3855188 Repair kit, fuel meter Volvo.Penta
4.3GLPBYC; 4.3GSPBYC; 4.3GIPBYCCE, 4.3GLPEFS; 4.3GiPEFS, 4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS, 4.3GLPLKD; 4.3GLPLKE; 4.3GSPLKD, 4.3GLPNCA; 4.3GLPNCB; 4.3GLPNCS, 4.3GLPWTC; 4.3GLPWTR; 4.3GSPWTC, 4.3GXi-A, 5.0GLPBYC; 5.0GiPBYCCE; 5.7GSPBYC, 5.0GLPEFS; 5.0Gi
Repair
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$59.53
22-08-2024
US: Super Brakes
[Rear] Brake X Replacement Brake Rotors Kit | Aegis GEOMET Coated Disc Rotors | for 2020-2022 Buick Encore
Brake X Get The Right Fit: The rear brake rotors kit are for 2020 2021 2022 Encore Exc GX Model, FWD || 2 Piece Brake Rotors Kit Replacement: Each brake rotor kit comes with 2 heavy duty brake rotors that are built to exceed OEM Specification using quality materials for performance and long term use. || Heavy Duty Construction: Our brake rotors kit is made using heavy duty G3000 grade cast iron to offer just the right balance of performance, quality and affordability. It’s resistant to rust and corrosion, built for OEM specifications, and can be installed without any modifications. || Smoothened and Balanced: Our rotors are double disc smoothened and mill balanced to help prevent cracking and build up. The Brake X Rotors kit are engineered to elevate your driving experience and to back you up at your every turn. || Quality That Matters: Our car part replacement kits are engineered in Canada for the toughest environments with exact or more vane counts to meet OEM Specifications. They are backed by our satisfaction guarantee for any manufacturing defects so you know we have your back as go make every turns.
Brake X Get The Right Fit: The rear brake rotors kit are for 2020 2021 2022 Encore Exc GX Model, FWD || 2 Piece Brake Rotors Kit Replacement: Each brake rotor kit comes with 2 heavy duty brake rotors that are built to exceed OEM Specification using quality materials for performance and long term use. || Heavy Duty Construction: Our brake rotors kit is made using heavy duty G3000 grade cast iron to offer just the right balance of performance, quality and affordability. It’s resistant to rust and corrosion, built for OEM specifications, and can be installed without any modifications. || Smoothened and Balanced: Our rotors are double disc smoothened and mill balanced to help prevent cracking and build up. The Brake X Rotors kit are engineered to elevate your driving experience and to back you up at your every turn. || Quality That Matters: Our car part replacement kits are engineered in Canada for the toughest environments with exact or more vane counts to meet OEM Specifications. They are backed by our satisfaction guarantee for any manufacturing defects so you know we have your back as go make every turns.
Compatible models:
4.3GLPBYC; 4.3GSPBYC; 4.3GIPBYCCE
4.3GLPEFS; 4.3GiPEFS
4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS
4.3GLPLKD; 4.3GLPLKE; 4.3GSPLKD
4.3GLPNCA; 4.3GLPNCB; 4.3GLPNCS
4.3GLPWTC; 4.3GLPWTR; 4.3GSPWTC
4.3GXi-A
5.0GLPBYC; 5.0GiPBYCCE; 5.7GSPBYC
5.0GLPEFS; 5.0GiPEFS; 5.7GSPEFS
5.0GLPWTR; 5.0GiPWTR; 5.7GSIPWTR
5.0GXi-A; 5.7Gi-A; 5.7GXi-A
5.7GiPHUS
5.7GLPLKA; 5.7GLPLKD; 5.7GLPLKE
5.7GLPMDA; 5.7GIPMDA; 5.7GIPMDACE
5.7GLPNCS; 5.7GIPNCACE; 5.7GIPNCSCE
Volvo.Penta
Volvo Penta entire parts catalog list:
- Throttle Body Repair Kits » 3855188
4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS; 4.3GIPHUSCE
4.3GLPLKD; 4.3GLPLKE; 4.3GSPLKD; 4.3GSPLKE; 4.3GIPLKDCE; 4.3GIPLKECE; 4.3GSJLKD
4.3GLPNCA; 4.3GLPNCB; 4.3GLPNCS; 4.3GSJNCC; 4.3GSJNCS; 4.3GSPNCA; 4.3GSPNCB; 4.3GSPNCM; 4.3GSPNCS; 4.3GIPNCACE; 4.3GIPNCBCE; 4.3GIPNCMCE; 4.
