IP Library Granted Patent US 12,313,087
Granted Patent B2
US 12,313,087 · App. 18/474,534 · Granted May 27, 2025

Energy-conserving fluid pump

Inventor: Gary Cornwell (Melbourne, FL)
Assignee: Kinetic Technology Systems, LLC
F04D29/669F04D13/024F04D13/06F04D29/445
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Quick Facts
Patent No.
US 12,313,087
App. No.
18/474,534
Granted
May 27, 2025
Kind
B2
Abstract

An energy-conserving fluid pump is an apparatus used to transport low viscosity fluids like water and fuel without experiencing cavitation, recirculation, nor motor locking while also conserving energy. The apparatus includes a fluid diffuser, a fluid densifier, a convergent housing, and a strut assembly. The fluid diffuser improves the efficiency of the apparatus by expanding the fluid inflow and maintaining a fluid pressure buildup. The fluid densifier shears the incoming fluid flow from the fluid diffuser and increases the fluid outflow pressure. The convergent housing encloses the fluid diffuser and the fluid densifier while facilitating the outflow of the pressurized fluid without the loss of fluid pressure nor cavitation. In addition, the convergent housing facilitates the transfer of torque to the fluid diffuser for the operation of the apparatus. The strut assembly keeps the fluid densifier stationary while enabling the rotation of the convergent housing and/or the fluid diffuser.

Claims (28)

1. A fluid pump comprising:

a housing, said housing enclosing a fluid diffuser and a fluid densifier, said fluid diffuser and said housing rotating together, said fluid densifier being fixed against rotation;

the fluid diffuser having a central opening adapted to be connected to a source of a liquid, the central opening extending through a rear face of the fluid diffuser and opening into a forward face, said forward face of said fluid diffuser having a plurality of diffuser channels extending radially outwardly;

said fluid densifier having a rear face facing said fluid diffuser and a forward face facing away from said fluid diffuser, said fluid densifier having inlets at a radially outward location, with the term radially defined relative to a rotational axis of the fluid diffuser and the housing, and said fluid densifier inlets communicating with a plurality of fluid densifier channels on the forward face of the fluid densifier, and said plurality of fluid densifier channels extending to communicate with an outlet through the housing; and

a drive for rotating the fluid diffuser and the housing relative to the fluid densifier.

2. The pump as set forth in claim 1 , wherein the fluid diffuser channels communicate with a radially outward channel, and said fluid densifier inlets communicating with said radially outward channel.

3. The pump as set forth in claim 1 , wherein the drive includes a magnetic coupling with a rotor connected to drive the fluid diffuser and housing, and a stator that is static and outward of the housing.

4. The pump as set forth in claim 1 , wherein the drive is a pump drive coupling from a drive member outwardly of the housing.

5. The pump as set forth in claim 1 , wherein an electric motor drives a shaft to in turn drive the fluid diffuser and housing as the drive.

6. The pump as set forth in claim 1 , wherein each of the fluid densifier channels extend along a spiral from the corresponding fluid densifier inlet to a fluid densifier outlet at a radially inward location relative to the fluid densifier inlets.

7. The pump as set forth in claim 1 , wherein a strut assembly fixes the fluid densifier relative to the fluid diffuser and housing.

8. The pump as set forth in claim 7 , wherein the strut assembly comprises a strut that is connected to a static structure outwardly of the rotating housing.

9. The pump as set forth in claim 8 , wherein the strut extends through the central opening, and beyond the diffuser rear face to be connected to the static structure.

10. The pump as set forth in claim 1 , wherein a force plate is positioned axially between the fluid diffuser and the fluid densifier, and the force plate having openings that communicate with the fluid diffuser channels, and the force plate openings connected to communicate liquid received from the diffuser channels along ramps extending circumferentially and with a component in an axial direction toward the fluid densifier, the ramps connected to communicate liquid to the fluid densifier inlets.

11. A fluid pump comprising:

a housing enclosing a fluid diffuser and a fluid densifier, said fluid diffuser and said housing rotating together, said fluid densifier being fixed against rotation;

the fluid diffuser having an opening adapted to be connected to a source of a liquid, and opening into a forward face, said forward face of said fluid diffuser having a plurality of diffuser channels extending radially outwardly;

said fluid densifier having a rear face facing said fluid diffuser and a forward face facing away from said fluid diffuser, said fluid densifier having inlets at a radially outward location, with the term radially defined relative to a rotational axis of the fluid diffuser and the housing, and said fluid densifier inlets communicating with a plurality of fluid densifier channels on the forward face of the fluid densifier, and said plurality of fluid densifier channels extending to communicate with an outlet through the housing; and

a force plate positioned axially between the fluid diffuser and the fluid densifier, and the force plate having openings that communicate with the fluid diffuser channels, and the force plate openings connected to communicate liquid received from the diffuser channels along ramps that decrease in cross-sectional area in a downstream direction.

12. The pump as set forth in claim 11 , wherein there is a magnetic coupling with a rotor connected to drive the fluid diffuser and housing, and a stator that is static and outward of the housing.

13. The pump as set forth in claim 11 , wherein a pump drive coupling extending from a drive member outwardly of the housing.

14. The pump as set forth in claim 11 , wherein an electric motor drives a shaft to in turn drive the fluid diffuser, the force plate and housing.

15. The pump as set forth in claim 11 , wherein each of the fluid densifier channels extend along a spiral from the corresponding fluid densifier inlet to a fluid densifier outlet at a radially inward location relative to the fluid densifier inlets.

16. The pump as set forth in claim 11 , wherein a strut assembly fixes the fluid densifier relative to the fluid diffuser and housing.

17. The pump as set forth in claim 16 , wherein the strut assembly comprises a strut extending through the central opening, and beyond the diffuser rear face to be connected to a static structure.

18. The pump as set forth in claim 11 , wherein the ramps extending circumferentially and with a component in an axial direction toward the fluid densifier to result in the decrease in cross-sectional area, the ramps connected to communicate liquid to the fluid densifier inlets.

19. The pump as set forth in claim 11 , wherein there are equal numbers of the diffuser channels, force plate ramps and fluid densifier channels.

20. The pump as set forth in claim 11 , wherein there are unequal numbers of the diffuser channels, force plate ramps and fluid densifier channels.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 26, 2023
From: CORNWELL, GARY
To: KINETIC TECHNOLOGY SYSTEMS, LLC
Reel/Frame 065027/0361 →
Continuity (3)
Continuation In Part 17113871 · Dec 7, 2020
Provisional Application 62944702 · Dec 6, 2019
Related Publication 20240026903A1 · Jan 25, 2024
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