0324025 JOHNSON ORIFACE,Fuelpullover


0324025 ORIFACE,Fuelpullover JOHNSON 150TL78S, 150TL79C, 175TL78C, 175TL79R, 200TL78R, 200TL79A, 235TL70A, 235TL78R, BJ5FRBECC, BJ5FRBEUS, BJ8FRBECA, D100WTLM, HJ10FELECA, HJ6FRECA, HJ6FREUR, J100MLCSC, J100STLCCA, J100WMLCDR, J100WMLCOC, J100WMLCRS, J100WTLCUA, J100WTLZ, J10EEIR, J10EE ORIFACE
0324025 ORIFACE,Fuelpullover JOHNSON
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16-06-2023
0.25[0.11] Pounds
-: -
OMC Evinrude Johnson Orifice Plug P/N 324025 0324025 NOS
Genuine OEM OMC Part || OEM Orifice Plug || Part Number: 324025 || May not include original package.
 

08-09-2017

Littelfuse: Littelfuse Incorpora
45-PCS FUSE 25A 250V FAST 3AB LTTLFUSE 0324025.H 0324025 03240 0324025.H 0324025
Number on catalog scheme: 5
 

BRP JOHNSON entire parts catalog list:

150TL78S, 150TXL78S 1978
150TL79C, 150TXL79C 1979
175TL78C, 175TX78C 1978
175TL79R, 175TXL79R 1979
200TL78R, 200TX78R 1978
200TL79A, 200TXL79A 1979
235TL70A, 235TXL79A 1979
235TL78R, 235TX78R 1978
BJ5FRBECC, BJ5FRBLECC, HJ5FRECA, HJ5FRLECA 1998
BJ5FRBEUS, BJ5FRBLEUS, HJ5FREUR, HJ5FRLEUR 1997
BJ8FRBECA, BJ8FRBLECA, J8FRECA, J8FRLECA, J8FRXECA 1998
D100WTLM, D100WTXM 1988
HJ10FELECA, J10FOECA, J10FOLECA 1998
HJ6FRECA, HJ6FRLECA 1998
HJ6FREUR, HJ6FRLEUR 1997
J100MLCSC, J100TRLCSC, J100TRXCSC 1980
J100STLCCA 1988
J100WMLCDR, J100WTLCDR, J100WTXCDR 1986
J100WMLCOC, J100WTLCOC 1985
J100WMLCRS, J100WTLCRS 1984
J100WTLCUA, J100WTXCUA 1987
J100WTLZ, J100WTXZ 1989
J10EEIR, J10ELEIR, J10REIR, J10RELEIR, J10RLEIR, J10SELEIR, TJ10RELEIR 1991
J10EENA, J10ELENA, J10RELENA, J10RENA, J10RLENA, J10SELENA, TJ10RELENA 1992
J10EESC, J10ELESC, J10RELESC, J10RESC, J10RLESC, J10SELESC, TJ10ELESC, TJ10RELESC, TJ10RLESC 1990
J110MLCCA, J110TLCCA, J110TXCCA 1988
J110MLCDC, J110TLCDC, J110TLCDF 1986
J110MLCUR, J110TLCUR, J110TXCUR 1987
J115MLCIH, J115MLCIM, J115TLCIH, J115TLCIM, J115TXCIH, J115TXCIM 1981
