of ​​the textile product, eliminating the formation of short circuits between adjacent contact terminals.

[0070] In a preferred embodiment, the cross-sectional dimension d5 of the skin-contact electrode is in the range of 1 to 100 mm, preferably in the range of 5 to 20 mm. The cross-sectional dimension d7 of the contact terminal may be equal to or larger than the cross-sectional dimension d5 of the skin-contact electrode so that the contact terminal can completely cover the corresponding skin-contact electrode, further mitigating short circuits between the skin-contact electrodes.

[0071] 7A-7C show a wearable electronics product 1 described herein, comprising a stretchable textile product 2, a flexible patch 4, and a fastening element 9, in a worn state. In a preferred embodiment, the stretchable textile product has an overall extensibility along two orthogonal directions of at least 25%, more preferably at least 50%, from the rest state. The conductive and insulating stretchable textile has a Young's modulus ratio in the range of 1:20 to 20:1, preferably in the range of 1:10 to 10:1, and most preferably in the range of 1:1 ± 50%. Preferably, the residual strain is as low as possible, not greater than 50%, preferably ≦20%, more preferably ≦15%. The stretchable textile product is preferably comprised of a stretchable fabric, such as a two-way stretch fabric capable of stretching in either the horizontal or vertical direction, or more preferably a four-way stretch fabric capable of stretching in both the horizontal and vertical directions. The stretchable textile product can also be comprised of an omnidirectionally stretchable textile, capable of stretching in the horizontal, vertical, and diagonal directions. The Young's modulus corresponding to an electrically conductive stretchable textile may be in the range of 0.4 to 20 MPa, preferably ≦2 MPa, for example, 0.4 to 1 MPa. The Young's modulus corresponding to an electrically insulating stretchable textile may be in the range of 0.2 to 10 MPa, preferably ≦7 MPa, for example, 0.4 to 6 MPa. In the context of the textiles discussed herein, stretchable means reversibly stretchable, i.e., in the absence of a tensile force acting on the textile, the textile essentially, preferably completely, recovers its initial state and / or shape corresponding to the state and / or shape of the textile before the tensile force was applied.

[0072] To improve comfort when worn, it is desirable that the elasticity and residual strain of the textile used in the textile product and the skin-contact electrodes are similar, preferably matched. Providing a product in which the elasticity and residual strain of the textile used in the textile product and the skin-contact electrodes are similar or ideally matched can also improve the quality and stability of the measured signal.

[0073] Providing a textile product that is stretchy, flexible, and conformable allows the textile product to conform to the curvature of the body part to which it is applied, improving the comfort of wearing the textile product. Furthermore, providing a form-fitting textile product that conforms to the curvature of the body part maintains contact between the wearer's skin and the skin-contact electrodes, improving the accuracy of the signals measured by the electronic device. Figures 7A-7C show one embodiment of a textile product described herein as a form-fitting (tight-fitting) shirt that conforms to the curvature of the wearer's torso.

[0074] Advantageously, the electronic components 42 and associated circuitry 10 may be located entirely on the flexible patch 4. By confining any wiring and circuitry 10 to the removable patch 4, an advantageous modular design is achieved. The absence of wiring and / or circuitry on the textile product 2 allows all wiring and / or circuitry to be removably removed from the textile product along with the patch 4, allowing the textile product to be easily washed without damaging sensitive or water-incompatible circuitry. The circuitry 10, and optionally the contact terminals 7-1, 7-2, 7-n, may comprise a flexible or stretchable ink printed circuit applied to a flexible carrier.

[0075] FIG. 9 illustrates a method 100 for using a wearable electronics product described herein. The method includes step 101 of fitting a stretchable textile product 2 to a body part 3 so that the textile product conforms to the curvature of the body part and so that a functional area of ​​the stretchable textile product 2 covers a target area 6 of the body part, and step 102 of attaching a flexible patch 4 along the outer surface 23 of the stretchable textile product 2 within the periphery of the target area, thereby forming an electrical interconnection between each contact terminal and a separate one of the skin-contact electrodes. The step of wearing the textile product preferably proceeds with a step of wearing the patch, e.g., inserting the patch into a pocket. Depending on whether the securing element is permanently secured, the method may include step 105 of removably attaching a securing element 9 to the outside of the textile product such that the securing element 9 covers the target area 6. Advantageously, the securing element (e.g., a pocket or strap) can be attached after wearing or even after the patch has been positioned. In some embodiments, the method includes a step of identifying a target area on the wearer's body. After the product is worn and the various components are assembled, the assembly can be used to measure or apply a biosignal. After use, the method can include disassembling the assembly, for example, before laundering the textile product. As disclosed herein, the method can also include one or more steps of replacing or repositioning the flexible patch.

