Ultrathin Fluidic Laminates for Large‐Area Façade Integration and Smart Windows



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Bog'liq
Benjamin P. V 2016

Figure
9
A). Besides indoor appearance, also outdoor appear-
ance can be a major design target (Figure 9 B). 
3. Conclusions 
In summary, we presented glass–glass fl uidic devices for large-
area integration with adaptive façades and smart windows. 
These devices comprise a heat-storing fl uid which is trans-
ported through microchannels. The latter are directly integrated 
into the glass pane and, hence, enable very thin structure 
design for integration with state-of-the-art glazing, low weight, 
and appealing optical properties. High mechanical reliability 
is primarily generated by the thin cover glass, which can be 
www.MaterialsViews.com
Adv.
Sci.
2016
, 1600362
www.advancedscience.com
Figure 5. 
FEM computational verifi cation of steady-state heat exchange across fl uidic windows. Images are temperature distributions across a 
300 
×
210 mm 
2
fl uidic window with heat injection of 510 W m 

2
for an inlet temperature of 23 
°
C and a fl ow rate of 27 mL min 

1
. A) FEM simulation. 
B) Experimental data. C) Absolute difference between experimental and computational data.
Figure 6. 
Thermal effi ciency of microfl uidic window. The graph shows 
the temperature difference 
Δ
T
between inlet and outlet of the microfl u-
idic reactor for different fl ow rates
r
. Data are shown for a unit size of 
300 
×
210 mm 
2
.
Figure 7. 
Intrinsic harvesting effi ciency. The graph shows the ratio 
between injected and transported heat as a function of fl ow rate
r

obtained with the present prototype design. At fl ow rates above 

300 mL min 

1
, extrinsic loss such as caused by pumping effi ciency 
start to dominate the overall effi ciency. Data are shown for a unit size of 
300 
×
210 mm 
2
.



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