0323752 JOHNSON LEVER,Shift lockout


0323752 LEVER,Shift lockout JOHNSON 100ML79S, 115ML79R, 140ML79R, 150TL79C, 175TL79R, 200TL79A, 235TL70A, 50R79C, 55E79C, 70EL79R, 75ELR79R, 85ML79R, J100MLCSC, J115MLCIH, J115MLCSA, J140MLCIH, J140MLCSA, J150TLCIA, J150TLCSF, J175TLCIH, J175TLCSA, J200TLCIH, J200TLCSF, J235TLCIB, J235 LEVER
0323752 LEVER,Shift lockout JOHNSON
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30-06-2023

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0323752 Deluxe 89120 3/8" Drive 3/8" Ratcheting Crowfoot SAE Wrench 3/8"
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1.0[0.45] Pounds
US: LEADERS RPM
Johnson Evinrude OMC New OEM Shift Lockout Lever, 0323752
Johnson Evinrude OMC Sold each. || Please verify your own fitment. || Please verify your own fitment
Number on catalog scheme: 67
 

BRP JOHNSON entire parts catalog list:

100ML79S, 100TLR79S, 100TXLR79S 1979
115ML79R, 115TL79R, 115TXL79R 1979
140ML79R, 140TL79R, 140TXL79R 1979
150TL79C, 150TXL79C 1979
175TL79R, 175TXL79R 1979
200TL79A, 200TXL79A 1979
235TL70A, 235TXL79A 1979
50R79C, 50RL79C 1979
55E79C, 55EL79C 1979
70EL79R 1979
75ELR79R, 75ER79R 1979
85ML79R, 85TL79R, 85TXL79R 1979
J100MLCSC, J100TRLCSC, J100TRXCSC 1980
J115MLCIH, J115MLCIM, J115TLCIH, J115TLCIM, J115TXCIH, J115TXCIM 1981
J115MLCSA, J115TLCSA, J115TXCSA 1980
J140MLCIH, J140MLCIM, J140TLCIH, J140TLCIM, J140TXCIH, J140TXCIM 1981
J140MLCSA, J140TLCSA, J140TXCSA 1980
J150TLCIA, J150TLCIH, J150TXCIA, J150TXCIH 1981
J150TLCSF, J150TLCSR, J150TXCSF, J150TXCSR 1980
J175TLCIH, J175TLCIM, J175TXCIH, J175TXCIM 1981
J175TLCSA, J175TLCSF, J175TXCSA, J175TXCSF 1980
J200TLCIH, J200TXCIB, J200TXCIH 1981
J200TLCSF, J200TLCSM, J200TXCSF, J200TXCSM 1980
J235TLCIB, J235TLCIH, J235TXCIB, J235TXCIH 1981
J235TLCSM, J235TXCSM 1980
J50BECIC, J50BELCIC 1981
J50ECSR, J50ELCSR 1980
J55RCIM, J55RLCIM 1981
J55RLCSA 1980
J60ECIA, J60ECIH, J60ELCIA, J60ELCIH, J60TLCIA, J60TLCIH 1981
J60ECSR, J60ELCSR 1980
J70ELCIH, J70ELCIM, J70TLCIM 1981
J70ELCSA 1980
J75ERCIH, J75ERCIM, J75ERLCIH, J75ERLCIM, J75TELCIM, J75TRLCIH 1981
J75ERCSA, J75ERLCSA, J75TRLCSA 1980
J85MLCSA, J85TLCSA, J85TXCSA 1980
J90MLCIH, J90MLCIM, J90TLCIH, J90TLCIM, J90TXCIH, J90TXCIM 1981

Information:


Illustration 1 g06499451
(1) Radiator or heat exchanger
(2) Electronic Thermostat (ESTAT) for the jacket water cooling system
(3) Temperature Control Module (TCM)
(4) Jacket Water Aftercooler (JWAC) (front aftercooler core)
(5) Engine block
(6) Jacket water pump
(7) Engine oil coolerCoolant is pulled from radiator or heat exchanger (1) to water pump (6). From the water pump, coolant is sent through engine oil cooler (7). From the engine oil cooler, the coolant is sent to engine block (5). From the engine block, coolant is sent to ESTAT (2) and to the jacket water passage of the aftercooler (4). The ESTAT regulates the amount of coolant that flows through the radiator or heat exchanger to control engine temperature. The engine coolant that does not flow through the radiator is bypassed directly to the inlet of the jacket water pump.Coolant flows from the engine oil cooler into the water jacket at the front of the engine block. The coolant is directed toward the rear of the block through distribution manifolds. The distribution manifolds distribute the coolant to the water jacket for each cylinder. The coolant flows upward through the water jackets and around the cylinder liners. This area has the highest temperatures. As the coolant flows to the top of the cylinder liners, the coolant encounters a restriction due to smaller passages. The restriction causes the coolant flow to increase for improved cylinder liner cooling. Coolant flows from the top of the liners into passages that are cast into each of the cylinder heads. The coolant flows from the cylinder head back into the block and is returned to the front of the engine. As the coolant exits the front of the engine block, the coolant is directed through piping to the ESTAT and the after cooler core. Due to the restriction of the piping and after cooler core, a larger portion of the coolant flows to the ESTAT. The return coolant from the core is piped into a tee at the ESTAT.
Illustration 2 g06506728
(8) Three-way valve
(9) Electronic Fluid Temperature Control (EFTC)
(10) Stepper motorThe ESTAT utilizes a 3-way valve (8) that is electronically controlled by EFTC (9) to distribute the flow of the engine coolant. Engine temperate is inlet sensed by the engine jacket water pump outlet temperature sensor and outlet regulated by the EFTC to the radiator / heat exchanger. The outlet flow of coolant is directed by a piston that rides on a lead screw, which is driven by a stepper motor (10). For a cold engine, the EFTC bypasses the radiator/heat exchanger by sending the coolant directly back to the inlet of the water pump. As the engine warms, the EFTC controls the three-way valve to direct the correct amount of engine coolant through the radiator for coolingThe engine Electronic Control Module (ECM) transmits a temperature set point for the engine to the EFTC over the J1939 data link. The Engine Coolant Pump Outlet Temperature Sensor is used by the EFTC to detect the engine coolant temperature. The EFTC and three-way valve provides for complete control of coolant flow for accurate engine temperature.
Illustration 3 g06506730
(11) Engine Coolant Pump Outlet Temperature SensorJW Pump Outlet Temperature sensor connects to the EFTC and is powered by 3 VDC.
Table 1
Valve Position Water Flow
0% Position Block Outlet to JW Pump Inlet
100% Position Block Outlet to Radiator Top Tank/Expansion Tank The ESTAT provides self-diagnostic functions and increased service reliability. These features can help to reduce the repair times and warranty claims that are associated with the cooling system.There are two modes of operation and several states of operation for the EFTC.
Table 2
Mode State Controlling ECM
Position Control Active Engine ECM
Temperature Control Active EFTC
Temperature Control Ambient EFTC
Temperature Control Warmup EFTC
Temperature Control Regulating EFTC
Temperature Control Cool down EFTC The two modes of operation are the Position Control Mode and the Temperature Control Mode.In the Position Control Mode the engine ECM overrides the EFTC via the Local CAN bus and commands the EFTC to drive the piston to a specific position. When in this mode, ET will report the Engine Coolant Thermostat Mode as "Position Control Mode" and the Engine Coolant Temperature Control State as "Active".An example of Position Control Mode is the purge cycle. The purge cycle is used to pass any air trapped in the cooling system to the radiator top tank/expansion tank to prevent cavitation of the JW pump. This cycle will be initiated when the engine is first started. While this cycle is being performed, ET will report the Control Mode as "Position Control Mode" and the Control State as "Active". During the purge cycle the EFTC will position the piston at 20% for the first 100 seconds and then move the piston to 0% for the duration of the Purge Cycle. The Purge Cycle will terminate after 130 seconds or when the Engine Coolant Pump Outlet Temperature reads greater than 75° C (167° F).Note: Refer to Troubleshooting, "Configuration Parameters" for default settings and ranges.In the Temperature Control Mode the EFTC uses the Configuration Data, input from the Engine ECM via the Local CAN Bus, and input from the Engine Coolant Pump Outlet Temperature Sensor to determine the control state and the position of the piston. When in this mode, the EFTC is determining the position of the piston in the three-way valve and ET will report the Engine Coolant Thermostat Mode as "Temperature Control Mode".When in the Temperature Control Mode the operating conditions of the engine will dictate the state of operation for the EFTC. The cooling system is allowed to change states when all the conditions for the desired state are achieved. The different states of the electronic fluid temperature control are described below:Power-up – At power-up the EFTC assumes that the position of the piston is at the 100% position (fully open). It will then drive the piston in the counterclockwise (CCW) direction towards the 0% Position (fully closed). After 46 rotations of the stepper motor the piston will be guaranteed to be at the 0% Position, if all components are fully functional.If the piston reaches the 0% position


