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Showing posts with label car technical. Show all posts
Showing posts with label car technical. Show all posts

Thursday

Agency Power Racing Downpipe Subaru WRX/STI 02+


Continually developing and enhancing the Subaru WRX and STI cars has been the goal of Agency Power. With a complete line up to make your Subaru the best in it's competition, Agency Power has just released their all new Racing Downpipe. This downpipe fits all Subaru WRX or STI cars from 2002 and up. The downpipe is full stainless steel with a cast bell mouth upper section. The thich flanges ensure a tight and strong seal. The downpipe deletes both your catalytic converters and bolts to all factory style turbos. The downpipes precision welds and polished piping give the AP Racing Downpipe that cutting edge. Each downpipe includes a bung for an aftermarket air/fuel sensor as well as a bung for the factory O2 sensor.

When adding an Agency Power Racing Downpipe to your Subaru WRX or STI, you will gain more horsepower and overall performance. The downpipe allows for better flow of the turbine and wastegate gasses. Unlike the factor downpipe that blocks the wastegate gasses from being released in an efficient manner, the AP downpipe has a large bell mouth which allows for both to flow smoothly out and down the pipe. The 3 inch diameter piping is the perfect size for the turbo cars from stock hp to 500 whp. The bellmouth will also allow for a little boost increase since there is less restriction. Mate this downpipe up with your aftermarket catback exhaust or one of our Agency Power catbacks for an amazing sound and almost 25 wheel horsepower gain.

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Monday

Electronic Fuel Injection (EFI)



If there's one thing that's critical in a high performance engine, then it's fuel control. Think about it: the whole objective of adding a turbocharger, of installing NOS, even of installing a free flow exhaust system, is to improve fuel delivery into the combustion chamber. It is also events in the combustion chamber that can and will destroy a high performance race engine if it's not controlled properly. Here we're talking about controlling the combustion process. Now I've heard many arguments as to why sidedraft carburetors provide better performance than fuel injection and engine management, and vice versa but I always say: it's not about performance, it's about reliability and there's no better system for fuel control than electronic fuel injection. Any endurance race car from INDY Car Racing, to Formula 1, to the World Rally Championship, to the Le Mans Series uses electronic fuel injection (EFI) systems, not just for reliability but because ensuring that the correct amount of fuel is delivered under every condition, will provide the best performance.

EFI is central to engine management. It relies on an engine control unit (ECU) which processes a number of inputs from various sensors on the engine to deliver the correct amount of fuel at a particular RPM and air-flow rate/air density combination. The fuel is delivered through an injector, which is an electronically actuated solenoid valve. The amount of fuel that is delivered is dependent on the fuel pressure, which is usually a constant 30 psi above intake manifold pressure, and the pulse duration of the injector, i.e., the length of time the injector is held open.

Most EFI systems have a standard set of sensors. These include:

* The Barometric Pressure (BARO) Sensor, which provides the ECU with the atmospheric air pressure reading.

* The Engine Coolant Temperature (ECT) Sensor, which provides the ECU with the engine's current operating temperature. This is important because fuel vaporization varies for different engine temperatures. A cold engine requires more fuel while a hot engine requires less.

* The Intake Air Temperature (IAT) Sensor, which the ECU needs to take into account when determining pulse duration.

* The Mass Air Flow (MAF) Sensor, which is a tube positioned after the air filter in the air intake duct. The MAF sensor has a fine platinum wire that spans across the tube. The wire is heated by electrical current to maintain a constant temperature above ambient. The air flow past the wire cools the wire and more current is required to maintain the constant temperature. Thus, the amount of current required to maintain the constant temperature indicates the air flow rate. The air flow rate is divided by RPM to determine the pulse duration.

* The Manifold Absolute Pressure (MAP) Sensor, which uses manifold vacuum to measure engine load. An EFI system that uses a MAP sensor does not require a MAF sensor as it can use the input from the MAP sensor to determine the required pulse duration.

* The Oxygen Sensor (O2S), which is used to measure the amount of oxygen that is not consumed during combustion. This is important for the correct operation of the catalyst converter and is used for emissions control rather than performance or economy. The O2S is located in the exhaust system and is an after-the-fact measure of the air/fuel ratio. Too much unburnt fuel in the exhaust indicates a lean mixture while too little oxygen indicates a rich mixture.