4.3GLPWTC; 4.3GLPWTR; 4.3GSPWTC; 4.3GSPWTR; 4.3GIPWTC; 4.3GIPWTR; 4.3GIJWTR; 4.3GSJWTR
4.3GXi-A
5.0GLPBYC; 5.0GiPBYCCE; 5.7GSPBYC; 5.7GSIPBYCCE
5.0GLPEFS; 5.0GiPEFS; 5.7GSPEFS; 5.7GSIPEFS
5.0GLPWTR; 5.0GiPWTR; 5.7GSIPWTR; 5.7GSPWTR; 5.7GSiPWTRCE
5.0GXi-A; 5.7Gi-A; 5.7GXi-A; 5.7GXi-B; 5.7GiI-A; 5.7GSiI-A; 5.7GXiI-A; 5.7GXiI-B
5.7GiPHUS
5.7GLPLKA; 5.7GLPLKD; 5.7GLPLKE; 5.7GLPLKR; 5.7GSPLKD; 5.7GSPLKE; 5.7GLIPLKDCE; 5.7GIPLKDCE; 5.7GIPLKECE; 5.7GSICPLKD; 5.7GSiPLKD; 5.7GSIPL
5.7GLPMDA; 5.7GIPMDA; 5.7GIPMDACE; 5.7GLIMDA; 5.7GIIMDA
5.7GLPNCS; 5.7GIPNCACE; 5.7GIPNCSCE; 5.7GIPNCMCE; 5.7GIPNCBCE; 5.7GIINCCCE; 5.8FSIINCS
Information:
System Response:The event code will be logged.Possible Performance Effect:E361(1)
There are no performance effects.E361(2)
The engine power will be derated.Troubleshooting:There may be a problem with the engine's cooling system.Test Step 1. Check the Engine's Cooling System
Pressurized System: Hot coolant can cause serious burns. To open the cooling system filler cap, stop the engine and wait until the cooling system components are cool. Loosen the cooling system pressure cap slowly in order to relieve the pressure.
Verify that the cooling system is filled to the proper level. If the coolant level is too low, air will get into the cooling system. Air in the cooling system will cause a reduction in coolant flow.
Check the radiator or the heat exchanger for a restriction to coolant flow.
Check for debris or damage between the fins of the radiator core. Debris between the fins of the radiator core restricts air flow through the radiator core.
Check internally for debris, dirt, or deposits on the radiator core. Debris, dirt, or deposits will restrict the flow of coolant through the radiator.
Check the mixture of antifreeze and water. Make sure that the coolant mixture meets recommendations.
Check the water temperature regulator. A water temperature regulator that does not open, or a water temperature regulator that only opens part of the way can cause overheating.
Check the water pump. A water pump with a damaged impeller does not pump enough coolant. Remove the water pump and check for damage to the impeller.
If the cooling system for this application is equipped with a fan, check the operation of the fan. A fan that is not turning at the correct speed can cause improper air speed across the radiator core. The lack of proper air flow across the radiator core can cause the coolant not to cool to the proper temperature differential.
Check for air in the cooling system. Air can enter the cooling system in different ways. The most common causes of air in the cooling system are the incorrect filling of the cooling system and combustion gas leakage into the cooling system. Combustion gas can get into the system through inside cracks, a damaged cylinder head, or a damaged cylinder head gasket.
Check the cooling system hoses and clamps. Damaged hoses with leaks can normally be seen. Hoses that have no visual leaks can soften during operation. The soft areas of the hose can become kinked or crushed during operation. These areas of the hose can restrict the coolant flow. Hoses become soft and/or get cracks after a period of time. The inside of a hose can deteriorate, and the loose particles of the hose can restrict the coolant flow.
If the cooling system for this application is equipped with an expansion tank, check the shunt line for the expansion tank. The shunt line must be submerged in the expansion tank. A restriction of the shunt line from the expansion tank to the inlet of the jacket water pump will cause a reduction in water pump efficiency. A reduction in water pump efficiency will result in low coolant flow.
If the cooling system for this application is equipped with an aftercooler, check the aftercooler. A restriction of air flow through the air to air aftercooler can cause overheating. Check for debris or deposits which would prevent the free flow of air through the aftercooler.
Check for a restriction in the air inlet system. A restriction of the air that is coming into the engine can cause high cylinder temperatures. High cylinder temperatures cause higher than normal temperatures in the cooling system.
