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  • 1.
    Andersson, Dag
    et al.
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Grönqvist, Hans
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Mayora, Kipa
    Arrasate-Mondragón, Spain.
    Tijero, Maria
    Arrasate-Mondragón, Spain.
    Voirin, Guy
    CSEM SA, Switzerland.
    Steinke, Arndt
    CiS Forschungsinstitut für Mikrosensorik GmbH, Germany.
    Albrecht, Andreas
    CiS Forschungsinstitut für Mikrosensorik GmbH, Germany.
    Wunscher, Heike
    CiS Forschungsinstitut für Mikrosensorik GmbH, Germany.
    Frank, Thomas
    CiS Forschungsinstitut für Mikrosensorik GmbH, Germany.
    Moore, Eric
    Tyndall Institute, Ireland.
    Wang, Yineng
    Tyndall Institute, Ireland.
    Cao, Xi
    Tyndall Institute, Ireland.
    Vazquez, Patricia
    Tyndall Institute, Ireland.
    Hogan, Anna
    Tyndall Institute, Ireland.
    Belcastro, Marco
    Tyndall Institute, Ireland.
    Billat, Sophie
    Hahn Schickard Villingen, Germany.
    Karmann, Stephan
    Hahn Schickard Villingen, Germany.
    Gunzler, Rainer
    Hahn Schickard Villingen, Germany.
    Weiler, Petra
    VDI/VDE Innovation + Technik GmbH, Germany.
    Smart access to small lot manufacturing for systems integration2018Ingår i: 2018 Pan Pacific Microelectronics Symposium, Pan Pacific 2018, 2018, s. 1-9Konferensbidrag (Refereegranskat)
    Abstract [en]

    The three year EU project SMARTER-SI that ends in January 2018 has tested a new concept for small lot manufacturing for SMEs which we call the Cooperative Foundry Model (CFM). During previous research, all RTOs have completed building blocks, i.e. components or parts of systems which are readily available and characterized by their high Technology Readiness Level (TRL). These building blocks are combined and integrated in so-called Application Experiments (AEs), thereby creating innovative Smart Systems that serve the SMEs' needs. Four pre defined AEs have been presented before [1] and in this paper, six additional AEs will be presented: i) a smart sensor for pneumatic combined clutch and brakes, ii) smart well plates for tissue engineering integrating continuous, non-invasive TEER iii) microclimate sensor for moisture applications, iv) LTCC-Si-Pressure Sensor, v) miniaturized capillary electrophoresis system for bio analysis, and vi) a MEMS sensor module for respiratory applications. Finally, a brief description of ongoing standardization efforts is presented.

  • 2.
    Grönqvist, Hans
    et al.
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Tegehall, Per-Erik
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Lidström, Oscar
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Wünscher, Heike
    CiS Forschungsinstitut für Mikrosensorik GmbH, Germany.
    Steinke, Arndt
    CiS Forschungsinstitut für Mikrosensorik GmbH, Germany.
    Richert, Hans
    SETEK Elektronik AB, Sweden.
    Lagerkvist, Peter
    Niranova AB, Sweden.
    Unit for Investigation of the Working Environment for electronic units in harsh environment2017Ingår i: Advanced Microsystems for Automotive Applications 2017: Smart Systems Transforming the Automobile / [ed] Zachäus, C., Müller, B., Meyer, G., Springer, 2017, s. 13-22Konferensbidrag (Refereegranskat)
    Abstract [en]

    When electronic equipment is used in harsh environments with long expected lifetimethere is a need to understand that environment more in detail. This situationis today a reality for many application areas including the automotive sector,heavy industry, the defense sector and more.To fully understand the working environment a unit has been developed to monitorphysical data such as temperature, vibration, humidity, condensation etc. to beused in the product development phase for new products.The paper presents the underlying principles for the ESU (Environmental SupervisionUnit) and details on the design.

  • 3.
    Karlsson, Helene
    et al.
    RISE - Research Institutes of Sweden, Material och produktion, IVF.
    Lidström, Oscar
    RISE - Research Institutes of Sweden, Material och produktion, IVF.
    Grönqvist, Hans
    RISE - Research Institutes of Sweden, Material och produktion, IVF.
    Andersson, Dag
    RISE - Research Institutes of Sweden, Material och produktion, IVF.
    Wipenmyr, Jan
    RISE - Research Institutes of Sweden, ICT, Acreo.
    Hernandez, Niina
    University of Borås, Sweden.
    Quality assurance of encapsulation architecture, including subsequent washing process for permanently mounted wearable sensors2018Ingår i: 2018 IMAPS Nordic Conference on Microelectronics Packaging (NordPac), 2018, s. 14-23Konferensbidrag (Refereegranskat)
    Abstract [en]

    The overall objective of the project wearITmed, Wearable sensors in smart textiles, is to develop a novel wearable sensor system demonstrator. This sensor system aims to monitor symptoms of neurological disorders such as epilepsy, Parkinson’s disease and stroke. The wearable sensor system demonstrator, including both integrated gyros/accelerometers and textile sensors, is useful for the evaluation of clinically relevant movement patterns and other physiological parameters, and further to establish disease discriminating and treatment responsive objective variables. The work presented in this paper is focused on ensuring that the wearable sensor system can be cleaned and washed without first removing the electronics. The work includes three main areas; the adhesion and architecture, the molding and finally the washing test performance. Standard wettability and peel tests (Volvo Standard STD 185–0001) were performed on standard test board IPC-B-5 and IPC-9202 test vehicle for selecting the best adhesive and encapsulation materials in form of an epoxy (Epotek 302–3M) and a medical approved silicone (Nusil MED-6019). The molded components were washtested (Standard SS-EN ISO 6330:2012) followed by testing of the electrical resistance (Standard IPC-9202). As a result a total of 22 garments were produced with four individually mounted boards in each garment. The tests showed that the wearable sensors passed the washing tests and were still functional after 10 repeated washing cycles without any change or degradation in resistance or sign of electrical failure. The wearable electronics therefore meets the requirements of being simultaneously resistant to; water, temperature (40 °C), chemical detergents and dynamic forces.

  • 4.
    Stiernstedt, Johanna
    et al.
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Cristea, Monica
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Grönkvist, Hans
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Carlström, Elis
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Tape Casting Process Integration -€ Casting on a Structured Carrier Film2013Ingår i: Proceedings of the 9th International Conference on Multi-Material Micro Manufacture, Singapore, 2013, s. 211-214Konferensbidrag (Refereegranskat)
  • 5.
    Wünscher, Heike
    et al.
    CiS Forschungsinstitut für Mikrosensorik GmbH, Germany.
    Steinke, Arndt
    CiS Forschungsinstitut für Mikrosensorik GmbH, Germany.
    Ortlepp, Thomas
    CiS Forschungsinstitut für Mikrosensorik GmbH, Germany.
    Grönqvist, Hans
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Tegehall, Per-Erik
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Lidström, Oscar
    RISE - Research Institutes of Sweden, Swerea, Swerea IVF AB.
    Richert, Hans
    SETEK Elektronik AB, Sweden.
    Lagerkvist, Peter
    Niranova AB, Sweden.
    Supervision unit for harsh environments2018Konferensbidrag (Refereegranskat)
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v. 2.35.9