Claims
- 1. A bearing for a fuel pump, comprising:
a sliding layer made of mainly carbon; and a supporting layer made of mainly carbon and a metal, the supporting layer being connected to the sliding layer to support the sliding layer.
- 2. The bearing for a fuel pump according to claim 1, wherein a thickness (t) of the sliding layer is 5 to 20% of a total thickness (to) of the sliding layer and the supporting layer.
- 3. The bearing for a fuel pump according to claim 1, wherein the thickness (t) of the sliding layer is 7 to 15% of the total thickness (to) of the sliding layer and the supporting layer.
- 4. The bearing for a fuel pump according to claim 1, wherein,
when the whole supporting layer is 100 mass %, the supporting layer is made of 20 to 30 mass % of carbon (C), 18 to 26 mass % of zinc (Zn), and the rest of copper (Cu) and an unavoidable impurity.
- 5. The bearing for a fuel pump according to claim 1, wherein,
when the whole supporting layer is 100 mass %, the supporting layer is made of 20 to 30 mass % of carbon (C), 9 to 16 mass % of Zinc (Zn), 9 to 16 mass % of nickel (Ni), 0.1 to 0.7% of phosphorus (P), and the rest of copper (Cu) and an unavoidable impurity.
- 6. The bearing for a fuel pump according to claim 1, wherein:
the supporting layer substantially has a cylindrical shape with inner and outer peripheral surfaces; and the sliding layer is provided on the inner peripheral surface of the supporting layer.
- 7. The bearing for a fuel pump according to claim 1, wherein:
the supporting layer substantially has a cylindrical shape with inner and outer peripheral surfaces; and the sliding layer is provided on the outer peripheral surface of the supporting layer.
- 8. A fuel pump comprising:
a housing having an approximate cylindrical shape; a motor accommodated in the housing, the motor including an armature having a rotary shaft a bearing through which the rotary shaft is rotatably supported in the housing; and a pump driven by the motor, for sucking and discharging a fuel, wherein:
the bearing includes a sliding layer made of mainly carbon, and a supporting layer made of mainly carbon and a metal; the supporting layer is connected to the sliding layer to support the sliding layer; and the rotary shaft is disposed to be slidable on the sliding layer.
- 9. The fuel pump according to claim 8, wherein:
the pump includes a casing member, and an impeller disposed within the casing member; the impeller is coupled to the rotary shaft of the armature; and the bearing is press-fitted in the casing member.
- 10. The fuel pump according to claim 9, wherein:
the impeller is rotatably disposed in the casing member; and the impeller and the rotary shaft are disposed to rotate integrally.
- 11. The fuel pump according to claim 9, wherein the bearing is press-fitted in the casing member on the supporting layer.
- 12. The fuel pump according to claim 9, wherein:
the supporting layer substantially has a cylindrical shape with inner and outer peripheral surfaces; and the sliding layer is provided on the inner peripheral surface of the supporting layer.
- 13. A method of manufacturing a bearing for a fuel pump, with a two-layer structure including a sliding layer made of mainly carbon and a supporting layer connected to the sliding layer to support the sliding layer and made of mainly carbon and a metal, the method comprising:
a first filling step of filling a first molding die having an annular-shaped first cavity with a mixed powder obtained by mixing a metal powder and a carbon powder; a first molding step of pressure-molding the mixed powder after the first filling step, thereby forming an annular-shaped first powder molding; a second filling step of filling a second molding die having an annular-shaped second cavity formed on one side of an inner periphery and an outer periphery of the first powder molding placed in the second molding die, with a carbon powder; a second molding step of pressure-molding the carbon powder after the second filling step together with the first powder molding, thereby forming a second powder molding; a sintering step of sintering the second powder molding by heating to form a sintered body; and a shaping step of performing a shaping process on the sintered body to have a predetermined shape.
- 14. The method according to claim 13, wherein:
in the first and second molding steps, the pressure-molding is performed in a pressure range about between 250 and 450 Mpa.
- 15. The method according to claim 13, wherein:
in the sintering step, the second powder molding is heated to about in a range of 700-900° C.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2002-88504 |
Mar 2002 |
JP |
|
CROSS REFERENCE TO RELATED APPLICATION
[0001] This application is based on Japanese Patent Application No. 2002-88504 filed on Mar. 27, 2002, the disclosure of which is incorporated herein by reference.