Solar radiation incident on the earth’s surface may be divided into the direct and diffuse components described in Problem 12.9. Consider conditions for a day in which the intensity of the direct solar radiation is I d i r = 201 x10 7 W / m 2 · in the solid angle subtended by the sun with respect to the earth, Δ ω s = 6.74 x10 − 5 s r . The intensity of the diffuse radiation is I d i f = 70 W / m 2 · s r . (a) What is the total solar irradiation at the earth’s surface when the direct radiation is incident at 0 = 30 ∘ ? (b) Verify the prescribed value for Δ ω s , recognizing that the diameter of the sun is 1.39 x10 5 m and the distance between the sun and the earth is 1.496 x10 11 m (1 astronomical unit).
Solar radiation incident on the earth’s surface may be divided into the direct and diffuse components described in Problem 12.9. Consider conditions for a day in which the intensity of the direct solar radiation is I d i r = 201 x10 7 W / m 2 · in the solid angle subtended by the sun with respect to the earth, Δ ω s = 6.74 x10 − 5 s r . The intensity of the diffuse radiation is I d i f = 70 W / m 2 · s r . (a) What is the total solar irradiation at the earth’s surface when the direct radiation is incident at 0 = 30 ∘ ? (b) Verify the prescribed value for Δ ω s , recognizing that the diameter of the sun is 1.39 x10 5 m and the distance between the sun and the earth is 1.496 x10 11 m (1 astronomical unit).
Solution Summary: The author calculates the total solar irradiation at the surface of earth as the sum of direct radiation and diffuse radiation.
Solar radiation incident on the earth’s surface may be divided into the direct and diffuse components described in Problem 12.9. Consider conditions for a day in which the intensity of the direct solar radiation is
I
d
i
r
=
201
x10
7
W
/
m
2
·
in the solid angle subtended by the sun with respect to the earth,
Δ
ω
s
=
6.74
x10
−
5
s
r
. The intensity of the diffuse radiation is
I
d
i
f
=
70
W
/
m
2
·
s
r
. (a) What is the total solar irradiation at the earth’s surface when the direct radiation is incident at
0
=
30
∘
? (b) Verify the prescribed value for
Δ
ω
s
, recognizing that the diameter of the sun is
1.39
x10
5
m
and the distance between the sun and the earth is
1.496
x10
11
m
(1 astronomical unit).
3.) 15.40 – Collar B moves up at constant velocity vB = 1.5 m/s. Rod AB has length = 1.2 m. The incline is
at angle = 25°. Compute an expression for the angular velocity of rod AB, ė and the velocity of end A of the
rod (✓✓) as a function of v₂,1,0,0. Then compute numerical answers for ȧ & y_ with 0 = 50°.
2.) 15.12 The assembly shown consists of the straight rod ABC which passes through and is welded to the
grectangular plate DEFH. The assembly rotates about the axis AC with a constant angular velocity of 9 rad/s.
Knowing that the motion when viewed from C is counterclockwise, determine the velocity and acceleration of
corner F.
500
Q3: The attachment shown in Fig.3 is made of
1040 HR. The static force is 30 kN. Specify the
weldment (give the pattern, electrode
number, type of weld, length of weld, and leg
size).
Fig. 3
All dimension
in mm
30 kN
100
(10 Marks)
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