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Question 1
The fly-press shown in Figure 1 is used by a jeweller to punch shapes out of a thin metal sheet. The frame holds a screw and punch. Two arms are attached to the scr... show full transcript
Step 1
Answer
The rotational kinetic energy (KE) is given by the formula:
Where:
First, we convert the angular speed:
Now substituting into the kinetic energy formula:
Solving for (I):
Step 2
Answer
The moment of inertia depends on the distribution of mass relative to the axis of rotation. The screw, punch, and arms have their mass concentrated closer to the axis of rotation, leading to a lower moment of inertia. In contrast, the steel balls are further away from this axis, resulting in a higher moment of inertia. Thus, the more mass is distributed away from the axis, the larger the moment of inertia.
Step 3
Step 4
Answer
Using the formula for angular displacement:
Substituting the known values:
We have:
Calculating that gives:
Step 5
Answer
The stored energy (E) in the system is related to the moment of inertia and angular velocity:
If we increase (y) by 15% without changing (R), it will result in a decrease of torque producing less energy than increasing (R) by 15% without changing (y). This is because the effective distance from the axis increases significantly when increasing the radius, thus leading to a greater increase in stored energy. Therefore, increasing (R) by 15% will produce the greater increase in stored energy.
Step 6
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