0207103 TILT HANDLE EVINRUDE
10424G, 10524C, 10624G, 10724A, 10824M, 15404G, 15504C, 15604A, 6604A, 6704M, 6804B
TILT
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$107.98
24-11-2023
15.0[6.75] pounds
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PantsSaver (0207103) Custom Fit Car Mat 4PC - Tan
Custom designed to fit YOUR car exactly! Install in seconds, no cutting or tools required || Features a patented Pants Saver Central Pan that holds and traps up to 500ml (16oz.) of water and keeps you and your vehicle's interior clean and dry || Lifetime warranty against cracking or breaking
Custom designed to fit YOUR car exactly! Install in seconds, no cutting or tools required || Features a patented Pants Saver Central Pan that holds and traps up to 500ml (16oz.) of water and keeps you and your vehicle's interior clean and dry || Lifetime warranty against cracking or breaking
Compatible models:
BRP EVINRUDE entire parts catalog list:
- MOTOR COVER » 0207103
10624G, 10624H, 10624R, 10625G, 10625H, 10625R, 10654G, 10654H, 10654R, 10655G, 10655H, 10655R 1976
10724A, 10725A, 10754A, 10755A, 15704M, 15705M, 15754M 1977
10824M, 10825M, 10835M, 10854M, 10855M, 15804B, 15805B, 15854B, 15855B 1978
15404G, 15404S, 15405G, 15405S, 15454G, 15454S, 15455G, 15455S 1974
15504C, 15505C, 15554C, 15555C 1975
15604A, 15604R, 15605A, 15605R, 15654A, 15654R, 15655A, 15655R 1976
6604A, 6605A 1976
6704M, 6705M 1977
6804B, 6805B 1978
Information:
High/Low Logic Circuit
Illustration 1 g00487533
System Schematic For Spare Output
When used as a high/low logic circuit.
The spare output on the GSC is strictly used for the customer. The spare output is programmed to activate under a variety of conditions. The default is set for the output to activate when the engine is in the cooldown (SP11 = 7). The GSC treats this diagnostic code as a alarm fault. For more information, see Systems Operation, "Spare Input/Output Programming OP6". The responsibility of documenting any connections to this spare output falls on the customer and/or the dealer. Also, The responsibility of troubleshooting any connections to this spare output falls on the customer and/or the dealer. The voltage on the spare output is approximately 3.0 DCV when the spare output is not active. The voltage is approximately 3.0 DCV when there are no connections to the spare output. When the spare output is active, the voltage on the spare output is approximately 0 volts. The spare output is capable of drawing (sinking) approximately 100 mA.ProcedureThe following condition could be a possible cause of a CID 334 FMI 4.
A short to the ground ("B-") of the signal for the spare output is present.Troubleshooting of a spare output fault is direct. The FMI defines the diagnostic code. FMI 4 is a short to ground. In order to find the exact cause of the diagnostic code, use the following information: the FMI, the system schematic for the spare output and the documentation that is provided by the dealer and/or the customerSerial Data Link
Illustration 2 g00487536
System Schematic For Spare Output
When used as a serial data link.
The GSC communicates with the relay driver module (RDM) by a serial data link. The serial data link is enabled when the setpoint SP11 is 9. For more information, see Systems Operation, "Spare Input/Output Programming OP6".Note: Earlier 103-6177 113-4500 117-6200 120-6880 123-6004 136-3870 EMCP Electronic Controls do not have the RDM serial data link capability.When the data link malfunctions, R1 output (terminal 2 of the RDM) will be activated on and off at a rate of 0.5 Hz. Relays "R2" through "R9" will maintain the current states or the relays will default to OFF. This is controlled by a jumper between terminals 6 and 7 of the RDM. If a jumper is NOT present when the serial data link has a fault, the relay outputs ("R2" through "R9") will maintain the current states. If the jumper is present, "R2" through "R9" will default to OFF. Note: The maximum distance between a module and the GSC is 305 m (1000 ft). If this specification is not met, it is possible for the data link to malfunction. Also, a diagnostic code of CID 334 could occur. If the distance is not in compliance with the specification, shorten the distance between the RDM and the GSC.Note: Faults are created when the harness connector (40 contact) is disconnected from the GSC during these troubleshooting procedures. Clear these created diagnostic codes after the particular diagnostic code is corrected. In a properly operating system, when the harness connector is removed from the GSC, the following diagnostic codes are recorded:
CID 100 FMI 2 pressure sensor (engine oil)
CID 110 FMI 2 temperature sensor (engine coolant)
CID 111 FMI 3 fluid level sensor (engine coolant)
CID 190 FMI 3 speed sensor (engine)
CID 336 FMI 2 switch (engine control)ProcedureThe following condition could be a possible cause of a CID 334 FMI 4.
