Postal Dude
Limp Gawd
- Joined
- Mar 15, 2005
- Messages
- 428
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Postal Dude said:been done. its cool. Jus need to invest in a decent pump/block combo now

rodsfree said:It'll probably do real well!
Great score.....
If you run across any more - (hint, hint)![]()
Check the passages from one end to the other..... If the total combined area of the passages is greater than 1/2" then you'll be ok.
The larger passages allow the water to slow down and spend some time in the radiator - instead of just zipping right through.
Demon_of_The_Fall said:Yeah I've seen that idea of "letting the water hang around in the radiator" so that it can cool better posted a lot of times here lately. It just does not make any sense at all...

zer0signal667 said:Larger passages would create less resistance to flow, allowing greater volumetric flowrates. Fluid velocity (which is not the same as flowrate), on the other hand, may decrease. Lowering your flow in the radiator is not desirable, as heat transfer increases with flow.
edit: just noticed the quote in your sig- I just happen to be an engineerI don't want an argument though, just trying to make a common misconception less common

there is turbulent flow induced in rads via internal fins in the coolant stream.rodsfree said:What you are thinking of is the turbulent flow induced in the cpu blocks. Which will present a cool molecule of water to the thermal interface and cause a transfer of heat more quickly than just conduction could.
But we don't have turbulent flow in a radiator - you couldn't design one that could be easily built. Inducing trubulent flow requires right angles, fins in the flow that are orientated 90 degrees to the direction of flow, sharp turns, rough surfaces, and all manner of hard to manufacture things that would drive the cost of your radiator though the roof.
Thoughts?
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DFI Daishi said:there is turbulent flow induced in rads via internal fins in the coolant stream.
whatever math you care to drag into the discussion......engineers also like well controlled tests to validate their designs, yeah? maybe some nice performance curves as well?
http://www.overclockers.com/articles778/
have a read. reduced flow restriction and increased flow rate only help matters with a watercooling rad.
The four curves each show the radiators heat dissipation at a specific backpressure, which is also a specific air flow rate for that individual radiator. Of note is the changing relationship between the liquid and air sides; at low to moderate air flow rates the dissipation increases only slightly with the flow rate, while at a high air flow rate there is also a marked increase in cooling capability.
For the common respective flow rates, the convection heat transfer for air is the limiting parameter for a liquid to air heat exchanger. This is why there are fins (to increase convection heat transfer) on the air side and not on the liquid side for these heat exchangers. For low air flow rates, the thermal resistance of the air side is much more important than the fluid side (except for low fluid flow rates). Increasing the fluid flow rate leads to an improvement for the convection heat transfer, thus a lower thermal resistance, of the fluid side but this is negligible as compared to the air side thermal resistance. Improving the air side convection heat transfer, in other words the air flow rate, leads to a better global improvement. *

zer0signal667 said:Turbulent flow can occur in a straight, cylindrical pipe given the right conditions *cough*Reynolds' Number*cough*
Just some food for thought.
rodsfree said:But, damn.... everybody that's tried them found out that they don't work that well - must be because that velocity drop thing..... the B&M uses a same size, single tube in a serpentine pattern - so, no velocity drop. Plus, they suffer from a very laminar flow, the fluid has to cool itself by conduction with itself..... the fluid at the wall of the tube is moving very slowly with respect to the overall fluid flow. So, heat goes from tube wall, to slow moving fluid, to faster moving fluid - pure conduction.
plywood99 said:So to answer the question, no the velocity drop in the heatercore style rad is not the reason for better cooling. Mainly has to do with surface area...

plywood99 said:I think you are forgetting about flow resistance, so yes, there is a very noticeable velocity drop. That single serpentine tube will add quite a bit of resistance to the flow of water.

rodsfree said:Which you can't get unless you increase the total surface INSIDE the radiator.
Which means you increase the cross-sectional size available for fluid flow.
Which will cause a velocity drop.
QED
The two work hand in hand.
zer0signal667 said:It is very easy to manipulate cross-section area and surface area independently of one another. You're creating generalized cause-and-effect relationships which do not exist.

Postal Dude said:Ermmm. This thread has gone SLIGHTLY off topic. Im sure this is all very interesting. But i cant see it helping my cause.
Which is the better anti corrosion agent, zerex or water wetter?
How is my rad likely to perform?

zer0signal667 said:It is very easy to manipulate cross-section area and surface area independently of one another. You're creating generalized cause-and-effect relationships which do not exist.