Q6 (16 Marks) Engine Construction & Components 🔥 Repeated 2x in exams
MEKM • Written Exam

With respect to piston cooling in large two stroke Marine Engines

(a) Briefly discuss the relative advantages and disadvantages of oil and water for piston cooling.

(b) Skeich a piston for a large two-stroke crosshead engine indicating the coolant flow

(c) State the causes of piston cracking and burning and how it can be avoided.

Appeared In: Sep 2024Dec 2018

Verified Model Answer (Text Solution)

Structured for DG Shipping MEO Class II examination scoring criteria.

Exam Ready
Part (a)

In two-stroke marine diesel engines, pistons are typically cooled using either water or oil, each method offering distinct advantages and disadvantages.

Water Cooling:

Advantages:

  • Water has a High Specific Heat Capacity, making it an effective coolant for pistons.
  • Leaks in water-cooled systems can be easily identified through changes in the drain tank, facilitating prompt maintenance.

Disadvantages:

  • A failure in the cooling system can lead to water entering the crankcase, contaminating the lubricating oil and potentially causing severe engine damage.
  • Water-cooled systems require additional components such as pumps and piping, increasing the system's complexity and the potential for maintenance issues.

Oil Cooling:

Advantages:

  • Since the same medium is used for both lubrication and cooling, there's no risk of water contaminating the lubricating oil.
  • Oil-cooled pistons eliminate the need for extra pumps and piping associated with water cooling, reducing system complexity.

Disadvantages:

  • Oil has a lower specific heat capacity compared to water, making it less efficient in absorbing heat.
  • Effective oil cooling may require a larger quantity of oil, potentially increasing operational costs.
Part (b)

Piston of a large two-stroke crosshead engine, indicating the coolant flow:

Part (c)

Causes of Piston Cracking and Burning in Large Two-Stroke Marine Engines and Their Avoidance:

  • Repeated cycles of heating and cooling during operation induce thermal stresses. These stresses, coupled with inertia forces (from reciprocating motion) and gas pressures during combustion, lead to fatigue cracking, particularly in areas experiencing high temperature gradients. This can be mitigated through optimized piston design (e.g., improved material selection with better thermal conductivity and reduced stress concentration points), ensuring consistent and effective cooling, and careful control of combustion parameters.
  • The presence of vanadium and sodium in low-quality fuel contributes to hot corrosion. These elements react with the piston crown at high temperatures, leading to surface degradation and potential cracking. Use good-quality fuel with low vanadium and sodium content. Add fuel additives to neutralize corrosive elements if poor-quality fuel is unavoidable.
  • Inefficient cooling due to scaling in cooling passages results in overheating of the piston, leading to thermal stress and cracking. Regularly clean and inspect cooling passages to prevent scaling. Ensure proper coolant flow and maintain recommended coolant quality.
  • Poor atomisation or high fuel penetration caused by faulty injectors can lead to fuel impingement on the piston crown, causing localised burning. Regularly maintain and pressure test the fuel injectors. Replace faulty injectors promptly to ensure proper fuel spray patterns.
  • Fuel with high ignition delay can result in afterburning, exposing the piston crown to excessive heat and causing thermal damage. Use fuel with appropriate ignition properties. Monitor combustion parameters and adjust the fuel system accordingly.
  • High Coolant Temperature reduces the effectiveness of cooling and increases the thermal load on the piston crown. Maintain coolant temperature within the manufacturer’s specified range.
  • Water Contamination in Fuel can cause impingement attack and thermal damage to the piston crown. Ensure proper fuel treatment and water separation. Regularly monitor and drain water from fuel tanks.
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