Consider a person standing in a room maintained at 20 o C at all times. The inner surfaces of the walls, floors, and ceiling of the house are observed to be at an average temperature of 12 o C in winter and 23 o C in summer. Determine the rates of radiation heat transfer between this person and the surrounding surfaces in both summer and winter if the exposed surface area, emissivity, and the average outer surface temperature of the person are 1.6 m 2 , 0.95 , and 32 o C, respectively.
Consider a person standing in a room maintained at 20 o C at all times. The inner surfaces of the walls, floors, and ceiling of the house are observed to be at an average temperature of 12 o C in winter and 23 o C in summer. Determine the rates of radiation heat transfer between this person and the surrounding surfaces in both summer and winter if the exposed surface area, emissivity, and the average outer surface temperature of the person are 1.6 m 2 , 0.95 , and 32 o C, respectively.
Solution Summary: The author calculates the rate of radiation heat transfer between the person and surrounding room surface in summer and winter.
Consider a person standing in a room maintained at
20
o
C
at all times. The inner surfaces of the walls, floors, and ceiling of the house are observed to be at an average temperature of
12
o
C
in winter and
23
o
C
in summer. Determine the rates of radiation heat transfer between this person and the surrounding surfaces in both summer and winter if the exposed surface area, emissivity, and the average outer surface temperature of the person are
1.6
m
2
,
0.95
,
and
32
o
C,
respectively.
find the laplace transform for the
flowing function
2(1-e)
Ans. F(s)=-
S
12)
k
0
Ans. F(s)=
k
s(1+e)
0 a
2a 3a 4a
13)
2+
Ans. F(s)=
1
s(1+e")
3
14) f(t)=1, 0
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A union feedback control system has the following open loop transfer function
where k>0 is a variable proportional gain
i. for K = 1 , derive the exact magnitude and phase expressions of G(jw).
ii) for K = 1 , identify the gaincross-over frequency (Wgc) [where IG(jo))| 1] and phase cross-overfrequency [where <G(jw) = - 180]. You can use MATLAB command "margin" to obtain there quantities.
iii) Calculate gain margin (in dB) and phase margin (in degrees) ·State whether the closed-loop is stable for K = 1 and briefly justify your answer based on the margin . (Gain marginPhase margin)
iv. what happens to the gain margin and Phase margin when you increase the value of K?you
You can use for loop in MATLAB to check that.Helpful matlab commands : if, bode, margin, rlocus
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