Showing posts with label mustang. Show all posts
Showing posts with label mustang. Show all posts

Friday, July 20, 2018

Why Get a Lightweight Flywheel?

By Matthew Eddy - 2018-07-20

First, Ill explain why a lightweight flywheel is beneficial. Obviously, any racer knows, that reducing the weight of the vehicle is always good. In fact, nothing improves a car more than reducing weight because you can accelerate faster, stop quicker and turn harder. Basically it checks all the boxes when it comes to improving performance, so just on weight reduction alone it provides some advantage. Additionally, there is another benefit when it comes to what is called “parasitic power loss.” What this means is the engine uses some of its power to move internal components (pistons, crankshaft, etc) and driveline parts (driveshaft(s). A lot of this is unavoidable, but some of it can be reduced be eliminating as much mass in the system as possible.

They flywheel is one of the heaviest single component in the drivetrain – depending on the vehicle. It serves a few purposes such as helps to start the car, stores energy to smooth out the engine, and ease shifting by keeping the RPMs from dropping quickly (or at least that is some peoples opinion). Essentially, its to make the driving experience more pleasant. However, for a more race/performance centric car this is less of a concern and instead the focus is on speed and power. So taking this heavy flywheel out (for perspective the one in my E36 BMW weighs about 24lbs) and replacing it with a lighter one will reduce the overall weight of the car and more importantly reduce the amount of mass the engine has to turn and that means more power to the wheels.

There are a few different lightweight options available depending on the application. For lower power cars such as my stock BMW that produces 190hp, a good option is an aluminum flywheel. As I mentioned above, the stock flywheel weights 24lbs, the aluminum flywheel is only 10lbs. Now, an aluminum flywheel is not 100% aluminum, the ring gear that the starter engages will be steel, and the face the clutch will grab will be a hardened steel plate riveted or bolted on because the aluminum will just get torn up. You can see the pictures of the flywheel I just purchased for my BMW below for reference. Another claimed benefit is for some cars with dual mass flywheels, the single piece lightweight flywheel improves reliability since the dual mass flywheels can fail when you ham-fist your shifts during some spirited driving.

There is a steel plate bolted to the face of the flywheel where the clutch engages

Other side of the flywheel

Now aluminum is great but some engines produce a lot of horse power and the aluminum may not be able to stand up to it. You choose to go with something that is a bit stronger such as one made from chromoly. The weight savings are not as good but it’s still fairly significant. One for my car would be 11-14lbs (depending on brand) which is a 10-13lb weight savings over stock but still 1-4lbs heavier than the aluminum one. What is chromoly? It’s a particularly high strength steel alloy with relatively high amounts of chrome and molybdenum. It’s from Chrome and Molybdenum that the term chro-moly comes from and is designated as 4140 steel. Most flywheels are made from cast iron which isn’t particularly strong but its cheaper to make. Using high strength steel the weight savings come from the flywheel being a lot thinner and holes are added to remove additional material as well. I am not going to tell you which is best to go with, you may have to do research on your particular car and what makes the most sense for your application. Fidanza has an interesting article that you might light to read for some additional information.

https://fidanza.com/aluminum-vs-steel/


What is 6061 T6 aluminum? 

There are multiple alloys of aluminum out there but the most common “billet” type is 6061 T6. The 6061 designates the alloy, and the T6 is a reference to how it was heat treated. This allow also comes in tubes, bars, sheets etc. So pretty much any aluminum flywheel will be made with 6061 T6, but its also a very good alloy of aluminum. Billet simply means it was made from one big chunk of metal. There really is not any other way to make a flywheel, but it sounds cool to say “6061-T6 billet aluminum flywheel.”   

OK Cool But How Much POWER do I Gain?