J115MLCNB, J115TLCNB, J115TXCNB 1982
J115MLCOS, J115TLCOS 1985
J115MLCRD, J115TLCRD, J115TXCRD 1984
J115MLCSA, J115TLCSA, J115TXCSA 1980
J115MLCTE, J115TLCTE, J115TXCTE 1983
J120TLAIE, J120TLEIE, J120TXEIE, VJ120TLAIE, VJ120TLEIE, VJ120TXEIE 1991
J120TLAND, J120TLEND, J120TXEND, VJ120TLAND, VJ120TLEND, VJ120TXEND 1992
J120TLATF, J120TLATS, J120TLETF, J120TLETS, J120TXATF, J120TXATS, J120TXETF, J120TXETS, VJ120TLATF, VJ120TLATS, VJ120TLETF, VJ120TLETS, VJ120TXETF, VJ120TXETS 1993
J125ESXENR 1992
J125ESXETA, J125ESXETF 1993
J140CXATF, J140CXATS, J140CXETB, J140CXETF, J140TLATC, J140TLATF, J140TLETC, J140TLETF, J140TXATF, J140TXATS, J140TXETC, J140TXETF, VJ140TLETC, VJ140TLETF, VJ140TXETC, VJ140TXETF 1993
J140CXEIA, J140TLEID, J140TXEID, VJ140TLAID, VJ140TLEID, VJ140TXEID 1991
J140CXENM, J140TLANS, J140TLENS, J140TXENS, VJ140TLANS, VJ140TLENS, VJ140TXENS 1992
J140MLCIH, J140MLCIM, J140TLCIH, J140TLCIM, J140TXCIH, J140TXCIM 1981
J140MLCNB, J140TLCNB, J140TXCNB 1982
J140MLCSA, J140TLCSA, J140TXCSA 1980
J140MLCTE, J140TLCTE, J140TXCTE 1983
J140TLCRD, J140TXCRD 1984
J150STLCOH, J150STLCOS 1985
J150STLCRD 1984
J150TLCOS, J150TXCOS 1985
J150TLCRD, J150TXCRD 1984
J150TLCTB, J150TLCTE, J150TXCTB, J150TXCTE 1983
J15EEIA, J15ELEIA, J15REIA, J15RELEIA, J15RLEIA 1991
J15EENM, J15ELENM, J15RELENM, J15RENM, J15RLENM 1992
J15EESR, J15ELESR, J15RELESR, J15RESR, J15RLESR 1990
J175TLCOC, J175TXCOC 1985
J175TLCTD, J175TLCTE, J175TXCTD, J175TXCTE 1983
J185ESXESS 1990
J185ESXW 1989
J185TLCOC, J185TXCOC 1985
J185TLCRS, J185TXCR 1984
J200CXCCR, J200STLACM, J200STLCCM, J200TXCCR 1988
J200CXCEA, J200STLCEB, J200TXCEA, TJ200TXCEA 1989
J200CXESM, J200STLESE, J200TXESM, VJ200SLESE, VJ200TXESM 1990
J200TLCTD, J200TLCTS, J200TXCTD, J200TXCTS 1983
J225CXCCE, J225PLCCE, J225PXCCE, J225TLCCE, J225TXCCE 1988
J225CXCED, J225PLAED, J225PLCED, J225PXCED, J225TLAED, J225TLCED, J225TXCED 1989
