A pitot tube (Fig. 14-48) is used to determine the airspeed of an airplane. It consists of an outer tube with a number of small holes B (four are shown) that allow air into the tube; that tube is connected to one arm of a U -tube. The other arm of the U -tube is connected lo hole A at the front end of the device, which points in the direction the plane is headed. At A the air becomes stagnant so that v A = 0. At B , however, the speed of the air presumably equals the airspeed v of the plane. (a) Use Bernoulli’s equation to show that v = 2 ρ g h ρ a i r , where ρ is the density of the liquid in the U -tube and h is the difference in the liquid levels in that tube. (b) Suppose that the tube contains alcohol and the level difference h is 26.0 cm. What is the plane's speed relative to the air? The density of the air is 1.03 kg/m 3 and that of alcohol is 810 kg/m 3 . Figure 14-48 problems 62 and 63
A pitot tube (Fig. 14-48) is used to determine the airspeed of an airplane. It consists of an outer tube with a number of small holes B (four are shown) that allow air into the tube; that tube is connected to one arm of a U -tube. The other arm of the U -tube is connected lo hole A at the front end of the device, which points in the direction the plane is headed. At A the air becomes stagnant so that v A = 0. At B , however, the speed of the air presumably equals the airspeed v of the plane. (a) Use Bernoulli’s equation to show that v = 2 ρ g h ρ a i r , where ρ is the density of the liquid in the U -tube and h is the difference in the liquid levels in that tube. (b) Suppose that the tube contains alcohol and the level difference h is 26.0 cm. What is the plane's speed relative to the air? The density of the air is 1.03 kg/m 3 and that of alcohol is 810 kg/m 3 . Figure 14-48 problems 62 and 63
A pitot tube (Fig. 14-48) is used to determine the airspeed of an airplane. It consists of an outer tube with a number of small holes B (four are shown) that allow air into the tube; that tube is connected to one arm of a U-tube. The other arm of the U-tube is connected lo hole A at the front end of the device, which points in the direction the plane is headed. At A the air becomes stagnant so that vA = 0. At B, however, the speed of the air presumably equals the airspeed v of the plane. (a) Use Bernoulli’s equation to show that
v
=
2
ρ
g
h
ρ
a
i
r
,
where ρ is the density of the liquid in the U-tube and h is the difference in the liquid levels in that tube. (b) Suppose that the tube contains alcohol and the level difference h is 26.0 cm. What is the plane's speed relative to the air? The density of the air is 1.03 kg/m3 and that of alcohol is 810 kg/m3.
!
Required information
A man requires reading glasses with +2.15-D refractive power to read a book held 40.0 cm away with a relaxed eye.
Assume the glasses are 1.90 cm from his eyes.
His uncorrected near point is 1.00 m. If one of the lenses is the one for distance vision, what should the refractive power of the other
lens (for close-up vision) in his bifocals be to give him clear vision from 25.0 cm to infinity?
2.98 D
!
Required information
Assume that the magnifier is held close to the eye. Use the standard near point of 25.0 cm to find the angular
magnification. An insect that is 4.10 mm long is placed 10.3 cm from a simple magnifier with a focal length of 13.0 cm.
What is the angular magnification?
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.