Bundle: Physics for Scientists and Engineers with Modern Physics, Loose-leaf Version, 9th + WebAssign Printed Access Card, Multi-Term
9th Edition
ISBN: 9781305932302
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
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Question
Chapter 20, Problem 84CP
(a)
To determine
The rate of energy
(b)
To determine
The power supplied to the heater.
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(a) The inside of a hollow cylinder is maintained at a tem-
perature T, and the outside is at a lower temperature, T,
(Fig. P19.45). The wall of the cylinder has a thermal conduc-
tivity k. Ignoring end effects, show that the rate of energy
conduction from the inner surface to the outer surface in
the radial direction is
[T.- T,
dQ
= 2Lk
dt
In(b/a)
Suggestions: The temperature gradient is dT/dr. A radial
energy current passes through a concentric cylinder of area
27rL. (b) The passenger section of a jet airliner is in the
shape of a cylindrical tube with a length of 35.0 m and an
inner radius of 2.50 m. Its walls are lined with an insulat-
ing material 6.00 cm in thickness and having a thermal
conductivity of 4.00 x 10-5 cal/s · cm · °C. A heater must
maintain the interior temperature at 25.0°C while the out-
side temperature is –35.0°C. What power must be supplied
to the heater?
T.
Figure P19.45
(a) The inside of a hollow cylinder is maintained at a tem-
perature T, and the outside is at a lower temperature, T,
(Fig. P19.45). The wall of the cylinder has a thermal conduc-
tivity k. Ignoring end effects, show that the rate of energy
conduction from the inner surface to the outer surface in
the radial direction is
dQ
dt
= 2mLk
[T.-T
In(b/a)
Suggestions: The temperature gradient is dT/dr. A radial
energy current passes through a concentric cylinder of area
2TTL. (b) The passenger section of a jet airliner is in the
shape of a cylindrical tube with a length of 35.0 m and an
inner radius of 2.50 m. Its walls are lined with an insulat-
ing material 6.00 cm in thickness and having a thermal
conductivity of 4.00 x 10-5 cal/s cm - °C. A heater must
maintain the interior temperature at 25.0°C while the out-
side temperature is -35.0°C. What power must be supplied
to the heater?
L
Figure P19.45
A spherical shell has inner radius 3.00 cm and outer radius
7.00 cm. It is made of material with thermal conductivity
k = 0.800 W/m - °C. The interior is maintained at tempera-
ture 5°C and the exterior at 40°C. After an interval of time,
the shell reaches a steady state with the temperature at each
point within it remaining constant in time. (a) Explain why
the rate of energy transfer P must be the same through
each spherical surface, of radius r, within the shell and
must satisfy
dT_
dr
4rkr?
(b) Next, prove that
r0.07
r-2 dr
4 Tk Joos
40
dT =
where Tis in degrees Celsius and ris in meters. (c) Find the
rate of energy transfer through the shell. (d) Prove that
dT = 1.84
Jo.03
| r? dr
where Tis in degrees Celsius and r is in meters. (e) Find
the temperature within the shell as a function of radius.
(f) Find the temperature at r = 5.00 cm, halfway through
the shell.
