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Interactive textiles today


Prof. Lieva Van Langenhove

Department of Textiles
Smart and electronic textiles?

Smart textile measures/reacts
Reaction is intrinsic
Reaction is controlled by electronics
Active data processing
Functions of smart textiles

•   Sensor
•   Actuator
•   Data processing
•   Communication
•   Energy
Why textiles?

•   All around
•   Versatile
•   Light weight
•   Large contact area with body
•   Comfortable
•   Easy to use
Effects from nano to macro
Objective
The textile can absorb, reflect, shield,
measure or generate …
Temperature              Electric properties
Heat flux                Movement
Electromagnetic fields   Forces
Humidity                 Mechanical strength
Chemicals                Odour
Gases                    Acoustic
Radiation                Biological
Electromagnetic fields: conductive
      textiles
Stainless
steel

            Knitted           Woven          non woven

Kevlar
coated      polypyrrol   copper       gold
with
Conductive textiles as sensor




         Textrodes      Respibelt
EMG monitoring

  Myography for stress measurement
                         Contactless
                    Professional use

                        EMG sensors
                         embroidered
                           laminated

               (www.context-project.org)
Electrotherapy

• Homogeneous current     • Tactile stimulus
density                   • Skin stimulation
                           • Tissue reinforcement
 • Electrode design        • Sensory effects
 • Current supply         • Muscle stimulation
• Contact with skin        • Warming up
                           • Exercising
• Conditions of current   •Drug delivery
                           • Skin permeability
                           • Iontophoresis
Current density must be homogeneous
                                  Stripe        Concentric
          Uniform                 profile       square
           profile




Peak current density: 33 mA/mm2    21 mA/mm²   15.6 mA/mm2
Electrotherapy prototypes
Heating




  Polar   Sefar
Cooling

• Grado Zero F1 pilots
• Prospie project:
 • Salts that cool when wetted
 • Ventilation in clothing
 • Phase change materials
www.prospie.eu
Self adapting insulation/ventilation

Biomimetics: based on
pine cone
Coating reacting on
humidity

G. Jenonimidis
University of reading UK
Phase change materials


•Developed by NASA in 90’s
•Cope with large temperature variations
•More than 500 substances
•Uses melting heat: about 200 times higher than
caloric value
•Paraffin waxes in micro capsules
Thermoregulation challenges

• Sensors
• Determining thermal comfort
• Adequate control strategies
• Actuators:
 • Cooling
 • Insulation
 • Ventilation
Mechanical actuators

Mechanisms                 Status
Thermal/hygral expansion   Limited flexibility
Shape memory materials     One way, expensive, control
Gel based systems          Based on diffusion: slow
Electro active polymers    Slow, low voltage
Electrostrictive systems   Fast, high voltage
Shape memory alloys: Nitinol

                   Goes to a predifined
                   shape above transition
                   temperature




                    Grado Zero
                    Self ironing shirt
Smart interface: active dyes

                                           Skin pH-variation
                                           after burn wound




                    skin pH
                                            days




                              L. Van der Schueren, K. De Clerck
Textile display




                  France Telecom
Built in LED




      Lumalive
OLED
       Textile structure
       Organic materials
       Image quality
       Yield
       Oxidation

                           TITV
Biochemical actuators

Micro capsules   Active gels   Cyclodextrins
Communication
Within components
Between components in a suit
 ‣ Conductive fibres
 ‣ Optical fibres
With the wearer:
 • keyboard,
 • display
Wide environment:
 • inductive,
 • antenna
Energy
Optimise consumption and distribution
Balance between storage and “generation”
Storage:
 • Flexible chemical batteries
 • Capacity based fibre batteries
Generation from:
 • Heat
 • Motion
 • Light
Energy from heat: Seebeck
                               Uses:
            Areas of cooling
                               •P semiconductor
                               •N semiconductor
            Areas of heating   •Conductive materials



                               Infineon demonstrator
Energy from motion: piezo electrics
                             Deformation leads to E field
                             Needs large surface, no
                             thickness
                             PVDF
                             Challenges:
                             •Materials
                             •Concepts
      Electrode
      Piezo electric layer
                             •Production (poling)
      Electrode
Photovoltaics
                                     Organic photovoltaics
                                     Nanostructures
                Transparent layer/   Dyestuffs
                Electrode
                                     Challenges:
                N semiconductor
                                     •Materials
+-         +-   P semiconductor
                                     •Production
      +-        Electrode            •Stability
                                     •Concept
STELLA: Stretchable Electronics
www.stella-project.eu
Creating the paths: Sefar
Inner garment
Outer garment


   External                    GPS
 Temperature                  Antenna



      Alarm

                              Accelerometers



                                   Data
                   Flexible      Recording
         Textile                Processing
        Antenna    Battery
                               Transmission
Victim patch

               Parameter
               •Heart beat rate
               •Respiratory rate
               •Body Temperature


               Cfr. inner garment
Monitoring Centre
GPS

Position    ProeTEX       PDA        Google
                                     Earth
           45.202740   45.202624   45.202755
   1
           09.133803   09.133932   09.133844
           45.203345   45.203210   45.203322
   2
           09.134353   09.134457   09.137197
           45.201181   45.201847   45.201555
   3
           09.139856   09.139828   09.139477
           45.200705   45.198690   45.198816
   4
           09.143692   09.143832   09.143833
A smart textile can …
Monitor man, the environment and itself
Detect unusual conditions
Detect when things risk to get out of hand
Prevent things from happening
Protect against accidents
Monitor the impact of events
Provide early assistance
Support and follow up rehabilitation
Coordination action for enhancing the
breakthrough of intelligent textile systems
(e-textiles and wearable Microsystems)


       www.                 .org

COLAE: Commercialisation Clusters of OLAE

       www.                 .eu

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Smart textiles talk by Lieva Van langenhove

