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Name the four types of mechanical motion.
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All Flashcards in Topic 3.3
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3.3.14 cards
Name the four types of mechanical motion.
Linear, rotary, oscillating and reciprocating.
What is the difference between oscillating and reciprocating motion?
Both reverse. Reciprocating motion travels back and forth along a straight line; oscillating motion swings back and forth along an arc about a pivot.
Give an example of each of the four motions.
Linear — a drawer or a lift. Rotary — a fan or a drill bit. Oscillating — a pendulum or a windscreen wiper. Reciprocating — a piston or a jigsaw blade.
Why should an input be written as a motion rather than a part?
Because a mechanism is defined by what it converts. "The handle" says nothing; "rotary motion applied by hand at the handle" tells you what has to come out the other end.
3.3.104 cards
What are the three purposes of a linkage?
Changing the direction of a movement, altering the magnitude of a force by making the arms unequal, and making a part follow a particular path.
What is the difference between a fixed and a moving pivot?
A fixed pivot is attached to the frame and cannot move; a moving pivot travels with the bars. Finding the fixed pivots first is how a linkage is read.
Name the three linkages and what each does.
Reverse motion — one fixed pivot, the output moves the opposite way. Parallel motion — two fixed pivots with equal bars, the output stays parallel. Bell crank — a right-angled bar turning movement through 90°.
Why does a toolbox tray use a parallel linkage rather than a lever?
Because two equal bars stay parallel, so the tray translates without tilting. A single lever swings its far end through an arc and the contents slide off.
3.3.24 cards
What are the three parts of a mechanical system?
Input, process and output. The input and output are motions; the process is the mechanism that converts one into the other.
What four things can a mechanical process change?
The type of motion, its speed, its direction, or the force it delivers.
Work a bicycle pump through the systems model.
Input: reciprocating motion from the hand. Process: a piston and washer in a cylinder with a one-way valve. Output: compressed air flowing one way into the tyre.
What is feedback in a mechanical system?
The system sensing its own output and correcting it — an engine governor closing a throttle as speed rises, or a thermostatic valve closing as a radiator warms.
3.3.34 cards
Define mechanical advantage.
MA = load ÷ effort — how many times a mechanism multiplies the force applied to it. On a lever it equals the effort arm divided by the load arm.
What is paid for a mechanical advantage above 1?
Distance. The effort end travels further than the load end, in the same ratio, because force × distance in equals force × distance out less friction.
When is a mechanical advantage below 1 wanted?
When speed or reach matters more than force — tweezers, a fishing rod, a broom, the human forearm. All multiply movement and divide force.
How is the efficiency of a mechanism improved?
Reduce friction with bearings and lubrication, stiffen members so movement is not lost in flexing, and shorten the chain so fewer joints add losses.
3.3.44 cards
Name the five mechanism families.
Gear-driven, belt-driven, cam, lever and linkage.
What is each mechanism family there to change?
Gears — speed and force with no slip. Belt — speed across a gap, quietly. Cam — rotary into a timed rise and fall. Lever — force. Linkage — direction or path.
How is a gear or belt ratio calculated?
Driven divided by driver — teeth for gears, diameters for belts. Small driving large is slower and stronger; large driving small is faster and weaker.
Why might a designer choose a belt over gears?
Shafts far apart or not perfectly aligned, quiet running, lower cost, no lubrication needed, and a slip under overload that protects the motor.
3.3.54 cards
Why are mechanisms chained rather than combined into one part?
Because each mechanism changes one thing. Chaining gives cheap standard parts, faults traceable to one stage, and ratios changeable by swapping a single component.
What does chaining mechanisms cost?
Efficiency, free play and wear. Efficiencies multiply: five stages at 95% each deliver about 77% of the input.
How should a mechanism chain be analysed?
Write the motion at each junction first, then name the mechanism that converts each pair. One stage at a time: motion in, motion out, reason.
Name the five mechanisms in a sewing machine and what each does.
Belt — reduces motor speed. Gears — synchronise the two shafts. Crank — rotary into reciprocating for the needle. Cam — times the fabric feed. Linkage — clamps the presser foot.
3.3.64 cards
Name the seven gear systems in the guide.
Spur, bevel, rack and pinion, worm and wheel, ratchet and pawl, idler, and compound.
How is a gear ratio calculated?
Teeth on the driven gear divided by teeth on the driver. A 10-tooth driver into a 40-tooth driven gear is 4:1 — a quarter the speed, about four times the torque.
What does an idler gear change?
The direction of the output, so it turns the same way as the input, and it bridges a gap between shafts. It does not change the overall ratio.
Why is a worm and wheel used in a hoist or a tuning peg?
It gives a very large reduction in one step and cannot be back-driven, so the load holds wherever it stops.
3.3.74 cards
Name the components of a belt drive.
A driver pulley on the input shaft, a driven pulley on the output shaft, a belt running in the grooves of both, and a tensioner or adjustable mounting.
How is a pulley ratio calculated?
Driven diameter divided by driver diameter. A 40 mm driver turning a 120 mm driven pulley is 3:1 — a third of the speed, about three times the torque.
Give four reasons to choose a belt over gears.
It spans a gap with two parts, runs quietly with no lubrication, tolerates shafts slightly out of line, and slips under overload instead of shearing a tooth or stalling a motor.
When must a plain belt not be used?
Where two shafts must stay synchronised, because a belt slips and stretches. An engine camshaft, a sewing machine or a printer needs gears or a toothed timing belt.
3.3.84 cards
How does a cam produce motion?
A shaped disc turns on a shaft and a follower rides its edge. Where the profile is far from the shaft the follower rises; where it is close it drops. The profile is the motion.
Name the six cam shapes and what each gives.
Pear — a dwell then one rise. Circular and eccentric — one smooth rise, set by the offset. Triangular — three rises per turn. Oval — two. Snail — a gradual rise then a sudden drop, one direction only.
What is a dwell?
A stretch of constant radius on a cam profile, where the follower holds still while the shaft keeps turning. It is why a pear cam suits an engine valve.
What sets the stroke of an eccentric cam?
The offset of the shaft from the centre of the disc, not the disc's diameter. Double the offset and the rise doubles.
3.3.94 cards
How are levers classified?
By which of the fulcrum, load and effort sits between the other two. F, L, E in class order: fulcrum in the middle is first, load in the middle is second, effort in the middle is third.
Which lever class always has MA above 1, and why?
Second class. The load sits between the fulcrum and the effort, so the effort arm is always longer — a wheelbarrow, nutcracker or bottle opener.
Why would a designer choose a third-class lever?
To multiply movement, speed and reach rather than force. A fishing rod, a broom and the human forearm all trade force away deliberately.
How is the mechanical advantage of a lever calculated?
Effort arm divided by load arm, both measured from the fulcrum. Effort × effort arm = load × load arm is the same relationship written as moments.
Topic 3.3 study notes
Full notes & explanations for Mechanical systems
Design Technology exam skills
Paper structures, command terms & tips
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