This disclosure relates to pumps and more particularly, regenerative pumps, including methods of use.
Pumps, including regenerative pumps, are useful in many different types of systems. While one example includes aircraft engine fuel systems, this disclosure relates to a regenerative pump that can be used in a variety of systems.
In some example systems, a regenerative pump can be used to allow pressure to ramp up quickly, which is useful. However, if the pressure is allowed to increase too much, the system could sustain damage from over-pressurization. Improvements are desirable.
A regenerative pump is provided that improves the prior art.
In one concept, a regenerative pump is provided comprising: a housing defining a cavity having a fluid inlet arrangement and fluid outlet arrangement, and a channel having an open volume extending between the fluid inlet arrangement and the fluid outlet arrangement; a rotatable shaft extending into the housing having a longitudinal axis; an impeller mounted to the shaft within the cavity; the impeller having a plurality of vanes spaced circumferentially around the axis and opening into the channel; and an arm arrangement at least partially defining walls of the channel; the arm arrangement being radially movable with respect to the axis to vary the volume of the channel.
In an example embodiment, the pump further includes a biasing arrangement controlling radial motion of the arm arrangement.
In example implementations, the arm arrangement includes a first arm and a second arm; and the biasing arrangement includes a first spring member between the housing and the first arm; and a second spring member between the housing and the second arm.
The fluid inlet arrangement can include at least a pair of fluid inlets circumferentially spaced from each other and in communication with the channel; and the fluid outlet arrangement can include at least a pair of fluid outlets circumferentially spaced from each other and in communication with the channel.
In many examples, the first arm is an arced segment having a first end and second end; the first arm being radially adjustable relative to the impeller such that the second end moves radially more from the impeller than the first end; and the second arm is an arced segment having a first end and second end; the second arm being radially adjustable relative to the impeller such that the second arm second end moves radially more from the impeller than the second arm first end.
In another aspect, a regenerative pump is provided comprising an impeller rotatable about an impeller axis, the impeller including a first axial side and a second axial side, the impeller including a first plurality of regenerative pump vanes spaced about a circumference of the impeller at the first axial side of the impeller, the impeller also including a second plurality of regenerative pump vanes spaced about the circumference of the impeller at the second axial side of the impeller; and a pump housing in which the impeller is rotatably mounted, the pump housing defining an inlet and an outlet, the pump housing also defining a channel that extends circumferentially about the impeller between the inlet and the outlet, the channel including first and second regenerative flow sections respectively corresponding to the first and second pluralities of regenerative pump blades, the pump housing including an arm that defines at least a portion of the channel, the arm being moveable away from the impeller axis to enlarge a volume the channel and being moveable toward the impeller axis to reduce the volume of the channel.
In many implementations, the arm is moveable relative to the impeller axis between a first position and a second position, wherein the arm is closer to the impeller axis in the first position as compared to the second position.
In some examples, when the arm is in the first position the first and second regenerative flow sections are positioned to cooperate with the first and second pluralities of regenerative pump vanes to generate regenerative circulatory flow in the channel from the inlet to the outlet during pumping, and wherein when the arm is in the second position at least portions of the first and second regenerative flow sections are spaced sufficiently far from the impeller that regenerative circulatory flow is inhibited along such portions during pumping.
In one or more embodiments, the housing includes main housing assembly, wherein the arm is pivotally connected to the main housing assembly adjacent the inlet at a pivot axis so as to be pivotally movable between the first and second positions, wherein the arm extends generally from the inlet to the outlet of the pump housing, and wherein the pivot axis is parallel to the impeller axis.
In examples, when the arm is in the first position the channel has a cross-sectional flow area that is constant as the channel extends from the inlet to the outlet, and wherein when the arm is in the second position the cross-sectional flow area of the channel enlarges as the channel extends from the inlet to the outlet.
In another aspect, a method for reducing pressure rise in a regenerative pump is provided. The method comprising: radially moving an arm arrangement away from an impeller to expand a volume of a channel holding a fluid.
In one example method, the step of radially moving the arm arrangement includes radially moving a first arm and second arm away from the impeller, the impeller being within a cavity in a housing and secured to a rotating shaft.
Many example methods further include a step of controlling radially motion of the first arm and second arm by using a first spring between the housing and the first arm, and a second spring between the housing and the second arm.
In another aspect, a regenerative pump is provided comprising: an impeller rotatable about an impeller axis, the impeller including a plurality of regenerative pump vanes spaced about a circumference of the impeller; a pump housing in which the impeller is rotatably mounted, the pump housing defining an inlet and an outlet, the pump housing also defining a channel that extends circumferentially about the impeller between the inlet and the outlet; and wherein the channel comprises a regenerative section and a pressure limiting section; each of the regenerative section and pressure limiting section having a length that varies responsive to an amount of pressure in the channel.