[0076] 8A-8C show the steps of removably attaching a fastening element to the exterior of the textile product while the textile product is in a pre-stretched state.

[0077] According to one aspect of the present invention, a kit of parts 200 for assembling a wearable electronics product 1 is provided, the kit including one or more of a stretchable textile product 2 described herein, a flexible patch 4 described herein, and a fastening element 9 described herein. The kit 200 may further include optional instructions 201 for using the wearable electronics product according to a specified method.

[0078] According to one aspect of the present invention, there is provided a stretchable textile product, preferably a garment, configured and clearly suitable for use in combination with a flexible patch and a fastening element as described herein, preferably a flexible patch 4 and a fastening element 9, to form a wearable electronics product 1 as described herein. Preferably, the stretchable textile product comprises a garment selected from base layer garments such as shirts, leggings, shorts, bras, belts, sleeves, chest bands, waist bands, arm bands, leg bands, head bands, socks, bandages, etc.

[0079] Experimental results Electrocardiogram measurements with different conductive skin contact materials Experiments were conducted to examine the quality of ECG signals measured with selected conductive textile electrodes. A commercially available gel electrode, specifically the Kendall 133 foam electrode (Figure 10A), was selected as the reference electrode. To allow for comparison of results, each test followed the same testing protocol. A pair of electrodes was attached to the skin on the inner forearm of the subject, and a ground electrode was attached to the inner elbow. ECG signals were recorded and compared with those of the reference electrode. Signal graphs for the different electrode types are shown in Figures 10A-10F.

[0080] For the Shieldex® Technik-tex P130 + B (Figure 10B) and Shieldex® Silitex P130 (Figure 10C) electrodes, all ECG peaks were visible in the recorded data (PQRST wave detection), and qualitatively low noise to the signal was observed. The signal quality was comparable to the reference signal. For the Shieldex® Silitex P130 electrode with a silicone coating on the skin-facing side (Figure 10D), the signal appeared to be lower quality, with higher noise to the signal compared to the reference electrode. This deviation is due to the silicone coating being less conductive than the conductive textile.

[0081] ECG in a shirt Further testing measured the performance of the electrodes when incorporated into textile products, as described herein. A skin-contact electrode made of conductive textile Shieldex® Silitex P130 was used. A reference commercially available gel electrode, specifically a Kendall 133 foam electrode, was contacted with the outer surface of the textile skin-contact electrode, and a first signal was measured (FIG. 10E). A flexible patch printed with silver ink Intexar PE874 DuPont contact material, consisting of contact terminals corresponding to the skin-contact electrode, was contacted with the electrode, and a second signal was measured (FIG. 10F). During the measurement, the patch was held in place by a fixation element, specifically a pocket, as described herein.

[0082] In the setup where commercially available gel electrodes were in contact with textile skin-contact electrodes, all measured peaks were visible on the ECG graph (P, Q, R, S, T), signal noise was qualitatively low, and signal quality was equivalent to that when commercially available gel electrodes were applied directly to the skin.

[0083] In the setup where the patch was attached to the textile skin-contact electrodes, all measured peaks were visible on the ECG graph (P, Q, R, S, T), the signal noise was qualitatively low, and the signal quality was comparable to the reference signal. In conclusion, the prototype measured high-quality ECG signals.

[0084] Measuring the stretch of shirt and pocket fabric To improve signal quality and stability, as well as comfort when worn, the elasticity and residual strain of textiles used in textile products should ideally be similar, preferably matched. Experiments were conducted to determine the elasticity and residual strain of several materials for (i) pocket-shaped fixation elements and (ii) textile skin-contact electrodes.

[0085] The test samples were subjected to repeated tensile loads in a Mark-10 mechanical testing device. The test results are shown in the table below. [Table 1]

[0086] The results showed that Domyo compression T-shirt material for forming the textile product and Shieldex® Technik-tex P130 + B for forming the skin-contact electrodes performed similarly during the test and provided the most comfortable fit. In both the cross and longitudinal directions, the materials exhibited an effective Young's modulus (E(eff)) of less than 1 MPa at cycles 1 and 3, and a residual strain in the range of 12-15%.