J225CXESS, J225PLASS, J225PLESS, J225PXESS, J225TLASS, J225TLESS, J225TXESS, VJ225PLESS, VJ225PXESS, VJ225TLASS, VJ225TLESS, VJ225TXESS 1990
J235STLCOR 1985
J235STLCRC 1984
J235TLCOR, J235TXCOR 1985
J235TLCRC, J235TXCRC 1984
J235TLCTD, J235TLCTS, J235TXCTD, J235TXCTS 1983
J40ECEC, J40ELCEC, J40RCEC, J40RLCEC, J40TECEC, J40TELCEC, J40TLCEC, J40TTLCEC, TJ40ELCEC 1989
J40EEIA, J40ELEIA, J40REIA, J40RLEIA, J40TEEIA, J40TELEIA, J40TLEIA, J40TTLEIA, TJ40ELEIA, VJ40EEIA, VJ40ELEIA, VJ40TELEIA, VJ40TLEIA 1991
J40EENJ, J40EENM, J40ELENJ, J40ELENM, J40RENM, J40RLENM, J40TEENJ, J40TEENM, J40TELENJ, J40TELENM, J40TLENJ, J40TLENM, J40TTLENM, TJ40ELENJ, TJ40ELENM, VJ40EENJ, VJ40EENM, VJ40ELENJ, VJ40ELENM, VJ40TELENJ, VJ40TELENM, VJ40TLENJ, VJ40TLENM 1992
J40EESR, J40ELESR, J40RESR, J40RLESR, J40TEESR, J40TELESR, J40TLESR, J40TTLESR, TJ40ELESF, TJ40ELESR, TJ40TELESF, TJ40TELESR, VJ40EESR, VJ40ELESR, VJ40TELESR, VJ40TLESR 1990
J50BECEC, J50BELCEC, J50TLCEC, TJ50TLCEC, TJ50TLESF 1989
J50BECOB, J50BELCOB, J50TELCOB, J50TLCOB 1985
J50BEEIA, J50BELEIA, J50JEIA, J50TELEIA, J50TLEIA, VJ50BEEIA, VJ50BELEIA, VJ50TLEIA 1991
J50BEENJ, J50BEENM, J50BELENJ, J50BELENM, J50JENJ, J50JENM, J50TELENM, J50TLENJ, J50TLENM, VJ50BEENJ, VJ50BEENM, VJ50BELENJ, VJ50BELENM, VJ50TELENM, VJ50TLENJ, VJ50TLENM 1992
J50BEESR, J50BELESR, J50TELESR, J50TLESR, TJ50TLESF, TJ50TLESR, VJ50BEESR, VJ50BELESR, VJ50TLESR 1990
J50ECSR, J50ELCSR 1980
J50TELCEC 1989
J60ELCOD, J60TLCOD 1985
J6R4SRC, J6RL4SRC 2004
J6R4STS, J6RL4STS 2003
J85MLCSA, J85TLCSA, J85TXCSA 1980
J88MSLCCC, J90TLCCA, VJ88MSLCCC 1988
J88MSLCCC, VJ88MSLCCC 1988
J88MSLCUS 1987
J88MSLCUS 1987
J90MLCDC, J90TLCDC, J90TXCDC 1986
J90MLCIH, J90MLCIM, J90TLCIH, J90TLCIM, J90TXCIH, J90TXCIM 1981
J90MLCNB, J90TLCNB, J90TXCNB 1982
J90MLCOS, J90TLCOS, J90TXCOS 1985
J90MLCRD, J90TLCRD, J90TXCRD 1984
J90MLCTE, J90TLCTE, J90TXCTE 1983
J90MLCUR, J90TLCUR 1987