In one example aspect, the pump further includes an arm arrangement constructed and arranged to affect a size of the channel.
A variety of examples of desirable product features or methods are set forth in part in the description that follows, and in part will be apparent from the description, or may be learned by practicing various aspects of the disclosure. The aspects of the disclosure may relate to individual features as well as combinations of features. It is to be understood that both the foregoing general description and the following detailed description are explanatory only and are not restrictive of the claimed invention.
Reference will now be made in detail to exemplary aspects of the present disclosure that are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts.
Although regenerative pumps may be used in many types of systems, in this particular example for an aircraft engine, during start-up, fuel is made available to both the main stage pump 102 and the regenerative pump 104. The fuel pressure supplied to the engine is produced by the regenerative pump 104. When a predetermined engine speed is reached, the regenerative pump 104 is cut off from the fuel supply. The predetermined engine speed is selected so that the fuel pressure obtained from the main stage pump 102 is sufficient to operate the engine.
Still in reference to
In reference now to
In reference now to
In one example, when the pump 104 is operated in the pressure limiting state, regenerative flow occurs along a first portion of the pumping channel 126 and does not occur along a second portion of the pumping channel 126. The relative circumferential lengths of the first and second portions can vary to limit the output pressure of the pump 104. For example, as the rotational speed of the pump 104 increases above a rotational speed correspond to a pressure limit of the pump 104, the circumferential length of the first portion can decrease, and the circumferential length of the second portion can increase. In one example, the first portion can extend circumferentially from the inlet arrangement 122 to an intermediate location between the inlet arrangement 122 and the outlet arrangement 124, and the second portion can extend circumferentially from the intermediate location to the outlet arrangement 124.
The inlet arrangement 122 and fluid outlet arrangement 124 can take many forms. In the embodiment shown in
Referring again to
In
The channel 126 includes first and second regenerative flow sections 126a, 126b (
To limit the pressure rise in the pump 104, an arm arrangement 150 is provided. The arm arrangement 150 at least partially defines walls of the channel 126. The arm arrangement 150 is radially movable with respect to the axis 171 to vary the volume of the channel 126. In
The arm arrangement 150 may be implemented in many different forms. In the embodiment shown, the arm arrangement 150 includes a first arm 162 and a second arm 164. A biasing arrangement 152 to control the radial motion of the arm arrangement 150 can be provided as a first spring member 166 between the housing 120 and the first arm 162 and a second spring member 168 between the housing 120 and the second arm 164.
In the non-limiting example shown (
The above can be used in a method for reducing pressure rise in the regenerative pump 104. The method includes radially moving the arm arrangement 150 away from the impeller 105 to expand the volume of the channel 121 holding a fluid.
The step of radially moving the arm arrangement 150 can include radially moving the first arm 162 and second arm 164 away from the impeller 105.
The method can further include a step of independently controlling radial motion of the first arm 162 and second arm 164 by using first spring 166 between the housing 120 and the first arm 162, and second spring 168 between the housing 120 and the second arm 164.
The method can further include a step of controlling radial motion of the first arm 162 and second arm 164 by using a linkage arrangement 190 (
Inventive Aspects
Aspect 1. A regenerative pump comprising: (a) a housing defining a cavity having a fluid inlet arrangement and fluid outlet arrangement, and a channel having an open volume extending between the fluid inlet arrangement and the fluid outlet arrangement; (b) a rotatable shaft extending into the housing having a longitudinal axis; (c) an impeller mounted to the shaft within the cavity; the impeller having a plurality of vanes spaced circumferentially around the axis and opening into the channel; and (d) an arm arrangement at least partially defining walls of the channel; the arm arrangement being radially movable with respect to the axis to vary the volume of the channel.
Aspect 2. The pump of aspect 1 further including a biasing arrangement controlling radial motion of the arm arrangement.
Aspect 3. The pump of aspect 2 wherein: (a) the arm arrangement includes a first arm and a second arm; and (b) the biasing arrangement includes a first spring member between the housing and the first arm; and a second spring member between the housing and the second arm.
Aspect 4. The pump of aspect 1 wherein: (a) the arm arrangement includes a first arm and a second arm; and (b) a linkage arrangement between the first arm and second arm to synchronize movement of the first and second arms to balance pressure limiting effects.
