With reference to mechanical/hydraulic governors:
(a) Why flyweights are driven at a higher rotational speed than the engine.
(b) How dead band effects are reduced
(c) How hunting is reduced
(b) How the output torque is increased.
With reference to mechanical/hydraulic governors:
(a) Why flyweights are driven at a higher rotational speed than the engine.
(b) How dead band effects are reduced
(c) How hunting is reduced
(b) How the output torque is increased.
Structured for DG Shipping MEO Class II examination scoring criteria.
The operation of flyweights in a governor relies on the principle of centrifugal force, which governs their outward movement from the centerline. The centrifugal force is given by:
$$F=m\omega^2r$$
To enhance the sensitivity of the governor (the ability to respond accurately to changes in engine speed), the centrifugal force must be increased. Since increasing the mass (m) or radius (r) would lead to larger and less practical governor designs, the angular velocity (ω) is increased instead.
Flyweights are driven at a higher rotational speed than the engine using step-up gears. This increases the centrifugal force significantly without increasing the size of the governor, thus improving sensitivity.
The dead band is the range of speed change within which the governor does not act to correct throttle movement. This is caused by friction, poor lubrication, or mechanical resistance in the governor’s components.
Hunting occurs when the governor overcorrects or undercorrects changes in engine load, leading to fluctuations in engine speed. This is often caused by excessive sensitivity, usually due to insufficient droop.
The output torque of a governor is critical for effective throttle control and can be increased through the following methods: