In the final stages of production, a pharmaceutical is sterilized by heating it from 25 to 75 ° C as it moves at 0. 2 m / s through a straight thin—walled stainless steel tube of 12 . 7 − mm diameter. A uniform heat flux is maintained by an electric resistance heater wrapped around the outer surface of the tube. If the tube is 10 m long. what is the required heat flux? It fluid enters the tube with a fully developed velocity profile and a uniform temperature profile. what is the surface temperature at the tube exit and at a distance of 0. 5 m from the entrance? Fluid properties may be approximated as ρ = 1000 kg/m 3 , c p = 4000 J/kg ⋅ K,m = 2 × 10 − 3 kg/s ⋅ m,k = 0.8 W/m ⋅ K , and P r = 1 0 .
In the final stages of production, a pharmaceutical is sterilized by heating it from 25 to 75 ° C as it moves at 0. 2 m / s through a straight thin—walled stainless steel tube of 12 . 7 − mm diameter. A uniform heat flux is maintained by an electric resistance heater wrapped around the outer surface of the tube. If the tube is 10 m long. what is the required heat flux? It fluid enters the tube with a fully developed velocity profile and a uniform temperature profile. what is the surface temperature at the tube exit and at a distance of 0. 5 m from the entrance? Fluid properties may be approximated as ρ = 1000 kg/m 3 , c p = 4000 J/kg ⋅ K,m = 2 × 10 − 3 kg/s ⋅ m,k = 0.8 W/m ⋅ K , and P r = 1 0 .
In the final stages of production, a pharmaceutical is sterilized by heating it from 25 to
75
°
C
as it moves at
0.
2 m
/
s
through a straight thin—walled stainless steel tube of
12
.
7
−
mm
diameter. A uniform heat flux is maintained by an electric resistance heater wrapped around the outer surface of the tube. If the tube is 10 m long. what is the required heat flux? It fluid enters the tube with a fully developed velocity profile and a uniform temperature profile. what is the surface temperature at the tube exit and at a distance of
0.
5 m
from the entrance? Fluid properties may be approximated as
ρ
=
1000
kg/m
3
,
c
p
=
4000
J/kg
⋅
K,m
=
2
×
10
−
3
kg/s
⋅
m,k
=
0.8
W/m
⋅
K
, and
P
r
=
1
0
.
The beam is made of elastic perfectly plastic material. Determine the shape factor for the cross
section of the beam (Figure Q3). [Take σy = 250 MPa, yNA = 110.94 mm, I = 78.08 x 106 mm²]
y
25 mm
75 mm
I
25 mm
200 mm
25 mm
125
Figure Q3
A beam of the cross section shown in Figure Q3 is made of a steel that is assumed to be elastic-
perfectectly plastic material with E = 200 GPa and σy = 240 MPa. Determine:
i.
The shape factor of the cross section
ii.
The bending moment at which the plastic zones at the top and bottom of the bar are 30
mm thick.
15 mm
30 mm
15 mm
30 mm
30 mm
30 mm
A torque of magnitude T = 12 kNm is applied to the end of a tank containing compressed air
under a pressure of 8 MPa (Figure Q1). The tank has a 180 mm inner diameter and a 12 mm
wall thickness. As a result of several tensile tests, it has been found that tensile yeild strength
is σy = 250 MPa for thr grade of steel used. Determine the factor of safety with respect to yeild,
using:
(a) The maximum shearing stress theory
(b) The maximum distortion energy theory
T
Figure Q1
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