Aspect 5. The pump aspect 1 wherein: (a) the fluid inlet arrangement includes at least a pair of fluid inlets circumferentially spaced from each other and in communication with the channel; and (b) the fluid outlet arrangement includes at least a pair of fluid outlets circumferentially spaced from each other and in communication with the channel.
Aspect 6. The pump of aspect 3 wherein: (a) the first arm is an arced segment having a first end and second ends; the first arm being radially adjustable relative to the impeller such that the second end moves radially more from the impeller than the first end; and (b) the second arm is an arced segment having a first end and second ends; the second arm being radially adjustable relative to the impeller such that the second arm second end moves radially more from the impeller than the second arm first end.
Aspect 7. A regenerative pump comprising: an impeller rotatable about an impeller axis, the impeller including a first axial side and a second axial side, the impeller including a first plurality of regenerative pump vanes spaced about a circumference of the impeller at the first axial side of the impeller, the impeller also including a second plurality of regenerative pump vanes spaced about the circumference of the impeller at the second axial side of the impeller; and a pump housing in which the impeller is rotatably mounted, the pump housing defining an inlet and an outlet, the pump housing also defining a channel that extends circumferentially about the impeller between the inlet and the outlet, the channel including first and second regenerative flow sections respectively corresponding to the first and second pluralities of regenerative pump blades, each of the first and second regenerative flow sections having a rounded cross-sectional profile, the pump housing including an arm that defines at least a portion of the channel, the arm being moveable away from the impeller axis to enlarge a volume the channel and being moveable toward the impeller axis to reduce the volume of the channel.
Aspect 8. The regenerative pump of aspect 7, wherein the arm is moveable relative to the impeller axis between a first position and a second position, wherein the arm is closer to the impeller axis in the first position as compared to the second position.
Aspect 9. The regenerative pump of aspect 8, wherein when the arm is in the first position the first and second regenerative flow sections are positioned to cooperate with the first and second pluralities of regenerative pump vanes to generate regenerative circulatory flow in the channel from the inlet to the outlet during pumping, and wherein when the arm is in the second position at least portions of the first and second regenerative flow sections are spaced sufficiently far from the impeller that regenerative circulatory flow is inhibited along such portions during pumping.
Aspect 10. The regenerative pump of aspect 8, wherein the housing includes main housing assembly, wherein the arm is pivotally connected to the main housing assembly adjacent the inlet at a pivot axis so as to be pivotally movable between the first and second positions, wherein the arm extends generally from the inlet to the outlet of the pump housing, and wherein the pivot axis is parallel to the impeller axis.
Aspect 11. The regenerative pump of aspect 8, wherein when the arm is in the first position the channel has a cross-sectional flow area that is constant as the channel extends from the inlet to the outlet, and wherein when the arm is in the second position the cross-sectional flow area of the channel enlarges as the channel extends from the inlet to the outlet.
Aspect 12. A method for reducing pressure rise in a regenerative pump; the method comprising: radially moving an arm arrangement away from an impeller to expand a volume of a channel holding a fluid.
Aspect 13. The method of aspect 12 wherein the step of radially moving the arm arrangement includes radially moving a first arm and second arm away from the impeller, the impeller being within a cavity in a housing and secured to a rotating shaft.
Aspect 14. The method of aspect 13 further including a step of controlling radially motion of the first arm and second arm by using a first spring between the housing and the first arm, and a second spring between the housing and the second arm.
Aspect 15. The method of aspect 13 further including a step of synchronizing movement between the first arm and second arm to balance a pressure limiting effect on two sides of the impeller.
Aspect 16. The method of aspect 15 wherein the step of synchronizing movement includes using a linkage arrangement between the first arm and second arm.
Aspect 17. A regenerative pump comprising: an impeller rotatable about an impeller axis, the impeller including a plurality of regenerative pump vanes spaced about a circumference of the impeller; a pump housing in which the impeller is rotatably mounted, the pump housing defining an inlet and an outlet, the pump housing also defining a channel that extends circumferentially about the impeller between the inlet and the outlet; and wherein the channel comprises a regenerative section and a pressure limiting section; each of the regenerative section and pressure limiting section having a length that varies responsive to an amount of pressure in the channel.
Aspect 18. The regenerative pump of aspect 17 further including an arm arrangement constructed and arranged to affect a size of the channel.
The above represents example principles. Many embodiments can be made using these principles.
This application claims the benefit of U.S. Provisional Patent Application No. 63/219,243, filed Jul. 7, 2021, which is incorporated by reference herein in its entirety.
Number | Date | Country | |
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63219243 | Jul 2021 | US |