Hello everyone,
this here
Quote: |
| If you immediately put a cold engine under heavy load, the cylinder head will heat up much faster than the engine block. . . However, the head gasket will definitely be subjected to very high shear stress because the cylinder head expands significantly more due to the faster heating and the greater coefficient of thermal expansion compared to the engine block. This results in significant shear stress on the gasket within the sealing gap, which is superimposed by the regular stress caused by the internal pressure of the cylinder. |
(from /viewtopic.php?t=4896)
It still occupies my mind.
Here are my layman's thoughts on the stress experienced by the cylinder head gasket during the warm-up phase and at the engine's operating temperature.
The different coefficients of thermal expansion for gray cast iron and Al-Si alloys cause the latter to expand more quickly upon heating, and vice versa - see quote.
According to this, the cylinder head gasket is subjected to increasing stress, the warmer (or colder) the entire engine is compared to the temperatures during its assembly -
and this already occurs without a temperature difference between the cylinder head and the engine block.
I'm skeptical that the cylinder head grows "twice as fast" as the block during the warm-up phase due to greater heat absorption, because the internal temperature of the cylinder head is practically maintained at the same level as the block by the flowing coolant (thermal equilibrium).
Especially in the combustion chamber, thermal stresses arise
internally between the hot surfaces of the combustion chambers and exhaust channels on one hand, and the cooling water and inlet channels on the other.
These variations are mainly dependent on the temperature difference between the combustion chambers and the cooling water. Therefore, they will be most pronounced under "cold full load" conditions and largely disappear when the engine is switched off or during prolonged operation.
The cylinder head is likely to undergo a primarily three-dimensional, "gel-like" deformation (i.e., bending). In particular, the thermal expansion of the material layers on the combustion chamber side will cause them to shift towards the cylinder head gasket and further compress the area around the cylinder bores.
Even with a warmed-up engine, the cylinder head temperatures in the area of the combustion chamber walls will be higher than those around the coolant channels as long as the engine is under load. Therefore, the locally different pressure loads on the cylinder head gasket will decrease compared to cold running, but they will not disappear completely.
My conclusions:
Immediately after a cold start, the cylinder head gasket is primarily subjected to locally varying clamping pressures that depend on the engine load and which decrease somewhat as the engine temperature rises.
2. As soon as the engine warms up, the engine block and cylinder head begin to expand at different rates, which puts additional and increasing shear stress on the cylinder head gasket
and increases it progressively.
Since I don't know the actual magnitudes of the aforementioned pressure and shear loads, I can only estimate that the material stress on the cylinder head gasket (as the sum of the mentioned loads) increases with the overall temperature of the engine and is greatest when the engine is hot and operating at its maximum pressure.
-> If someone wants to quickly damage their catalytic converter (ZKD), they should drive with a constant low speed during the hottest part of summer, possibly even very slowly, for example, driving uphill in a caravan (Rainer's experience).
Damage to the cylinder head gasket (ZKD) appears to be a common consequence of coolant loss or water pump failures, which seems to confirm this.
Whoever can refute, supplement, or confirm my preceding thoughts is welcome to type away now

.
It would be interesting to have facts about the average combustion chamber temperature (under different load conditions), as one can infer the extent of creep deformation based on that, depending on the instantaneous coolant temperature.
Under prolonged operation with high power output, the engine could actually cool down through the combustion chambers and the air being pumped through, which would make the cylinder head gasket ("ZKD") more "loose" around the cylinder bores... ?