How are large slow speed engines structured to withstand the following forces
(a) Forces due to combustion loads
(b) Guide forces
(c) Inertia forces
How are large slow speed engines structured to withstand the following forces
(a) Forces due to combustion loads
(b) Guide forces
(c) Inertia forces
Structured for DG Shipping MEO Class II examination scoring criteria.
Structural Components to Withstand Forces:
Bedplate: Made of mild steel (MS) plates and steel castings, it is assembled and welded to ensure high longitudinal and transverse strength. It also resists twisting forces.
Cross Girders: Cast steel cross girders house the main bearings and provide additional transverse strength and resistance to twisting.
Chocks: Installed between the bedplate and the ship's double-bottom tank top, these absorb shocks and cyclic stresses, ensuring smooth load distribution.
The angular motion of the connecting rod (con-rod) during the engine cycle creates guide forces. At the top and bottom of the stroke, the con-rod is aligned with the crankshaft, but at other positions, it is inclined, generating horizontal forces. These horizontal forces are absorbed by the guides in two-stroke engines, creating a guide force moment.
In order to counteract the possible impact from guide force moments, it is recommended to install a set of TOP BRACES between the upper gallery of the engine and hull structure. These braces increase the natural frequency of the vibration system to such an extent that resonance occurs above the running range of engine speed, and guide force moment seems harmless.
The inertia forces are categorised into those acting on rotating masses and reciprocating masses:
Unbalanced inertia forces, originating from the rotating and reciprocating masses of the engine, create external moments that are unbalanced. This requires effective countermeasures to mitigate their impact on the hull and engine operation.
Resonance can occur when these external moments coincide with the natural frequency of the system within the engine's operating speed range.
These forces are managed through flywheel design to smooth out rotational speed fluctuations and the addition of counterweights to balance the drive chain, reducing vibrations and ensuring stable operation.