Parts lever JOHNSON:

0382370
 
0382370 LEVER ARM AND PIN ASSEMBLY
100ESL71A, 100ESL72R, 115EL77S, 115ESL69E, 115ESL70D, 115ESL73M, 115ESL74B, 115ESL75E, 115TXL77S, 125ESL71C, 125ESL72R, 135ESL73M, 135ESL74B, 135ESL75E, 140ML77S, 150TL78S, 150TL79C, 175TL77S, 175TL78C, 175TL79R, 200TL76S, 200TL77C, 200TL78R, 200TL79
0316046
 
0316046 LEVER,Manual choke
50ES71S, 50ES72C, 50ES73R, 50ES74M, 50R79C, 55E79C
0318539
 
0318539 LEVER, Shift rod
100ML79S, 115ETZ78C, 115ML79R, 140ML78C, 140ML79R, 65ES73R, 70EL76D, 70EL77S, 70EL78C, 70EL79R, 70ES74M, 70ES75B, 75ELR76D, 75ELR77S, 75ELR78C, 75ELR79R, 75ESLR75B, 85ETLR78C, 85ML79R, J100MLCSC, J115MLCIH, J115MLCSA, J140MLCIH, J140MLCSA, J70ELCIH,
0319318
 
0319318 LEVER, Spark advance
70EL76D, 70EL77S, 70EL78C, 70EL79R, 70ES74M, 70ES75B, 75ELR76D, 75ELR77S, 75ELR78C, 75ELR79R, 75ESLR75B, BJ50DTLEDC, BJ50DTLEUR, BJ60ELEDR, BJ60ELEUA, BJ60TLECM, BJ70ELECB, BJ70ELEDA, BJ70ELEUM, BJ70PLEEE, BJ70PLSIS, BJ70PLSSD, J40JPLEEC, J40JPLSIA,
0320971
 
0320971 LEVER,Spark advance
50R79C, 55E76E, 55E77D, 55E78S, 55E79C, J35AELCDE, J35AELCUD, J40AELCCS, J40ECDE, J40ECOB, J40ECRM, J40ECUD, J45RCE, J45RCEIA, J45RCENM, J45RCESR, J48ESLCCC, J48ESLCCC, J48ESLCUS, J48ESLCUS, J50BECCS, J50BECDE, J50BECIC, J50BECNR, J50BECOB, J50BECRM,
0388160
 
0388160 LEVER & PIN ASSY.
50R79C, 55E77D, 55E78S, 55E79C, J50BECIC, J50BECNR, J50ECSR, J55RCIM, J55RLCSA, J60ECIA, J60ECNM, J60ECSR
0387908
 
0387908 LEVER AND PIN ASSY.
70EL77S, 70EL78C, 70EL79R, 75ELR77S, 75ELR78C, 75ELR79R, J70ELCIH, J70ELCNB, J70ELCSA, J75ECNB, J75ERCIH, J75ERCSA
0389123
 
0389123 LEVER, Throttle control
50R79C, 55E78S, 55E79C, J35AELCDE, J35AELCUD, J40AELCCS, J40ECDE, J40ECOB, J40ECRM, J40ECUD, J45RCE, J45RCEIA, J45RCENM, J45RCESR, J48ESLCCC, J48ESLCCC, J48ESLCUS, J48ESLCUS, J50BECCS, J50BECDE, J50BECIC, J50BECNR, J50BECOB, J50BECRM, J50BECUD, J50EC
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