SMART THERMAL PATCH FOR ADAPTIVE THERMOTHERAPY
    34.
    发明公开
    SMART THERMAL PATCH FOR ADAPTIVE THERMOTHERAPY 审中-公开
    THERMISCHES INTELLIGENTES PFLASTER ZUR ADAPTIVEN THERMOTHERAPIE

    公开(公告)号:EP3137024A1

    公开(公告)日:2017-03-08

    申请号:EP15759934.1

    申请日:2015-04-20

    Abstract: A smart thermal patch for adaptive thermotherapy is provided. In an embodiment, the patch can be a stretchable, non-polymeric, conductive thin film flexible and non-invasive body integrated mobile thermal heater with wireless control capabilities that can be used to provide adaptive thermotherapy. The patch can be geometrically and spatially tunable on various pain locations. Adaptability allows the amount of heating to be tuned based on the temperature of the treated portion.

    Abstract translation: 提供了一种用于自适应热疗的智能热补丁。 在一个实施例中,贴片可以是具有无线控制能力的可拉伸的,非聚合的,导电的薄膜柔性和非侵入性身体集成移动热加热器,其可以用于提供适应性热疗。 该贴片可在几何和空间上可调节各种疼痛位置。 适应性允许基于被处理部分的温度来调节加热量。

    WEARABLE ELECTRONICS FORMED ON INTERMEDIATE LAYER ON TEXTILES

    公开(公告)号:EP3406111A1

    公开(公告)日:2018-11-28

    申请号:EP17703224.0

    申请日:2017-01-17

    CPC classification number: H05K1/038 H01L23/4985 H05K3/0058

    Abstract: One manner of producing more desirable clothing with electronic capabilities is to manufacture electronics, such as the charging wires or devices themselves, directly onto the textile materials. Textile materials generally do not support the manufacturing of electronic devices, in part because the surface of the textile is too rough for electronic devices or the processes used to manufacturing electronic devices. An intermediate layer (204) may be placed on the textile material (202) to reduce the roughness of the surface of the textile material and provide other beneficial characteristics for the placement of electronic devices (206) directly on the textile material.

    STRETCHABLE ANTENNA FOR WEARABLE ELECTRONICS
    40.
    发明公开

    公开(公告)号:EP3360198A1

    公开(公告)日:2018-08-15

    申请号:EP16785270.6

    申请日:2016-10-05

    Abstract: Various examples are provided for stretchable antennas that can be used for applications such as wearable electronics. In one example, a stretchable antenna includes a flexible support structure including a lateral spring section having a proximal end and at a distal end; a metallic antenna disposed on at least a portion of the lateral spring section, the metallic antenna extending along the lateral spring section from the proximal end; and a metallic feed coupled to the metallic antenna at the proximal end of the lateral spring section. In another example, a method includes patterning a polymer layer disposed on a substrate to define a lateral spring section; disposing a metal layer on at least a portion of the lateral spring section, the metal layer forming an antenna extending along the portion of the lateral spring section; and releasing the polymer layer and the metal layer from the substrate.

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