ThatsRicci said:
You can -never- compare the strengths of different metals just by looking at the size and weight of them.
Purities, impurities, forged strengths, forged methods, forged at all, compounds..etc.
I know this can go for a lot of things. I've seen hollow steel cranks on mountain bikes bear 5x the stress has their solid counterparts.. construction and materials have so much to do with it. He needs to test their break/bend limits by applying some serious amounts of torque to them. Also need to test break/bend limits under heat (300F-400F sounds fair) as impurities will start to rear their heads when you heat up metals.
This is a completely inconclusive report.
I think you're outstepping your bounds a little here dude. Everything you just read came from a graduated and licensed mechanical engineer.
You're right, you can't compare just by looking at them because they could be different materials. One could be titanium and one could be lead for all we know. That would lead to drastic differences in compressive and tensile fatigue strenghts due to the axial loading (not torque), which is the predominant loading condition applied to the conrod. You also can't look at a piece of metal and judge its strength either. The good news is that we have a pretty good idea of what the conrods are made of. That information combined with other engineering factors yields what is called a "Safety Factor" which takes into account material properties & strenghts, loading conditions, fatigue limits, etc. It is safe to assume that each rod is made neither of an extremely strong or weak material.
Here's where my report
is conclusive. Toyota doesn't make their conrods out of titanium nor do they make them out of lead. They make them out of powdered metal casting. Now what percent alloy/steel content, I don't know, but I guarantee you a TON of research has gone into optimizing the lightest, strongest and cheapest alloy powder mix. Furthermore, once the mix was optimized through R&D, the forging process developed is very, very repeatable yielding conrods that are of consistant strength time after time. Worried about heat effects, or what we call annealing? Don't. The hot casting process takes care of this. All intra-molecular stresses are quelled during the casting process, another reason they do it.
My point is that the conrods you see in the picture are at the very
least made of very similar compounds. Even if they're alloy content differed significantly (which they likely wouldn't), this difference would have a very, VERY small effect on the fatigue loading regime. If you would like to know how much, I would be happy to write you up a report on how many cycles difference would result from different alloys; I don't really feel like breaking the equations out right here; better yet, read a little "Machine Design" by Robert Norton (the bible for ME's) and you'll figure it out.
Bottom line, Toyota doesn't make their rods out of significantly different materials. So my post above is valid. Besides, I don't think the people who put that website up would overlook that *minor* detail anyways...