Check for a restriction in the exhaust system. A restriction of the air that is coming out of the engine can cause high cylinder temperatures.
Consider high ambient temperatures. When ambient temperatures are too high for the rating of the cooling system, there is not enough of a temperature difference between the ambient air and coolant temperatures.
Consider high altitude operation. The cooling capability of the cooling system is reduced at higher altitudes. A pressurized cooling system that is large enough to keep the coolant from boiling must be used.
The engine may be running in the lug condition. When the load that is applied to the engine is too large, the engine will run in the lug condition. When the engine is running in the lug condition, engine rpm does not increase with an increase of fuel. This lower engine rpm causes a reduction in coolant flow through the system. Expected Result:A thorough inspection of the cooling system revealed a problem.Results:
OK - There is a problem with the cooling system.Repair: Repair the problem. Ensure that the repair eliminates the problem.STOP
There are no performance effects.E361(2)
The engine power will be derated.Troubleshooting:There may be a problem with the engine's cooling system.Test Step 1. Check the Engine's Cooling System
Pressurized System: Hot coolant can cause serious burns. To open the cooling system filler cap, stop the engine and wait until the cooling system components are cool. Loosen the cooling system pressure cap slowly in order to relieve the pressure.
Verify that the cooling system is filled to the proper level. If the coolant level is too low, air will get into the cooling system. Air in the cooling system will cause a reduction in coolant flow.
Check the radiator or the heat exchanger for a restriction to coolant flow.
Check for debris or damage between the fins of the radiator core. Debris between the fins of the radiator core restricts air flow through the radiator core.
Check internally for debris, dirt, or deposits on the radiator core. Debris, dirt, or deposits will restrict the flow of coolant through the radiator.
Check the mixture of antifreeze and water. Make sure that the coolant mixture meets recommendations.
Check the water temperature regulator. A water temperature regulator that does not open, or a water temperature regulator that only opens part of the way can cause overheating.
Check the water pump. A water pump with a damaged impeller does not pump enough coolant. Remove the water pump and check for damage to the impeller.
If the cooling system for this application is equipped with a fan, check the operation of the fan. A fan that is not turning at the correct speed can cause improper air speed across the radiator core. The lack of proper air flow across the radiator core can cause the coolant not to cool to the proper temperature differential.
Check for air in the cooling system. Air can enter the cooling system in different ways. The most common causes of air in the cooling system are the incorrect filling of the cooling system and combustion gas leakage into the cooling system. Combustion gas can get into the system through inside cracks, a damaged cylinder head, or a damaged cylinder head gasket.
Check the cooling system hoses and clamps. Damaged hoses with leaks can normally be seen. Hoses that have no visual leaks can soften during operation. The soft areas of the hose can become kinked or crushed during operation. These areas of the hose can restrict the coolant flow. Hoses become soft and/or get cracks after a period of time. The inside of a hose can deteriorate, and the loose particles of the hose can restrict the coolant flow.
If the cooling system for this application is equipped with an expansion tank, check the shunt line for the expansion tank. The shunt line must be submerged in the expansion tank. A restriction of the shunt line from the expansion tank to the inlet of the jacket water pump will cause a reduction in water pump efficiency. A reduction in water pump efficiency will result in low coolant flow.
If the cooling system for this application is equipped with an aftercooler, check the aftercooler. A restriction of air flow through the air to air aftercooler can cause overheating. Check for debris or deposits which would prevent the free flow of air through the aftercooler.
Check for a restriction in the air inlet system. A restriction of the air that is coming into the engine can cause high cylinder temperatures. High cylinder temperatures cause higher than normal temperatures in the cooling system.
Check for a restriction in the exhaust system. A restriction of the air that is coming out of the engine can cause high cylinder temperatures.
Consider high ambient temperatures. When ambient temperatures are too high for the rating of the cooling system, there is not enough of a temperature difference between the ambient air and coolant temperatures.
Consider high altitude operation. The cooling capability of the cooling system is reduced at higher altitudes. A pressurized cooling system that is large enough to keep the coolant from boiling must be used.
