20405592 Volvo.Penta Exhaust manifold


20405592 Exhaust manifold Volvo.Penta TD520GE; TAD530GE; TAD531GE Exhaust
20405592 Exhaust manifold Volvo Penta
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Buy Exhaust manifold 20405592 Volvo Penta genuine, new aftermarket parts with delivery
Number on catalog scheme: 15
 

Compatible models:

Volvo Penta entire parts catalog list:

TD520GE; TAD530GE; TAD531GE; TAD532GE; TD720GE; TAD720GE; TAD730GE; TAD731GE; TAD732GE; TAD733GE; TAD530GE MECH; TAD530GE EDC4; TAD531GE MEC

Information:


Illustration 1 g01139723
(1) Inlet valve
(2) Exhaust valve
(3) Cylinder head
(4) Exhaust manifold
(5) Aftercooler core
(6) Inlet manifold
(7) Air inlet
(8) Exhaust outlet
(9) Compressor side of the turbocharger
(10) Turbine side of the turbocharger The components of the air inlet and exhaust system control the quality of the air that is available for combustion. These components also control the amount of the air that is available for combustion. The components of the air inlet and exhaust system are listed below:
Air cleaner
Turbocharger
Aftercooler
Cylinder head
Valves and valve system components
Piston and cylinder
Exhaust manifoldInlet air is pulled through the air cleaner. The inlet air is then compressed and heated by the compressor wheel of turbocharger (9) to about 150 °C (300 °F). The inlet air is then pushed through air-to-air aftercooler core (5) and the inlet air is moved to inlet manifold (6). The temperature of the inlet air upon entering inlet manifold (6) is about 43 °C (110 °F). Cooling of the inlet air increases the combustion efficiency. Increased combustion efficiency helps to lower fuel consumption. Also, increased combustion efficiency helps to increase horsepower output.Aftercooler core (5) is a separate cooler core. Aftercooler core (5) is installed in front of the core (standard) of the engine radiator on the machine. Air that is ambient temperature is moved across the aftercooler core by the engine fan. This cools the turbocharged inlet air.From aftercooler core (5), the air is forced into the cylinder head in order to fill the inlet ports. Air flow from the inlet port into the cylinder is controlled by inlet valves (1).There are two inlet valves (1) and one exhaust valve (2) for each cylinder. Inlet valves open when the piston moves down on the inlet stroke. When the inlet valves open, cooled compressed air from the inlet port is pulled into the cylinder. The inlet valves close and the piston begins to move up on the compression stroke. The air in the cylinder is compressed. When the piston is near the top of the compression stroke, fuel is injected into the cylinder. The fuel mixes with the air and combustion starts. During the power stroke, the combustion force pushes the piston downward. After the power stroke is complete, the piston moves upward. This upward movement is the exhaust stroke. During the exhaust stroke, the exhaust valve opens, and the exhaust gases are pushed through the exhaust port into the exhaust manifold. After the piston completes the exhaust stroke, the exhaust valve closes and the cycle starts again. The complete cycle consists of four stages:
Inlet stroke
Compression stroke
Power stroke
Exhaust strokeExhaust gases from exhaust manifold (4) enter the turbine side of turbocharger (10) in order to turn the turbine wheel. The turbine wheel is connected to a shaft which drives the compressor wheel. Exhaust gases from the turbocharger pass through the exhaust outlet pipe, the muffler and the exhaust stack.Turbocharger
Illustration 2 g01096602
Turbocharger
(1) Air inlet
(2) Compressor housing
(3) Compressor wheel
(4) Bearing
(5) Oil Inlet port
(6) Bearing
(7) Turbine housing
(8) Turbine wheel
(9) Exhaust outlet
(10) Oil outlet port
(11) Exhaust inlet The turbocharger is installed on the center section of the exhaust manifold. All the exhaust gases from the engine go through the turbocharger. The compressor side of the turbocharger is connected to the aftercooler by a pipe.The exhaust gases go into turbine housing (7) through exhaust inlet (11). The exhaust gases then push the blades of turbine wheel (8). The turbine wheel is connected by a shaft to compressor wheel (3).Clean air from the air cleaners is pulled through compressor housing air inlet (1) by the rotation of compressor wheel (3). The action of the compressor wheel blades causes a compression of the inlet air. This compression gives the engine more power by allowing the engine to burn more air and more fuel during combustion.When the load on the engine increases, more fuel is injected into the cylinders. The combustion of this additional fuel produces more exhaust gases. The additional exhaust gases cause the turbine and the compressor wheels of the turbocharger to turn faster. As the compressor wheel turns faster, more air is forced into the cylinders. The increased flow of air gives the engine more power by allowing the engine to burn the additional fuel with greater efficiency.
Illustration 3 g01139792
Turbocharger With Wastegate
(12) Actuating lever
(13) Canister
(14) Line (boost pressure) When the engine is operating under conditions of low boost, a spring pushes on a diaphragm in canister (13). This action moves actuating lever (12) in order to close the valve of the wastegate. Closing the valve of the wastegate allows the turbocharger to operate at maximum performance.As the boost pressure through line (14) increases against the diaphragm in canister (13), the valve of the wastegate is opened. When the valve of the wastegate is opened, the rpm of the turbocharger is limited by bypassing a portion of the exhaust gases. The exhaust gases are routed through the wastegate which bypasses the turbine wheel of the turbocharger.Note: The turbocharger with a wastegate is preset at the factory and no adjustment can be made.Bearings (4) and (6) for the turbocharger use engine oil under pressure for lubrication. The oil comes in through oil inlet port (5). The oil then goes through passages in the center section in order to lubricate the bearings. Oil from the turbocharger goes out through oil outlet port (10) in the bottom of the center section. The oil then goes back to the engine lubrication system.Valve System Components
Illustration 4 g01107026
Valve system components
(1) Rocker arms
(2) Bridge
(3) Spring
(4) Pushrods
(5) Exhaust valve
(6) Inlet valves
(7) Lifter
(8) Camshaft lobe The valve system components control the flow of inlet air into the cylinders during engine operation. The valve system components also control the flow of exhaust gases out of the cylinders during engine operation.The crankshaft gear drives the camshaft gear through an idler gear. The camshaft must be timed to the crankshaft in order to get the correct relation between the piston movement and the valve movement.The camshaft has two camshaft lobes for each cylinder. The lobes operate the inlet and exhaust valves. As the camshaft turns, lobes on the