[0087] Compared to the other materials, the textile containing silicone Shieldex® silitex P130 was significantly stiffer, especially in the cross direction, and showed a high effective Young's modulus of 15.2 MPa.

[0088] Eurojersey is a knitted fabric with anisotropic knitting direction. It is stiffer in both directions than the Domyo T-shirt and Shieldex® Technictex P130+B, but stretchier than Shieldex® silitex P130.

[0089] Residual strain of a material indicates the plastic deformation of the material when stretched and its ability to retain its original shape after deformation. Test results showed that all materials were comparable in terms of residual strain, with all but Shieldex® Silitex P130 exhibiting a residual strain range of 11-15%. In the cross direction, Shieldex® Silitex P130 exhibited a value of 11, falling within the range of the other materials. However, the longitudinal residual strain value of Shieldex® Silitex P130 was very low at 6%, indicating less plastic deformation than the other materials and better retention of the original shape.

[0090] Based on the results of the elasticity and residual strain tests, it was determined that the combination of a compressed T-shirt Domyo material to form the textile product and Shieldex® Technik-tex P130 + B to form the skin-contact electrodes was most suitable for improving the wearer's comfort based on similar elasticity and deformation properties. By matching the elasticity of the shirt material and the conductive textile, the difference in comfort between the materials becomes less noticeable due to the similar elasticity.

[0091] The stretchability of the EuroJersey material is in a favorable range, only 3 to 7 times lower than the stretchability of the Domyo compression T-shirt, making EuroJersey a suitable material for forming pocket fastening elements.

[0092] Although, for clarity and conciseness of description, features are described herein as part of the same or separate embodiments, it will be understood that the scope of the present invention may include embodiments having all or any combination of the described features.

[0093] Of course, it will be understood that the present application is applicable to human subjects as well as non-human subjects. In practical terms, it is envisioned that wearable electronics products may be applied to detect / adapt biosignals of animals, including, but not limited to, mammals such as pets, (sport) horses, cows, farm animals, etc. Accordingly, the terms subject, body (part), wearer, skin, etc., as used herein, may be applied to animals as well, where appropriate.

[0094] When interpreting the appended claims, it should be understood that the word "comprising" does not exclude the presence of elements or acts other than those listed in a given claim, the word "a" or "an" preceding an element does not exclude the presence of a plurality of such elements, and any reference signs in a claim do not limit its scope. Multiple "means" may be represented by the same or different item(s) or implemented structure or function, and that the disclosed apparatus or parts thereof, unless expressly stated otherwise, can be combined together or separated into further parts. Where a claim refers to another claim, this may indicate synergistic advantages achieved by a combination of their individual features. However, the mere fact that certain measures are recited in mutually different claims does not indicate that a combination of these measures cannot also be used advantageously. Thus, the present embodiments include all possible combinations of claims, where each claim may in principle refer to the preceding claim, unless clearly excluded by the context.

[0095] (Addendum) (Appendix 1) A wearable electronic device product (1), a stretchable textile product (2) for conformably wearing around a body part (3) of a wearer, said stretchable textile product (2) comprising at least one skin-contact electrode (5-1) for contacting the skin of said body part during wear, said skin-contact electrode (5-1) comprising an electrically conductive stretchable textile (15-1) bounded by an electrically insulating stretchable textile (17); a flexible patch (4) supporting thereon an electronic component (42) operatively connected to a flexible contact terminal (7-1) of the flexible patch (4); Equipped with The wearable electronic product (1) includes a fixing element (9) for removably attaching the flexible patch (4) along the outer surface of the stretchable textile product (2) and applying contact pressure at a position of overlap (8-1) between the outer surface (35-1) of the skin-contact electrode (5-1) and the contact terminal (7-1) at least during wearing, thereby forming an electrical interconnection between the skin-contact electrode (5-1) and the contact terminal (7-1). Wearable Electronics Products(1).

[0096] (Appendix 2) 2. The wearable electronics product of claim 1, wherein the flexible patch (4) comprises a plurality of the contact terminals (7-1, 7-2, 7-n), and the stretchable textile product (2) comprises at least a corresponding number of the skin-contact electrodes (5-1, 5-2, 5-n), the skin-contact electrodes and the contact terminals being configured to provide electrical interconnection between each of the contact terminals and different ones of the skin-contact electrodes.

