Consider a 20-cm-thick concrete plane wall ( k = 0.77 W/m .K ) subjected to convection on both sides T ∞ 1 = 27 ∘ C and h 1 = 5 W/m 2 . K on the inside and T ∞ 2 = 8 ∘ C and h 2 = 12 W/m 2 . K on the outside. Assuming constant thermal conductivity with no heat generation and negligible radiation. (a) Express the differential equation and the boundary conditions for steady one-dimensional heat conduction through the wall, (b) obtain a relation for the variation of temperature in the wall by solving the differential equation, and (c) evaluate the temperature at the inner and outer surface of the wall.
Consider a 20-cm-thick concrete plane wall ( k = 0.77 W/m .K ) subjected to convection on both sides T ∞ 1 = 27 ∘ C and h 1 = 5 W/m 2 . K on the inside and T ∞ 2 = 8 ∘ C and h 2 = 12 W/m 2 . K on the outside. Assuming constant thermal conductivity with no heat generation and negligible radiation. (a) Express the differential equation and the boundary conditions for steady one-dimensional heat conduction through the wall, (b) obtain a relation for the variation of temperature in the wall by solving the differential equation, and (c) evaluate the temperature at the inner and outer surface of the wall.
Solution Summary: The author explains the differential equation and boundary conditions for steady one-dimensional heat conduction through the wall.
Consider a 20-cm-thick concrete plane wall
(
k
=
0.77
W/m
.K
)
subjected to convection on both sides
T
∞
1
=
27
∘
C
and
h
1
=
5
W/m
2
.
K
on the inside and
T
∞
2
=
8
∘
C
and
h
2
=
12
W/m
2
.
K
on the outside. Assuming constant thermal conductivity with no heat generation and negligible radiation. (a) Express the differential equation and the boundary conditions for steady one-dimensional heat conduction through the wall, (b) obtain a relation for the variation of temperature in the wall by solving the differential equation, and (c) evaluate the temperature at the inner and outer surface of the wall.
Mych
CD
36280 kg.
0.36
givens
Tesla truck frailer 2017 Model
Vven
96154kph
ronge
804,5km
Cr
Powertrain
Across
PHVAC
rwheel
0.006
0.88
9M²
2
2kW
0.55M
ng
Zg
Prated
Trated
Pair
20
0.95
1080 kW
1760 Nm
1,2
determine the battery energy required to meet the
range when fully loaded
determine the approximate time for the fully-loaded
truck-trailor to accelerate from 0 to 60 mph while
Ignoring vehicle load forces
12-217. The block B is sus-
pended from a cable that is at-
tached to the block at E, wraps
around three pulleys, and is tied to
the back of a truck. If the truck
starts from rest when ID is zero,
and moves forward with a constant
acceleration of ap = 0.5 m/s²,
determine the speed of the block at
D
the instant x = 2 m. Neglect
the size of the pulleys in the calcu-
lation. When xƊ = 0, yc = 5 m,
so that points C and D are at the
Prob. 12-217
5 m
yc
=2M
Xp
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, mechanical-engineering and related others by exploring similar questions and additional content below.