Parts exhaust Volvo Penta:

20565912
 
20565912 Exhaust valve, exhaust
D5A-T; D5A-TA; D5A-B TA, D5A-T; D5A-TA; D5A-B TA, TAD520GE; TAD720GE; TAD721GE, TAD520VE; TAD720VE; TAD721VE, TD520GE; TAD530GE; TAD531GE, TD520VE; TD720VE
20755883
 
20755883 Exhaust valve
D5A-T; D5A-TA; D5A-B TA, D5A-T; D5A-TA; D5A-B TA, TAD520GE; TAD720GE; TAD721GE, TAD550GE; TAD551GE; TAD750GE, TAD750VE; TAD760VE, TD520GE; TAD530GE; TAD531GE, TD520VE; TD720VE
20460293
 
20460293 Exhaust pipe
TAD520GE; TAD720GE; TAD721GE, TD520GE; TAD530GE; TAD531GE
20580164
 
20580164 Exhaust pipe
TAD520GE; TAD720GE; TAD721GE, TAD520VE; TAD720VE; TAD721VE, TAD550GE; TAD551GE; TAD750GE, TD520GE; TAD530GE; TAD531GE
20534529
Exhaust manifold
20534529 Exhaust manifold
TAD520GE; TAD720GE; TAD721GE, TAD520VE; TAD720VE; TAD721VE, TAD550GE; TAD551GE; TAD750GE, TAD750VE; TAD760VE, TD520GE; TAD530GE; TAD531GE, TD520VE; TD720VE
20405935
 
20405935 Exhaust pipe clamp
TAD520GE; TAD720GE; TAD721GE, TD520GE; TAD530GE; TAD531GE
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