Axial through-shaft actuator arrangement
10094454 ยท 2018-10-09
Assignee
Inventors
Cpc classification
F05D2270/62
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T74/18296
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F04D15/0038
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H19/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H19/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An axial, through-shaft actuator that is particularly useful for a variably actuatable water pump having a pump chamber, with an inlet and an outlet is provided. A hollow drive shaft extends into the pump chamber. A drive wheel is connected to the drive shaft. A variable flow impeller assembly having an impeller part connected to the drive shaft and a cover part, which is axially movable relative to the impeller part is located in the pump chamber and is movable from a first, pumping position to a second position to prevent pumping. A cup actuator assembly is axially movable on the hollow drive shaft, and includes an actuator plate and a pin extending through the hollow drive shaft that connects the axially movable impeller part and the actuator plate. An actuator displaces the actuator plate in the axial direction of the drive shaft to move the axially movable part.
Claims
1. An axial through-shaft actuator arrangement, comprising: a hollow drive shaft adapted to extend through a housing from a drive side to a driven side; a bearing located on the hollow drive shaft adapted to support the hollow drive shaft in the housing; a cup actuator assembly axially movable on the hollow drive shaft, the cup actuator assembly includes an actuator plate and a pin extending through the hollow drive shaft having a first end that is connected to an axially movable part, and a second end that is connected to the actuator plate on the drive side; and an actuator connected to the actuator plate that variably displaces the actuator plate in an axial direction of the hollow drive shaft to move the axially movable part, via the pin, between first and second positions.
2. The axial through-shaft actuator arrangement of claim 1, wherein the hollow drive shaft is rotatable, the housing is adapted to separate the drive side and the driven side, and at least one seal is provided between an inside of the hollow drive shaft and the pin.
3. The axial through-shaft actuator arrangement of claim 1, wherein the cup actuator assembly includes axial ribs connected at a first end to the actuator plate, and the ribs are slidably located in corresponding axial keyways located on the hollow shaft, and a second end of the ribs extends beyond a drive side end of the hollow drive shaft and are connected to a pin plate that is connected to the pin.
4. The axial through-shaft actuator arrangement of claim 3, wherein the actuator plate is circular, and includes a peripherally extending groove.
5. The axial through-shaft actuator arrangement of claim 4, wherein the actuator includes a movable drive element that is connected to an actuator link, and the actuator link comprises at least one arm that engages in the peripherally extending groove.
6. A variably actuatable water pump, comprising: a housing having a pump chamber, an inlet leading to the pump chamber and an outlet from the pump chamber; a hollow drive shaft extending through the housing from a drive side of the water pump to the pump chamber, with a drive wheel connected to a drive side end of the hollow drive shaft; a variable flow impeller assembly located in the pump chamber, including an axially fixed impeller part connected to the hollow drive shaft and an axially movable impeller part, movable relative to the axially fixed impeller part from a first position in which blades connected to one of the impeller parts are exposed, in order to pump coolant from the inlet to the outlet, to a second position in which the blades are covered, in order to prevent pumping of the coolant; a cup actuator assembly axially movable on the hollow drive shaft, including an actuator plate, an actuating pin extending through the hollow drive shaft having a first end that is connected to the axially movable impeller part and a second end that is connected to the actuator plate on the drive side, and an actuator connected to the actuator plate that variably displaces the actuator plate in an axial direction of the hollow drive shaft to move the axially movable impeller part, via the actuating pin, between the first and second positions.
7. The variably actuatable water pump of claim 6, wherein the cup actuator assembly further comprises axial ribs connected at a first end to the actuator plate, and the ribs are slidably located in corresponding axial keyways located on the hollow drive shaft, with a second end of the axial ribs extending beyond the drive side end of the hollow drive shaft, and a pin plate is connected to the second end of the ribs and to the pin.
8. The variably actuatable water pump of claim 7, wherein the actuator plate is circular and a peripherally extending groove is located on the actuator plate.
9. The variably actuatable water pump of claim 8, wherein the actuator includes a movable drive element that is connected to an actuator link, and the actuator link comprises at least one arm that engages in the peripherally extending groove.
