IP Library Granted Patent US 11,183,896
Granted Patent B2
US 11,183,896 · App. 17/145,675 · Granted Nov 23, 2021

Axial field rotary energy device having PCB stator and variable frequency drive

Inventors: Paulo Guedes-Pinto (Round Rock, TX); Rich Lee (Liberty Lake, WA); Jerad Park (Liberty Lake, WA); Ben Schuler (Austin, TX); Mark Preston (Martha's Vineyard, MA); Michael Gray (Georgetown, TX)
Assignee: Infinitum Electric, Inc.
H02K3/26H02K1/2793H02K9/06H02K11/33H02K21/24H02P27/06H02K5/20H02K16/02H02K2203/03H02K2211/03H02K2213/12
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Quick Facts
Patent No.
US 11,183,896
App. No.
17/145,675
Granted
Nov 23, 2021
Kind
B2
Abstract

An axial field rotary energy device or system includes an axis, a PCB stator and rotors having respective permanent magnets. The rotors rotate about the axis relative to the PCB stator. A variable frequency drive (VFD) having VFD components are coupled to the axial field rotary energy device. An enclosure contains the axial field rotary energy device and the VFD, such that the axial field rotary device and the VFD are integrated together within the enclosure. In addition, a cooling system is integrated with the enclosure to cool the axial field rotary energy device and the VFD.

Claims (34)

1. A system, comprising:

an axial field rotary energy device having an axis, a printed circuit board (PCB) stator and rotors having respective permanent magnets (PM), and the rotors are configured to rotate about the axis relative to the PCB stator;

a variable frequency drive (VFD) comprising VFD components coupled to the axial field rotary energy device;

an enclosure containing the axial field rotary energy device and the VFD, such that the axial field rotary device and the VFD are integrated together within the enclosure, wherein the enclosure comprises respective housings for the axial field rotary energy device and VFD, the housings are substantially axially aligned and coupled to each other, the housings are axially spaced apart by an axial space, and the VFD housing comprises an access port configured to provide access to the VFD;

a cooling system integrated within the enclosure and configured to cool the axial field rotary energy device and the VFD; and

the cooling system comprises a cooling device that is located in the axial space, the cooling device has a first impeller located between the rotors that is configured to circulate a first air flow within the housing for the axial field rotary energy device, and a second impeller located in the axial space between the housings and configured to circulate radial air flow into and out of the axial space adjacent the VFD.

2. The system of claim 1 , wherein the enclosure comprises an axial length, a radial width relative to the axis that is greater than the axial length, and the enclosure is substantially rectangular in shape when viewed radially.

3. The system of claim 2 , wherein a ratio of the radial width to the axial length is in a range of about 2:1 to about 20:1, and the enclosure is substantially square in shape when viewed radially.

4. The system of claim 1 , wherein the VFD components comprise a rectifier module, direct current (DC) bus, inverter module, control module and input/output (I/O) module.

5. The system of claim 4 , wherein the VFD components comprise line inductors.

6. The system of claim 4 , wherein the inverter module comprises wide band gap switching devices.

7. The system of claim 4 , wherein the rectifier module and DC bus comprise a first printed circuit board assembly (PCBA), the inverter module and control module comprise a second PCBA, the I/O module comprises a third PCBA.

8. The system of claim 7 , wherein the VFD components comprise line inductors as a separate assembly from the first, second and third PCBAs.

9. The system of claim 7 , wherein the I/O module comprises a daughter PCBA configured to perform customized communication functions, and the daughter PCBA is removably coupled to the third PCBA.

10. The system of claim 4 , wherein the rectifier module, DC bus, inverter module, and control module comprise a first printed circuit board assembly (PCBA), and the I/O module comprises a second PCBA.

11. The system of claim 10 , wherein the I/O module comprises a daughter PCBA configured to perform customized communication functions, and the daughter PCBA is removably coupled to the second PCBA.

12. The system of claim 4 , wherein the rectifier module, DC bus, inverter module, control module and I/O module comprise a common printed circuit board assembly (PCBA).