Information:


Illustration 1 g01051217
Air inlet and exhaust system
(1) Inlet valves
(2) Exhaust valves
(3) Exhaust manifold
(4) Air-to-air Aftercooler
(5) Air inlet
(6) Exhaust outlet
(7) Turbocharger
(8) Inlet manifold The components of the air inlet and exhaust system control the quality of air and the amount of air that is available for combustion. The components of the air inlet and exhaust system are the following components:
Air cleaner
Turbocharger
Aftercooler
Cylinder head
Valves and valve system components
Piston and cylinder
Inlet manifold
Exhaust manifoldNote: The following description of the operation of the air inlet and exhaust system assumes that the engine is developing boost pressure. Inlet air passes through the air cleaner into the air inlet (5) of the turbocharger compressor wheel. The turbocharger (7) will supply more volume of air into the engine. This compressing of the air is referred to as boost. The compressing of air causes the air temperature to rise to about 204 °C (400 °F). As the air flows through the aftercooler (4) the temperature of the compressed air lowers to about 46 °C (115 °F). Cooling of the inlet air causes the air to become more dense. This increases combustion efficiency and this increases horsepower output.From the aftercooler (4), air enters the inlet manifold (8). Air flow from the inlet manifold (8) into the cylinders is controlled by inlet valves (1). There are two inlet valves and two exhaust valves (2) for each cylinder. The inlet valves (1) open at the top center position before the piston moves toward the bottom center position. This is called the inlet stroke. When the inlet valves (1) open, cooled compressed air from the inlet port enters the cylinder. The inlet valves (1) close as the piston reaches the bottom center position. The piston begins to travel back to the top center position on the compression stroke. The air in the cylinder is compressed to a very high temperature. When the piston is near the end of the compression stroke, fuel is injected into the cylinder and mixes with the air. This causes combustion to start in the cylinder. Once combustion starts, the combustion force pushes the piston toward the bottom center position. This is called the power stroke. The exhaust valves (2) open when the piston moves toward the bottom center position and the exhaust gases are pushed through the exhaust port into exhaust manifold (3) as the piston travels toward top center on the exhaust stroke. The exhaust valves (2) close and the cycle starts again. The complete cycle consists of four strokes:
Inlet
Compression
Power
ExhaustExhaust gases from the exhaust manifold (3) enter the turbine side of the turbocharger (7). The exhaust gas temperature causes the turbine wheel in the turbocharger (7) to turn. The turbine wheel is connected to the shaft that drives the compressor wheel. Exhaust gases from the turbine wheel exit the turbocharger (7).Turbocharger
Illustration 2 g01485074
Turbocharger
(9) Air inlet
(10) Compressor housing
(11) Compressor wheel
(12) Bearing
(13) Oil Inlet port
(14) Bearing
(15) Turbine housing
(16) Turbine wheel
(17) Exhaust outlet
(18) Oil outlet port
(19) Exhaust inlet All of the air that enters the engine passes through the turbocharger. All of the exhaust gases from the engine pass through the turbocharger.The exhaust gases enter turbine housing (15) through exhaust inlet (19). The exhaust gas pushes on the blades of the turbine wheel (16). The turbine wheel is connected by a shaft to the compressor wheel (11).Air that passes through the air filters enters the compressor housing air inlet (9) by the rotation of compressor wheel (11). The compressor wheel causes the inlet air to be pushed into the inlet side of the engine. Boost pressure is caused when the compressor wheel pushes more air into the inlet side of the engine. This results in an inlet manifold pressure that exceeds atmospheric pressure. This allows the engine to burn more fuel. When the engine burns more fuel the engine produces more power.When the throttle is opened, more fuel is injected into the cylinders. The combustion of this additional fuel produces greater exhaust temperature. The additional exhaust temperature causes 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.Bearings (12) and (14) for the turbocharger use engine oil under pressure for lubrication and cooling. The oil comes in through oil inlet port (13). The oil then goes through passages in the center section in order to lubricate the bearings. This oil also cools the bearings. Oil from the turbocharger goes out through oil outlet port (18) in the bottom of the center section. The oil then goes back to the engine oil pan. Valve System Components
Illustration 3 g01485193
Valve system components
(20) Rocker arm
(21) Locknut for adjusting screw
(22) Rocker arm shaft
(23) Camshaft
(24) Valve bridge The valve train controls the flow of inlet air and exhaust gases into the cylinders and out of the cylinders during engine operation. The camshaft (23) controls the timing of the valves 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 position and the valve position.The camshaft has three camshaft lobes for each cylinder. One camshaft lobe operates the inlet valves. One camshaft lobe operates the exhaust valves. One camshaft lobe operates the unit injector. The camshaft lobes cause the follower on the rocker arm in order to actuate the valves and the unit injector.Each cylinder has two inlet valves and two exhaust valves. Valve springs hold the valves closed and the valve springs resist the opening of the valves. This ensures that the valves will close at high rpm and under high boost pressures. Valve rotators cause the valves to rotate while the engine is running. The rotation of the valves prevents the valves from burning by constantly changing the contact area of the valve face and the valve seat. This rotation gives the valves longer service life.


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