* The Crankshaft Position (CKP) Sensor, which is important for timing purposes as it tells the ECU which spark plug to fire and which injector to open at any given point in the Otto cycle.

* The Throttle Position (TP) Sensor, which is another important sensor as the throttle position and the rate of change in the throttle position indicates the what the diver wants the car to do.

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Thursday

Designing and Building an Exhaust System


The main purpose of an exhaust system is undoubtedly to route the bunt air/fuel mixture out of the car's engine. Along the way it may be used to drive a turbocharger and now-a-days it will most definitely incorporate a catalyst converter to reduce carbon dioxide emissions. But on a high performance car, such as a modified street car, or a modified race car, the exhaust system does much more than that as it also affects engine performance and engine tuning!

An exhaust system generally consists of an exhaust manifold (which is also called an exhaust header), a front pipe, a catalyst converter, a main muffler or silencer, and a tail pipe. Of these items, the muffler is the easiest to deal with — simply replace the stock muffler with a performance muffler, such as a Flowmaster muffler, to create a free flow exhaust system. However, the performance muffler must have an inlet and an outlet that is the same size (diameter) as your front pipe and your tail pipe. Your front pipe and your tail pipe should be the same size. The rest of the exhaust system is complicated by questions of back pressure, your engine's power band, and your engine's maximum usable RPM.

BACK PRESSURE

Back pressure is an important consideration because too much back pressure will adversely affect top-end engine performance as it will restrict the flow rate of the exhaust gasses at high RPM. The car's engine will not be able to expel the burnt air/fuel mixture at the required rate. The burnt air/fuel mixture remaining in the cylinder at the next intake stroke will contaminate the fresh air/fuel mixture and will rob the engine of power. Thus, fitting a 1 inch pea-shooter to your engine in place of the exhaust pipe is not a good idea! But then neither is fitting a 10 inch sewage pipe. If the exhaust pipe is too large, you will get reduced flow velocity of the exhaust gasses. The flow velocity of the exhaust gasses assists with the scavenging of the exhaust fumes as well as the amount of air/fuel mixture that can be drawn into the combustion chamber on the next intake stroke. This is because the flow velocity of the exhaust creates a low pressure immediately behind it that sucks more gasses out of the combustion chamber.

BASIC DESIGN

Generally speaking, when designing an exhaust system for a 4-cylinder engine, a 2¼ inch exhaust pipe is ideal but for a 6-cylinder engine, a 2½ inch pipe is ideal, though a 2000cc 4-cylinder race engine could do with a 3 inch exhaust pipe. The size of the exhaust header primary pipes of also influences back pressure and flow velocity, while the length of the primary pipes affect the power band of your engine. The size and length of the primary pipes and your exhaust header design depends on your engine's power band, displacement and maximum usable RPM.

The Exhaust Header


As I've mentioned in our introduction to exhaust systems, the exhaust manifold design, or exhaust header design can have a major affect on engine performance. The primary pipe diameter and primary pipe length of the exhaust header has a significant affect on the engine's power band and peak power. When design the exhaust header, you need to take into account the number of cylinders, the engine capacity, and the maximum usable RPM.

NORMALLY ASPIRATED STREET CAR

When designing the exhaust header, remember that a 1600cc 4-cylinder or 2400cc 6-cylinder normally aspirated street racer with a maximum usable RPM of 5,500 should have a header with a primary pipe diameter of about 1½ inch and a primary pipe length of 34-36 inches, while a 2000cc 4-cylinder normally aspirated race engine should have a header with a primary pipe diameter of about 1¾ inch and a primary pipe length of about 32 inches that feeds into a 2½ inch collector. The primary pipe lengths should be within 2 inches of each other and all four primary pipes on a 4-cylinder should join together in a single collector before feeding into the exhaust pipe. A 6-cylinder engine should have two collectors with cylinders 1, 2, and 3 joining into one collector and cylinders 4, 5, and 6 joining into the other collector. A Y-pipe could then be used to join the two collectors before feeding into the exhaust pipe.

ALL ROUND RACE PERFORMANCE

For all round race performance, a header with 1⅝ inch primaries that are 32 inches in length usually provides the best power curve over the widest RPM range. Shorter primary pipes provide better low-end torque while longer primary pipes provide better top-end power but at the expense of acceleration. On a turbo engine, a header with short primary pipes will help with acceleration until boost pressure is reached and the turbo kicks in.