Chapter 20 Solutions
Bundle: Physics for Scientists and Engineers with Modern Physics, Loose-leaf Version, 9th + WebAssign Printed Access Card, Multi-Term
Ch. 20.2 - Prob. 20.1QQCh. 20.3 - Prob. 20.2QQCh. 20.6 - Prob. 20.3QQCh. 20.6 - Characterize the paths in Figure 19.12 as...Ch. 20.7 - Prob. 20.5QQCh. 20 - Prob. 1OQCh. 20 - Prob. 2OQCh. 20 - Prob. 3OQCh. 20 - Prob. 4OQCh. 20 - Prob. 5OQ
Ch. 20 - Prob. 6OQCh. 20 - Prob. 7OQCh. 20 - Prob. 8OQCh. 20 - Prob. 9OQCh. 20 - Prob. 10OQCh. 20 - Prob. 11OQCh. 20 - Prob. 12OQCh. 20 - Prob. 13OQCh. 20 - Prob. 14OQCh. 20 - Prob. 15OQCh. 20 - Prob. 1CQCh. 20 - Prob. 2CQCh. 20 - Prob. 3CQCh. 20 - Prob. 4CQCh. 20 - Prob. 5CQCh. 20 - Prob. 6CQCh. 20 - Prob. 7CQCh. 20 - Prob. 8CQCh. 20 - Prob. 9CQCh. 20 - Prob. 10CQCh. 20 - Pioneers stored fruits and vegetables in...Ch. 20 - Prob. 12CQCh. 20 - Prob. 1PCh. 20 - Prob. 2PCh. 20 - Prob. 3PCh. 20 - The highest waterfall in the world is the Salto...Ch. 20 - Prob. 5PCh. 20 - The temperature of a silver bar rises by 10.0C...Ch. 20 - Prob. 7PCh. 20 - Prob. 8PCh. 20 - Prob. 9PCh. 20 - If water with a mass mk at temperature Tk is...Ch. 20 - Prob. 11PCh. 20 - Prob. 12PCh. 20 - Prob. 13PCh. 20 - Prob. 14PCh. 20 - Prob. 15PCh. 20 - Prob. 16PCh. 20 - Prob. 17PCh. 20 - How much energy is required to change a 40.0-g ice...Ch. 20 - Prob. 19PCh. 20 - Prob. 20PCh. 20 - Prob. 22PCh. 20 - In an insulated vessel, 250 g of ice at 0C is...Ch. 20 - Prob. 24PCh. 20 - Prob. 25PCh. 20 - Prob. 26PCh. 20 - One mole of an ideal gas is warmed slowly so that...Ch. 20 - Prob. 28PCh. 20 - Prob. 29PCh. 20 - A gas is taken through the cyclic process...Ch. 20 - Prob. 31PCh. 20 - Prob. 32PCh. 20 - A thermodynamic system undergoes a process in...Ch. 20 - Prob. 34PCh. 20 - A 2.00-mol sample of helium gas initially at 300...Ch. 20 - (a) How much work is done on the steam when 1.00...Ch. 20 - Prob. 37PCh. 20 - Prob. 38PCh. 20 - A 1.00-kg block of aluminum is warmed at...Ch. 20 - Prob. 40PCh. 20 - Prob. 41PCh. 20 - Prob. 42PCh. 20 - Prob. 43PCh. 20 - A concrete slab is 12.0 cm thick and has an area...Ch. 20 - Prob. 45PCh. 20 - Prob. 46PCh. 20 - Prob. 47PCh. 20 - Prob. 48PCh. 20 - Two lightbulbs have cylindrical filaments much...Ch. 20 - Prob. 50PCh. 20 - Prob. 51PCh. 20 - Prob. 52PCh. 20 - (a) Calculate the R-value of a thermal window made...Ch. 20 - Prob. 54PCh. 20 - Prob. 55PCh. 20 - Prob. 56PCh. 20 - Prob. 57PCh. 20 - Prob. 58APCh. 20 - Gas in a container is at a pressure of 1.50 atm...Ch. 20 - Prob. 60APCh. 20 - Prob. 61APCh. 20 - Prob. 62APCh. 20 - Prob. 63APCh. 20 - Prob. 64APCh. 20 - Review. Following a collision between a large...Ch. 20 - An ice-cube tray is filled with 75.0 g of water....Ch. 20 - Prob. 67APCh. 20 - Prob. 68APCh. 20 - An iron plate is held against an iron wheel so...Ch. 20 - Prob. 70APCh. 20 - Prob. 71APCh. 20 - One mole of an ideal gas is contained in a...Ch. 20 - Prob. 73APCh. 20 - Prob. 74APCh. 20 - Prob. 75APCh. 20 - Prob. 76APCh. 20 - Prob. 77APCh. 20 - Prob. 78APCh. 20 - Prob. 79APCh. 20 - Prob. 80APCh. 20 - Prob. 81CPCh. 20 - Prob. 82CPCh. 20 - Prob. 83CPCh. 20 - Prob. 84CP
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