13. The system of claim 12 , wherein the I/O module comprises a daughter PCBA configured to perform customized communication functions, and the daughter PCBA is removably coupled to the common PCBA.

14. The system of claim 1 , wherein each housing comprises fins extending into the axial space between the housings.

15. The system of claim 14 , wherein the cooling device comprises a baffle configured to circulate an air flow that, relative to the axis, radially enters and exits the axial space between the housings.

16. The system of claim 15 , wherein the baffle comprises an axial component that extends in an axial direction along and around an exterior of the enclosure to define axial air passages between the axial component and the enclosure, the air baffle also having a radial component that extends in a radial direction in the axial space between the housings to define radial air passages between the radial component and the housings.

17. The system of claim 16 , wherein the cooling device is configured to circulate air flow that radially enters a first set of the radial air passages, flows through a second set of radial air passages, and the air flow axially exits via the axial air passages.

18. The system of claim 16 , wherein the cooling device is configured to circulate air flow that axially enters the axial air passages, flows through all radial air passages, and the air flow radially exits the system.

19. The system of claim 16 , wherein the cooling device is configured to circulate air flow that axially enters a first set of the axial air passages, flows through the radial air passages, and the air flow axially exits a second set of axial air passages.

20. A system, comprising:

an axial field rotary energy device having an axis, a printed circuit board (PCB) stator and rotors having respective permanent magnets (PM), and the rotors are configured to rotate about the axis relative to the PCB stator;

a variable frequency drive (VFD) comprising VFD components coupled to the axial field rotary energy device;

an enclosure containing the axial field rotary energy device and the VFD, such that the axial field rotary device and the VFD are integrated together within the enclosure, wherein the enclosure comprises respective housings for the axial field rotary energy device and VFD, each housing comprises fins extending into an axial space between the housings;

a cooling system integrated within the enclosure and configured to cool the axial field rotary energy device and the VFD;

the cooling system comprises a cooling device that is located in the axial space, the cooling device comprises a baffle configured to circulate an air flow that, relative to the axis, radially enters and exits the axial space between the housings; and

the baffle comprises an axial component that extends in an axial direction along and around an exterior of the enclosure to define axial air passages between the axial component and the enclosure, the air baffle also having a radial component that extends in a radial direction in the axial space between the housings to define radial air passages between the radial component and the housings.

21. The system of claim 20 , wherein the cooling device is configured to circulate air flow that radially enters a first set of the radial air passages, flows through a second set of radial air passages, and the air flow axially exits via the axial air passages.

22. The system of claim 20 , wherein the cooling device is configured to circulate air flow that axially enters the axial air passages, flows through all radial air passages, and the air flow radially exits the system.

23. The system of claim 20 , wherein the cooling device is configured to circulate air flow that axially enters a first set of the axial air passages, flows through the radial air passages, and the air flow axially exits a second set of axial air passages.

Assignments (3)
RELEASE OF SECURITY INTEREST Recorded Dec 14, 2023
From: FIRST-CITIZENS BANK & TRUST COMPANY (SUCCESSOR BY PURCHASE TO THE FEDERAL DEPOSIT INSURANCE CORPORATION AS RECEIVER FOR SILICON VALLEY BRIDGE BANK, N.A. (AS SUCCESSOR TO SILICON VALLEY BANK))
To: INFINITUM ELECTRIC INC.
Reel/Frame 065872/0104 →
SECURITY INTEREST Recorded Jul 21, 2023
From: INFINITUM ELECTRIC INC.
To: FIRST-CITIZENS BANK & TRUST COMPANY
Reel/Frame 064343/0060 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 21, 2022
From: GUEDES-PINTO, PAULO; SCHULER, BEN; GRAY, MICHAEL; LEE, RICH; PARK, JERAD; PRESTON, MARK
To: INFINITUM ELECTRIC, INC.
Reel/Frame 058719/0308 →
Continuity (3)
Continuation 16999837 · Aug 21, 2020
Provisional Application 62960974 · Jan 14, 2020
Related Publication 20210135526A1 · May 6, 2021
Cited By (4)
US 12,191,720 US 12,231,014 US 12,278,089 US 12,368,356