A short to the ground of the signal for the data is present.The GSC is not able to detect an open circuit condition of the data link for the relay driver module. Clear the diagnostic code from the fault log after troubleshooting is complete.
Check the voltage of the signal for the data.
At the RDM, measure the DC voltage from terminal 4 (positive meter lead) to terminal 7 (negative meter lead). Expected Result: The voltage should change constantly. The voltage should change within the range of 0 to 10 DCV.Results:
OK - The voltage measurement is correct. Proceed to 3.
NOT OK - The voltage measurement is NOT correct. Proceed to 2.
Check the voltage of RDM and the GSC.
At the RDM, disconnect all wires from terminal 4.
Disconnect the harness connector from the GSC.
At the RDM, measure the DC voltage from terminal 4 (positive meter lead) to terminal 7 (negative meter lead). Voltage should be 11.6 0.5 DCV.
Measure the voltage from the contact 36 of the GSC to the ground ("B-") terminal of the relay module. The voltage should change constantly. The voltage should change within the range of 0 to 5.5 DCV. Expected Result: For 2c, the voltage should be 11.6 0.5 DCV. For 2d, the voltage should change constantly. The voltage should change within the range of 0 to 5.5 DCV. Results:
OK - Both voltage measurements are correct. Proceed to 3.
NOT OK - Voltage measured at the RDM is NOT correct. Replace the RDM. STOP.
NOT OK - Voltage measured at the GSC is NOT correct. Replace the GSC. STOP.
Check for the short in the harness.
Disconnect the harness connector from the GSC.
At the RDM, remove wire 1-PK(Pink) from terminal 4.
Measure the resistance from the wire at RDM terminal 4 to the positive battery ("B+") terminal of the relay module on the rear of the GSC.
Measure the resistance from the wire at RDM terminal 4 to ground ("B-") terminal of the relay module on the rear of the GSC. Expected Result: Both measurements should be greater than 20000 ohms. Results:
OK - Both resistance measurements are correct. Check the electrical connectors, terminals and wiring. See Testing And Adjusting, "Electrical Connector - Inspect". If the diagnostic code still exists after the inspection, replace the RDM. STOP.
NOT OK - Either one or both of the resistance measurements are NOT correct. The harness wiring with the incorrect resistance measurement is shorted. Troubleshoot and repair the faulty harness wiring between the RDM and the GSC. See the preceding System Schematic. STOP.
Illustration 1 g00487533
System Schematic For Spare Output
When used as a high/low logic circuit.
The spare output on the GSC is strictly used for the customer. The spare output is programmed to activate under a variety of conditions. The default is set for the output to activate when the engine is in the cooldown (SP11 = 7). The GSC treats this diagnostic code as a alarm fault. For more information, see Systems Operation, "Spare Input/Output Programming OP6". The responsibility of documenting any connections to this spare output falls on the customer and/or the dealer. Also, The responsibility of troubleshooting any connections to this spare output falls on the customer and/or the dealer. The voltage on the spare output is approximately 3.0 DCV when the spare output is not active. The voltage is approximately 3.0 DCV when there are no connections to the spare output. When the spare output is active, the voltage on the spare output is approximately 0 volts. The spare output is capable of drawing (sinking) approximately 100 mA.ProcedureThe following condition could be a possible cause of a CID 334 FMI 4.
A short to the ground ("B-") of the signal for the spare output is present.Troubleshooting of a spare output fault is direct. The FMI defines the diagnostic code. FMI 4 is a short to ground. In order to find the exact cause of the diagnostic code, use the following information: the FMI, the system schematic for the spare output and the documentation that is provided by the dealer and/or the customerSerial Data Link
Illustration 2 g00487536
System Schematic For Spare Output
When used as a serial data link.