[0097] (Appendix 3) 3. The wearable electronics product of claim 1 or 2, wherein the stretchable textile product (2) comprises a plurality of the skin-contact electrodes (5-1, 5-2, 5-n), each electrically isolated from its neighbors and arranged in an array defining a functional area of ​​the stretchable textile product (2), the skin-contact electrodes being dimensioned and spaced such that the contact terminal (7-1) overlaps the skin-contact electrode (5-1) and any additional contact terminals (7-1, 7-2, 7-n) overlap mutually exclusive ones of the skin-contact electrodes (5-1, 5-2, 5-n).

[0098] (Appendix 4) A wearable electronic device product described in any one of Appendices 1 to 3, wherein the maximum cross-sectional dimension (d5) of each skin-contact electrode and the maximum spacing (s5) between the skin-contact electrodes configured in the array are smaller than the maximum cross-sectional dimension (d7) of the contact terminal and the minimum spacing (s7) between adjacent contact terminals, if any.

[0099] (Appendix 5) The wearable electronic product of any one of appendices 1 to 4, wherein the electronic component (42) comprises one or more selected from the list of a PCB, a battery, an electronically driven actuator, a vibration motor, an LED, a sensor, an I / O device, and / or a photodiode.

[0100] (Appendix 6) 6. The wearable electronic device product according to any one of claims 1 to 5, wherein the fixing element (9) has a Young's modulus higher than that of the textile product (2).

[0101] (Appendix 7) 7. The wearable electronic device product according to any one of claims 1 to 6, wherein the fastening element (9) is a flexible and comfortable pocket or strap.

[0102] (Appendix 8) The wearable electronic device product according to any one of appendices 1 to 7, wherein the electrically conductive stretchable textile (15-1) and the electrically insulating stretchable textile (17) are seamlessly formed as a continuous textile, preferably a woven fabric, a nonwoven fabric, or a knitted fabric.

[0103] (Appendix 9) 9. The wearable electronic product of any one of claims 1 to 8, wherein the electronic components (42) and any associated circuitry (10) are disposed entirely on the flexible patch (4).

[0104] (Appendix 10) 10. The wearable electronic product according to any one of claims 1 to 9, wherein the fastening element (9) is removably attachable to the outer surface (23) of the stretchable textile product (2).

[0105] (Appendix 11) a step (101) of fitting the stretchable textile product (2) to the body part (3) such that the textile product conforms to the curvature of the body part and the functional area of ​​the stretchable textile product (2) covers a target area (6) of the body part, the target area (6) being known to correspond to a location for receiving a target bio-signal of the body part and / or known to correspond to a location for applying electrical stimulation to the body part; Removably attaching (102) the flexible patch (4) along the outer surface (23) of the stretchable textile product (2) within the periphery of the target area, thereby forming an electrical interconnection between each contact terminal and a different one of the skin-contact electrodes; Including, A method (100) of using a wearable electronics product according to any one of appendices 1 to 10.

[0106] (Appendix 12) 12. The method of claim 11, further comprising, after step (101) of preferably fitting the fastening element (9) to cover the target area (6), a step (105) of removably attaching the fastening element to the outer surface of the textile product.

[0107] (Appendix 13) A stretchable textile product (2) according to any one of appendices 1 to 10; A flexible patch (4) according to any one of appendices 1 to 10; A fixing element (9) according to any one of appendices 1 to 10; Optional instructions (201) for using the wearable electronics product according to the method described in Appendix 11 or 12; A parts kit (200) for assembling the wearable electronic product (1) according to any one of appendices 1 to 10, comprising:

[0108] (Appendix 14) 11. A stretchable textile product (2), preferably a garment, configured and demonstrably suitable for forming a wearable electronics product (1) according to any one of claims 1 to 10 in combination with a flexible patch and a fastening element, preferably a flexible patch (4) and a fastening element (9) according to any one of claims 1 to 10.

Claims

1. A wearable electronic product (1), a stretchable textile product (2) for conformably wearing around a body part (3) of a wearer, said stretchable textile product (2) comprising at least one skin-contact electrode (5-1) for contacting the skin of said body part during wear, said skin-contact electrode (5-1) comprising an electrically conductive stretchable textile (15-1) bounded by an electrically insulating stretchable textile (17); a flexible patch (4) supporting thereon an electronic component (42) operatively connected to a flexible contact terminal (7-1) of the flexible patch (4); Equipped with The wearable electronic product (1) includes a fixing element (9) that removably attaches the flexible patch (4) along an outer surface of the stretchable textile product (2) and applies contact pressure at a position of overlap (8-1) between the outer surface (35-1) of the skin-contact electrode (5-1) and the contact terminal (7-1) at least during wearing, thereby forming an electrical interconnection between the skin-contact electrode (5-1) and the contact terminal (7-1). Wearable electronic products (1).

