This application is based on and incorporates herein by reference Japanese Patent Application No. 2005-356088 filed on Dec. 9, 2005.
The present invention relates to a regenerative pump.
Conventionally, a regenerative pump is used for supplying fuel into an engine, or for supplying air into exhaust gas for reducing emission of an engine. According to U.S. Pat. No. 5,498,124 (JP-A-6-288381), an impeller is rotatable along an arc-shaped fluid passage defined in a casing. The impeller is rotated, so that vanes of the impeller draw fluid through an inlet. The vanes pressurize the fluid, and discharge the fluid through an outlet.
The outlet has a connecting portion, which connects with an end of the fluid passage. In general, the inner wall of the casing defining the connecting portion is in a simplified linear shape. In this structure, the sectional area of the connecting portion drastically decreases, compared with the fluid passage and the outlet. In particular, the sectional area of the connecting portion drastically increases. Consequently, pressure loss is caused in the connecting portion.
The present invention addresses the above disadvantage.
According to one aspect of the present invention, a regenerative pump includes a casing that has an inlet and an outlet. The casing defines a fluid passage that is in a substantially arc shape connecting the inlet with the outlet. The regenerative pump further includes an impeller that is rotatable in the casing. The impeller has a plurality of vanes each having a radial end defining an outer circular profile of the impeller. The plurality of vanes is faced to the fluid passage. The fluid passage includes an arc passage, an outlet passage, and a communication passage. The arc passage is in a substantially arc shape along a circumferential direction of the casing through a predetermined angular range. The outlet passage communicates with the outlet, and has a cross sectional area that is substantially constant with respect to a flow direction of fluid. The communication passage connects the arc passage with the outlet passage. The casing has an inner wall that defines the communication passage. The inner wall is in a substantially curved shape in an axial section that includes a center axis of the communication passage and extends along a center axis of the casing. The center axis of the communication passage and the outer circular profile of the impeller define an intersection therebetween. The communication passage has a vertical section, which includes the intersection, being perpendicular to the center axis of the communication passage. The inner wall reduces a cross-sectional area of the communication passage by extending through the vertical section.
According to another aspect of the present invention, a regenerative pump includes a casing that has an inlet and an outlet. The casing defines a fluid passage that is in a substantially arc shape connecting the inlet with the outlet. The regenerative pump further includes an impeller that is rotatable in the casing. The impeller has a plurality of vanes each having a radial end defining an outer circular profile of the impeller. The plurality of vanes is faced to the fluid passage. The fluid passage includes an arc passage, an outlet passage, and a communication passage. The arc passage is in a substantially arc shape along a circumferential direction of the casing through a predetermined angular range. The outlet passage communicates with the outlet, and has a cross sectional area that is substantially constant with respect to a flow direction of fluid. The communication passage connects the arc passage with the outlet passage. The casing has an inner wall that defines the communication passage. The inner wall is in a substantially curved shape on a radially outer side in an axial section that includes a center axis of the communication passage and extends perpendicularly to a center axis of the casing. The center axis of the communication passage and the outer circular profile of the impeller define an intersection therebetween. The communication passage has a vertical section, which includes the intersection, being perpendicular to the center axis of the communication passage. The inner wall reduces a cross-sectional area of the communication passage by extending through the vertical section.
According to another aspect of the present invention, a regenerative pump includes a casing that has an inlet communicating with an outlet through an arc passage, a communication passage, and an outlet passage. The arc passage extends from the inlet circumferentially in the casing. The communication passage connects the arc passage with the outlet passage. The outlet passage communicates with the outlet, and has a cross sectional area that is substantially constant with respect to a flow direction of fluid. The regenerative pump further includes an impeller that is rotatable in the casing. The impeller has a plurality of vanes each having a radial end defining an outer circular profile of the impeller. The plurality of vanes is faced to the fluid passage. The communication passage has a center axis extending substantially along the flow direction. The center axis of the communication passage and the outer circular profile of the impeller define an intersection therebetween. The communication passage has a vertical section, which includes the intersection, being perpendicular to the center axis of the communication passage. The casing has an inner wall that defines the communication passage. The communication passage has a height when being viewed from an axial section that includes the center axis of the communication passage and extends along a center axis of the casing. The inner wall is curved to reduce the height of the communication passage by extending through the vertical section.
According to another aspect of the present invention, a regenerative pump includes a casing that has an inlet communicating with an outlet through an arc passage, a communication passage, and an outlet passage. The arc passage extends from the inlet circumferentially in the casing. The communication passage connects the arc passage with the outlet passage. The outlet passage communicates with the outlet, and has a cross sectional area that is substantially constant with respect to a flow direction of fluid. The regenerative pump further includes an impeller that is rotatable in the casing. The impeller has a plurality of vanes each having a radial end defining an outer circular profile of the impeller. The plurality of vanes is faced to the fluid passage. The communication passage has a center axis extending substantially along the flow direction. The center axis of the communication passage and the outer circular profile of the impeller define an intersection therebetween. The communication passage has a vertical section, which includes the intersection, being perpendicular to the center axis of the communication passage. The casing has an inner wall that defines the communication passage. The inner wall is in a substantially curved shape on a radially outer side when being viewed from an axial section that includes a center axis of the communication passage and extends perpendicularly to a center axis of the casing. The inner wall is curved to reduce the cross sectional area of the communication passage by extending through the vertical section.