The GSC communicates with the relay driver module (RDM) by a serial data link. The serial data link is enabled when the setpoint SP11 is 9. For more information, see Systems Operation, "Spare Input/Output Programming OP6".Note: Earlier 103-6177 113-4500 117-6200 120-6880 123-6004 136-3870 EMCP Electronic Controls do not have the RDM serial data link capability.When the data link malfunctions, R1 output (terminal 2 of the RDM) will be activated on and off at a rate of 0.5 Hz. Relays "R2" through "R9" will maintain the current states or the relays will default to OFF. This is controlled by a jumper between terminals 6 and 7 of the RDM. If a jumper is NOT present when the serial data link has a fault, the relay outputs ("R2" through "R9") will maintain the current states. If the jumper is present, "R2" through "R9" will default to OFF. Note: The maximum distance between a module and the GSC is 305 m (1000 ft). If this specification is not met, it is possible for the data link to malfunction. Also, a diagnostic code of CID 334 could occur. If the distance is not in compliance with the specification, shorten the distance between the RDM and the GSC.Note: Faults are created when the harness connector (40 contact) is disconnected from the GSC during these troubleshooting procedures. Clear these created diagnostic codes after the particular diagnostic code is corrected. In a properly operating system, when the harness connector is removed from the GSC, the following diagnostic codes are recorded:
CID 100 FMI 2 pressure sensor (engine oil)
CID 110 FMI 2 temperature sensor (engine coolant)
CID 111 FMI 3 fluid level sensor (engine coolant)
CID 190 FMI 3 speed sensor (engine)
CID 336 FMI 2 switch (engine control)ProcedureThe following condition could be a possible cause of a CID 334 FMI 4.
A short to the ground of the signal for the data is present.The GSC is not able to detect an open circuit condition of the data link for the relay driver module. Clear the diagnostic code from the fault log after troubleshooting is complete.
Check the voltage of the signal for the data.
At the RDM, measure the DC voltage from terminal 4 (positive meter lead) to terminal 7 (negative meter lead). Expected Result: The voltage should change constantly. The voltage should change within the range of 0 to 10 DCV.Results:
OK - The voltage measurement is correct. Proceed to 3.
NOT OK - The voltage measurement is NOT correct. Proceed to 2.
Check the voltage of RDM and the GSC.
At the RDM, disconnect all wires from terminal 4.
Disconnect the harness connector from the GSC.
At the RDM, measure the DC voltage from terminal 4 (positive meter lead) to terminal 7 (negative meter lead). Voltage should be 11.6 0.5 DCV.
Measure the voltage from the contact 36 of the GSC to the ground ("B-") terminal of the relay module. The voltage should change constantly. The voltage should change within the range of 0 to 5.5 DCV. Expected Result: For 2c, the voltage should be 11.6 0.5 DCV. For 2d, the voltage should change constantly. The voltage should change within the range of 0 to 5.5 DCV. Results:
OK - Both voltage measurements are correct. Proceed to 3.
NOT OK - Voltage measured at the RDM is NOT correct. Replace the RDM. STOP.
NOT OK - Voltage measured at the GSC is NOT correct. Replace the GSC. STOP.
Check for the short in the harness.
Disconnect the harness connector from the GSC.
At the RDM, remove wire 1-PK(Pink) from terminal 4.
Measure the resistance from the wire at RDM terminal 4 to the positive battery ("B+") terminal of the relay module on the rear of the GSC.
Measure the resistance from the wire at RDM terminal 4 to ground ("B-") terminal of the relay module on the rear of the GSC. Expected Result: Both measurements should be greater than 20000 ohms. Results:
OK - Both resistance measurements are correct. Check the electrical connectors, terminals and wiring. See Testing And Adjusting, "Electrical Connector - Inspect". If the diagnostic code still exists after the inspection, replace the RDM. STOP.
NOT OK - Either one or both of the resistance measurements are NOT correct. The harness wiring with the incorrect resistance measurement is shorted. Troubleshoot and repair the faulty harness wiring between the RDM and the GSC. See the preceding System Schematic. STOP.
Parts tilt EVINRUDE:
0319756
0319756 TILT BOLT, Stern brkt, to swivel brkt
10424G, 10524C, 10624G, 10724A, 10824M, 10924B, 15404G, 15504C, 15604A, 25402M, 25502B, 25602E, 25702H, 25802C, 25904R, E10ECCD, E10ECDB, E10ECES, E10ECOM, E10ECSE, E10ECUE, E10EEIR, E10EENA, E10EESC, E10ELCID, E10ELCNS, E10ELCRA, E10ELCTC, E15ECCS,
0319134
0319134 TILT LOCK, Stbd
10424G, 10524C, 10624G, 10724A, 10824M, 10924B, 15404G, 15504C, 15604A, E10ECCD, E10ECDB, E10ECES, E10ECOM, E10ECSE, E10ECUE, E10EEIR, E10EENA, E10EESC, E10ELCID, E10ELCNS, E10ELCRA, E10ELCTC, E15ECCS, E15ECDE, E15ECEC, E15ECIS, E15ECNC, E15ECOB, E15