2. 2. The wearable electronics product of claim 1, wherein the flexible patch (4) comprises a plurality of the contact terminals (7-1, 7-2, 7-n) and the stretchable textile product (2) comprises at least a corresponding number of the skin-contact electrodes (5-1, 5-2, 5-n), the skin-contact electrodes and the contact terminals being configured to provide electrical interconnection between each of the contact terminals and different ones of the skin-contact electrodes.

3. 3. The wearable electronics product of claim 1 or 2, wherein the stretchable textile product (2) comprises a plurality of the skin-contact electrodes (5-1, 5-2, 5-n), each electrically isolated from its neighbors and arranged in an array defining a functional area of ​​the stretchable textile product (2), the skin-contact electrodes being dimensioned and spaced such that the contact terminal (7-1) overlaps the skin-contact electrode (5-1) and any additional contact terminals (7-1, 7-2, 7-n) overlap mutually exclusive ones of the skin-contact electrodes (5-1, 5-2, 5-n).

4. The maximum cross-sectional dimension of each of the skin-contact electrodes (d 5 ) and the maximum spacing (s) between the skin-contact electrodes configured in the array 5 ) are the maximum cross-sectional dimensions (d 7 ) and the minimum spacing between adjacent contact terminals (s 7 4. The wearable electronic device product according to claim 1, wherein, if present, the thickness of the first electrode is smaller than the thickness of the second electrode.

5. 5. The wearable electronics product of claim 1, wherein the electronic components (42) comprise one or more selected from the list of a PCB, a battery, an electronically driven actuator, a vibration motor, an LED, a sensor, an I / O device, and / or a photodiode.

6. The wearable electronics product according to any one of claims 1 to 5, wherein the fastening element (9) has a Young's modulus higher than the Young's modulus of the textile product (2).

7. The wearable electronics product according to any one of claims 1 to 6, wherein the fastening element (9) is a flexible and comfortable pocket or strap.

8. The wearable electronics product of any one of claims 1 to 7, wherein the electrically conductive stretchable textile (15-1) and the electrically insulating stretchable textile (17) are seamlessly formed as a continuous textile, preferably a woven, nonwoven or knitted fabric.

9. The wearable electronic product of any one of claims 1 to 8, wherein the electronic component (42) and any associated circuitry (10) are disposed entirely on the flexible patch (4).

10. The wearable electronics product according to any one of the preceding claims, wherein the fastening element (9) is removably attachable to an outer surface (23) of the stretchable textile product (2).

11. a step (101) of fitting the stretchable textile product (2) to the body part (3) such that the textile product conforms to the curvature of the body part and the functional area of ​​the stretchable textile product (2) covers a target area (6) of the body part, the target area (6) being known to correspond to a location for receiving a target bio-signal of the body part and / or known to correspond to a location for applying electrical stimulation to the body part; Removably attaching (102) the flexible patch (4) along the outer surface (23) of the stretchable textile product (2) within the periphery of the target area, thereby forming an electrical interconnection between each contact terminal and a different one of the skin-contact electrodes; Including, A method (100) of using a wearable electronics product according to any one of claims 1 to 10.

12. 12. The method according to claim 11, further comprising a step (105) of removably attaching the fastening element (9) to the outer surface of the textile product after the step (101) of preferably fitting the fastening element (9) to cover the target area (6).

13. A stretchable textile product (2) according to any one of claims 1 to 10, A flexible patch (4) according to any one of claims 1 to 10, A fastening element (9) according to any one of claims 1 to 10, Optional instructions (201) for using the wearable electronics product according to the method of claim 11 or 12; A kit of parts (200) for assembling the wearable electronic product (1) of any one of claims 1 to 10, comprising:

14. 11. A stretchable textile product (2), preferably a garment, configured and clearly suitable for forming a wearable electronics product (1) according to any one of claims 1 to 10 in combination with a flexible patch and a fastening element, preferably a flexible patch (4) and a fastening element (9) according to any one of claims 1 to 10.

Citation Information

Patent Citations

  • Textile product with skin-contact element and / or establishing external contact with the skin-contact element, and method for producing the same

    US20190297961A1

  • Garment carrying electronic devices

    WO2001095752A1

  • Modular wearable circuit

    WO2006035385A2

  • Electrically conducting textile device

    WO2015067626A1

  • Multi-sensor resistive textile ECG system

    WO2020099906A1