ANTI-REVERSION

Each primary pipe should at least match the exhaust port diameter or should be slightly larger. A primary pipe that is slightly larger than the exhaust port is better as it inhibits reversion, which is the flow of exhaust gasses back into the combustion chamber when the downward movement of the piston creates a vacuum in the cylinder. The exhaust valve is still open when the intake stroke begins. Preventing reversion will reduce the contamination of the air/fuel mixture by exhaust fumes. An anti-reversion (AR) header that is designed to inhibit reversion would be your best choice. AR headers have a built-in lip that restrict exhaust gas flow back into the cylinder.

Ultimately, determining the correct primary pipe diameter and primary length that provides the best engine characteristics and performance will require that you have your car dyno-tuned.

Turbo Exhaust Systems

The same rules regarding the exhaust header design that apply to normally aspirated engines also apply to turbo engines but with a few rather significant twists.

An exhaust header with equal length primary pipes that joint together in a collector is always better than a log-type header in which short primary pipes branch into a thicker log pipe. However, on a turbo engine, space limitations may necessitate the use of a log-type header. In addition, the primary pipes of the header will be determined by the size of the turbine inlet.

A major twist in the header design of a turbo exhaust system is the integration of the wastegate. The wastegate is used to control boost pressure and to prevent over boosting. For this reason, the wastegate should be integrated into the header so that it is exposed to as much of the pressure in the exhaust as possible. This means that the wastegate should be located at or after the collector where all the primary pipes join together, or after the last exhaust port on a log-type header. Also, the wastegate should be located at an angle that does not restrict exhaust gas flow. The exhaust gas must be able to flow to the wastegate so that the wastegate can experience the correct exhaust pressure in the system.

There are also a few important aspects of a turbo engine that you must take into account with regards to your tail pipe. Firstly, the turbo increases the amount of air/fuel mixture that is fed into the combustion chamber and consequently increases the amount of exhaust gas that must be expelled from the engine. Secondly, the exhaust gasses of the turbo engine are much higher than a normally aspirated engine; therefore the exhaust on a turbo engine will be more prone to heat expansion. The flange that is attached to the turbine outlet can experience temperatures of up to 1500°F! For this reason the flange should be beefed up and a minimum flange thickness off a ½ inch with additional bracing is recommended. The rest of the exhaust system needs to make allowance for heat expansion and should incorporate swaged joints

The size of the tailpipe is also complicated by the size of your turbo and the boost you are running. Some tuners recommend a tail pipe that is 10% larger than the turbine outlet. This takes turbo size into account but not boost pressure! I personally prefer basing my tail pipe size on the bhp produced by the engine. As with normally aspirated cars, arriving at the ideal tail pipe diameter, as well as the ideal primary pipe diameter and length, will require some time on the dyno-tuner.

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Saturday

Turbo Charger vs Super Charger

Turbocharger

Turbochargers are a type of forced induction system. They compress the air flowing into the engine. The advantage of compressing the air is that it lets the engine squeeze more air into a cylinder, and more air means that more fuel can be added. Therefore, you get more power from each explosion in each cylinder. A turbocharged engine produces more power overall than the same engine without the charging. This can significantly improve the power-to-weight ratio for the engine. In order to achieve this boost, the turbocharger uses the exhaust flow from the engine to spin a turbine, which in turn spins an air pump. The turbine in the turbocharger spins at speeds of up to 150,000 rotations per minute (rpm) -- that's about 30 times faster than most car engines can go. And since it is hooked up to the exhaust, the temperatures in the turbine are also very high. Turbochargers are powered by the mass-flow of exhaust gases driving a turbine.


Supercharger

Another way to add power is to make a normal-sized engine more efficient. You can accomplish this by forcing more air into the combustion chamber. More air means more fuel can be added, and more fuel means a bigger explosion and greater horsepower. Adding a supercharger is a great way to achieve forced air induction. In this article, we'll explain what superchargers are, how they work and how they compare to turbochargers. A supercharger is any device that pressurizes the air intake to above atmospheric pressure. Both superchargers and turbochargers do this. In fact, the term "turbocharger" is a shortened version of "turbo-supercharger," its official name. Superchargers are powered mechanically by belt- or chain-drive from the engine's crankshaft.

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