The above and other objects, features and advantages of the present invention will become more apparent from the following detailed description made with reference to the accompanying drawings. In the drawings:
As shown in
The pump device 20 includes a casing body 21, a casing cover 22, and an impeller 23. The casing body 21 and the casing cover 22 serve as casing members. Each of the casing body 21, the casing cover 22, and the impeller 23 has the center axis that is substantially coaxial with respect to the center axis of the regenerative pump 10. As shown in
A bearing 13 is provided to a center of the casing body 21. The casing cover 22 is fixed by crimping, for example, to one end of the housing 11 in a condition, in which the casing cover 22 is covered with the casing body 21. A thrust bearing 14 is provided to a center of the casing cover 22. The rotor 51 has a shaft 52 that is rotatably supported radially at one end thereof by a bearing 13. The shaft 52 is axially supported by the thrust bearing 14. The shaft 52 has the other end that is rotatably supported radially by a bearing 15.
As referred to
As referred to
The housing 11 has the other end on the opposite side of the casing body 21 and the casing cover 22. The other end of the housing 11 is provided with a motor casing 54 and a discharge cover 60. The motor casing 54 is interposed between the discharge cover 60 and the housing 11. The discharge cover 60 is crimped, thereby being fixed to the housing 11. The motor casing 54 has a communication passage 55 that communicates the pump chamber 53 with a fuel passage 61 of the discharge cover 60.
The discharge cover 60 includes a discharge portion 62 and a connector 63 on the radially outer side of the shaft 52. The discharge portion 62 has a fluid passage 64 and a pressure control valve 65. The pressure control valve 65 communicates and blocks the fluid passage 64. The pressure control valve 65 communicates the fluid passage 64 when pressure of fluid in the regenerative pump 10 becomes greater than a predetermined threshold.
An electric power source (not shown) supplies electricity to a coil of the rotor 51 via the connector 63, a brush, and a commutator (nor shown). The rotor 51 rotates, so that the impeller 23 rotates together with the rotor 51 and the shaft 52. The impeller 23 rotates so that fluid is drawn into the pump passage 30 through the inlet port 25. Fluid drawn into the pump passage 30 is discharged from the pump passage 30 into the pump chamber 53 through the discharge port 26 by being applied with kinetic energy from the vanes 24 of the impeller 23. The fluid discharged into the pump chamber 53 is supplied to the outside of the regenerative pump 10 after passing through the space around the rotor 51 and the discharge portion 62.
Next, the pump passage 30 is described in detail.
As referred to
The casing body 21 and the casing cover 22 define the pump passage 30 therebetween.
As shown in
As referred to
As referred to
In this structure, in the downstream of the point in which the communication passage 33 departs from the impeller 23 is formed in the curved shape such that the cross sectional area of the communication passage 33 is reduced, i.e., throttled. Therefore, the communication passage 33 does not drastically increase in cross-sectional area, so that pressure loss can be reduced.
The inner wall 41 of the casing body 21 and the inner wall 42 of the casing cover 22, which define the communication passage 33 therebetween, are in curved shapes in the cross section depicted by
The inner wall 41 of the casing body 21 and the inner wall 42 of the casing cover 22, which define the communication passage 33 therebetween, are in curved shapes in the cross section depicted by
As shown in
In this structure, the distance between the inner wall defining the communication passage 33 and the vanes 24 of the impeller 23 becomes large through the communication passage 33 toward the outlet passage 32. Accordingly, as referred to
As described above, in this first embodiment, the inner wall 41 of the casing body 21 and the inner wall 42 of the casing cover 22, which define the communication passage 33 therebetween, are in the curved shapes such as the arc shapes, in cross section. In this structure, change in cross-sectional area becomes small in the communication passage 33, even as the vanes of the impeller 23 become distant from the arc passage 31 toward the outlet passage 32 through the communication passage 33. Therefore, pressure loss can be reduced in fluid, which is pumped through the arc passage 31, while passing through the communication passage 33, so that pressure of the discharged fluid can be enhanced, and the pump efficiency ηp can be enhanced.
As shown in
The fluid discharged from the regenerative pump 10 is not limited to gas such as air. The fluid discharged from the regenerative pump 10 may be any other liquid such as fuel and water. The fluid discharged from the regenerative pump 10 may be two-phase fluid.
Various modifications and alternations may be diversely made to the above embodiments without departing from the spirit of the present invention.
Number | Date | Country | Kind |
---|---|---|---|
2005-356088 | Dec 2005 | JP | national |