10. The variably actuatable water pump of claim 9, wherein the actuator is a stepper motor and the movable drive element is a threaded spindle, and the threaded spindle engages a nut located in the actuator link.
11. The variably actuatable water pump of claim 7, wherein the drive wheel is connected to the drive end of the hollow drive shaft in a position radially outwardly of the axial ribs.
12. The variably actuatable water pump of claim 6, further comprising at least one seal located between the pin and an interior surface of the hollow drive shaft.
13. The variably actuatable water pump of claim 6, further comprising a return spring located between the axially movable impeller part and the hollow drive shaft that biases the movable impeller part to the first position.
14. The variably actuatable water pump of claim 6, further comprising a shaft bearing assembly that is located in the housing and the hollow drive shaft is supported in the shaft bearing assembly.
15. The variably actuatable water pump of claim 14, wherein the hollow drive shaft includes a bearing groove and the shaft bearing assembly includes bearing balls which ride in the bearing groove.
16. The variably actuatable water pump of claim 6, wherein the blades are connected to the axially movable impeller part and the axially fixed impeller part includes openings having a shape that corresponds to the blades, and in the second position, the blades are located in the openings.
17. The variably actuatable water pump of claim 6, wherein the actuator is mounted to a drive side of the housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing Summary and the following detailed description will be better understood when read in conjunction with the appended drawings, which illustrate a preferred embodiment of the invention. In the drawings:
(2)
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) Certain terminology is used in the following description for convenience only and is not limiting. The words front, rear, upper and lower designate directions in the drawings to which reference is made. The words inwardly and outwardly refer to directions toward and away from the parts referenced in the drawings. Axially refers to a direction along the axis of a shaft or rotating part. A reference to a list of items that are cited as at least one of a, b, or c (where a, b, and c represent the items being listed) means any single one of the items a, b, or c, or combinations thereof. The terminology includes the words specifically noted above, derivatives thereof and words of similar import.
(9) Referring to
(10) As shown in detail in
(11) Still with reference to
(12) Referring again to
(13) Referring to
(14) Referring again to
(15) Referring again to
(16) Additionally, a return spring 62 is preferably located between the axially movable impeller part 36 and the hollow drive shaft 20 that biases the movable impeller part 36 to the first position. This is provided as a fail-safe in the event of loss of power to the actuator 70 so that the variable flow impeller assembly 30 fails in the first position allowing continued flow of coolant through the cooling system of the internal combustion engine.
(17) As shown in
(18) In use, when the actuator 70 (preferably the stepper motor) turns, the actuator link 74 is axially moved due to the connection between the drive element 72 (threaded spindle) and the nut 78. This in turn moves the cup type actuator assembly 50 with the attached actuating pin 60 in order to provide a corresponding movement of the axially movable impeller part 36 to adjust the volume of fluid flow through the water pump 10 based on the area of the impeller blades 38 that are exposed. Flow can be increased or decreased based on the position of the actuator link 74 in order to provide the desired volume of coolant required for cooling or maintaining the engine block temperature in a desired range. Preferably, an electronic control system is provided in order to adjust the variable flow impeller assembly 30 depending upon the coolant temperature which can be determined by a temperature sensor, as well as the engine speed. This allows an optimum engine cooling strategy to be developed and implemented via the electronic control system, which can be integrated into an ECM in order to increase the overall efficiency of the internal combustion engine.
(19) The axial through-shaft actuator arrangement 11 can be used in various outer applications in connection with a hollow drive shaft 20 adapted to be supported by a shaft bearing assembly 22 in a housing, as shown ion
(20) Having thus described the present invention in detail, it is to be appreciated and will be apparent to those skilled in the art that many physical changes, only a few of which are exemplified in the detailed description of the invention, could be made without altering the inventive concepts and principles embodied therein. It is also to be appreciated that numerous embodiments incorporating only part of the preferred embodiment are possible which do not alter, with respect to those parts, the inventive concepts and principles embodied therein. The present embodiment and optional configurations are therefore to be considered in all respects as exemplary and/or illustrative and not restrictive, the scope of the invention being indicated by the appended claims rather than by the foregoing description, and all alternate embodiments and changes to this embodiment which come within the meaning and range of equivalency of said claims are therefore to be embraced therein.