  • 1. Interactive textiles today Prof. Lieva Van Langenhove Department of Textiles
  • 2. Smart and electronic textiles? Smart textile measures/reacts Reaction is intrinsic Reaction is controlled by electronics Active data processing
  • 3. Functions of smart textiles • Sensor • Actuator • Data processing • Communication • Energy
  • 4. Why textiles? • All around • Versatile • Light weight • Large contact area with body • Comfortable • Easy to use
  • 5. Effects from nano to macro
  • 7. The textile can absorb, reflect, shield, measure or generate … Temperature Electric properties Heat flux Movement Electromagnetic fields Forces Humidity Mechanical strength Chemicals Odour Gases Acoustic Radiation Biological
  • 8. Electromagnetic fields: conductive textiles Stainless steel Knitted Woven non woven Kevlar coated polypyrrol copper gold with
  • 9. Conductive textiles as sensor Textrodes Respibelt
  • 10. EMG monitoring Myography for stress measurement Contactless Professional use EMG sensors embroidered laminated (www.context-project.org)
  • 11. Electrotherapy • Homogeneous current • Tactile stimulus density • Skin stimulation • Tissue reinforcement • Electrode design • Sensory effects • Current supply • Muscle stimulation • Contact with skin • Warming up • Exercising • Conditions of current •Drug delivery • Skin permeability • Iontophoresis
  • 12. Current density must be homogeneous Stripe Concentric Uniform profile square profile Peak current density: 33 mA/mm2 21 mA/mm² 15.6 mA/mm2
  • 14. Heating Polar Sefar
  • 15. Cooling • Grado Zero F1 pilots • Prospie project: • Salts that cool when wetted • Ventilation in clothing • Phase change materials www.prospie.eu
  • 16. Self adapting insulation/ventilation Biomimetics: based on pine cone Coating reacting on humidity G. Jenonimidis University of reading UK
  • 17. Phase change materials •Developed by NASA in 90’s •Cope with large temperature variations •More than 500 substances •Uses melting heat: about 200 times higher than caloric value •Paraffin waxes in micro capsules
  • 18. Thermoregulation challenges • Sensors • Determining thermal comfort • Adequate control strategies • Actuators: • Cooling • Insulation • Ventilation
  • 19. Mechanical actuators Mechanisms Status Thermal/hygral expansion Limited flexibility Shape memory materials One way, expensive, control Gel based systems Based on diffusion: slow Electro active polymers Slow, low voltage Electrostrictive systems Fast, high voltage
  • 20. Shape memory alloys: Nitinol Goes to a predifined shape above transition temperature Grado Zero Self ironing shirt
  • 21. Smart interface: active dyes Skin pH-variation after burn wound skin pH days L. Van der Schueren, K. De Clerck
  • 22. Textile display France Telecom
  • 23. Built in LED Lumalive
  • 24. OLED Textile structure Organic materials Image quality Yield Oxidation TITV
  • 25. Biochemical actuators Micro capsules Active gels Cyclodextrins
  • 26. Communication Within components Between components in a suit ‣ Conductive fibres ‣ Optical fibres With the wearer: • keyboard, • display Wide environment: • inductive, • antenna
  • 27. Energy Optimise consumption and distribution Balance between storage and “generation” Storage: • Flexible chemical batteries • Capacity based fibre batteries Generation from: • Heat • Motion • Light
  • 28. Energy from heat: Seebeck Uses: Areas of cooling •P semiconductor •N semiconductor Areas of heating •Conductive materials Infineon demonstrator
  • 29. Energy from motion: piezo electrics Deformation leads to E field Needs large surface, no thickness PVDF Challenges: •Materials •Concepts Electrode Piezo electric layer •Production (poling) Electrode
  • 30. Photovoltaics Organic photovoltaics Nanostructures Transparent layer/ Dyestuffs Electrode Challenges: N semiconductor •Materials +- +- P semiconductor •Production +- Electrode •Stability •Concept
  • 34. Outer garment External GPS Temperature Antenna Alarm Accelerometers Data Flexible Recording Textile Processing Antenna Battery Transmission
  • 35. Victim patch Parameter •Heart beat rate •Respiratory rate •Body Temperature Cfr. inner garment
  • 37. GPS Position ProeTEX PDA Google Earth 45.202740 45.202624 45.202755 1 09.133803 09.133932 09.133844 45.203345 45.203210 45.203322 2 09.134353 09.134457 09.137197 45.201181 45.201847 45.201555 3 09.139856 09.139828 09.139477 45.200705 45.198690 45.198816 4 09.143692 09.143832 09.143833
  • 38. A smart textile can … Monitor man, the environment and itself Detect unusual conditions Detect when things risk to get out of hand Prevent things from happening Protect against accidents Monitor the impact of events Provide early assistance Support and follow up rehabilitation
  • 39. Coordination action for enhancing the breakthrough of intelligent textile systems (e-textiles and wearable Microsystems) www. .org COLAE: Commercialisation Clusters of OLAE www. .eu