The engine may be running in the lug condition. When the load that is applied to the engine is too large, the engine will run in the lug condition. When the engine is running in the lug condition, engine rpm does not increase with an increase of fuel. This lower engine rpm causes a reduction in coolant flow through the system. Expected Result:A thorough inspection of the cooling system revealed a problem.Results:
OK - There is a problem with the cooling system.Repair: Repair the problem. Ensure that the repair eliminates the problem.STOP
Parts repair Volvo Penta:
3854020
3854020 Repair kit
4.3GL-A; 4.3GL-B; 4.3GL-C, 4.3GL-E; 4.3GL-EF, 4.3GL-G; 4.3GL-GF, 4.3GL-J; 4.3GL-JF, 4.3GL-P, 4.3GLMMDA; 4.3GLPMDA; 4.3GSPMDA, 4.3GLPBYC; 4.3GSPBYC; 4.3GIPBYCCE, 4.3GLPEFS; 4.3GiPEFS, 4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS, 4.3GLPLKD; 4.3GLPLKE; 4.3GSPLKD, 4
3854557
3854557 Repair kit
4.3GL-A; 4.3GL-B; 4.3GL-C, 4.3GL-E; 4.3GL-EF, 4.3GL-G; 4.3GL-GF, 4.3GL-J; 4.3GL-JF, 4.3GL-P, 4.3GLMMDA; 4.3GLPMDA; 4.3GSPMDA, 4.3GLPBYC; 4.3GSPBYC; 4.3GIPBYCCE, 4.3GLPEFS; 4.3GiPEFS, 4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS, 4.3GLPLKD; 4.3GLPLKE; 4.3GSPLKD, 4
3855546
3855546 Repair kit, impeller
4.3GLMMDA; 4.3GLPMDA; 4.3GSPMDA, 4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS, 4.3GLPNCA; 4.3GLPNCB; 4.3GLPNCS, 5.0FIPHUBCE; 5.0FIPHUCCE; 5.0FIPHUECE, 5.0FiPMDA; 5.0FiPMDM; 5.8FiPMDA, 5.0FIPNCACE; 5.0FIPNCBCE; 5.0FIPNCMCE, 5.0FLPMDA; 5.8FLPMDA, 5.7GiPHUS, 5.7GLPM
3855179
3855179 Repair kit, 5, 6, 8, 9, 11, 14, 19, 24
4.3GLPBYC; 4.3GSPBYC; 4.3GIPBYCCE, 4.3GLPEFS; 4.3GiPEFS, 4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS, 4.3GLPLKD; 4.3GLPLKE; 4.3GSPLKD, 4.3GLPNCA; 4.3GLPNCB; 4.3GLPNCS, 4.3GLPWTC; 4.3GLPWTR; 4.3GSPWTC, 4.3GXi-A, 5.0GLPBYC; 5.0GiPBYCCE; 5.7GSPBYC, 5.0GLPEFS; 5.0Gi
3855180
3855180 Repair kit, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10
4.3GLPBYC; 4.3GSPBYC; 4.3GIPBYCCE, 4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS, 4.3GLPLKD; 4.3GLPLKE; 4.3GSPLKD, 4.3GLPNCA; 4.3GLPNCB; 4.3GLPNCS, 5.7GiPHUS, 5.7GLPLKA; 5.7GLPLKD; 5.7GLPLKE, 5.7GLPMDA; 5.7GIPMDA; 5.7GIPMDACE, 5.7GLPNCS; 5.7GIPNCACE; 5.7GIPNCSCE
3855181
3855181 Repair kit, 1, 2, 5, 14
4.3GLPBYC; 4.3GSPBYC; 4.3GIPBYCCE, 4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS, 4.3GLPLKD; 4.3GLPLKE; 4.3GSPLKD, 4.3GLPNCA; 4.3GLPNCB; 4.3GLPNCS, 5.7GiPHUS, 5.7GLPLKA; 5.7GLPLKD; 5.7GLPLKE, 5.7GLPMDA; 5.7GIPMDA; 5.7GIPMDACE, 5.7GLPNCS; 5.7GIPNCACE; 5.7GIPNCSCE
3855184
3855184 Repair kit, 16, 18
4.3GLPBYC; 4.3GSPBYC; 4.3GIPBYCCE, 4.3GLPEFS; 4.3GiPEFS, 4.3GLPHUB; 4.3GSPHUB; 4.3GSPHUS, 4.3GLPLKD; 4.3GLPLKE; 4.3GSPLKD, 4.3GLPNCA; 4.3GLPNCB; 4.3GLPNCS, 4.3GLPWTC; 4.3GLPWTR; 4.3GSPWTC, 4.3GXi-A, 5.0GLPBYC; 5.0GiPBYCCE; 5.7GSPBYC, 5.0GLPEFS; 5.0Gi
3856921