IP Library › Granted Patent US 10,890,181
Granted Patent B2
US 10,890,181 · App. 16/893,916 · Granted Jan 12, 2021

Enhancing fluid flow in gerotor systems

Inventor: Travis Rosenbarger (Royse City, TX)
Assignee: Boundary Lubrication Systems, L.L.C.
F04C15/06F04C2/084F04C2/088F04C2/10F04C2250/10F04C2250/20
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Quick Facts
Patent No.
US 10,890,181
App. No.
16/893,916
Granted
Jan 12, 2021
Kind
B2
Abstract

In a general aspect, fluid flow in a gerotor system is enhanced. In some cases, a gerotor apparatus includes inner and outer gears. The outer gear includes inward-facing teeth and an inner surface that defines an inner profile of the outer gear. The inner gear includes outward-facing teeth and an outer surface that defines an outer profile of the inner gear. The inner gear and the outer gear reside in contact such that the inner profile of the outer gear seals against the outer profile of the inner gear at multiple distinct points. One or more cutouts are defined by the inner surface of the outer gear between a neighboring pair of the inward-facing teeth, by the outer surface of the inner gear between a neighboring pair of the outward-facing teeth, or both.

Claims (40)

1. A gerotor apparatus for a pump in a vehicle system, comprising:

an outer rotor comprising:

inward-facing teeth,

an inner surface that defines an inner profile of the outer rotor, the inner profile of the outer rotor comprising respective profiles of the inward-facing teeth, and

a through passage through the outer rotor, the through passage defined by:

a first port formed at the inner surface of the outer rotor between a neighboring pair of the inward-facing teeth,

a second port formed at a planar side surface of the outer rotor,

a porting flow path extending from the first port, and

an axial flow passage extending from the second port to communicate with the extended porting flow path so that fluid flowing in the through passage enters the first port and then flows through the porting flow path and subsequently through the axial flow passage and exits the outer rotor after flowing through the second port; and

an inner rotor residing within the outer rotor and comprising:

outward-facing teeth,

an outer surface that defines an outer profile of the inner rotor, the outer profile of the inner rotor comprising respective profiles of the outward-facing teeth,

a cutout defined by the outer surface of the inner rotor,

parallel first and second planar side surfaces,

ports defined by the outer surface of the inner rotor, and

one or more flow paths through the inner rotor between the respective ports,

wherein the inner rotor and the outer rotor reside in contact such that the inner profile of the outer rotor seals against the outer profile of the inner rotor at multiple distinct points.

2. The gerotor apparatus of claim 1 , wherein the outer rotor comprises a radiused edge.

3. The gerotor apparatus of claim 1 , wherein the outer rotor comprises a chamfered edge.

4. The gerotor apparatus of claim 1 , comprising a housing that houses the inner rotor and the outer rotor in a flow chamber, and the inner rotor and the outer rotor are configured to rotate in the flow chamber of the housing during operation of the pump.

5. The gerotor apparatus of claim 4 , wherein the housing comprises a cutout defined by an inner surface of the housing.

6. A gerotor apparatus for a pump in a vehicle system, comprising:

an outer rotor comprising:

inward-facing teeth,

an inner surface that defines an inner profile of the outer rotor, the inner profile of the outer rotor comprising respective profiles of the inward-facing teeth, and

a through passage through the outer rotor, the through passage defined by:

a first port formed at the inner surface of the outer rotor between a neighboring pair of the inward-facing teeth,

a second port formed at a planar side surface of the outer rotor,

a porting flow path extending from the first port, and

an axial flow passage extending from the second port to communicate with the extended porting flow path so that fluid flowing in the through passage enters the first port and then flows through the porting flow path and subsequently through the axial flow passage and exits the outer rotor after flowing through the second port,

wherein the inner surface of the outer rotor defines a first plurality of cutouts, each of the first plurality of cutouts defined between a respective neighboring pair of the inward-facing teeth; and

an inner rotor residing within the outer rotor and comprising:

outward-facing teeth, and

an outer surface that defines an outer profile of the inner rotor, the outer profile of the inner rotor comprising respective profiles of the outward-facing teeth,

wherein the outer surface of the inner rotor defines a second plurality of cutouts, each of the second plurality of cutouts defined between a respective neighboring pair of the outward-facing teeth;

wherein the inner rotor and the outer rotor reside in contact such that the inner profile of the outer rotor seals against the outer profile of the inner rotor at multiple distinct points.

7. The gerotor apparatus of claim 6 , wherein the outer rotor comprises a radiused edge.

8. The gerotor apparatus of claim 6 , wherein the outer rotor comprises a chamfered edge.

9. The gerotor apparatus of claim 6 , comprising a housing that houses the inner rotor and the outer rotor in a flow chamber, and the inner rotor and the outer rotor are configured to rotate in the flow chamber of the housing during operation of the pump.

10. The gerotor apparatus of claim 9 , wherein the housing comprises a cutout defined by an inner surface of the housing.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 5, 2020
From: ROSENBARGER, TRAVIS
To: BOUNDARY LUBRICATION SYSTEMS L.L.C.
Reel/Frame 052856/0272 →
Continuity (2)
Provisional Application 62860877 · Jun 13, 2019
Related Publication 20200300243A1 · Sep 24, 2020
Cited By (1)
US 12,258,967