This may vary significantly per engine and how much of a weight savings you are gaining over the stock flywheel but if the test done below is any indicator – it may be 1-2% gain in peak horse power and 2-3% gain in peak torques at the wheels. This may not seem like a lot, and its hard to say that this directly correlates, but if we say this could translate to 1-2% reduction in lap times that’s not too shabby.

http://www.superchevy.com/how-to/engines-drivetrain/1502-how-to-add-hp-with-a-lighter-flywheel-why-weight/

Tuesday, May 1, 2012

Baffled Oil Pans Explained

Story and Photos by Matthew Eddy

Outside View of Baffled Oil Pan for 5.0L Mustang


Normal production cars have what is called a “wet sump” meaning the majority of the oil is stored within the oil pan.  A pick up for the oil pump is located in the oil pan and sucks the oil up to lubricate critical areas within the engine.  This system is used because it is simple and cheap to manufacture and is more than sufficient to meet the needs of the commuter consumer.  However, in motorsports the car and engine are going to be subjected to high g-forces for an extended period of time which the wet sump system may not be able to cope with.  For example, in a long continuous high g turn, the oil will slosh to one side of the pan away from the oil pick up.  No oil gets sucked up and starves the engine which leads to excessive wear and catastrophic engine failure in a pretty short period of time. 

The best method to prevent oil starvation is to go with a dry sump system.  This is used in pretty much all the top racing series cars such as Formual 1, NASCAR, Indy, and American Le Mans.  There is an oil pan but it has a very limited capacity and the sump pump basically sucks all the oil out as fast as possible and stores it in a oil reservoir the is external to the engine. Oil pressure is maintained by feeding the oil from this external oil tank back into the engine so the engine is never wanting for oil.  An added benefit of this system is since the oil pan is very low profile, the engine can be lowered to lower the cars center of gravity.  Unfortunately these systems are very expensive.  A bargain basement pump will run you at least $800 and could run upwards of $2000.  Not to mention a new, possibly custom, oil pan, lines, oil reservoir and more. 

Most weekend warriors can’t justify a dry sump system especially if you are just a track day junkie who doesn’t really have a prepped car but there are a couple lower cost alternatives.  One is to get or make a baffled oil pan.  This will limit how much the oil able to slosh around and hopefully keep it where the pump can suck it up into the engine.  Simply put a baffled oil pan will has chambers that make it easy for the oil to travel toward the oil pick up but difficult for it to get sloshed the other way. Also, they tend to increase the capacity of the oil pan so that more oil will be available in the whole system. 

Below you can see a picture of a Ford Racing baffled oil pan out of a 5.0L Mustang.  This one is used mainly for drag racing but the concepts are the same between drag and road track with some design differences to account for lateral acceleration (g-forces experienced while cornering).  

Baffled Oil Pan from a 5.0L Mustang

You will notice the oil pan has two compartments, a shallow on the right side of the picture and a deeper one on the left.  The reason for the compartment on the right (which is the front of the engine) is to allow space for the oil pump.  The hump that separates the two compartments is required to clear the front cross member that goes under the engine.  In the left compartment is a square chamber that that is designed to trap oil and that is where the oil pick up is located.  At first you may be wondering why is seems to be cordoned off, but what is difficult to see in the picture above are the trap doors that only open inward to allow oil to enter the chamber but not exit (see picture below).  A few other features to note are the lips at the top of the chamber and also one on the left side of the center hump.  These lips prevent the oil from splashing up and out of the camber.  The pan is designed such that for the oil to travel from the left or right side of the pan (up and down in the picture), it must pass through the oil pick up chamber where it will be trapped.  


Baffles in Oil Pan
Above you can see a close up of the baffling in the oil pick up chamber.  The doors can only open inward which will allow the oil to enter but not exit.


Oil Scraper in Mustang Oil Pan
The feature pictured above is called a scraper.  As the crank spins, beads of oil are flung around the inside the engine.  The scraper catches most of these to prevent the oil from going up into the cylinders and instead returns it to the pan.  


In the near future I plan to make one of these for my V6 MR2 and when I do so, I will be posting a "How-To" article.