Joints of high quality can be formed by friction welding. Consider the friction welding of two 40-mm-diameter Inconel rods. The bottom rod is stationary, while the top rod is forced into a back-and-forth linear motion characterized by an instantaneous horizontal displacement, d ( t ) = a cos ( ω t ) where a = 2 mm and ω = 1000 rad/s . The coefficient of sliding friction between the two pieces is μ = 0.3. Determine the compressive force that must be applied to heat the joint to the Inconel melting point within t = 3 s, starting from an initial temperature of 20 ° C . Hint: The frequency of the motion and resulting heat rate are very high. The temperature response can be approximated as if the heating rate were constant in time, equal to its average value.
Joints of high quality can be formed by friction welding. Consider the friction welding of two 40-mm-diameter Inconel rods. The bottom rod is stationary, while the top rod is forced into a back-and-forth linear motion characterized by an instantaneous horizontal displacement, d ( t ) = a cos ( ω t ) where a = 2 mm and ω = 1000 rad/s . The coefficient of sliding friction between the two pieces is μ = 0.3. Determine the compressive force that must be applied to heat the joint to the Inconel melting point within t = 3 s, starting from an initial temperature of 20 ° C . Hint: The frequency of the motion and resulting heat rate are very high. The temperature response can be approximated as if the heating rate were constant in time, equal to its average value.
Joints of high quality can be formed by friction welding. Consider the friction welding of two 40-mm-diameter Inconel rods. The bottom rod is stationary, while the top rod is forced into a back-and-forth linear motion characterized by an instantaneous horizontal displacement,
d
(
t
)
=
a
cos
(
ω
t
)
where
a
=
2
mm
and
ω
=
1000
rad/s
.
The coefficient of sliding friction between the two pieces is
μ
=
0.3.
Determine the compressive force that must be applied to heat the joint to the Inconel melting point within
t
=
3
s,
starting from an initial temperature of
20
°
C
.
Hint: The frequency of the motion and resulting heat rate are very high. The temperature response can be approximated as if the heating rate were constant in time, equal to its average value.
4. The rod ABCD is made of an aluminum for which E = 70 GPa. For the loading
shown, determine the deflection of (a) point B, (b) point D.
1.75 m
Area = 800 mm²
100 kN
B
1.25 m
с
Area = 500 mm²
75 kN
1.5 m
D
50 kN
Research and select different values for the R ratio from various engine models, then analyze how these changes affect instantaneous velocity and acceleration, presenting your findings visually using graphs.
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I need to draw a graph and I need to show all work step by step please do not get short cut from dtna
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