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



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Bog'liq
Benjamin P. V 2016

Figure
11
).
In this way, both the fl ow velocity distribution within the channels and 
the system’s global thermal behavior were predicted as specifi ed below. 
Fluid Motion
: In order to describe the motion of the viscous fl uid 
substances within the system, the Navier–Stokes Equation

1) 
was 
applied 
vv
vv
vv
ff
vv
t
p
ρ
η
(
)
(
)

∂ + ⋅ ∇
= − ∇ + Δ
( 1)
where
v
is the fl ow velocity vector,
ρ
is the fl uid mass density,
f
is the 
volume density of the body forces acting on the fl uid,
p
is the pressure, 
and
η
is the dynamic viscosity of the fl uid. 
The heat transfer model was then simplifi ed by stating the mass 
conservation hypothesis and by assuming that no slip occurs at the 
boundaries (see above). 
Heat Transfer
: The heat transfer Equations ( 2) and ( 3) were employed as 
p
p
vd
uu
C
T
k T
Q Q
Q
ρ
(
)
⋅ ∇ − ∇ ⋅ ∇ = +
+
( 2)
k T s Q Q
(
)
−∇ ⋅ ∇
= +
ted
( 3)
where
Q
is the general heat source,
Q
ted
is the thermoelastic damping, 
Q
vd
is the viscous dissipation, and
Q
p
is the pressure work. In the specifi c 
assumptions,
Q
ted
,
Q
vd
, and
Q
p
are all equal to zero. The following further 
boundary conditions were applied to the simulation: (1) the system is 
thermally isolated on the thinner glass side, (2) a boundary heat source 
with a power density of 510 W m 

2
has been set on the thin glass side, 
(3) heat exchange between the environment and the system occurs on 
the thicker glass side with a constant environmental temperature of 
23 
°
C, (4) at the input, the fl uid’s temperature is 23 
°
C, and (5) at the 
output, no heat is injected from the environment 
− ⋅ =
( n q 0)

Computational Rendering
: Computational renderings of the 
appearance of capillary glass in real window systems were generated 
Figure 11. 
FEM-model for computational verifi cation. A) Fluid body. B) Glass body. C) Zoom at the inlet region of the fl uid model, visualizing 
discretization.



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